US20130123481A1 - Modified nucleosides, nucleotides, and nucleic acids, and uses thereof - Google Patents

Modified nucleosides, nucleotides, and nucleic acids, and uses thereof Download PDF

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US20130123481A1
US20130123481A1 US13/743,518 US201313743518A US2013123481A1 US 20130123481 A1 US20130123481 A1 US 20130123481A1 US 201313743518 A US201313743518 A US 201313743518A US 2013123481 A1 US2013123481 A1 US 2013123481A1
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optionally substituted
modified
independently
alkyl
nucleotides
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Antonin de Fougerolles
Atanu Roy
Stephane Bancel
Paul Hatala
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Moderna Inc
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Moderna Therapeutics Inc
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Priority to US14/987,231 priority patent/US20170056528A1/en
Priority to US17/032,657 priority patent/US20210308283A1/en
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K48/00Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy
    • A61K48/005Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy characterised by an aspect of the 'active' part of the composition delivered, i.e. the nucleic acid delivered
    • A61K48/0066Manipulation of the nucleic acid to modify its expression pattern, e.g. enhance its duration of expression, achieved by the presence of particular introns in the delivered nucleic acid
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides
    • A61K38/16Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • A61K38/17Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • A61K38/19Cytokines; Lymphokines; Interferons
    • A61K38/193Colony stimulating factors [CSF]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K48/00Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy
    • A61K48/0008Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy characterised by an aspect of the 'non-active' part of the composition delivered, e.g. wherein such 'non-active' part is not delivered simultaneously with the 'active' part of the composition
    • A61K48/0025Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy characterised by an aspect of the 'non-active' part of the composition delivered, e.g. wherein such 'non-active' part is not delivered simultaneously with the 'active' part of the composition wherein the non-active part clearly interacts with the delivered nucleic acid
    • A61K48/0033Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy characterised by an aspect of the 'non-active' part of the composition delivered, e.g. wherein such 'non-active' part is not delivered simultaneously with the 'active' part of the composition wherein the non-active part clearly interacts with the delivered nucleic acid the non-active part being non-polymeric
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K48/00Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy
    • A61K48/0075Medicinal preparations containing genetic material which is inserted into cells of the living body to treat genetic diseases; Gene therapy characterised by an aspect of the delivery route, e.g. oral, subcutaneous
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0019Injectable compositions; Intramuscular, intravenous, arterial, subcutaneous administration; Compositions to be administered through the skin in an invasive manner
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0019Injectable compositions; Intramuscular, intravenous, arterial, subcutaneous administration; Compositions to be administered through the skin in an invasive manner
    • A61K9/0021Intradermal administration, e.g. through microneedle arrays, needleless injectors
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/48Preparations in capsules, e.g. of gelatin, of chocolate
    • A61K9/50Microcapsules having a gas, liquid or semi-solid filling; Solid microparticles or pellets surrounded by a distinct coating layer, e.g. coated microspheres, coated drug crystals
    • A61K9/51Nanocapsules; Nanoparticles
    • A61K9/5107Excipients; Inactive ingredients
    • A61K9/5123Organic compounds, e.g. fats, sugars
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • A61P37/04Immunostimulants
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P43/00Drugs for specific purposes, not provided for in groups A61P1/00-A61P41/00
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07HSUGARS; DERIVATIVES THEREOF; NUCLEOSIDES; NUCLEOTIDES; NUCLEIC ACIDS
    • C07H21/00Compounds containing two or more mononucleotide units having separate phosphate or polyphosphate groups linked by saccharide radicals of nucleoside groups, e.g. nucleic acids
    • C07H21/02Compounds containing two or more mononucleotide units having separate phosphate or polyphosphate groups linked by saccharide radicals of nucleoside groups, e.g. nucleic acids with ribosyl as saccharide radical
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07KPEPTIDES
    • C07K14/00Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • C07K14/435Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • C07K14/52Cytokines; Lymphokines; Interferons
    • C07K14/53Colony-stimulating factor [CSF]
    • C07K14/535Granulocyte CSF; Granulocyte-macrophage CSF
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
    • C12NMICROORGANISMS OR ENZYMES; COMPOSITIONS THEREOF; PROPAGATING, PRESERVING, OR MAINTAINING MICROORGANISMS; MUTATION OR GENETIC ENGINEERING; CULTURE MEDIA
    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/11DNA or RNA fragments; Modified forms thereof; Non-coding nucleic acids having a biological activity
    • CCHEMISTRY; METALLURGY
    • C12BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
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    • C12N15/00Mutation or genetic engineering; DNA or RNA concerning genetic engineering, vectors, e.g. plasmids, or their isolation, preparation or purification; Use of hosts therefor
    • C12N15/09Recombinant DNA-technology
    • C12N15/63Introduction of foreign genetic material using vectors; Vectors; Use of hosts therefor; Regulation of expression
    • C12N15/67General methods for enhancing the expression

Definitions

  • the present disclosure provides compositions and methods using modified nucleic acids to modulate cellular function.
  • the modified nucleic acids of the invention may encode peptides, polypeptides or multiple proteins.
  • the encoded molecules may be used as therapeutics and/or diagnostics.
  • RNAs are synthesized from four basic ribonucleotides: ATP, CTP, UTP and GTP, but may contain post-transcriptionally modified nucleotides. Further, approximately one hundred different nucleoside modifications have been identified in RNA (Rozenski, J, Crain, P, and McCloskey, J. (1999). The RNA Modification Database: 1999 update. Nucl Acids Res 27: 196-197). The role of nucleoside modifications on the immune-stimulatory potential and on the translation efficiency of RNA, however, is unclear.
  • heterologous DNA introduced into a cell can be inherited by daughter cells (whether or not the heterologous DNA has integrated into the chromosome) or by offspring. Introduced DNA can integrate into host cell genomic DNA at some frequency, resulting in alterations and/or damage to the host cell genomic DNA.
  • multiple steps must occur before a protein is made. Once inside the cell, DNA must be transported into the nucleus where it is transcribed into RNA. The RNA transcribed from DNA must then enter the cytoplasm where it is translated into protein. This need for multiple processing steps creates lag times before the generation of a protein of interest. Further, it is difficult to obtain DNA expression in cells; frequently DNA enters cells but is not expressed or not expressed at reasonable rates or concentrations. This can be a particular problem when DNA is introduced into cells such as primary cells or modified cell lines.
  • the present disclosure provides, inter alia, modified nucleosides, modified nucleotides, and modified nucleic acids which can exhibit a reduced innate immune response when introduced into a population of cells, both in vivo and ex vivo.
  • the present invention provides polynucleotides which may be isolated or purified. These polynucleotides may encode one or more polypeptides of interest and comprise a sequence of n number of linked nucleosides or nucleotides comprising at least one modified nucleoside or nucleotide as compared to the chemical structure of an A, G, U or C nucleoside or nucleotide.
  • the polynucleotides may also contain a 5′ UTR comprising at least one Kozak sequence, a 3′ UTR, and at least one 5′ cap structure.
  • the isolated polynucleotides may further contain a poly-A tail and may be purified.
  • the isolated polynucleotides of the invention also comprise at least one 5′ cap structure selected from the group consisting of Cap0, Cap 1, ARCA, inosine, N1-methyl-guanosine, 2′fluoro-guanosine, 7-deaza-guanosine, 8-oxo-guanosine, 2-amino-guanosine, LNA-guanosine, and 2-azido-guanosine.
  • Modifications of the polynucleotides of the invention may be on the nucleoside base and/or sugar portion of the nucleosides which comprise the polynucleotide.
  • the modification is on the nucleobase and is selected from the group consisting of pseudouridine or N1-methylpseudouridine.
  • the modified nucleoside is not pseudouridine ( ⁇ ) or 5-methyl-cytidine (m5C).
  • modifications are included in the modified nucleic acid or in one or more individual nucleoside or nucleotide.
  • modifications to a nucleoside may include one or more modifications to the nucleobase and the sugar.
  • novel building blocks e.g., nucleosides and nucleotides for the preparation of modified polynucleotides and their method of synthesis and manufacture.
  • compositions comprising the modified polynucleotides described herein.
  • These may also further include one or more pharmaceutically acceptable excipients selected from a solvent, aqueous solvent, non-aqueous solvent, dispersion media, diluent, dispersion, suspension aid, surface active agent, isotonic agent, thickening or emulsifying agent, preservative, lipid, lipidoids liposome, lipid nanoparticle, core-shell nanoparticles, polymer, lipoplexe peptide, protein, cell, hyaluronidase, and mixtures thereof.
  • pharmaceutically acceptable excipients selected from a solvent, aqueous solvent, non-aqueous solvent, dispersion media, diluent, dispersion, suspension aid, surface active agent, isotonic agent, thickening or emulsifying agent, preservative, lipid, lipidoids liposome, lipid nanoparticle, core-shell nanoparticles, polymer, lipoplexe peptide
  • polynucleotides and modified nucleic acids of the invention are also provided.
  • the polynucleotides may be formulated by any means known in the art or administered via any of several routes including injection by intradermal, subcutaneous or intramuscular means.
  • Administration of the modified nucleic acids of the invention may be via two or more equal or unequal split doses.
  • the level of the polypeptide produced by the subject by administering split doses of the polynucleotide is greater than the levels produced by administering the same total daily dose of polynucleotide as a single administration.
  • Detection of the modified nucleic acids or the encoded polypeptides may be performed in the bodily fluid of the subject or patient where the bodily fluid is selected from the group consisting of peripheral blood, serum, plasma, ascites, urine, cerebrospinal fluid (CSF), sputum, saliva, bone marrow, synovial fluid, aqueous humor, amniotic fluid, cerumen, breast milk, broncheoalveolar lavage fluid, semen, prostatic fluid, cowper's fluid or pre-ejaculatory fluid, sweat, fecal matter, hair, tears, cyst fluid, pleural and peritoneal fluid, pericardial fluid, lymph, chyme, chyle, bile, interstitial fluid, menses, pus, sebum, vomit, vaginal secretions, mucosal secretion, stool water, pancreatic juice, lavage fluids from sinus cavities, bronchopulmonary aspirates, blastocyl cavity fluid, and umbilical cord blood.
  • administration is according to a dosing regimen which occurs over the course of hours, days, weeks, months, or years and may be achieved by using one or more devices selected from multi-needle injection systems, catheter or lumen systems, and ultrasound, electrical or radiation based systems.
  • FIG. 1 provides the spectrum and graphs of the analytical results for N4-Me-CTP (NTP of compound 1).
  • FIG. 1A provides the nuclear magnetic resonance (NMR) spectrum in DMSO and
  • FIG. 1B provides the NMR spectrum in D 2 O
  • FIG. 1C provides the mass spectrometry (MS) results
  • FIG. 1D is the high performance liquid chromatography (HPLC) results for N4-methylcytidine (N4-Me-cytidine, compound 1).
  • FIG. 2 shows the HPLC results for N4-Me-CTP (NTP of compound 1).
  • FIG. 3 provides the analytical results for 2′-OMe-N,N-di-Me-CTP (NTP of compound 2).
  • FIG. 3A provides the NMR spectrum.
  • FIG. 3B provides the MS results.
  • FIG. 3C provides HPLC results for 2′-O-methyl-N 4 ,N 4 -dimethylcytidine (2′-OMe-N,N-di-Me-cytidine, compound 2).
  • FIG. 4 shows the HPLC results for 2′-OMe-N,N-di-Me-CTP (NTP of compound 2).
  • FIG. 5 provides the HPLC results for 5-methoxycarbonylmethoxy-UTP (NTP of compound 3).
  • FIG. 6 provides the analytical results of 3-methyl pseudouridine (compound 4).
  • FIG. 6A provides the NMR spectrum of 3-methyl pseudouridine (compound 4) and
  • FIG. 6B provides the HPLC results for 3-methyl pseudouridine (compound 4).
  • FIG. 7 provides the analytical results of 5-TBDMS-OCH 2 -cytidine (compound 6).
  • FIG. 7A provide the NMR spectrum
  • FIG. 7B provides the MS results
  • FIG. 7C provides the HPLC results for 5-TBDMS-OCH 2 -cytidine (compound 6).
  • FIG. 8 provides the analytical results of 5-trifluoromethyl uridine (compound 8).
  • FIG. 8A provides the NMR spectrum
  • FIG. 8B provides MS results
  • FIG. 8C provides HPLC results for 5-trifluoromethyl uridine (compound 8).
  • FIG. 9 provides the NMR spectrum results for of 5-(methoxycarbonyl)methyl uridine (compound 9).
  • FIG. 10 provides a graph showing the variability of protein (GCSF; line B) and cytokine (interferon-alpha (IFNa); line A and tumor necrosis factor-alpha (TNFa); line C) expression as function of percent modification.
  • GCSF protein
  • line B cytokine
  • IFNa interferon-alpha
  • TNFa tumor necrosis factor-alpha
  • the present disclosure provides, inter alia, modified nucleosides, modified nucleotides, and modified nucleic acids that exhibit improved therapeutic properties including, but not limited to, a reduced innate immune response when introduced into a population of cells.
  • the present invention addresses this need by providing nucleic acid based compounds or polynucleotides which encode a polypeptide of interest (e.g., modified mRNA) and which have structural and/or chemical features that avoid one or more of the problems in the art, for example, features which are useful for optimizing nucleic acid-based therapeutics while retaining structural and functional integrity, overcoming the threshold of expression, improving expression rates, half life and/or protein concentrations, optimizing protein localization, and avoiding deleterious bio-responses such as the immune response and/or degradation pathways.
  • a polypeptide of interest e.g., modified mRNA
  • polynucleotides encoding polypeptides of interest which have been chemically modified to improve one or more of the stability and/or clearance in tissues, receptor uptake and/or kinetics, cellular access by the compositions, engagement with translational machinery, mRNA half-life, translation efficiency, immune evasion, protein production capacity, secretion efficiency (when applicable), accessibility to circulation, protein half-life and/or modulation of a cell's status, function and/or activity.
  • modified nucleosides, nucleotides and nucleic acids of the invention including the combination of modifications taught herein have superior properties making them more suitable as therapeutic modalities.
  • methods of determining the effectiveness of a modified mRNA as compared to unmodified involves the measure and analysis of one or more cytokines whose expression is triggered by the administration of the exogenous nucleic acid of the invention. These values are compared to administration of an unmodified nucleic acid or to a standard metric such as cytokine response, PolyIC, R-848 or other standard known in the art.
  • PC Ratio Protein:Cytokine Ratio
  • PC Ratios, by cytokine, of the present invention may be greater than 1, greater than 10, greater than 100, greater than 1000, greater than 10,000 or more. Modified nucleic acids having higher PC Ratios than a modified nucleic acid of a different or unmodified construct are preferred.
  • the PC ratio may be further qualified by the percent modification present in the polynucleotide. For example, normalized to a 100% modified nucleic acid, the protein production as a function of cytokine (or risk) or cytokine profile can be determined.
  • the present invention provides a method for determining, across chemistries, cytokines or percent modification, the relative efficacy of any particular modified polynucleotide by comparing the PC Ratio of the modified nucleic acid (polynucleotide).
  • the chemically modified mRNA are substantially non toxic and non mutagenic.
  • the modified nucleosides, modified nucleotides, and modified nucleic acids can be chemically modified on the major groove face, thereby disrupting major groove binding partner interactions, which may cause innate immune responses. Further, these modified nucleosides, modified nucleotides, and modified nucleic acids can be used to deliver a payload, e.g., detectable or therapeutic agent, to a biological target.
  • the nucleic acids can be covalently linked to a payload, e.g. a detectable or therapeutic agent, through a linker attached to the nucleobase or the sugar moiety.
  • the compositions and methods described herein can be used, in vivo and in vitro, both extracellarly or intracellularly, as well as in assays such as cell free assays.
  • the present disclosure provides compounds comprising a nucleotide that disrupts binding of a major groove interacting, e.g. binding, partner with a nucleic acid, wherein the nucleotide has decreased binding affinity to major groove interacting partners.
  • the present disclosure provides nucleotides that contain chemical modifications, wherein the nucleotide has altered binding to major groove interacting partners.
  • the chemical modifications are located on the major groove face of the nucleobase, and wherein the chemical modifications can include replacing or substituting an atom of a pyrimidine nucleobase with an amine, an SH, an alkyl (e.g., methyl or ethyl), or a halo (e.g., chloro or fluoro).
  • the present disclosure provides chemical modifications located on the sugar moiety of the nucleotide.
  • the present disclosure provides chemical modifications located on the phosphate backbone of the nucleic acid.
  • the chemical modifications alter the electrochemistry on the major groove face of the nucleic acid.
  • the present disclosure provides nucleotides that contain chemical modifications, wherein the nucleotide reduces the cellular innate immune response, as compared to the cellular innate immune induced by a corresponding unmodified nucleic acid.
  • the present disclosure provides nucleic acid sequences comprising at least two nucleotides, the nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid sequence, wherein the nucleotide has decreased binding affinity to the major groove binding partner.
  • the present disclosure provides compositions comprising a compound as described herein.
  • the composition is a reaction mixture.
  • the composition is a pharmaceutical composition.
  • the composition is a cell culture.
  • the composition further comprises an RNA polymerase and a cDNA template.
  • the composition further comprises a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • the present disclosure provides methods of making a pharmaceutical formulation comprising a physiologically active secreted protein, comprising transfecting a first population of human cells with the pharmaceutical nucleic acid made by the methods described herein, wherein the secreted protein is active upon a second population of human cells.
  • the secreted protein is capable of interacting with a receptor on the surface of at least one cell present in the second population.
  • the secreted protein is Granulocyte-Colony Stimulating Factor (G-CSF).
  • G-CSF Granulocyte-Colony Stimulating Factor
  • the second population contains myeloblast cells that express the G-CSF receptor.
  • combination therapeutics containing one or more modified nucleic acids containing translatable regions that encode for a protein or proteins that boost a mammalian subject's immunity along with a protein that induces antibody-dependent cellular toxitity.
  • G-CSF granulocyte-colony stimulating factor
  • such combination therapeutics are useful in Her2+ breast cancer patients who develop induced resistance to trastuzumab. (See, e.g., Albrecht, Immunotherapy. 2 (6):795-8 (2010)).
  • nucleoside or polynucleotide such as the nucleic acids of the invention, e.g., mRNA molecule
  • modification or, as appropriate, “modified” refer to modification with respect to A, G, U or C ribonucleotides. Generally, herein, these terms are not intended to refer to the ribonucleotide modifications in naturally occurring 5′-terminal mRNA cap moieties.
  • modification refers to a modification as compared to the canonical set of 20 amino acids, moiety
  • the modifications may be various distinct modifications.
  • the coding region, the flanking regions and/or the terminal regions may contain one, two, or more (optionally different) nucleoside or nucleotide modifications.
  • a modified polynucleotide introduced to a cell may exhibit reduced degradation in the cell, as compared to an unmodified polynucleotide.
  • the polynucleotides can include any useful modification, such as to the sugar, the nucleobase, or the internucleoside linkage (e.g. to a linking phosphate/to a phosphodiester linkage/to the phosphodiester backbone).
  • the major groove of a polynucleotide, or the major groove face of a nucleobase may comprise one or more modifications.
  • One or more atoms of a pyrimidine nucleobase e.g. on the major groove face
  • modifications are present in each of the sugar and the internucleoside linkage.
  • Modifications according to the present invention may be modifications of ribonucleic acids (RNAs) to deoxyribonucleic acids (DNAs), e.g., the substitution of the 2′OH of the ribofuranysyl ring to 2′H, threose nucleic acids (TNAs), glycol nucleic acids (GNAs), peptide nucleic acids (PNAs), locked nucleic acids (LNAs) or hybrids thereof). Additional modifications are described herein.
  • the polynucleotides of the invention do not substantially induce an innate immune response of a cell into which the polynucleotide (e.g., mRNA) is introduced.
  • a cell into which the polynucleotide e.g., mRNA
  • an induced innate immune response include 1) increased expression of pro-inflammatory cytokines, 2) activation of intracellular PRRs (RIG-I, MDA5, etc, and/or 3) termination or reduction in protein translation.
  • the invention provides a modified nucleic acid molecule containing a degradation domain, which is capable of being acted on in a directed manner within a cell.
  • the present disclosure provides polynucleotides comprising a nucleoside or nucleotide that can disrupt the binding of a major groove interacting, e.g. binding, partner with the polynucleotide (e.g., where the modified nucleotide has decreased binding affinity to major groove interacting partner, as compared to an unmodified nucleotide).
  • the polynucleotides can optionally include other agents (e.g., RNAi-inducing agents, RNAi agents, siRNAs, shRNAs, miRNAs, antisense RNAs, ribozymes, catalytic DNA, tRNA, RNAs that induce triple helix formation, aptamers, vectors, etc.).
  • the polynucleotides may include one or more messenger RNAs (mRNAs) having one or more modified nucleoside or nucleotides (i.e., modified mRNA molecules). Details for these polynucleotides follow.
  • the polynucleotides of the invention includes a first region of linked nucleosides encoding a polypeptide of interest, a first flanking region located at the 5′ terminus of the first region, and a second flanking region located at the 3′ terminus of the first region.
  • the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Ia) or Formula (Ia-1):
  • U is O, S, N(R U ) nu , or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R U is, independently, H, halo, or optionally substituted alkyl;
  • is a single bond or absent
  • each of R 1′ , R 2′ , R 1′′ , R 2′′ , R 1 , R 2 , R 3 , R 4 , and R 5 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent; wherein the combination of R 3 with one or more of R 1′ , R 1′′ , R 2′ , R 2′′ , or R 5 (e.g., the combination of R 1′ and R 3 , the combination of R 1′′ and R 3 , the combination of R 2′ and R 3
  • each of m′ and m′′ is, independently, an integer from 0 to 3 (e.g., from 0 to 2, from 0 to 1, from 1 to 3, or from 1 to 2);
  • each of Y 1 , Y 2 , and Y 3 is, independently, O, S, Se, —NR N1 —, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, or absent;
  • each Y 4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y 5 is, independently, O, S, Se, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000;
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof), wherein the combination of B and R 1′ , the combination of B and R 2′ , the combination of B and R 1′′ , or the combination of B and R 2′′ can, taken together with the carbons to which they are attached, optionally form a bicyclic group (e.g., a bicyclic heterocyclyl) or wherein the combination of B, R 1′′ , and R 3 or the combination of B, R 2′′ , and R 3 can optionally form a tricyclic or tetracyclic group (e.g., a tricyclic or tetracyclic heterocyclyl, such as in Formula (IIo)-(IIp) herein).
  • a nucleobase e.g., a purine, a pyrimidine, or derivatives thereof
  • the polynucleotide includes a modified ribose.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (Ia-2)-(Ia-5) or a pharmaceutically acceptable salt or stereoisomer thereof.
  • the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (Ib) or Formula (Ib-1):
  • each R U is, independently, H, halo, or optionally substituted alkyl;
  • is a single bond or absent
  • each of R 1 , R 3′ , R 3′′ , and R 4 is, independently, H, halo, hydroxy, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent; and wherein the combination of R 1 and R 3′ or the combination of R 1 and R 3′′ can be taken together to form optionally substituted alkylene or optionally substituted heteroalkylene (e.g., to produce a locked nucleic acid);
  • each R 5 is, independently, H, halo, hydroxy, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, or absent;
  • each of Y 1 , Y 2 , and Y 3 is, independently, O, S, Se, NR N1 —, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl;
  • each Y 4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • n is an integer from 1 to 100,000;
  • B is a nucleobase
  • the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Ic):
  • each R U is, independently, H, halo, or optionally substituted alkyl;
  • is a single bond or absent
  • each of B 1 , B 2 , and B 3 is, independently, a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof, as described herein), H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl, wherein one and only one of B 1 , B 2 , and B 3 is a nucleobase;
  • a nucleobase e.g., a purine, a pyrimidine, or derivatives thereof, as described herein
  • H halo, hydroxy, thi
  • each of R b1 , R b2 , R b3 , R 3 , and R 5 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl;
  • each of Y 1 , Y 2 , and Y 3 is, independently, O, S, Se, —NR N1 —, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl;
  • each Y 4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y 5 is, independently, O, S, Se, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000;
  • ring including U can include one or more double bonds.
  • the ring including U does not have a double bond between U-CB 3 R b3 or between CB 3 R b3 —C B2 R b2 .
  • the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Id):
  • U is O, S, N(R U ) nu , or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R U is, independently, H, halo, or optionally substituted alkyl;
  • each R 3 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl;
  • each of Y 1 , Y 2 , and Y 3 is, independently, O, S, Se, —NR N1 —, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl;
  • each Y 4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y 5 is, independently, O, S, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000;
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof).
  • the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Ie):
  • each of U′ and U′′ is, independently, O, S, N(R U ) nu , or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R u is, independently, H, halo, or optionally substituted alkyl;
  • each R 6 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl;
  • each Y 5′ is, independently, O, S, optionally substituted alkylene (e.g., methylene or ethylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000;
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof).
  • the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (If) or (If-1):
  • each of U′ and U′′ is, independently, O, S, N,N(R U ) nu , or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R U is, independently, H, halo, or optionally substituted alkyl (e.g., U′ is O and U′′ is N);
  • is a single bond or absent
  • each of R 1′ , R 2′ , R 1′′ , R 2′′ , R 3 , and R 4 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent; and wherein the combination of R 1′ and R 3 , the combination of R 1′′ and R 3 , the combination of R 2′ and R 3 , or the combination of R 2′′ and R 3 can be taken together to form optionally substituted alkylene or optionally substituted heteroalkylene (e.g., to produce a locked nucleic acid); each of m′
  • each of Y 1 , Y 2 , and Y 3 is, independently, O, S, Se, —NR N1 —, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, or absent;
  • each Y 4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y 5 is, independently, O, S, Se, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000;
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof).
  • the ring including U has one or two double bonds.
  • each of R 2 , R 2′ , and R 2′′ is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy.
  • alkoxyalkoxy is —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C 1-20 alkyl). In some embodiments, s2 is 0, s1 is 1 or 2, s3 is 0 or 1, and R′ is C 1-6 alkyl.
  • each of R 2 , R 2′ , and R 2′′ if present, is H.
  • each of R 1 , R 1′ , and R 1′′ is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy.
  • alkoxyalkoxy is —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C 1-20 alkyl). In some embodiments, s2 is 0, s1 is 1 or 2, s3 is 0 or 1, and R′ is C 1-6 alkyl.
  • each of R 3 , R 4 , and R 5 is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkyl, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy.
  • R 3 is H, R 4 is H, R 5 is H, or R 3 , R 4 , and R 5 are all H.
  • R 3 is C 1-6 alkyl
  • R 4 is C 1-6 alkyl
  • R 5 is C 1-6 alkyl
  • R 3 and R 4 are both H
  • R 5 is C 1-6 alkyl.
  • R 3 and R 5 join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl, such as trans-3′,4′ analogs, wherein R 3 and R 5 join together to form heteroalkylene (e.g., —(CH 2 ) b1 O(CH 2 ) b2 O(CH 2 ) b3 —, wherein each of b1,
  • R 3 and one or more of R 1′ , R 1′′ , R 2′ , R 2′′ , or R 5 join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl, R 3 and one or more of R 1′ , R 1′′ , R 2′ , R 2′′ , or R 5 join together to form heteroalkylene (e.g.,
  • R 5 and one or more of R 1′ , R 1′′ , R 2′ , or R 2′′ join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl, R 5 and one or more of R 1′ , R 1′′ , R 2′ , or R 2′′ join together to form heteroalkylene (e.g., —(CH 2 ) b
  • each Y 2 is, independently, O, S, or —NR N1 —, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl.
  • Y 2 is NR N1 —, wherein R N1 is H or optionally substituted alkyl (e.g., C 1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl).
  • R N1 is H or optionally substituted alkyl (e.g., C 1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl).
  • each Y 3 is, independently, O or S.
  • R 1 is H; each R 2 is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy (e.g., —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to
  • R 3 is H, halo (e.g., fluoro), hydroxy, optionally substituted alkyl, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy.
  • halo e.g., fluoro
  • hydroxy optionally substituted alkyl
  • optionally substituted alkoxy e.g., methoxy or ethoxy
  • optionally substituted alkoxyalkoxy optionally substituted alkoxyalkoxy.
  • each Y 1 is, independently, O or —NR N1 —, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein R N1 is H or optionally substituted alkyl (e.g., C 1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl)); and each Y 4 is, independently, H, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino.
  • R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein R N1 is H or optionally substituted alkyl (e.g.
  • each R 1 is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy (e.g., —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g.,
  • R 3 is H, halo (e.g., fluoro), hydroxy, optionally substituted alkyl, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy.
  • halo e.g., fluoro
  • hydroxy optionally substituted alkyl
  • optionally substituted alkoxy e.g., methoxy or ethoxy
  • optionally substituted alkoxyalkoxy optionally substituted alkoxyalkoxy.
  • each Y 1 is, independently, O or —NR N1 —, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein R N1 is H or optionally substituted alkyl (e.g., C 1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl)); and each Y 4 is, independently, H, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino.
  • R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein R N1 is H or optionally substituted alkyl (e.g.
  • the ring including U is in the ⁇ -D (e.g., ⁇ -D-ribo) configuration.
  • the ring including U is in the ⁇ -L (e.g., ⁇ -L-ribo) configuration.
  • one or more B is not pseudouridine ( ⁇ ) or 5-methyl-cytidine (m 5 C).
  • about 10% to about 100% of n number of B nucleobases is not ⁇ or m 5 C (e.g., from 10% to 20%, from 10% to 35%, from 10% to 50%, from 10% to 60%, from 10% to 75%, from 10% to 90%, from 10% to 95%, from 10% to 98%, from 10% to 99%, from 20% to 35%, from 20% to 50%, from 20% to 60%, from 20% to 75%, from 20% to 90%, from 20% to 95%, from 20% to 98%, from 20% to 99%, from 20% to 100%, from 50% to 60%, from 50% to 75%, from 50% to 90%, from 50% to 95%, from 50% to 98%, from 50% to 99%, from 50% to 100%, from 75% to 90%, from 75% to 95%, from 75% to 98%, from 75% to 99%, and from 75% to 100% of n number of B is not ⁇ or m 5 C).
  • B is not ⁇ or m 5 C.
  • polynucleotides e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)
  • B is an unmodified nucleobase selected from cytosine, guanine, uracil and adenine
  • at least one of Y 1 , Y 2 , or Y 3 is not O.
  • the polynucleotide includes a modified ribose.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (IIa)-(IIc):
  • U is O or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R u is, independently, H, halo, or optionally substituted alkyl (e.g., U is —CH 2 — or —CH—).
  • each of R 1 , R 2 , R 3 , R 4 , and R 5 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent (e.g., each R 1 and R 2 is, independently H, halo, hydroxy, optionally substituted alkyl, or optionally substituted alkoxy; each R 3 and R 4 is, independently, H or optionally substituted alkyl; and R 5 is H or hydroxy), and is a single bond or double bond.
  • the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIb-1)-(IIb-2):
  • U is O or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R U is, independently, H, halo, or optionally substituted alkyl (e.g., U is —CH 2 — or —CH—).
  • each of R 1 and R 2 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent (e.g., each R 1 and R 2 is, independently, H, halo, hydroxy, optionally substituted alkyl, or optionally substituted alkoxy, e.g., H, halo, hydroxy, alkyl, or alkoxy).
  • R 2 is hydroxy or optionally substituted alkoxy (e.g., methoxy, ethoxy, or any described herein).
  • the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIc-1)-(IIc-4):
  • U is O or C(R U ) nu , wherein nu is an integer from 0 to 2 and each R U is, independently, H, halo, or optionally substituted alkyl (e.g., U is —CH 2 — or —CH—).
  • each of R 1 , R 2 , and R 3 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent (e.g., each R 1 and R 2 is, independently, H, halo, hydroxy, optionally substituted alkyl, or optionally substituted alkoxy, e.g., H, halo, hydroxy, alkyl, or alkoxy; and each R 3 is, independently, H or optionally substituted alkyl)).
  • R 2 is optionally substituted alkoxy (e.g., methoxy or ethoxy, or any described herein).
  • R 1 is optionally substituted alkyl
  • R 2 is hydroxy.
  • R 1 is hydroxy
  • R 2 is optionally substituted alkyl.
  • R 3 is optionally substituted alkyl.
  • the polynucleotide includes an acyclic modified ribose.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (IId)-(IIf):
  • the polynucleotide includes an acyclic modified hexitol.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (IIg)-(IIj):
  • the polynucleotide includes a sugar moiety having a contracted or an expanded ribose ring.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (IIk)-(IIm):
  • each of R 1′′ , R 1′ , R 2′ , and R 2′′ is, independently, H, halo, hydroxy, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, or absent; and wherein the combination of R 2′ and R 3 or the combination of R 2′′ and R 3 can be taken together to form optionally substituted alkylene or optionally substituted heteroalkylene.
  • the polynucleotide includes a locked modified ribose.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (IIn):
  • R 3′ is O, S, or —NR N1 —, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl and R 3′′ is optionally substituted alkylene (e.g., —CH 2 —, —CH 2 CH 2 —, or —CH 2 CH 2 CH 2 —) or optionally substituted heteroalkylene (e.g., —CH 2 NH—, —CH 2 CH 2 NH—, —CH 2 OCH 2 —, or —CH 2 CH 2 OCH 2 —) (e.g., R 3′ is O and R 3′′ is optionally substituted alkylene (e.g., —CH 2 —, —CH 2 CH 2 —, or —CH 2 CH 2 CH 2 —)).
  • the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIn-1)-(II-n2):
  • R 3′ is O, S, or —NR N1 —, wherein R N1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl and R 3′′ is optionally substituted alkylene (e.g., —CH 2 —, —CH 2 CH 2 —, or —CH 2 CH 2 CH 2 —) or optionally substituted heteroalkylene (e.g., —CH 2 NH—, —CH 2 CH 2 NH—, —CH 2 OCH 2 —, or —CH 2 CH 2 OCH 2 —) (e.g., R 3′ is O and R 3′′ is optionally substituted alkylene (e.g., —CH 2 —, —CH 2 CH 2 —, or —CH 2 CH 2 CH 2 —)).
  • the polynucleotide includes a locked modified ribose that forms a tetracyclic heterocyclyl.
  • the polynucleotide e.g., the first region, the first flanking region, or the second flanking region
  • the polynucleotide includes n number of linked nucleosides having Formula (IIo):
  • R 12a , R 12c , T 1′ , T 1′′ , T 2′ , T 2′′ , V 1 , and V 3 are as described herein.
  • any of the formulas for the polynucleotides can include one or more nucleobases described herein (e.g., Formulas (b1)-(b43)).
  • the present invention provides methods of preparing a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid, wherein the polynucleotide comprises n number of nucleosides having Formula (Ia), as defined herein:
  • the present invention provides methods of amplifying a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove binding partner with the polynucleotide sequence, the method comprising: reacting a compound of Formula (IIIa), as defined herein, with a primer, a cDNA template, and an RNA polymerase.
  • the present invention provides methods of preparing a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid, wherein the polynucleotide comprises n number of nucleosides having Formula (Ia-1), as defined herein:
  • the present invention provides methods of amplifying a polynucleotide comprising at least one nucleotide (e.g., modified mRNA molecule) that disrupts binding of a major groove binding partner with the polynucleotide sequence, the method comprising: reacting a compound of Formula (IIIa-1), as defined herein, with a primer, a cDNA template, and an RNA polymerase.
  • a nucleotide e.g., modified mRNA molecule
  • the present invention provides methods of preparing a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid sequence, wherein the polynucleotide comprises n number of nucleosides having Formula (Ia-2), as defined herein:
  • the present invention provides methods of amplifying a polynucleotide comprising at least one nucleotide (e.g., modified mRNA molecule) that disrupts binding of a major groove binding partner with the polynucleotide, the method comprising reacting a compound of Formula (IIIa-2), as defined herein, with a primer, a cDNA template, and an RNA polymerase.
  • a nucleotide e.g., modified mRNA molecule
  • reaction may be repeated from 1 to about 7,000 times.
  • B may be a nucleobase of Formula (b1)-(b43).
  • the polynucleotides can optionally include 5′ and/or 3′ flanking regions, which are described herein.
  • the present invention also includes the building blocks, e.g., modified ribonucleosides, modified ribonucleotides, of the polynucleotides, e.g., modified RNA (or mRNA) molecules.
  • these building blocks can be useful for preparing the polynucleotides of the invention.
  • the building block molecule has Formula (IIIa) or (IIIa-1):
  • the building block molecule which may be incorporated into a polynucleotide, has Formula (IVa)-(IVb):
  • B is as described herein (e.g., any one of (b1)-(b43)).
  • Formula (IVa) or (IVb) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • a modified cytosine e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • Formula (IVa) or (IVb) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • Formula (IVa) or (IVb) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • the building block molecule which may be incorporated into a polynucleotide, has Formula (IVc)-(IVk):
  • B is as described herein (e.g., any one of (b1)-(b43)).
  • one of Formulas (IVc)-(IVk) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • a modified uracil e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)
  • one of Formulas (IVc)-(IVk) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • a modified cytosine e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • one of Formulas (IVc)-(IVk) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • a modified guanine e.g., any one of formulas (b15)-(b17) and (b37)-(b40)
  • one of Formulas (IVc)-(IVk) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • a modified adenine e.g., any one of formulas (b18)-(b20) and (b41)-(b43)
  • the building block molecule which may be incorporated into a polynucleotide has Formula (Va) or (Vb):
  • B is as described herein (e.g., any one of (b1)-(b43)).
  • the building block molecule which may be incorporated into a polynucleotide has Formula (IXa)-(IXd):
  • one of Formulas (IXa)-(IXd) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • a modified uracil e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)
  • one of Formulas (IXa)-(IXd) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • a modified cytosine e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • one of Formulas (IXa)-(IXd) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • one of Formulas (IXa)-(IXd) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • the building block molecule which may be incorporated into a polynucleotide has Formula (IXe)-(IXg):
  • B is as described herein (e.g., any one of (b1)-(b43)).
  • one of Formulas (IXe)-(IXg) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • a modified uracil e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)
  • one of Formulas (IXe)-(IXg) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • a modified cytosine e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • one of Formulas (IXe)-(IXg) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • a modified guanine e.g., any one of formulas (b15)-(b17) and (b37)-(b40)
  • one of Formulas (IXe)-(IXg) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • a modified adenine e.g., any one of formulas (b18)-(b20) and (b41)-(b43)
  • the building block molecule which may be incorporated into a polynucleotide has Formula (IXh)-(IXk):
  • one of Formulas (IXh)-(IXk) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • a modified uracil e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)
  • one of Formulas (IXh)-(IXk) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • a modified cytosine e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • one of Formulas (IXh)-(IXk) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • one of Formulas (IXh)-(IXk) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • the building block molecule which may be incorporated into a polynucleotide has Formula (IXl)-(IXr):
  • each r1 and r2 is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5) and B is as described herein (e.g., any one of (b1)-(b43)).
  • one of Formulas (IXl)-(IXr) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • a modified uracil e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)
  • one of Formulas (IXl)-(IXr) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • a modified cytosine e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • one of Formulas (IXl)-(IXr) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • one of Formulas (IXl)-(IXr) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • the building block molecule which may be incorporated into a polynucleotide can be selected from the group consisting of:
  • each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • the building block molecule which may be incorporated into a polynucleotide can be selected from the group consisting of:
  • each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5) and s1 is as described herein.
  • the building block molecule which may be incorporated into a nucleic acid (e.g., RNA, mRNA, polynucleotide), is a modified uridine (e.g., selected from the group consisting of:
  • Y 1 , Y 3 , Y 4 , Y 6 , and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • the building block molecule which may be incorporated into a polynucleotide is a modified cytidine (e.g., selected from the group consisting of:
  • each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • the building block molecule which may be incorporated into a polynucleotide can be:
  • each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • the building block molecule which may be incorporated into a polynucleotide is a modified adenosine (e.g., selected from the group consisting of:
  • Y 1 , Y 3 , Y 4 , Y 6 , and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • the building block molecule which may be incorporated into a polynucleotide, is a modified guanosine (e.g., selected from the group consisting of:
  • Y 1 , Y 3 , Y 4 , Y 6 , and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • the major groove chemical modification can include replacement of C group at C-5 of the ring (e.g., for a pyrimidine nucleoside, such as cytosine or uracil) with N (e.g., replacement of the >CH group at C-5 with >NR N1 group, wherein R N1 is H or optionally substituted alkyl).
  • the building block molecule which may be incorporated into a polynucleotide can be:
  • each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • the major groove chemical modification can include replacement of the hydrogen at C-5 of cytosine with halo (e.g., Br, Cl, F, or I) or optionally substituted alkyl (e.g., methyl).
  • halo e.g., Br, Cl, F, or I
  • optionally substituted alkyl e.g., methyl
  • the building block molecule which may be incorporated into a polynucleotide can be:
  • each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • the major groove chemical modification can include a fused ring that is formed by the NH 2 at the C-4 position and the carbon atom at the C-5 position.
  • the building block molecule which may be incorporated into a polynucleotide can be:
  • each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • modified nucleosides and nucleotides e.g., building block molecules
  • a polynucleotide e.g., RNA or mRNA, as described herein
  • a polynucleotide e.g., RNA or mRNA, as described herein
  • the 2′ hydroxyl group (OH) can be modified or replaced with a number of different substituents.
  • substitutions at the 2′-position include, but are not limited to, H, halo, optionally substituted C 1-6 alkyl; optionally substituted C 1-6 alkoxy; optionally substituted C 6-10 aryloxy; optionally substituted C 3-8 cycloalkyl; optionally substituted C 3-8 cycloalkoxy; optionally substituted C 6-10 aryloxy; optionally substituted C 6-10 aryl-C 1-6 alkoxy, optionally substituted C 1-12 (heterocyclyl)oxy; a sugar (e.g., ribose, pentose, or any described herein); a polyethyleneglycol (PEG), —O(CH 2 CH 2 O) n CH 2 CH 2 OR′, where R is H or optionally substituted alkyl, and n is an integer from 0 to 20 (e.g., from 0 to 4, from 0 to 8, from 0 to 10, from 0 to 16, from 1 to 4, from 1 to 8, from 1 to 10, from 1 to 16,
  • RNA includes the sugar group ribose, which is a 5-membered ring having an oxygen.
  • modified nucleotides include replacement of the oxygen in ribose (e.g., with S, Se, or alkylene, such as methylene or ethylene); addition of a double bond (e.g., to replace ribose with cyclopentenyl or cyclohexenyl); ring contraction of ribose (e.g., to form a 4-membered ring of cyclobutane or oxetane); ring expansion of ribose (e.g., to form a 6- or 7-membered ring having an additional carbon or heteroatom, such as for anhydrohexitol, altritol, mannitol, cyclohexanyl, cyclohexenyl, and morpholino that also has a phosphoramidate backbone); multicyclic forms (e.
  • the sugar group can also contain one or more carbons that possess the opposite stereochemical configuration than that of the corresponding carbon in ribose.
  • a polynucleotide molecule can include nucleotides containing, e.g., arabinose, as the sugar.
  • nucleoside is defined as a compound containing a sugar molecule (e.g., a pentose or ribose) or derivative thereof in combination with an organic base (e.g., a purine or pyrimidine) or a derivative thereof (also referred to herein as “nucleobase”).
  • organic base e.g., a purine or pyrimidine
  • nucleotide is defined as a nucleoside including a phosphate group.
  • the nucleosides and nucleotides described herein are generally chemically modified on the major groove face.
  • modified nucleotides include an amino group, a thiol group, an alkyl group, a halo group, or any described herein.
  • the modified nucleotides may by synthesized by any useful method, as described herein (e.g., chemically, enzymatically, or recombinantly to include one or more modified or non-natural nucleosides).
  • the modified nucleotide base pairing encompasses not only the standard adenosine-thymine, adenosine-uracil, or guanosine-cytosine base pairs, but also base pairs formed between nucleotides and/or modified nucleotides comprising non-standard or modified bases, wherein the arrangement of hydrogen bond donors and hydrogen bond acceptors permits hydrogen bonding between a non-standard base and a standard base or between two complementary non-standard base structures.
  • non-standard base pairing is the base pairing between the modified nucleotide inosine and adenine, cytosine or uracil.
  • the modified nucleosides and nucleotides can include a modified nucleobase.
  • nucleobases found in RNA include, but are not limited to, adenine, guanine, cytosine, and uracil.
  • nucleobase found in DNA include, but are not limited to, adenine, guanine, cytosine, and thymine.
  • These nucleobases can be modified or wholly replaced to provide polynucleotide molecules having enhanced properties, e.g., resistance to nucleases, stability, and these properties may manifest through disruption of the binding of a major groove binding partner.
  • the nucleosides and nucleotides described can be chemically modified on the major groove face.
  • the major groove chemical modifications can include an amino group, a thiol group, an alkyl group, or a halo group.
  • Table 1 below identifies the chemical faces of each canonical nucleotide. Circles identify the atoms comprising the respective chemical regions.
  • B is a modified uracil.
  • exemplary modified uracils include those having Formula (b1)-(b5):
  • each of T 1′ , T 1′′ , T 2′ , and T 2′′ is, independently, H, optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy, or the combination of T 1′ and T 1′′ or the combination of T 2′ and T 2′′ join together (e.g., as in T 2 ) to form O (oxo), S (thio), or Se (seleno);
  • each of V 1 and V 2 is, independently, O, S, N(R Vb ) nv , or C(R Vb ) nv , wherein nv is an integer from 0 to 2 and each R Vb is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted acylaminoalkyl
  • R 10 is H, halo, optionally substituted amino acid, hydroxy, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aminoalkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl;
  • R 11 is H or optionally substituted alkyl
  • R 12a is H, optionally substituted alkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, or optionally substituted carbamoylalkyl; and
  • R 12c is H, halo, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted amino, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl.
  • exemplary modified uracils include those having Formula (b6)-(b9):
  • each of T 1′ , T 1′′ , T 2′ , and T 2′′ is, independently, H, optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy, or the combination of T 1′ and T 1′′ join together (e.g., as in T 1 ) or the combination of T 2′ and T 2′′ join together (e.g., as in T 2 ) to form O (oxo), S (thio), or Se (seleno), or each T 1 and T 2 is, independently, O (oxo), S (thio), or Se (seleno);
  • each of W 1 and W 2 is, independently, N(R Wa ) nw or C(R Wa ) nw , wherein nw is an integer from 0 to 2 and each R Wa is, independently, H, optionally substituted alkyl, or optionally substituted alkoxy;
  • each V 3 is, independently, O, S, N(R Va ) nv , or C(R Va ) nv , wherein nv is an integer from 0 to 2 and each R Va is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted alkoxy, optionally substituted alkenyloxy, or optionally substituted alkynyloxy, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, optionally substituted aminoalkyn
  • R 12a is H, optionally substituted alkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy and/or an O-protecting group), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, optionally substituted carbamoylalkyl, or absent;
  • R 12b is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkaryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted amino acid, optionally substituted alkoxycarbonylacyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy and/or an O-protecting group), optionally substitute
  • R 12c is H, halo, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted amino, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl.
  • modified uracils include those having Formula (b28)-(b31):
  • each of T 1 and T 2 is, independently, O (oxo), S (thio), or Se (seleno);
  • each R Vb′ and R Vb′′ is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted acylaminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl),
  • R 12a is H, optionally substituted alkyl, optionally substituted carboxyaminoalkyl, optionally substituted aminoalkyl (e.g., e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl; and
  • R 12b is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl (e.g., e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted alkoxycarbonylacyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl
  • T 1 is O (oxo), and T 2 is S (thio) or Se (seleno). In other embodiments, T 1 is S (thio), and T 2 is O (oxo) or Se (seleno).
  • R Vb′ is H, optionally substituted alkyl, or optionally substituted alkoxy.
  • each R 12a and R 12b is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted hydroxyalkyl.
  • R 12a is H.
  • both R 12a and R 12b are H.
  • each R Vb′ of R 12b is, independently, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or optionally substituted acylaminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl).
  • an N-protecting group such as any described herein, e.g., trifluoroacetyl
  • the amino and/or alkyl of the optionally substituted aminoalkyl is substituted with one or more of optionally substituted alkyl, optionally substituted alkenyl, optionally substituted sulfoalkyl, optionally substituted carboxy (e.g., substituted with an O-protecting group), optionally substituted hydroxy (e.g., substituted with an O-protecting group), optionally substituted carboxyalkyl (e.g., substituted with an O-protecting group), optionally substituted alkoxycarbonylalkyl (e.g., substituted with an O-protecting group), or N-protecting group.
  • optionally substituted alkyl optionally substituted alkenyl, optionally substituted sulfoalkyl
  • optionally substituted carboxy e.g., substituted with an O-protecting group
  • optionally substituted hydroxy e.g., substituted with an O-protecting group
  • optionally substituted carboxyalkyl e.g.,
  • optionally substituted aminoalkyl is substituted with an optionally substituted sulfoalkyl or optionally substituted alkenyl.
  • R 12a and R Vb′′ are both H.
  • T 1 is O (oxo)
  • T 2 is S (thio) or Se (seleno).
  • R Vb′ is optionally substituted alkoxycarbonylalkyl or optionally substituted carbamoylalkyl.
  • the optional substituent for R 12a , R 12b , R 12c , or R Va is a polyethylene glycol group (e.g., —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C 1-20 alkyl); or an amino-polyethylene glycol group (e.g., —NR N1 (CH 2 ) s2 (CH 2 CH 2 O) s1 (CH 2 ) s3 NR N1 , wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently,
  • B is a modified cytosine.
  • exemplary modified cytosines include compounds of Formula (b10)-(b14):
  • each of T 3′ and T 3′′ is, independently, H, optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy, or the combination of T 3′ and T 3′′ join together (e.g., as in T 3 ) to form O (oxo), S (thio), or Se (seleno);
  • each V 4 is, independently, O, S, N(R Vc )) nv , or C(R Vc ) nv , wherein nv is an integer from 0 to 2 and each Rye is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, or optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl), wherein the combination of R 13b and R Vc can be taken together to form optionally substituted heterocyclyl;
  • each V 5 is, independently, N(R Vd ) nv , or C(R Vd ) nv , wherein nv is an integer from 0 to 2 and each R Vd is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, or optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl) (e.g., V 5 is —CH or N);
  • each of R 13a and R 13b is, independently, H, optionally substituted acyl, optionally substituted acyloxyalkyl, optionally substituted alkyl, or optionally substituted alkoxy, wherein the combination of R 13b and R 14 can be taken together to form optionally substituted heterocyclyl;
  • each R 14 is, independently, H, halo, hydroxy, thiol, optionally substituted acyl, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl (e.g., substituted with an O-protecting group), optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted acyloxyalkyl, optionally substituted amino (e.g., —NHR, wherein R is H, alkyl, aryl, or phosphoryl), azido, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally
  • each of R 5 and R 16 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl.
  • modified cytosines include those having Formula (b32)-(b35):
  • each of T 1 and T 3 is, independently, O (oxo), S (thio), or Se (seleno);
  • each of R 13a and R 13b is, independently, H, optionally substituted acyl, optionally substituted acyloxyalkyl, optionally substituted alkyl, or optionally substituted alkoxy, wherein the combination of R 13b and R 14 can be taken together to form optionally substituted heterocyclyl;
  • each R 14 is, independently, H, halo, hydroxy, thiol, optionally substituted acyl, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl (e.g., substituted with an O-protecting group), optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted acyloxyalkyl, optionally substituted amino (e.g., —NHR, wherein R is H, alkyl, aryl, or phosphoryl), azido, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally
  • each of R 15 and R 16 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl (e.g., R 15 is H, and R 16 is H or optionally substituted alkyl).
  • R 15 is H, and R 16 is H or optionally substituted alkyl.
  • R 14 is H, acyl, or hydroxyalkyl.
  • R 14 is halo.
  • both R 14 and R 15 are H.
  • both R 15 and R 16 are H.
  • each of R 14 and R 15 and R 16 is H.
  • each of R 13a and R 13b is independently, H or optionally substituted alkyl.
  • modified cytosines include compounds of Formula (b36):
  • each R 13b is, independently, H, optionally substituted acyl, optionally substituted acyloxyalkyl, optionally substituted alkyl, or optionally substituted alkoxy, wherein the combination of R 13b and R 14b can be taken together to form optionally substituted heterocyclyl;
  • each R 14a and R 14b is, independently, H, halo, hydroxy, thiol, optionally substituted acyl, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl (e.g., substituted with an O-protecting group), optionally substituted hydroxyalkenyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted acyloxyalkyl, optionally substituted amino (e.g., —NHR, wherein R is H, alkyl, aryl, phosphoryl, optionally substituted aminoalkyl, or optionally substituted carboxyaminoalkyl), azido, optionally substituted aryl, optionally substituted heterocyclyl,
  • each of R 5 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl.
  • R 14b is an optionally substituted amino acid (e.g., optionally substituted lysine). In some embodiments, R 14a is H.
  • B is a modified guanine.
  • exemplary modified guanines include compounds of Formula (b15)-(b17):
  • Each of T 4′ , T 4′′ , T 5′ , T 5′′ , T 6′ , and T 6′′ is, independently, H, optionally substituted alkyl, or optionally substituted alkoxy, and wherein the combination of T 4′ and T 4′′ (e.g., as in T 4 ) or the combination of T 5 and T 5′′ (e.g., as in T 5 ) or the combination of T 6′ and T 6′′ join together (e.g., as in T 6 ) form O (oxo), S (thio), or Se (seleno);
  • each of V 5 and V 6 is, independently, O, S, N(R Vd ) nv , or C(R Vd ) nv , wherein nv is an integer from 0 to 2 and each R Vd is, independently, H, halo, thiol, optionally substituted amino acid, cyano, amidine, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl), optionally substituted thioalkoxy, or optionally substituted amino; and
  • each of R 17 , R 18 , R 19a , R 19b , R 21 , R 22 , R 23 , and R 24 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, optionally substituted amino, or optionally substituted amino acid.
  • Exemplary modified guanosines include compounds of Formula (b37)-(b40):
  • each of T 4′ is, independently, H, optionally substituted alkyl, or optionally substituted alkoxy, and each T 4 is, independently, O (oxo), S (thio), or Se (seleno);
  • each of R 18 , R 19a , R 19b , and R 21 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, optionally substituted amino, or optionally substituted amino acid.
  • R 18 is H or optionally substituted alkyl.
  • T 4 is oxo.
  • each of R 19a and R 19b is, independently, H or optionally substituted alkyl.
  • B is a modified adenine.
  • exemplary modified adenines include compounds of Formula (b18)-(b20):
  • each V 7 is, independently, O, S, N(R Ve ) nv , or C(R Ve ) nv , wherein nv is an integer from 0 to 2 and each Rye is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, or optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl);
  • each R 25 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, or optionally substituted amino;
  • each of R 26a and R 26b is, independently, H, optionally substituted acyl, optionally substituted amino acid, optionally substituted carbamoylalkyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, or polyethylene glycol group (e.g., —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C 1-20 alkyl); or an amino-polyethylene glycol
  • each R 27 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted thioalkoxy, or optionally substituted amino;
  • each R 28 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl;
  • each R 29 is, independently, H, optionally substituted acyl, optionally substituted amino acid, optionally substituted carbamoylalkyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted alkoxy, or optionally substituted amino.
  • Exemplary modified adenines include compounds of Formula (b41)-(b43):
  • each R 25 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, or optionally substituted amino;
  • each of R 26a and R 26b is, independently, H, optionally substituted acyl, optionally substituted amino acid, optionally substituted carbamoylalkyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, or polyethylene glycol group (e.g., —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C 1-20 alkyl); or an amino-polyethylene glycol
  • each R 27 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted thioalkoxy, or optionally substituted amino.
  • R 26a is H, and R 26b is optionally substituted alkyl. In some embodiments, each of R 26a and R 26b is, independently, optionally substituted alkyl. In particular embodiments, R 27 is optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy. In other embodiments, R 25 is optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy.
  • the optional substituent for R 26a , R 26b , or R 29 is a polyethylene glycol group (e.g., —(CH 2 ) s2 (OCH 2 CH 2 ) s1 (CH 2 ) s3 OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C 1-20 alkyl); or an amino-polyethylene glycol group (e.g., —NR N1 (CH 2 ) s2 (CH 2 CH 2 O) s1 (CH 2 ) s3 NR N1 , wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from
  • B may have Formula (b21):
  • X 12 is, independently, O, S, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene
  • xa is an integer from 0 to 3
  • R 12a and T 2 are as described herein.
  • B may have Formula (b22):
  • R 10′ is, independently, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl, and R 11 , R 12a , T 1 , and T 2 are as described herein.
  • B may have Formula (b23):
  • R 10 is optionally substituted heterocyclyl (e.g., optionally substituted furyl, optionally substituted thienyl, or optionally substituted pyrrolyl), optionally substituted aryl (e.g., optionally substituted phenyl or optionally substituted naphthyl), or any substituent described herein (e.g., for R 10 ); and wherein R 11 (e.g., H or any substituent described herein), R 12a (e.g., H or any substituent described herein), Ti (e.g., oxo or any substituent described herein), and T 2 (e.g., oxo or any substituent described herein) are as described herein.
  • R 11 e.g., H or any substituent described herein
  • R 12a e.g., H or any substituent described herein
  • Ti e.g., oxo or any substituent described herein
  • T 2 e.g., oxo or any substituent
  • B may have Formula (b24):
  • R 14′ is, independently, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkaryl, optionally substituted alkheterocyclyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl, and R 13a , R 13b , R 15 , and T 3 are as described herein.
  • B may have Formula (b25):
  • R 14′ is optionally substituted heterocyclyl (e.g., optionally substituted furyl, optionally substituted thienyl, or optionally substituted pyrrolyl), optionally substituted aryl (e.g., optionally substituted phenyl or optionally substituted naphthyl), or any substituent described herein (e.g., for R 14 or R 14′ ); and wherein R 13a (e.g., H or any substituent described herein), R 13b (e.g., H or any substituent described herein), R 15 (e.g., H or any substituent described herein), and T 3 (e.g., oxo or any substituent described herein) are as described herein.
  • R 13a e.g., H or any substituent described herein
  • R 13b e.g., H or any substituent described herein
  • R 15 e.g., H or any substituent described herein
  • T 3 e.g., oxo or
  • B is a nucleobase selected from the group consisting of cytosine, guanine, adenine, and uracil. In some embodiments, B may be:
  • the modified nucleobase is a modified uracil.
  • exemplary nucleobases and nucleosides having a modified uracil include pseudouridine ( ⁇ ), pyridin-4-one ribonucleoside, 5-aza-uridine, 6-aza-uridine, 2-thio-5-aza-uridine, 2-thio-uridine (s 2 U), 4-thio-uridine (s 4 U), 4-thio-pseudouridine, 2-thio-pseudouridine, 5-hydroxy-uridine (ho 5 U), 5-aminoallyl-uridine, 5-halo-uridine (e.g., 5-iodo-uridineor 5-bromo-uridine), 3-methyl-uridine (m 3 U), 5-methoxy-uridine (mo 5 U), uridine 5-oxyacetic acid (cmo 5 U), uridine 5-oxyacetic acid methyl ester (mcmo s U), 5-carboxymethyl-uridine (cm 5 U), 1-
  • the modified nucleobase is a modified cytosine.
  • exemplary nucleobases and nucleosides having a modified cytosine include 5-aza-cytidine, 6-aza-cytidine, pseudoisocytidine, 3-methyl-cytidine (m 3 C), N4-acetyl-cytidine (ac 4 C), 5-formyl-cytidine (f 5 C), N4-methyl-cytidine (m 4 C), 5-methyl-cytidine (m 5 C), 5-halo-cytidine (e.g., 5-iodo-cytidine), 5-hydroxymethyl-cytidine (hm 5 C), 1-methyl-pseudoisocytidine, pyrrolo-cytidine, pyrrolo-pseudoisocytidine, 2-thio-cytidine (s 2 C), 2-thio-5-methyl-cytidine, 4-thio-pseudoisocy
  • the modified nucleobase is a modified adenine.
  • exemplary nucleobases and nucleosides having a modified adenine include 2-amino-purine, 2,6-diaminopurine, 2-amino-6-halo-purine (e.g., 2-amino-6-chloro-purine), 6-halo-purine (e.g., 6-chloro-purine), 2-amino-6-methyl-purine, 8-azido-adenosine, 7-deaza-adenine, 7-deaza-8-aza-adenine, 7-deaza-2-amino-purine, 7-deaza-8-aza-2-amino-purine, 7-deaza-2,6-diaminopurine, 7-deaza-8-aza-2,6-diaminopurine, 1-methyl-adenosine (m′ A), 2-methyl-adenine (m 2 A), N6-methyl-adenosine (m′
  • the modified nucleobase is a modified guanine.
  • exemplary nucleobases and nucleosides having a modified guanine include inosine (I), 1-methyl-inosine (m 1 I), wyosine (imG), methylwyosine (mimG), 4-demethyl-wyosine (imG-14), isowyosine (imG2), wybutosine (yW), peroxywybutosine (o 2 yW), hydroxywybutosine (OHyW), undermodified hydroxywybutosine (OHyW*), 7-deaza-guanosine, queuosine (Q), epoxyqueuosine (oQ), galactosyl-queuosine (galQ), mannosyl-queuosine (manQ), 7-cyano-7-deaza-guanosine (preQ 0 ), 7-aminomethyl-7-deaza-guanosine (
  • the nucleotide can be modified on the major groove face.
  • modifications include replacing hydrogen on C-5 of uracil or cytosine with alkyl (e.g., methyl) or halo.
  • the nucleobase of the nucleotide can be independently selected from a purine, a pyrimidine, a purine or pyrimidine analog.
  • the nucleobase can each be independently selected from adenine, cytosine, guanine, uracil, or hypoxanthine.
  • the nucleobase can also include, for example, naturally-occurring and synthetic derivatives of a base, including pyrazolo[3,4-d]pyrimidines, 5-methylcytosine (5-me-C), 5-hydroxymethyl cytosine, xanthine, hypoxanthine, 2-aminoadenine, 6-methyl and other alkyl derivatives of adenine and guanine, 2-propyl and other alkyl derivatives of adenine and guanine, 2-thiouracil, 2-thiothymine and 2-thiocytosine, 5-propynyl uracil and cytosine, 6-azo uracil, cytosine and thymine, 5-uracil (pseudouracil), 4-thiouracil, 8-halo (e.g., 8-bromo), 8-amino, 8-thiol, 8-thioalkyl, 8-hydroxyl and other 8-substituted adenines and
  • each letter refers to the representative base and/or derivatives thereof, e.g., A includes adenine or adenine analogs, e.g., 7-deaza adenine).
  • the modified nucleotide is a compound of Formula XI:
  • U is O, S, —NR a —, or —CR a R b — when denotes a single bond, or U is —CR a — when denotes a double bond;
  • Z is H, C 1-12 alkyl, or C 6-20 aryl, or Z is absent when denotes a double bond;
  • Z can be —CR a R b — and form a bond with A;
  • X is O or S
  • each of Y 1 is independently selected from —OR a1 , —NR a1 R b1 , and —SR a1 ;
  • each of Y 2 and Y 3 are independently selected from O, —CR a R b —, NR c , S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • n 0, 1, 2, or 3;
  • n 0, 1, 2 or 3;
  • B is nucleobase
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • R a1 and R b1 are each independently H or a counterion
  • OR c1 is OH at a pH of about 1 or —OR c1 is O ⁇ at physiological pH;
  • the ring encompassing the variables A, B, D, U, Z, Y 2 and Y 3 cannot be ribose.
  • B is a nucleobase selected from the group consisting of cytosine, guanine, adenine, and uracil.
  • the nucleobase is a pyrimidine or derivative thereof.
  • the modified nucleotides are a compound of Formula XI-a:
  • the modified nucleotides are a compound of Formula XI-b:
  • the modified nucleotides are a compound of Formula XI-c1, XI-c2, or XI-c3:
  • the modified nucleotides are a compound of Formula XI:
  • U is O, S, —NR a —, or —CR a R b — when denotes a single bond, or U is —CR a — when denotes a double bond;
  • Z is H, C 1-12 alkyl, or C 6-20 aryl, or Z is absent when denotes a double bond;
  • Z can be —CR a R b — and form a bond with A;
  • A is H, OH, sulfate, —NH 2 , —SH, an amino acid, or a peptide comprising 1 to 12 amino acids;
  • D is H, OH, —NH 2 , —SH, an amino acid, a peptide comprising 1 to 12 amino acids, or a group of Formula XII:
  • X is O or S
  • each of Y 1 is independently selected from —OR a1 , —NR a1 R b1 , and —SR a1 ;
  • each of Y 2 and Y 3 are independently selected from O, —CR a R b —, NR c , S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • n 0, 1, 2, or 3;
  • n 0, 1, 2 or 3;
  • B is a nucleobase of Formula XIII:
  • V is N or positively charged NR c ;
  • R 3 is NR c R d , —OR a , or —SR a ;
  • R 4 is H or can optionally form a bond with Y 3 ;
  • R 5 is H, —NR c R d , or —OR a ;
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • R a1 and R b1 are each independently H or a counterion
  • —OR c1 is OH at a pH of about 1 or —OR 11 is O at physiological pH.
  • B is:
  • R 3 is —OH, —SH, or
  • B is:
  • B is:
  • the modified nucleotides are a compound of Formula I-d:
  • the modified nucleotides are a compound selected from the group consisting of:
  • the modified nucleotides are a compound selected from the group consisting of:
  • the modified nucleotides which may be incorporated into a polynucleotide molecule, can be modified on the internucleoside linkage (e.g., phosphate backbone).
  • internucleoside linkage e.g., phosphate backbone
  • the phrases “phosphate” and “phosphodiester” are used interchangeably.
  • Backbone phosphate groups can be modified by replacing one or more of the oxygen atoms with a different substituent.
  • the modified nucleosides and nucleotides can include the wholesale replacement of an unmodified phosphate moiety with another internucleoside linkage as described herein.
  • modified phosphate groups include, but are not limited to, phosphorothioate, phosphoroselenates, boranophosphates, boranophosphate esters, hydrogen phosphonates, phosphoramidates, phosphorodiamidates, alkyl or aryl phosphonates, and phosphotriesters.
  • Phosphorodithioates have both non-linking oxygens replaced by sulfur.
  • the phosphate linker can also be modified by the replacement of a linking oxygen with nitrogen (bridged phosphoramidates), sulfur (bridged phosphorothioates), and carbon (bridged methylene-phosphonates).
  • the ⁇ -thio substituted phosphate moiety is provided to confer stability to RNA and DNA polymers through the unnatural phosphorothioate backbone linkages.
  • Phosphorothioate DNA and RNA have increased nuclease resistance and subsequently a longer half-life in a cellular environment. While not wishing to be bound by theory, phosphorothioate linked polynucleotide molecules are expected to also reduce the innate immune response through weaker binding/activation of cellular innate immune molecules.
  • a modified nucleoside includes an alpha-thio-nucleoside (e.g., 5′-O-(1-thiophosphate)-adenosine, 5′-O-(1-thiophosphate)-cytidine ( ⁇ -thio-cytidine), 5′-O-(1-thiophosphate)-guanosine, 5′-O-(1-thiophosphate)-uridine, or 5′-O-(1-thiophosphate)-pseudouridine).
  • alpha-thio-nucleoside e.g., 5′-O-(1-thiophosphate)-adenosine, 5′-O-(1-thiophosphate)-cytidine ( ⁇ -thio-cytidine), 5′-O-(1-thiophosphate)-guanosine, 5′-O-(1-thiophosphate)-uridine, or 5′-O-(1-thiophosphate)-p
  • internucleoside linkages that may be employed according to the present invention, including internucleoside linkages which do not contain a phosphorous atom, are described herein below.
  • the polynucleotides of the invention can include a combination of modifications to the sugar, the nucleobase, and/or the internucleoside linkage. These combinations can include any one or more modifications described herein.
  • any of the nucleotides described herein in Formulas (Ia), (Ia-1)-(Ia-3), (Ib)-(If), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr) can be combined with any of the nucleobases described herein (e.g., in Formulas (b1)-(b43) or any other described herein).
  • the polynucleotide molecules for use in accordance with the invention may be prepared according to any useful technique, as described herein.
  • the modified nucleosides and nucleotides used in the synthesis of polynucleotide molecules disclosed herein can be prepared from readily available starting materials using the following general methods and procedures. Where typical or preferred process conditions (e.g., reaction temperatures, times, mole ratios of reactants, solvents, pressures, etc.) are provided, a skilled artisan would be able to optimize and develop additional process conditions. Optimum reaction conditions may vary with the particular reactants or solvent used, but such conditions can be determined by one skilled in the art by routine optimization procedures.
  • spectroscopic means such as nuclear magnetic resonance spectroscopy (e.g., 1 H or 13 C) infrared spectroscopy, spectrophotometry (e.g., UV-visible), or mass spectrometry, or by chromatography such as high performance liquid chromatography (HPLC) or thin layer chromatography.
  • HPLC high performance liquid chromatography
  • Preparation of polynucleotide molecules of the present invention can involve the protection and deprotection of various chemical groups.
  • the need for protection and deprotection, and the selection of appropriate protecting groups can be readily determined by one skilled in the art.
  • the chemistry of protecting groups can be found, for example, in Greene, et al., Protective Groups in Organic Synthesis, 2d. Ed., Wiley & Sons, 1991, which is incorporated herein by reference in its entirety.
  • Suitable solvents can be substantially nonreactive with the starting materials (reactants), the intermediates, or products at the temperatures at which the reactions are carried out, i.e., temperatures which can range from the solvent's freezing temperature to the solvent's boiling temperature.
  • a given reaction can be carried out in one solvent or a mixture of more than one solvent.
  • suitable solvents for a particular reaction step can be selected.
  • Resolution of racemic mixtures of modified polynucleotides or nucleic acids can be carried out by any of numerous methods known in the art.
  • An example method includes fractional recrystallization using a “chiral resolving acid” which is an optically active, salt-forming organic acid.
  • Suitable resolving agents for fractional recrystallization methods are, for example, optically active acids, such as the D and L forms of tartaric acid, diacetyltartaric acid, dibenzoyltartaric acid, mandelic acid, malic acid, lactic acid or the various optically active camphorsulfonic acids.
  • Resolution of racemic mixtures can also be carried out by elution on a column packed with an optically active resolving agent (e.g., dinitrobenzoylphenylglycine).
  • an optically active resolving agent e.g., dinitrobenzoylphenylglycine
  • Suitable elution solvent composition can be determined by one skilled in the art.
  • Modified nucleosides and nucleotides can be prepared according to the synthetic methods described in Ogata et al., J. Org. Chem. 74:2585-2588 (2009); Purmal et al., Nucl. Acids Res. 22 (1): 72-78, (1994); Fukuhara et al., Biochemistry, 1 (4): 563-568 (1962); and Xu et al., Tetrahedron, 48(9): 1729-1740 (1992), each of which are incorporated by reference in their entirety.
  • the polynucleotides of the invention may or may not be uniformly modified along the entire length of the molecule.
  • one or more or all types of nucleotide e.g., purine or pyrimidine, or any one or more or all of A, G, U, C
  • nucleotides X in a polynucleotide of the invention are modified, wherein X may any one of nucleotides A, G, U, C, or any one of the combinations A+G, A+U, A+C, G+U, G+C, U+C, A+G+U, A+G+C, G+U+C or A+G+C.
  • nucleotide modifications may exist at various positions in the polynucleotide.
  • nucleotide analogs or other modification(s) may be located at any position(s) of a polynucleotide such that the function of the polynucleotide is not substantially decreased.
  • a modification may also be a 5′ or 3′ terminal modification.
  • the polynucleotide may contain from about 1% to about 100% modified nucleotides (either in relation to overall nucleotide content, or in relation to one or more types of nucleotide, i.e.
  • any one or more of A, G, U or C) or any intervening percentage e.g., from 1% to 20%, from 1% to 25%, from 1% to 50%, from 1% to 60%, from 1% to 70%, from 1% to 80%, from 1% to 90%, from 1% to 95%, from 10% to 20%, from 10% to 25%, from 10% to 50%, from 10% to 60%, from 10% to 70%, from 10% to 80%, from 10% to 90%, from 10% to 95%, from 10% to 100%, from 20% to 25%, from 20% to 50%, from 20% to 60%, from 20% to 70%, from 20% to 80%, from 20% to 90%, from 20% to 95%, from 20% to 100%, from 50% to 60%, from 50% to 70%, from 50% to 80%, from 50% to 90%, from 50% to 95%, from 50% to 100%, from 70% to 80%, from 70% to 90%, from 70% to 95%, from 70% to 100%, from 80% to 90%, from 80% to 95%, from 90% to 100%, and from 95% to 100%).
  • any intervening percentage e.g.,
  • the polynucleotide includes a modified pyrimidine (e.g., a modified uracil/uridine/U or modified cytosine/cytidine/C).
  • the uracil or uridine (generally: U) in the polynucleotide molecule may be replaced with from about 1% to about 100% of a modified uracil or modified uridine (e.g., from 1% to 20%, from 1% to 25%, from 1% to 50%, from 1% to 60%, from 1% to 70%, from 1% to 80%, from 1% to 90%, from 1% to 95%, from 10% to 20%, from 10% to 25%, from 10% to 50%, from 10% to 60%, from 10% to 70%, from 10% to 80%, from 10% to 90%, from 10% to 95%, from 10% to 100%, from 20% to 25%, from 20% to 50%, from 20% to 60%, from 20% to 70%, from 20% to 80%, from 20% to 90%, from 20% to 95%, from 20% to 100%, from 50%, from 20% to 60%, from
  • the modified uracil or uridine can be replaced by a compound having a single unique structure or by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures, as described herein).
  • the cytosine or cytidine (generally: C) in the polynucleotide molecule may be replaced with from about 1% to about 100% of a modified cytosine or modified cytidine (e.g., from 1% to 20%, from 1% to 25%, from 1% to 50%, from 1% to 60%, from 1% to 70%, from 1% to 80%, from 1% to 90%, from 1% to 95%, from 10% to 20%, from 10% to 25%, from 10% to 50%, from 10% to 60%, from 10% to 70%, from 10% to 80%, from 10% to 90%, from 10% to 95%, from 10% to 100%, from 20% to 25%, from 20% to 50%, from 20% to 60%, from 20% to 70%, from 20% to 80%, from 20% to 90%, from 20% to 95%, from 20% to 20% to
  • the present disclosure provides methods of synthesizing a polynucleotide (e.g., the first region, first flanking region, or second flanking region) including n number of linked nucleosides having Formula (Ia-1):
  • Y 9 is H, hydroxy, phosphoryl, pyrophosphate, sulfate, amino, thiol, optionally substituted amino acid, or a peptide (e.g., including from 2 to 12 amino acids); and each P 1 , P 2 , and P 3 is, independently, a suitable protecting group; and denotes a solid support;
  • steps a) and b) are repeated from 1 to about 10,000 times.
  • the methods further comprise a nucleotide selected from the group consisting of A, C, G and U adenosine, cytosine, guanosine, and uracil.
  • the nucleobase may be a pyrimidine or derivative thereof.
  • the polynucleotide is translatable.
  • polynucleotides are optional, and are beneficial in some embodiments.
  • a 5′ untranslated region (UTR) and/or a 3′ UTR are provided, wherein either or both may independently contain one or more different nucleotide modifications.
  • nucleotide modifications may also be present in the translatable region.
  • polynucleotides containing a Kozak sequence are also provided, wherein a Kozak sequence.
  • modified nucleotides and modified nucleotide combinations are provided below in Table 2. These combinations of modified nucleotides can be used to form the polynucleotides of the invention. Unless otherwise noted, the modified nucleotides may be completely substituted for the natural nucleotides of the polynucleotides of the invention. As a non-limiting example, the natural nucleotide uridine may be substituted with a modified nucleoside described herein.
  • the natural nucleotide uridine may be partially substituted (e.g., about 0.1%, 1%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or 99.9%) with at least one of the modified nucleoside disclosed herein.
  • modified nucleotide combinations are provided below in Table 3. These combinations of modified nucleotides can be used to form the polynucleotides of the invention.
  • At least 25% of the cytosines are replaced by a compound of Formula (b10)-(b14), (b24), (b25), or (b32)-(b35) (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100% of, e.g., a compound of Formula (b10) or (b32)).
  • a compound of Formula (b10)-(b14), (b24), (b25), or (b32)-(b35) e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least
  • At least 25% of the uracils are replaced by a compound of Formula (b1)-(b9), (b21)-(b23), or (b28)-(b31) (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100% of, e.g., a compound of Formula (b1), (b8), (b28), (b29), or (b30)).
  • a compound of Formula (b1), (b8), (b28), (b29), or (b30) e.g., a compound of Formula (b1), (b8), (b28), (b29), or (b30)
  • At least 25% of the cytosines are replaced by a compound of Formula (b10)-(b14), (b24), (b25), or (b32)-(b35) (e.g. Formula (b10) or (b32)), and at least 25% of the uracils are replaced by a compound of Formula (b1)-(b9), (b21)-(b23), or (b28)-(b31) (e.g.
  • Formula (b1), (b8), (b28), (b29), or (b30)) (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • the nucleobase of the nucleotide can be covalently linked at any chemically appropriate position to a payload, e.g., detectable agent or therapeutic agent.
  • the nucleobase can be deaza-adenosine or deaza-guanosine and the linker can be attached at the C-7 or C-8 positions of the deaza-adenosine or deaza-guanosine.
  • the nucleobase can be cytosine or uracil and the linker can be attached to the N-3 or C-5 positions of cytosine or uracil.
  • Scheme 1 depicts an exemplary modified nucleotide wherein the nucleobase, adenine, is attached to a linker at the C-7 carbon of 7-deaza adenine.
  • Scheme 1 depicts the modified nucleotide with the linker and payload, e.g., a detectable agent, incorporated onto the 3′ end of the mRNA. Disulfide cleavage and 1,2-addition of the thiol group onto the propargyl ester releases the detectable agent.
  • the remaining structure (depicted, for example, as pApC5Parg in Scheme 1) is the inhibitor.
  • the tethered inhibitor sterically interferes with the ability of the polymerase to incorporate a second base.
  • the tether be long enough to affect this function and that the inhibitor be in a stereochemical orientation that inhibits or prohibits second and follow on nucleotides into the growing polynucleotide strand.
  • linker refers to a group of atoms, e.g., 10-1,000 atoms, and can be comprised of the atoms or groups such as, but not limited to, carbon, amino, alkylamino, oxygen, sulfur, sulfoxide, sulfonyl, carbonyl, and imine.
  • the linker can be attached to a modified nucleoside or nucleotide on the nucleobase or sugar moiety at a first end, and to a payload, e.g., detectable or therapeutic agent, at a second end.
  • the linker is of sufficient length as to not interfere with incorporation into a nucleic acid sequence.
  • linker examples include, but are not limited to, an alkyl, alkene, an alkyne, an amido, an ether, a thioether, an or an ester group.
  • the linker chain can also comprise part of a saturated, unsaturated or aromatic ring, including polycyclic and heteroaromatic rings wherein the heteroaromatic ring is an aryl group containing from one to four heteroatoms, N, O or S.
  • linkers include, but are not limited to, unsaturated alkanes, polyethylene glycols, and dextran polymers.
  • the linker can include ethylene or propylene glycol monomeric units, e.g., diethylene glycol, dipropylene glycol, triethylene glycol, tripropylene glycol, tetraethylene glycol, or tetraethylene glycol.
  • the linker can include a divalent alkyl, alkenyl, and/or alkynyl moiety.
  • the linker can include an ester, amide, or ether moiety.
  • cleavable moieties within the linker such as, for example, a disulfide bond (—S—S—) or an azo bond (—N ⁇ N—), which can be cleaved using a reducing agent or photolysis.
  • the resulting scar on a nucleotide base which formed part of the modified nucleotide, and is incorporated into a polynucleotide strand, is unreactive and does not need to be chemically neutralized.
  • conditions include the use of tris(2-carboxyethyl)phosphine (TCEP), dithiothreitol (DTT) and/or other reducing agents for cleavage of a disulfide bond.
  • TCEP tris(2-carboxyethyl)phosphine
  • DTT dithiothreitol
  • a selectively severable bond that includes an amido bond can be cleaved for example by the use of TCEP or other reducing agents, and/or photolysis.
  • a selectively severable bond that includes an ester bond can be cleaved for example by acidic or basic hydrolysis.
  • the methods and compositions described herein are useful for delivering a payload to a biological target.
  • the payload can be used, e.g., for labeling (e.g., a detectable agent such as a fluorophore), or for therapeutic purposes (e.g., a cytotoxin or other therapeutic agent).
  • the payload is a therapeutic agent such as a cytotoxin, radioactive ion, chemotherapeutic, or other therapeutic agent.
  • a cytotoxin or cytotoxic agent includes any agent that is detrimental to cells. Examples include taxol, cytochalasin B, gramicidin D, ethidium bromide, emetine, mitomycin, etoposide, tenoposide, vincristine, vinblastine, colchicin, doxorubicin, daunorubicin, dihydroxy anthracin dione, mitoxantrone, mithramycin, actinomycin D, 1-dehydrotestosterone, glucocorticoids, procaine, tetracaine, lidocaine, propranolol, puromycin, maytansinoids, e.g., maytansinol (see U.S.
  • Radioactive ions include, but are not limited to iodine (e.g., iodine 125 or iodine 131), strontium 89, phosphorous, palladium, cesium, iridium, phosphate, cobalt, yttrium 90, Samarium 153 and praseodymium.
  • therapeutic agents include, but are not limited to, antimetabolites (e.g., methotrexate, 6-mercaptopurine, 6-thioguanine, cytarabine, 5-fluorouracil decarbazine), alkylating agents (e.g., mechlorethamine, thioepa chlorambucil, CC-1065, melphalan, carmustine (BSNU) and lomustine (CCNU), cyclothosphamide, busulfan, dibromomannitol, streptozotocin, mitomycin C, and cis-dichlorodiamine platinum (II) (DDP) cisplatin), anthracyclines (e.g., daunorubicin (formerly daunomycin) and doxorubicin), antibiotics (e.g., dactinomycin (formerly actinomycin), bleomycin, mithramycin, and anthramycin (AMC)), and anti-mitotic agents
  • detectable substances include various organic small molecules, inorganic compounds, nanoparticles, enzymes or enzyme substrates, fluorescent materials, luminescent materials, bioluminescent materials, chemiluminescent materials, radioactive materials, and contrast agents.
  • optically-detectable labels include for example, without limitation, 4-acetamido-4′-isothiocyanatostilbene-2,2′disulfonic acid; acridine and derivatives: acridine, acridine isothiocyanate; 5-(2′-aminoethyl)aminonaphthalene-1-sulfonic acid (EDANS); 4-amino-N-[3-vinylsulfonyl)phenyl]naphthalimide-3,5 disulfonate; N-(4-anilino-1-naphthyl)maleimide; anthranilamide; BODIPY; Brilliant Yellow; coumarin and derivatives; coumarin, 7-amino-4-methylcou
  • Examples luminescent material includes luminol; examples of bioluminescent materials include luciferase, luciferin, and aequorin.
  • radioactive material examples include 18 F, 67 Ga, 81m Kr, 82 Rb, 111 In, 123 I, 133 Xe, 201 Tl, 125 I, 35 S, 14 C, or 3 H, 99m Tc (e.g., as pertechnetate (technetate (VII), TcO 4 ⁇ ) either directly or indirectly, or other radioisotope detectable by direct counting of radioemission or by scintillation counting.
  • Suitable radioactive material include 18 F, 67 Ga, 81m Kr, 82 Rb, 111 In, 123 I, 133 Xe, 201 Tl, 125 I, 35 S, 14 C, or 3 H, 99m Tc (e.g., as pertechnetate (technetate (VII), TcO 4 ⁇ ) either directly or indirectly, or other radioisotope detectable by direct counting of radioemission or by scintillation counting.
  • VTI pertechnetate
  • TcO 4 ⁇ either
  • contrast agents e.g., contrast agents for MRI or NMR, for X-ray CT, Raman imaging, optical coherence tomography, absorption imaging, ultrasound imaging, or thermal imaging
  • exemplary contrast agents include gold (e.g., gold nanoparticles), gadolinium (e.g., chelated Gd), iron oxides (e.g., superparamagnetic iron oxide (SPIO), monocrystalline iron oxide nanoparticles (MIONs), and ultrasmall superparamagnetic iron oxide (USPIO)), manganese chelates (e.g., Mn-DPDP), barium sulfate, iodinated contrast media (iohexyl), microbubbles, or perfluorocarbons can also be used.
  • gold e.g., gold nanoparticles
  • gadolinium e.g., chelated Gd
  • iron oxides e.g., superparamagnetic iron oxide (SPIO), monocrystalline iron oxide nanoparticles (MIONs
  • the detectable agent is a non-detectable pre-cursor that becomes detectable upon activation.
  • examples include fluorogenic tetrazine-fluorophore constructs (e.g., tetrazine-BODIPY FL, tetrazine-Oregon Green 488, or tetrazine-BODIPY TMR-X) or enzyme activatable fluorogenic agents (e.g., PROSENSE (VisEn Medical)).
  • the enzymatic label is detected by determination of conversion of an appropriate substrate to product.
  • ELISAs enzyme linked immunosorbent assays
  • IA enzyme immunoassay
  • RIA radioimmunoassay
  • Western blot analysis Western blot analysis.
  • Labels other than those described herein are contemplated by the present disclosure, including other optically-detectable labels. Labels can be attached to the modified nucleotide of the present disclosure at any position using standard chemistries such that the label can be removed from the incorporated base upon cleavage of the cleavable linker.
  • the modified nucleotides and modified nucleic acids can also include a payload that can be a cell penetrating moiety or agent that enhances intracellular delivery of the compositions.
  • the compositions can include a cell-penetrating peptide sequence that facilitates delivery to the intracellular space, e.g., HIV-derived TAT peptide, penetratins, transportans, or hCT derived cell-penetrating peptides, see, e.g., Caron et al., (2001) Mol. Ther. 3 (3):310-8; Langel, Cell-Penetrating Peptides: Processes and Applications (CRC Press, Boca Raton Fla.
  • compositions can also be formulated to include a cell penetrating agent, e.g., liposomes, which enhance delivery of the compositions to the intracellular space.
  • a cell penetrating agent e.g., liposomes
  • modified nucleotides and modified nucleic acids described herein can be used to deliver a payload to any biological target for which a specific ligand exists or can be generated.
  • the ligand can bind to the biological target either covalently or non-covalently.
  • Exemplary biological targets include biopolymers, e.g., antibodies, nucleic acids such as RNA and DNA, proteins, enzymes; exemplary proteins include enzymes, receptors, and ion channels.
  • the target is a tissue- or cell-type specific marker, e.g., a protein that is expressed specifically on a selected tissue or cell type.
  • the target is a receptor, such as, but not limited to, plasma membrane receptors and nuclear receptors; more specific examples include G-protein-coupled receptors, cell pore proteins, transporter proteins, surface-expressed antibodies, HLA proteins, MHC proteins and growth factor receptors.
  • modified nucleosides and nucleotides disclosed herein can be prepared from readily available starting materials using the following general methods and procedures. It is understood that where typical or preferred process conditions (i.e., reaction temperatures, times, mole ratios of reactants, solvents, pressures, etc.) are given; other process conditions can also be used unless otherwise stated. Optimum reaction conditions may vary with the particular reactants or solvent used, but such conditions can be determined by one skilled in the art by routine optimization procedures.
  • spectroscopic means such as nuclear magnetic resonance spectroscopy (e.g., 1 H or 13 C) infrared spectroscopy, spectrophotometry (e.g., UV-visible), or mass spectrometry, or by chromatography such as high performance liquid chromatography (HPLC) or thin layer chromatography.
  • HPLC high performance liquid chromatography
  • Preparation of modified nucleosides and nucleotides can involve the protection and deprotection of various chemical groups.
  • the need for protection and deprotection, and the selection of appropriate protecting groups can be readily determined by one skilled in the art.
  • the chemistry of protecting groups can be found, for example, in Greene, et al., Protective Groups in Organic Synthesis, 2d. Ed., Wiley & Sons, 1991, which is incorporated herein by reference in its entirety.
  • Suitable solvents can be substantially nonreactive with the starting materials (reactants), the intermediates, or products at the temperatures at which the reactions are carried out, i.e., temperatures which can range from the solvent's freezing temperature to the solvent's boiling temperature.
  • a given reaction can be carried out in one solvent or a mixture of more than one solvent.
  • suitable solvents for a particular reaction step can be selected.
  • An example method includes fractional recrystallization using a “chiral resolving acid” which is an optically active, salt-forming organic acid.
  • Suitable resolving agents for fractional recrystallization methods are, for example, optically active acids, such as the D and L forms of tartaric acid, diacetyltartaric acid, dibenzoyltartaric acid, mandelic acid, malic acid, lactic acid or the various optically active camphorsulfonic acids.
  • Resolution of racemic mixtures can also be carried out by elution on a column packed with an optically active resolving agent (e.g., dinitrobenzoylphenylglycine).
  • an optically active resolving agent e.g., dinitrobenzoylphenylglycine
  • Suitable elution solvent composition can be determined by one skilled in the art.
  • Scheme 2 provides a general method for phosphorylation of nucleosides, including modified nucleosides.
  • Scheme 3 provides the use of multiple protecting and deprotecting steps to promote phosphorylation at the 5′ position of the sugar, rather than the 2′ and 3′ hydroxyl groups.
  • Modified nucleotides can be synthesized in any useful manner.
  • Schemes 4, 5, and 8 provide exemplary methods for synthesizing modified nucleotides having a modified purine nucleobase; and
  • Schemes 6 and 7 provide exemplary methods for synthesizing modified nucleotides having a modified pseudouridine or pseudoisocytidine, respectively.
  • Schemes 9 and 10 provide exemplary syntheses of modified nucleotides.
  • Scheme 11 provides a non-limiting biocatalytic method for producing nucleotides.
  • Scheme 12 provides an exemplary synthesis of a modified uracil, where the N1 position on the major groove face is modified with R 12b , as provided elsewhere, and the 5′-position of ribose is phosphorylated.
  • T 1 , T 2 , R 12a , R 12b , and r are as provided herein.
  • This synthesis, as well as optimized versions thereof, can be used to modify the major groove face of other pyrimidine nucleobases and purine nucleobases (see e.g., Formulas (b1)-(b43)) and/or to install one or more phosphate groups (e.g., at the 5′ position of the sugar).
  • This alkylating reaction can also be used to include one or more optionally substituted alkyl group at any reactive group (e.g., amino group) in any nucleobase described herein (e.g., the amino groups in the Watson-Crick base-pairing face for cytosine, uracil, adenine, and guanine).
  • any reactive group e.g., amino group
  • nucleobase described herein e.g., the amino groups in the Watson-Crick base-pairing face for cytosine, uracil, adenine, and guanine.
  • Modified nucleosides and nucleotides can also be prepared according to the synthetic methods described in Ogata et al. Journal of Organic Chemistry 74:2585-2588, 2009; Purmal et al. Nucleic Acids Research 22(1): 72-78, 1994; Fukuhara et al. Biochemistry 1(4): 563-568, 1962; and Xu et al. Tetrahedron 48(9): 1729-1740, 1992, each of which are incorporated by reference in their entirety.
  • nucleic acids including RNAs such as mRNAs that contain one or more modified nucleosides (termed “modified nucleic acids”) or nucleotides as described herein, which have useful properties including the lack of a substantial induction of the innate immune response of a cell into which the mRNA is introduced. Because these modified nucleic acids enhance the efficiency of protein production, intracellular retention of nucleic acids, and viability of contacted cells, as well as possess reduced immunogenicity, these nucleic acids having these properties are also termed “enhanced nucleic acids” herein.
  • nucleic acids which have decreased binding affinity to a major groove interacting, e.g. binding, partner.
  • the nucleic acids are comprised of at least one nucleotide that has been chemically modified on the major groove face as described herein.
  • nucleic acid in its broadest sense, includes any compound and/or substance that is or can be incorporated into an oligonucleotide chain.
  • nucleic acid is used synonymously with polynucleotide.
  • Exemplary nucleic acids for use in accordance with the present disclosure include, but are not limited to, one or more of DNA, RNA including messenger mRNA (mRNA), hybrids thereof, RNAi-inducing agents, RNAi agents, siRNAs, shRNAs, miRNAs, antisense RNAs, ribozymes, catalytic DNA, RNAs that induce triple helix formation, aptamers, vectors, etc., described in detail herein.
  • mRNA messenger mRNA
  • modified nucleic acids containing a translatable region and one, two, or more than two different nucleoside modifications.
  • the modified nucleic acid exhibits reduced degradation in a cell into which the nucleic acid is introduced, relative to a corresponding unmodified nucleic acid.
  • exemplary nucleic acids include ribonucleic acids (RNAs), deoxyribonucleic acids (DNAs), threose nucleic acids (TNAs), glycol nucleic acids (GNAs), or a hybrid thereof.
  • the modified nucleic acid includes messenger RNAs (mRNAs). As described herein, the nucleic acids of the present disclosure do not substantially induce an innate immune response of a cell into which the mRNA is introduced.
  • the present disclosure provides a modified nucleic acid containing a degradation domain, which is capable of being acted on in a directed manner within a cell.
  • nucleic acid is optional, and are beneficial in some embodiments.
  • a 5′ untranslated region (UTR) and/or a 3′ UTR are provided, wherein either or both may independently contain one or more different nucleoside modifications.
  • nucleoside modifications may also be present in the translatable region.
  • nucleic acids containing a Kozak sequence are also provided, wherein nucleic acids containing a Kozak sequence.
  • nucleic acids containing one or more intronic nucleotide sequences capable of being excised from the nucleic acid.
  • nucleic acids containing an internal ribosome entry site may act as the sole ribosome binding site, or may serve as one of multiple ribosome binding sites of an mRNA.
  • An mRNA containing more than one functional ribosome binding site may encode several peptides or polypeptides that are translated independently by the ribosomes (“multicistronic mRNA”).
  • multicistronic mRNA When nucleic acids are provided with an IRES, further optionally provided is a second translatable region. Examples of IRES sequences that can be used according to the present disclosure include without limitation, those from picornaviruses (e.g.
  • FMDV pest viruses
  • CFFV pest viruses
  • PV polio viruses
  • ECMV encephalomyocarditis viruses
  • FMDV foot-and-mouth disease viruses
  • HCV hepatitis C viruses
  • CSFV classical swine fever viruses
  • MLV murine leukemia virus
  • SIV simian immune deficiency viruses
  • CrPV cricket paralysis viruses
  • the present disclosure provides for nucleic acid sequences comprising at least two nucleotides, the nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove binding partner with the nucleic acid sequence, wherein the nucleotide has decreased binding affinity to the major groove binding partner.
  • the nucleic acid is a compound of Formula XI-a:
  • U is O, S, —NR a —, or —CR a R b — when denotes a single bond, or U is —CR a — when denotes a double bond;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH 2 , —SH, an amino acid, a peptide comprising 2 to 12 amino acids;
  • X is O or S
  • each of Y 1 is independently selected from —OR a1 , —NR a1 R b1 , and —SR a1 ;
  • each of Y 2 and Y 3 are independently selected from O, —CR a R b —, NR c , S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • R a1 and R b1 are each independently H or a counterion
  • OR c1 is OH at a pH of about 1 or —OR c1 is O ⁇ at physiological pH;
  • B is nucleobase
  • the ring encompassing the variables A, B, D, U, Z, Y 2 and Y 3 cannot be ribose.
  • B is a nucleobase of Formula XII-a, XII-b, or XII-c:
  • X is O or S
  • U and W are each independently C or N;
  • V is O, S, C or N;
  • R 1 is H, C 1-6 alkyl, C 1-6 alkenyl, C 1-6 alkynyl, halo, or —OR c , wherein C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl are each optionally substituted with —OH, —NR a R b , —SH, —C(O)R c , —C(O)OR c , —NHC(O)R c , or —NHC(O)OR c ;
  • R 2 is H, —OR c , —SR c , —NR a R b , or halo;
  • R 1 and R 2 together with the carbon atoms to which they are attached can form a 5- or 6-membered ring optionally substituted with 1-4 substituents selected from halo, —OH, —SH, —NR a R b , C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl, C 1-20 alkoxy, or C 1-20 thioalkyl;
  • R 3 is H or C 1-20 alkyl
  • R 4 is H or C 1-20 alkyl; wherein when denotes a double bond then R 4 is absent, or N—R 4 , taken together, forms a positively charged N substituted with C 1-20 alkyl;
  • R a and R b are each independently H, C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-20 alkyl, C 2-20 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • B is a nucleobase of Formula XII-a1, XII-a2, XII-a3, XII-a4, or XII-a5:
  • the nucleobase is a pyrimidine or derivative thereof.
  • the nucleic acid contains a plurality of structurally unique compounds of Formula XI-a.
  • At least 25% of the cytosines are replaced by a compound of Formula XI-a (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • a compound of Formula XI-a e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • At least 25% of the uracils are replaced by a compound of Formula XI-a (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • a compound of Formula XI-a e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • At least 25% of the cytosines and 25% of the uracils are replaced by a compound of Formula XI-a (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • a compound of Formula XI-a e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • the nucleic acid is translatable.
  • the nucleic acid when the nucleic acid includes a nucleotide modified with a linker and payload, for example, as described herein, the nucleotide modified with a linker and payload is on the 3′ end of the nucleic acid.
  • RNA recognition receptors that detect and respond to RNA ligands through interactions, e.g. binding, with the major groove face of a nucleotide or nucleic acid.
  • RNA ligands comprising modified nucleotides or nucleic acids as described herein decrease interactions with major groove binding partners, and therefore decrease an innate immune response, or expression and secretion of pro-inflammatory cytokines, or both.
  • Example major groove interacting, e.g. binding, partners include, but are not limited to the following nucleases and helicases.
  • TLRs Toll-like Receptors
  • members of the superfamily 2 class of DEX(D/H) helicases and ATPases can sense RNAs to initiate antiviral responses.
  • These helicases include the RIG-I (retinoic acid-inducible gene I) and MDA5 (melanoma differentiation-associated gene 5).
  • Other examples include laboratory of genetics and physiology 2 (LGP2), HIN-200 domain containing proteins, or Helicase-domain containing proteins.
  • innate immune response includes a cellular response to exogenous single stranded nucleic acids, generally of viral or bacterial origin, which involves the induction of cytokine expression and release, particularly the interferons, and cell death. Protein synthesis is also reduced during the innate cellular immune response. While it is advantageous to eliminate the innate immune response in a cell which is triggered by introduction of exogenous nucleic acids, the present disclosure provides modified nucleic acids such as mRNAs that substantially reduce the immune response, including interferon signaling, without entirely eliminating such a response.
  • the immune response is reduced by 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 99%, 99.9%, or greater than 99.9% as compared to the immune response induced by a corresponding unmodified nucleic acid.
  • a reduction can be measured by expression or activity level of Type 1 interferons or the expression of interferon-regulated genes such as the toll-like receptors (e.g., TLR7 and TLR8).
  • Reduction or lack of induction of innate immune response can also be measured by decreased cell death following one or more administrations of modified RNAs to a cell population; e.g., cell death is 10%, 25%, 50%, 75%, 85%, 90%, 95%, or over 95% less than the cell death frequency observed with a corresponding unmodified nucleic acid. Moreover, cell death may affect fewer than 50%, 40%, 30%, 20%, 10%, 5%, 1%, 0.1%, 0.01% or fewer than 0.01% of cells contacted with the modified nucleic acids.
  • the modified nucleic acids including polynucleotides and/or mRNA molecules are modified in such a way as to not induce, or induce only minimally, an immune response by the recipient cell or organism.
  • Such evasion or avoidance of an immune response trigger or activation is a novel feature of the modified polynucleotides of the present invention.
  • the present disclosure provides for the repeated introduction (e.g., transfection) of modified nucleic acids into a target cell population, e.g., in vitro, ex vivo, or in vivo.
  • the step of contacting the cell population may be repeated one or more times (such as two, three, four, five or more than five times).
  • the step of contacting the cell population with the modified nucleic acids is repeated a number of times sufficient such that a predetermined efficiency of protein translation in the cell population is achieved. Given the reduced cytotoxicity of the target cell population provided by the nucleic acid modifications, such repeated transfections are achievable in a diverse array of cell types in vitro and/or in vivo.
  • nucleic acids that encode variant polypeptides, which have a certain identity with a reference polypeptide sequence.
  • identity refers to a relationship between the sequences of two or more peptides, as determined by comparing the sequences. In the art, “identity” also means the degree of sequence relatedness between peptides, as determined by the number of matches between strings of two or more amino acid residues. “Identity” measures the percent of identical matches between the smaller of two or more sequences with gap alignments (if any) addressed by a particular mathematical model or computer program (i.e., “algorithms”). Identity of related peptides can be readily calculated by known methods.
  • Such methods include, but are not limited to, those described in Computational Molecular Biology, Lesk, A. M., ed., Oxford University Press, New York, 1988; Biocomputing: Informatics and Genome Projects, Smith, D. W., ed., Academic Press, New York, 1993; Computer Analysis of Sequence Data, Part 1, Griffin, A. M., and Griffin, H. G., eds., Humana Press, New Jersey, 1994; Sequence Analysis in Molecular Biology, von Heinje, G., Academic Press, 1987; Sequence Analysis Primer, Gribskov, M. and Devereux, J., eds., M. Stockton Press, New York, 1991; and Carillo et al., SIAM J. Applied Math. 48, 1073 (1988).
  • the polypeptide variant has the same or a similar activity as the reference polypeptide.
  • the variant has an altered activity (e.g., increased or decreased) relative to a reference polypeptide.
  • variants of a particular polynucleotide or polypeptide of the present disclosure will have at least about 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more sequence identity to that particular reference polynucleotide or polypeptide as determined by sequence alignment programs and parameters described herein and known to those skilled in the art.
  • protein fragments, functional protein domains, and homologous proteins are also considered to be within the scope of this present disclosure.
  • a protein fragment of a reference protein meaning a polypeptide sequence at least one amino acid residue shorter than a reference polypeptide sequence but otherwise identical
  • any protein that includes a stretch of about 20, about 30, about 40, about 50, or about 100 amino acids which are about 40%, about 50%, about 60%, about 70%, about 80%, about 90%, about 95%, or about 100% identical to any of the sequences described herein can be utilized in accordance with the present disclosure.
  • a protein sequence to be utilized in accordance with the present disclosure includes 2, 3, 4, 5, 6, 7, 8, 9, 10, or more mutations as shown in any of the sequences provided or referenced herein.
  • polynucleotide libraries containing nucleoside modifications wherein the polynucleotides individually contain a first nucleic acid sequence encoding a polypeptide, such as an antibody, protein binding partner, scaffold protein, and other polypeptides known in the art.
  • a polypeptide such as an antibody, protein binding partner, scaffold protein, and other polypeptides known in the art.
  • the polynucleotides are mRNA in a form suitable for direct introduction into a target cell host, which in turn synthesizes the encoded polypeptide.
  • multiple variants of a protein are produced and tested to determine the best variant in terms of pharmacokinetics, stability, biocompatibility, and/or biological activity, or a biophysical property such as expression level.
  • a library may contain 10, 10 2 , 10 3 , 10 4 , 10 5 , 10 6 , 10 7 , 10 8 , 10 9 , or over 10 9 possible variants (including substitutions, deletions of one or more residues, and insertion of one or more residues).
  • Proper protein translation involves the physical aggregation of a number of polypeptides and nucleic acids associated with the mRNA.
  • Provided by the present disclosure are protein-nucleic acid complexes, containing a translatable mRNA having one or more nucleoside modifications (e.g., at least two different nucleoside modifications) and one or more polypeptides bound to the mRNA.
  • the proteins are provided in an amount effective to prevent or reduce an innate immune response of a cell into which the complex is introduced.
  • mRNAs having sequences that are substantially not translatable. Such mRNA is effective as a vaccine when administered to a mammalian subject.
  • modified nucleic acids that contain one or more noncoding regions. Such modified nucleic acids are generally not translated, but are capable of binding to and sequestering one or more translational machinery component such as a ribosomal protein or a transfer RNA (tRNA), thereby effectively reducing protein expression in the cell.
  • the modified nucleic acid may contain a small nucleolar RNA (sno-RNA), micro RNA (miRNA), small interfering RNA (siRNA) or Piwi-interacting RNA (piRNA).
  • Nucleic acids for use in accordance with the present disclosure may be prepared according to any available technique including, but not limited to chemical synthesis, enzymatic synthesis, which is generally termed in vitro transcription, enzymatic or chemical cleavage of a longer precursor, etc.
  • Methods of synthesizing RNAs are known in the art (see, e.g., Gait, M. J. (ed.) Oligonucleotide synthesis: a practical approach , Oxford [Oxfordshire], Washington, D.C.: IRL Press, 1984; and Herdewijn, P. (ed.) Oligonucleotide synthesis: methods and applications , Methods in Molecular Biology, v. 288 (Clifton, N.J.) Totowa, N.J.: Humana Press, 2005; both of which are incorporated herein by reference).
  • Modified nucleic acids need not be uniformly modified along the entire length of the molecule. Different nucleotide modifications and/or backbone structures may exist at various positions in the nucleic acid. One of ordinary skill in the art will appreciate that the nucleotide analogs or other modification(s) may be located at any position(s) of a nucleic acid such that the function of the nucleic acid is not substantially decreased. A modification may also be a 5′ or 3′ terminal modification.
  • the nucleic acids may contain at a minimum one and at maximum 100% modified nucleotides, or any intervening percentage, such as at least 5% modified nucleotides, at least 10% modified nucleotides, at least 25% modified nucleotides, at least 50% modified nucleotides, at least 80% modified nucleotides, or at least 90% modified nucleotides.
  • the nucleic acids may contain a modified pyrimidine such as uracil or cytosine.
  • at least 5%, at least 10%, at least 25%, at least 50%, at least 80%, at least 90% or 100% of the uracil in the nucleic acid is replaced with a modified uracil.
  • the modified uracil can be replaced by a compound having a single unique structure, or can be replaced by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures). In some embodiments, at least 5%, at least 10%, at least 25%, at least 50%, at least 80%, at least 90% or 100% of the cytosine in the nucleic acid is replaced with a modified cytosine.
  • the modified cytosine can be replaced by a compound having a single unique structure, or can be replaced by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures).
  • the shortest length of a modified mRNA of the present disclosure can be the length of an mRNA sequence that is sufficient to encode for a dipeptide. In another embodiment, the length of the mRNA sequence is sufficient to encode for a tripeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a tetrapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a pentapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a hexapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a heptapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for an octapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a nonapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a decapeptide.
  • dipeptides that the modified nucleic acid sequences can encode for include, but are not limited to, carnosine and anserine.
  • the mRNA is greater than 30 nucleotides in length. In another embodiment, the RNA molecule is greater than 35 nucleotides in length. In another embodiment, the length is at least 40 nucleotides. In another embodiment, the length is at least 45 nucleotides. In another embodiment, the length is at least 55 nucleotides. In another embodiment, the length is at least 60 nucleotides. In another embodiment, the length is at least 60 nucleotides. In another embodiment, the length is at least 80 nucleotides. In another embodiment, the length is at least 90 nucleotides. In another embodiment, the length is at least 100 nucleotides. In another embodiment, the length is at least 120 nucleotides.
  • the length is at least 140 nucleotides. In another embodiment, the length is at least 160 nucleotides. In another embodiment, the length is at least 180 nucleotides. In another embodiment, the length is at least 200 nucleotides. In another embodiment, the length is at least 250 nucleotides. In another embodiment, the length is at least 300 nucleotides. In another embodiment, the length is at least 350 nucleotides. In another embodiment, the length is at least 400 nucleotides. In another embodiment, the length is at least 450 nucleotides. In another embodiment, the length is at least 500 nucleotides. In another embodiment, the length is at least 600 nucleotides.
  • the length is at least 700 nucleotides. In another embodiment, the length is at least 800 nucleotides. In another embodiment, the length is at least 900 nucleotides. In another embodiment, the length is at least 1000 nucleotides. In another embodiment, the length is at least 1100 nucleotides. In another embodiment, the length is at least 1200 nucleotides. In another embodiment, the length is at least 1300 nucleotides. In another embodiment, the length is at least 1400 nucleotides. In another embodiment, the length is at least 1500 nucleotides. In another embodiment, the length is at least 1600 nucleotides. In another embodiment, the length is at least 1800 nucleotides.
  • the length is at least 2000 nucleotides. In another embodiment, the length is at least 2500 nucleotides. In another embodiment, the length is at least 3000 nucleotides. In another embodiment, the length is at least 4000 nucleotides. In another embodiment, the length is at least 5000 nucleotides, or greater than 5000 nucleotides.
  • modified nucleic acids described herein can be prepared using methods that are known to those skilled in the art of nucleic acid synthesis.
  • the present disclosure provides methods, e.g., enzymatic, of preparing a nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove binding partner with the nucleic acid sequence, wherein the nucleic acid sequence comprises a compound of Formula XI-a:
  • the nucleotide has decreased binding affinity to the major groove binding partner
  • U is O, S, —NR a —, or —CR a R b — when denotes a single bond, or U is —CR a — when denotes a double bond;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH 2 , —SH, an amino acid, a peptide comprising 2 to 12 amino acids;
  • X is O or S
  • each of Y 1 is independently selected from —OR a1 , —NR a1 R b1 , and —SR a1 ;
  • each of Y 2 and Y 3 are independently selected from O, —CR a R b —, NR c , S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • R a1 and R b1 are each independently H or a counterion
  • OR c1 is OH at a pH of about 1 or —OR c1 is O ⁇ at physiological pH; and B is nucleobase;
  • the reaction is repeated from 1 to about 7,000 times.
  • B is a nucleobase of Formula XII-a, XII-b, or XII-c:
  • X is O or S
  • U and W are each independently C or N;
  • V is O, S, C or N;
  • R 1 is H, C 1-6 alkyl, C 1-6 alkenyl, C 1-6 alkynyl, halo, or —OR c , wherein C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl are each optionally substituted with —OH, —NR a R b , —SH, —C(O)R c , —C(O)OR c , —NHC(O)R c , or —NHC(O)OR c ;
  • R 2 is H, —OR c , —SR c , —NR a R b , or halo;
  • R 1 and R 2 together with the carbon atoms to which they are attached can form a 5- or 6-membered ring optionally substituted with 1-4 substituents selected from halo, —OH, —SH, —NR a R b , C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl, C 1-20 alkoxy, or C 1-20 thioalkyl;
  • R 3 is H or C 1-20 alkyl
  • R 4 is H or C 1-20 alkyl; wherein when denotes a double bond then R 4 is absent, or N—R 4 taken together, forms a positively charged N substituted with C 1-20 alkyl;
  • R a and R b are each independently H, C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-20 alkyl, C 2-20 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • B is a nucleobase of Formula XII-a1, XII-a2, XII-a3, XII-a4, or XII-a5:
  • the methods further comprise a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • the nucleobase is a pyrimidine or derivative thereof.
  • the present disclosure provides for methods of amplifying a nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove binding partner with the nucleic acid sequence, the method comprising:
  • the nucleotide has decreased binding affinity to the major groove binding partner
  • U is O, S, —NR a —, or —CR a R b — when denotes a single bond, or U is —CR a — when denotes a double bond;
  • Z is H, C 1-12 alkyl, or C 6-20 aryl, or Z is absent when denotes a double bond;
  • Z can be —CR a R b — and form a bond with A;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH 2 , —SH, an amino acid, or a peptide comprising 1 to 12 amino acids;
  • X is O or S
  • each of Y 1 is independently selected from —OR a1 , —NR a1 R b1 , and —SR a1 ;
  • each of Y 2 and Y 3 are independently selected from O, —CR a R b —, NR c , S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • n 0, 1, 2, or 3;
  • n 0, 1, 2 or 3;
  • B is nucleobase
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • R a1 and R b1 are each independently H or a counterion
  • OR c1 is OH at a pH of about 1 or —OR 11 is O at physiological pH;
  • the ring encompassing the variables A, B, D, U, Z, Y 2 and Y 3 cannot be ribose with a primer, a cDNA template, and an RNA polymerase.
  • B is a nucleobase of Formula XII-a, XII-b, or XII-c:
  • X is O or S
  • U and W are each independently C or N;
  • V is O, S, C or N;
  • R 1 is H, C 1-6 alkyl, C 1-6 alkenyl, C 1-6 alkynyl, halo, or —OR c , wherein C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl are each optionally substituted with —OH, —NR a R b , —SH, —C(O)R c , —C(O)OR c , —NHC(O)R c , or —NHC(O)OR c ;
  • R 2 is H, —OR c , —SR c , —NR a R b , or halo;
  • R 1 and R 2 together with the carbon atoms to which they are attached can form a 5- or 6-membered ring optionally substituted with 1-4 substituents selected from halo, —OH, —SH, —NR a R b , C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl, C 1-20 alkoxy, or C 1-20 thioalkyl;
  • R 3 is H or C 1-20 alkyl
  • R 4 is H or C 1-20 alkyl; wherein when denotes a double bond then R 4 is absent, or N—R 4 taken together, forms a positively charged N substituted with C 1-20 alkyl;
  • R a and R b are each independently H, C 1-20 alkyl, C 2-20 alkenyl, C 2-20 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-20 alkyl, C 2-20 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • B is a nucleobase of Formula XII-a1, XII-a2, XII-a3, XII-a4, or XII-a5:
  • the methods further comprise a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • the nucleobase is a pyrimidine or derivative thereof.
  • the present disclosure provides for methods of synthesizing a pharmaceutical nucleic acid, comprising the steps of:
  • cDNA complementary deoxyribonucleic acid
  • nucleotide that is known to disrupt a binding of a major groove binding partner with a nucleic acid, wherein the nucleotide has decreased binding affinity to the major groove binding partner
  • the pharmaceutical nucleic acid is a ribonucleic acid (RNA).
  • the modified nucleic acids can be prepared using solid phase synthesis methods.
  • the present disclosure provides methods of synthesizing a nucleic acid comprising a compound of Formula XI-a:
  • U is O, S, —NR a —, or —CR a R b — when denotes a single bond, or U is —CR a — when denotes a double bond;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH 2 , —SH, an amino acid, a peptide comprising 2 to 12 amino acids;
  • X is O or S
  • each of Y 1 is independently selected from —OR a1 , —NR a1 R b1 , and —SR a ;
  • each of Y 2 and Y 3 are independently selected from O, —CR a R b —, NR c , S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • R a1 and R b1 are each independently H or a counterion
  • OR c1 is OH at a pH of about 1 or —OR c1 is O ⁇ at physiological pH;
  • B is nucleobase
  • P 1 , P 2 and P 3 are each independently suitable protecting groups
  • the methods further comprise a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • B is a nucleobase of Formula XIII:
  • V is N or positively charged NR c ;
  • R 3 is NR c R d , —OR a , or —SR a ;
  • R 4 is H or can optionally form a bond with Y 3 ;
  • R 5 is H, —NR c R d , or —OR a ;
  • R a and R b are each independently H, C 1-12 alkyl, C 2-12 alkenyl, C 2-12 alkynyl, or C 6-20 aryl;
  • R c is H, C 1-12 alkyl, C 2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • steps a) and b) are repeated from 1 to about 10,000 times.
  • modified nucleic acids described herein can be used as therapeutic agents.
  • a modified nucleic acid described herein can be administered to an animal or subject, wherein the modified nucleic acid is translated in vivo to produce a therapeutic peptide in the animal or subject.
  • compositions, methods, kits, and reagents for treatment or prevention of disease or conditions in humans and other mammals are provided herein.
  • the active therapeutic agents of the present disclosure include modified nucleic acids, cells containing modified nucleic acids or polypeptides translated from the modified nucleic acids, polypeptides translated from modified nucleic acids, cells contacted with cells containing modified nucleic acids or polypeptides translated from the modified nucleic acids, tissues containing cells containing modified nucleic acids and organs containing tissues containing cells containing modified nucleic acids.
  • a synthetic or recombinant polynucleotide to produce a polypeptide in a cell population using the modified nucleic acids described herein.
  • Such translation can be in vivo, ex vivo, in culture, or in vitro.
  • the cell population is contacted with an effective amount of a composition containing a nucleic acid that has at least one nucleoside modification, and a translatable region encoding the polypeptide.
  • the population is contacted under conditions such that the nucleic acid is localized into one or more cells of the cell population and the recombinant polypeptide is translated in the cell from the nucleic acid.
  • an effective amount of the composition is provided based, at least in part, on the target tissue, target cell type, means of administration, physical characteristics of the nucleic acid (e.g., size, and extent of modified nucleosides), and other determinants.
  • an effective amount of the composition provides efficient protein production in the cell, preferably more efficient than a composition containing a corresponding unmodified nucleic acid. Increased efficiency may be demonstrated by increased cell transfection (i.e., the percentage of cells transfected with the nucleic acid), increased protein translation from the nucleic acid, decreased nucleic acid degradation (as demonstrated, e.g., by increased duration of protein translation from a modified nucleic acid), or reduced innate immune response of the host cell or improve therapeutic utility.
  • aspects of the present disclosure are directed to methods of inducing in vivo translation of a recombinant polypeptide in a mammalian subject in need thereof.
  • an effective amount of a composition containing a nucleic acid that has at least one nucleoside modification and a translatable region encoding the polypeptide is administered to the subject using the delivery methods described herein.
  • the nucleic acid is provided in an amount and under other conditions such that the nucleic acid is localized into a cell or cells of the subject and the recombinant polypeptide is translated in the cell from the nucleic acid.
  • the cell in which the nucleic acid is localized, or the tissue in which the cell is present, may be targeted with one or more than one rounds of nucleic acid administration.
  • compositions containing modified nucleic acids are formulated for administration intramuscularly, transarterially, intraperitoneally, intravenously, intranasally, subcutaneously, endoscopically, transdermally, or intrathecally. In some embodiments, the composition is formulated for extended release.
  • the subject to whom the therapeutic agent is administered suffers from or is at risk of developing a disease, disorder, or deleterious condition.
  • GWAS genome-wide association studies
  • the administered modified nucleic acid directs production of one or more recombinant polypeptides that provide a functional activity which is substantially absent in the cell in which the recombinant polypeptide is translated.
  • the missing functional activity may be enzymatic, structural, or gene regulatory in nature.
  • the administered modified nucleic acid directs production of one or more recombinant polypeptides that replace a polypeptide (or multiple polypeptides) that is substantially absent in the cell in which the recombinant polypeptide is translated. Such absence may be due to genetic mutation of the encoding gene or regulatory pathway thereof.
  • the administered modified nucleic acid directs production of one or more recombinant polypeptides to supplement the amount of polypeptide (or multiple polypeptides) that is present in the cell in which the recombinant polypeptide is translated.
  • the recombinant polypeptide functions to antagonize the activity of an endogenous protein present in, on the surface of, or secreted from the cell.
  • the activity of the endogenous protein is deleterious to the subject, for example, due to mutation of the endogenous protein resulting in altered activity or localization.
  • the recombinant polypeptide antagonizes, directly or indirectly, the activity of a biological moiety present in, on the surface of, or secreted from the cell.
  • antagonized biological moieties include lipids (e.g., cholesterol), a lipoprotein (e.g., low density lipoprotein), a nucleic acid, a carbohydrate, or a small molecule toxin.
  • the recombinant proteins described herein are engineered for localization within the cell, potentially within a specific compartment such as the nucleus, or are engineered for secretion from the cell or translocation to the plasma membrane of the cell.
  • a useful feature of the modified nucleic acids of the present disclosure is the capacity to reduce, evade, avoid or eliminate the innate immune response of a cell to an exogenous nucleic acid.
  • the cell is contacted with a first composition that contains a first dose of a first exogenous nucleic acid including a translatable region and at least one nucleoside modification, and the level of the innate immune response of the cell to the first exogenous nucleic acid is determined.
  • the cell is contacted with a second composition, which includes a second dose of the first exogenous nucleic acid, the second dose containing a lesser amount of the first exogenous nucleic acid as compared to the first dose.
  • the cell is contacted with a first dose of a second exogenous nucleic acid.
  • the second exogenous nucleic acid may contain one or more modified nucleosides, which may be the same or different from the first exogenous nucleic acid or, alternatively, the second exogenous nucleic acid may not contain modified nucleosides.
  • the steps of contacting the cell with the first composition and/or the second composition may be repeated one or more times. Additionally, efficiency of protein production (e.g., protein translation) in the cell is optionally determined, and the cell may be re-transfected with the first and/or second composition repeatedly until a target protein production efficiency is achieved.
  • the compounds of the present disclosure are particularly advantageous in treating acute diseases such as sepsis, stroke, and myocardial infarction.
  • the lack of transcriptional regulation of the modified mRNAs of the present disclosure is advantageous in that accurate titration of protein production is achievable.
  • Multiple diseases are characterized by missing (or substantially diminished such that proper protein function does not occur) protein activity. Such proteins may not be present, are present in very low quantities or are essentially non-functional.
  • the present disclosure provides a method for treating such conditions or diseases in a subject by introducing nucleic acid or cell-based therapeutics containing the modified nucleic acids provided herein, wherein the modified nucleic acids encode for a protein that replaces the protein activity missing from the target cells of the subject.
  • Diseases characterized by dysfunctional or aberrant protein activity include, but not limited to, cancer and proliferative diseases, genetic diseases (e.g., cystic fibrosis), autoimmune diseases, diabetes, neurodegenerative diseases, cardiovascular diseases, and metabolic diseases.
  • the present disclosure provides a method for treating such conditions or diseases in a subject by introducing nucleic acid or cell-based therapeutics containing the modified nucleic acids provided herein, wherein the modified nucleic acids encode for a protein that antagonizes or otherwise overcomes the aberrant protein activity present in the cell of the subject.
  • a dysfunctional protein are the missense or nonsense mutation variants of the cystic fibrosis transmembrane conductance regulator (CFTR) gene, which produce a dysfunctional or nonfunctional, respectively, protein variant of CFTR protein, which causes cystic fibrosis.
  • CFTR cystic fibrosis transmembrane conductance regulator
  • RNA molecules are formulated for administration by inhalation.
  • the present disclosure provides a method for treating hyperlipidemia in a subject, by introducing into a cell population of the subject with a modified mRNA molecule encoding Sortilin, a protein recently characterized by genomic studies, thereby ameliorating the hyperlipidemia in a subject.
  • the SORT1 gene encodes a trans-Golgi network (TGN) transmembrane protein called Sortilin.
  • TGN trans-Golgi network
  • Methods of the present disclosure enhance nucleic acid delivery into a cell population, in vivo, ex vivo, or in culture.
  • a cell culture containing a plurality of host cells e.g., eukaryotic cells such as yeast or mammalian cells
  • the composition also generally contains a transfection reagent or other compound that increases the efficiency of enhanced nucleic acid uptake into the host cells.
  • the enhanced nucleic acid exhibits enhanced retention in the cell population, relative to a corresponding unmodified nucleic acid. The retention of the enhanced nucleic acid is greater than the retention of the unmodified nucleic acid.
  • it is at least about 50%, 75%, 90%, 95%, 100%, 150%, 200% or more than 200% greater than the retention of the unmodified nucleic acid.
  • retention advantage may be achieved by one round of transfection with the enhanced nucleic acid, or may be obtained following repeated rounds of transfection.
  • the enhanced nucleic acid is delivered to a target cell population with one or more additional nucleic acids. Such delivery may be at the same time, or the enhanced nucleic acid is delivered prior to delivery of the one or more additional nucleic acids.
  • the additional one or more nucleic acids may be modified nucleic acids or unmodified nucleic acids. It is understood that the initial presence of the enhanced nucleic acids does not substantially induce an innate immune response of the cell population and, moreover, that the innate immune response will not be activated by the later presence of the unmodified nucleic acids. In this regard, the enhanced nucleic acid may not itself contain a translatable region, if the protein desired to be present in the target cell population is translated from the unmodified nucleic acids.
  • modified nucleic acids are provided to express a protein-binding partner or a receptor on the surface of the cell, which functions to target the cell to a specific tissue space or to interact with a specific moiety, either in vivo or in vitro.
  • Suitable protein-binding partners include antibodies and functional fragments thereof, scaffold proteins, or peptides.
  • modified nucleic acids can be employed to direct the synthesis and extracellular localization of lipids, carbohydrates, or other biological moieties.
  • a method for epigenetically silencing gene expression in a mammalian subject comprising a nucleic acid where the translatable region encodes a polypeptide or polypeptides capable of directing sequence-specific histone H3 methylation to initiate heterochromatin formation and reduce gene transcription around specific genes for the purpose of silencing the gene.
  • a gain-of-function mutation in the Janus Kinase 2 gene is responsible for the family of Myeloproliferative Diseases.
  • modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used in a number of different scenarios in which delivery of a substance (the “payload”) to a biological target is desired, for example delivery of detectable substances for detection of the target, or delivery of a therapeutic agent.
  • Detection methods can include both imaging in vitro and in vivo imaging methods, e.g., immunohistochemistry, bioluminescence imaging (BLI), Magnetic Resonance Imaging (MRI), positron emission tomography (PET), electron microscopy, X-ray computed tomography, Raman imaging, optical coherence tomography, absorption imaging, thermal imaging, fluorescence reflectance imaging, fluorescence microscopy, fluorescence molecular tomographic imaging, nuclear magnetic resonance imaging, X-ray imaging, ultrasound imaging, photoacoustic imaging, lab assays, or in any situation where tagging/staining/imaging is required.
  • imaging in vitro and in vivo imaging methods e.g., immunohistochemistry, bioluminescence imaging (BLI), Magnetic Resonance Imaging (MRI), positron emission tomography (PET), electron microscopy, X-ray computed tomography, Raman imaging, optical coherence tomography, absorption imaging, thermal imaging, fluorescence reflectance imaging
  • the modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used in reprogramming induced pluripotent stem cells (iPS cells), which can then be used to directly track cells that are transfected compared to total cells in the cluster.
  • iPS cells induced pluripotent stem cells
  • a drug that is attached to the modified nucleic acid via a linker and is fluorescently labeled can be used to track the drug in vivo, e.g. intracellularly.
  • Other examples include the use of a modified nucleic acid in reversible drug delivery into cells.
  • modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used in intracellular targeting of a payload, e.g., detectable or therapeutic agent, to specific organelle.
  • exemplary intracellular targets can include the nuclear localization for advanced mRNA processing, or a nuclear localization sequence (NLS) linked to the mRNA containing an inhibitor.
  • NLS nuclear localization sequence
  • modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used to deliver therapeutic agents to cells or tissues, e.g., in living animals.
  • the modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used to deliver highly polar chemotherapeutics agents to kill cancer cells.
  • the modified nucleic acids attached to the therapeutic agent through a linker can facilitate member permeation allowing the therapeutic agent to travel into a cell to reach an intracellular target.
  • the modified nucleosides, modified nucleotides, and modified nucleic acids can be attached to a viral inhibitory peptide (VIP) through a cleavable linker.
  • VIP viral inhibitory peptide
  • the modified nucleosides, modified nucleotides, and modified nucleic acids can be attached through the linker to a ADP-ribosylate, which is responsible for the actions of some bacterial toxins, such as cholera toxin, diphtheria toxin, and pertussis toxin.
  • ADP-ribosylate which is responsible for the actions of some bacterial toxins, such as cholera toxin, diphtheria toxin, and pertussis toxin.
  • toxin proteins are ADP-ribosyltransferases that modify target proteins in human cells. For example, cholera toxin ADP-ribosylates G proteins, causing massive fluid secretion from the lining of the small intestine,
  • compositions may optionally comprise one or more additional therapeutically active substances.
  • a method of administering pharmaceutical compositions comprising a modified nucleic acide encoding one or more proteins to be delivered to a subject in need thereof is provided.
  • compositions are administered to humans.
  • active ingredient generally refers to a protein, protein encoding or protein-containing complex as described herein.
  • compositions suitable for administration to humans are principally directed to pharmaceutical compositions which are suitable for administration to humans, it will be understood by the skilled artisan that such compositions are generally suitable for administration to animals of all sorts. Modification of pharmaceutical compositions suitable for administration to humans in order to render the compositions suitable for administration to various animals is well understood, and the ordinarily skilled veterinary pharmacologist can design and/or perform such modification with merely ordinary, if any, experimentation.
  • Subjects to which administration of the pharmaceutical compositions is contemplated include, but are not limited to, humans and/or other primates; mammals, including commercially relevant mammals such as cattle, pigs, horses, sheep, cats, dogs, mice, and/or rats; and/or birds, including commercially relevant birds such as chickens, ducks, geese, and/or turkeys.
  • Formulations of the pharmaceutical compositions described herein may be prepared by any method known or hereafter developed in the art of pharmacology. In general, such preparatory methods include the step of bringing the active ingredient into association with an excipient and/or one or more other accessory ingredients, and then, if necessary and/or desirable, shaping and/or packaging the product into a desired single- or multi-dose unit.
  • a pharmaceutical composition in accordance with the present disclosure may be prepared, packaged, and/or sold in bulk, as a single unit dose, and/or as a plurality of single unit doses.
  • a “unit dose” is discrete amount of the pharmaceutical composition comprising a predetermined amount of the active ingredient.
  • the amount of the active ingredient is generally equal to the dosage of the active ingredient which would be administered to a subject and/or a convenient fraction of such a dosage such as, for example, one-half or one-third of such a dosage.
  • Relative amounts of the active ingredient, the pharmaceutically acceptable excipient, and/or any additional ingredients in a pharmaceutical composition in accordance with the present disclosure will vary, depending upon the identity, size, and/or condition of the subject treated and further depending upon the route by which the composition is to be administered.
  • the composition may comprise between 0.1% and 100% (w/w) active ingredient.
  • compositions may additionally comprise a pharmaceutically acceptable excipient, which, as used herein, includes any and all solvents, dispersion media, diluents, or other liquid vehicles, dispersion or suspension aids, surface active agents, isotonic agents, thickening or emulsifying agents, preservatives, solid binders, lubricants and the like, as suited to the particular dosage form desired.
  • a pharmaceutically acceptable excipient includes any and all solvents, dispersion media, diluents, or other liquid vehicles, dispersion or suspension aids, surface active agents, isotonic agents, thickening or emulsifying agents, preservatives, solid binders, lubricants and the like, as suited to the particular dosage form desired.
  • Remington's The Science and Practice of Pharmacy 21 st Edition, A. R. Gennaro (Lippincott, Williams & Wilkins, Baltimore, Md., 2006; incorporated herein by reference) discloses various excipients
  • a pharmaceutically acceptable excipient is at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or 100% pure.
  • an excipient is approved for use in humans and for veterinary use.
  • an excipient is approved by United States Food and Drug Administration.
  • an excipient is pharmaceutical grade.
  • an excipient meets the standards of the United States Pharmacopoeia (USP), the European Pharmacopoeia (EP), the British Pharmacopoeia, and/or the International Pharmacopoeia.
  • compositions used in the manufacture of pharmaceutical compositions include, but are not limited to, inert diluents, dispersing and/or granulating agents, surface active agents and/or emulsifiers, disintegrating agents, binding agents, preservatives, buffering agents, lubricating agents, and/or oils. Such excipients may optionally be included in pharmaceutical formulations. Excipients such as cocoa butter and suppository waxes, coloring agents, coating agents, sweetening, flavoring, and/or perfuming agents can be present in the composition, according to the judgment of the formulator.
  • Exemplary diluents include, but are not limited to, calcium carbonate, sodium carbonate, calcium phosphate, dicalcium phosphate, calcium sulfate, calcium hydrogen phosphate, sodium phosphate lactose, sucrose, cellulose, microcrystalline cellulose, kaolin, mannitol, sorbitol, inositol, sodium chloride, dry starch, cornstarch, powdered sugar, etc., and/or combinations thereof.
  • Exemplary granulating and/or dispersing agents include, but are not limited to, potato starch, corn starch, tapioca starch, sodium starch glycolate, clays, alginic acid, guar gum, citrus pulp, agar, bentonite, cellulose and wood products, natural sponge, cation-exchange resins, calcium carbonate, silicates, sodium carbonate, cross-linked poly(vinyl-pyrrolidone) (crospovidone), sodium carboxymethyl starch (sodium starch glycolate), carboxymethyl cellulose, cross-linked sodium carboxymethyl cellulose (croscarmellose), methylcellulose, pregelatinized starch (starch 1500), microcrystalline starch, water insoluble starch, calcium carboxymethyl cellulose, magnesium aluminum silicate (Veegum), sodium lauryl sulfate, quaternary ammonium compounds, etc., and/or combinations thereof.
  • crospovidone cross-linked poly(vinyl-pyrrolidone)
  • Exemplary surface active agents and/or emulsifiers include, but are not limited to, natural emulsifiers (e.g. acacia, agar, alginic acid, sodium alginate, tragacanth, chondrux, cholesterol, xanthan, pectin, gelatin, egg yolk, casein, wool fat, cholesterol, wax, and lecithin), colloidal clays (e.g. bentonite [aluminum silicate] and Veegum® [magnesium aluminum silicate]), long chain amino acid derivatives, high molecular weight alcohols (e.g.
  • natural emulsifiers e.g. acacia, agar, alginic acid, sodium alginate, tragacanth, chondrux, cholesterol, xanthan, pectin, gelatin, egg yolk, casein, wool fat, cholesterol, wax, and lecithin
  • colloidal clays e.g. bentonite [aluminum silicate
  • stearyl alcohol cetyl alcohol, oleyl alcohol, triacetin monostearate, ethylene glycol distearate, glyceryl monostearate, and propylene glycol monostearate, polyvinyl alcohol), carbomers (e.g. carboxy polymethylene, polyacrylic acid, acrylic acid polymer, and carboxyvinyl polymer), carrageenan, cellulosic derivatives (e.g. carboxymethylcellulose sodium, powdered cellulose, hydroxymethyl cellulose, hydroxypropyl cellulose, hydroxypropyl methylcellulose, methylcellulose), sorbitan fatty acid esters (e.g.
  • polyoxyethylene monostearate [Myrj® 45], polyoxyethylene hydrogenated castor oil, polyethoxylated castor oil, polyoxymethylene stearate, and Solutol®), sucrose fatty acid esters, polyethylene glycol fatty acid esters (e.g. Cremophor®), polyoxyethylene ethers, (e.g.
  • polyoxyethylene lauryl ether [Brij® 30]), poly(vinyl-pyrrolidone), diethylene glycol monolaurate, triethanolamine oleate, sodium oleate, potassium oleate, ethyl oleate, oleic acid, ethyl laurate, sodium lauryl sulfate, Pluronic®F 68, Poloxamer® 188, cetrimonium bromide, cetylpyridinium chloride, benzalkonium chloride, docusate sodium, etc. and/or combinations thereof.
  • Exemplary binding agents include, but are not limited to, starch (e.g. cornstarch and starch paste); gelatin; sugars (e.g. sucrose, glucose, dextrose, dextrin, molasses, lactose, lactitol, mannitol,); natural and synthetic gums (e.g.
  • acacia sodium alginate, extract of Irish moss, panwar gum, ghatti gum, mucilage of isapol husks, carboxymethylcellulose, methylcellulose, ethylcellulose, hydroxyethylcellulose, hydroxypropyl cellulose, hydroxypropyl methylcellulose, microcrystalline cellulose, cellulose acetate, poly(vinyl-pyrrolidone), magnesium aluminum silicate (Veegum®), and larch arabogalactan); alginates; polyethylene oxide; polyethylene glycol; inorganic calcium salts; silicic acid; polymethacrylates; waxes; water; alcohol; etc.; and combinations thereof.
  • Exemplary preservatives may include, but are not limited to, antioxidants, chelating agents, antimicrobial preservatives, antifungal preservatives, alcohol preservatives, acidic preservatives, and/or other preservatives.
  • Exemplary antioxidants include, but are not limited to, alpha tocopherol, ascorbic acid, acorbyl palmitate, butylated hydroxyanisole, butylated hydroxytoluene, monothioglycerol, potassium metabisulfite, propionic acid, propyl gallate, sodium ascorbate, sodium bisulfite, sodium metabisulfite, and/or sodium sulfite.
  • Exemplary chelating agents include ethylenediaminetetraacetic acid (EDTA), citric acid monohydrate, disodium edetate, dipotassium edetate, edetic acid, fumaric acid, malic acid, phosphoric acid, sodium edetate, tartaric acid, and/or trisodium edetate.
  • EDTA ethylenediaminetetraacetic acid
  • citric acid monohydrate disodium edetate
  • dipotassium edetate dipotassium edetate
  • edetic acid fumaric acid, malic acid, phosphoric acid, sodium edetate, tartaric acid, and/or trisodium edetate.
  • antimicrobial preservatives include, but are not limited to, benzalkonium chloride, benzethonium chloride, benzyl alcohol, bronopol, cetrimide, cetylpyridinium chloride, chlorhexidine, chlorobutanol, chlorocresol, chloroxylenol, cresol, ethyl alcohol, glycerin, hexetidine, imidurea, phenol, phenoxyethanol, phenylethyl alcohol, phenylmercuric nitrate, propylene glycol, and/or thimerosal.
  • Exemplary antifungal preservatives include, but are not limited to, butyl paraben, methyl paraben, ethyl paraben, propyl paraben, benzoic acid, hydroxybenzoic acid, potassium benzoate, potassium sorbate, sodium benzoate, sodium propionate, and/or sorbic acid.
  • Exemplary alcohol preservatives include, but are not limited to, ethanol, polyethylene glycol, phenol, phenolic compounds, bisphenol, chlorobutanol, hydroxybenzoate, and/or phenylethyl alcohol.
  • Exemplary acidic preservatives include, but are not limited to, vitamin A, vitamin C, vitamin E, beta-carotene, citric acid, acetic acid, dehydroacetic acid, ascorbic acid, sorbic acid, and/or phytic acid.
  • preservatives include, but are not limited to, tocopherol, tocopherol acetate, deteroxime mesylate, cetrimide, butylated hydroxyanisol (BHA), butylated hydroxytoluened (BHT), ethylenediamine, sodium lauryl sulfate (SLS), sodium lauryl ether sulfate (SLES), sodium bisulfite, sodium metabisulfite, potassium sulfite, potassium metabisulfite, Glydant Plus®, Phenonip®, methylparaben, Germall® 115, Germaben® II, NeoloneTM, KathonTM, and/or Euxyl®.
  • Exemplary buffering agents include, but are not limited to, citrate buffer solutions, acetate buffer solutions, phosphate buffer solutions, ammonium chloride, calcium carbonate, calcium chloride, calcium citrate, calcium glubionate, calcium gluceptate, calcium gluconate, d-gluconic acid, calcium glycerophosphate, calcium lactate, propanoic acid, calcium levulinate, pentanoic acid, dibasic calcium phosphate, phosphoric acid, tribasic calcium phosphate, calcium hydroxide phosphate, potassium acetate, potassium chloride, potassium gluconate, potassium mixtures, dibasic potassium phosphate, monobasic potassium phosphate, potassium phosphate mixtures, sodium acetate, sodium bicarbonate, sodium chloride, sodium citrate, sodium lactate, dibasic sodium phosphate, monobasic sodium phosphate, sodium phosphate mixtures, tromethamine, magnesium hydroxide, aluminum hydroxide, alginic acid, pyrogen-free water, isot
  • Exemplary lubricating agents include, but are not limited to, magnesium stearate, calcium stearate, stearic acid, silica, talc, malt, glyceryl behanate, hydrogenated vegetable oils, polyethylene glycol, sodium benzoate, sodium acetate, sodium chloride, leucine, magnesium lauryl sulfate, sodium lauryl sulfate, etc., and combinations thereof.
  • oils include, but are not limited to, almond, apricot kernel, avocado, babassu, bergamot, black current seed, borage, cade, camomile, canola, caraway, carnauba, castor, cinnamon, cocoa butter, coconut, cod liver, coffee, corn, cotton seed, emu, eucalyptus, evening primrose, fish, flaxseed, geraniol, gourd, grape seed, hazel nut, hyssop, isopropyl myristate, jojoba, kukui nut, lavandin, lavender, lemon, litsea cubeba, macademia nut, mallow, mango seed, meadowfoam seed, mink, nutmeg, olive, orange, orange roughy, palm, palm kernel, peach kernel, peanut, poppy seed, pumpkin seed, rapeseed, rice bran, rosemary, safflower, sandalwood, sasquana, savoury
  • oils include, but are not limited to, butyl stearate, caprylic triglyceride, capric triglyceride, cyclomethicone, diethyl sebacate, dimethicone 360, isopropyl myristate, mineral oil, octyldodecanol, oleyl alcohol, silicone oil, and/or combinations thereof.
  • Liquid dosage forms for oral and parenteral administration include, but are not limited to, pharmaceutically acceptable emulsions, microemulsions, solutions, suspensions, syrups, and/or elixirs.
  • liquid dosage forms may comprise inert diluents commonly used in the art such as, for example, water or other solvents, solubilizing agents and emulsifiers such as ethyl alcohol, isopropyl alcohol, ethyl carbonate, ethyl acetate, benzyl alcohol, benzyl benzoate, propylene glycol, 1,3-butylene glycol, dimethylformamide, oils (in particular, cottonseed, groundnut, corn, germ, olive, castor, and sesame oils), glycerol, tetrahydrofurfuryl alcohol, polyethylene glycols and fatty acid esters of sorbitan, and mixtures thereof.
  • inert diluents commonly used in the art such as, for example,
  • oral compositions can include adjuvants such as wetting agents, emulsifying and suspending agents, sweetening, flavoring, and/or perfuming agents.
  • adjuvants such as wetting agents, emulsifying and suspending agents, sweetening, flavoring, and/or perfuming agents.
  • compositions are mixed with solubilizing agents such as Cremophor®, alcohols, oils, modified oils, glycols, polysorbates, cyclodextrins, polymers, and/or combinations thereof.
  • Injectable preparations for example, sterile injectable aqueous or oleaginous suspensions may be formulated according to the known art using suitable dispersing agents, wetting agents, and/or suspending agents.
  • Sterile injectable preparations may be sterile injectable solutions, suspensions, and/or emulsions in nontoxic parenterally acceptable diluents and/or solvents, for example, as a solution in 1,3-butanediol.
  • the acceptable vehicles and solvents that may be employed are water, Ringer's solution, U.S.P., and isotonic sodium chloride solution.
  • Sterile, fixed oils are conventionally employed as a solvent or suspending medium.
  • any bland fixed oil can be employed including synthetic mono- or diglycerides.
  • Fatty acids such as oleic acid can be used in the preparation of injectables.
  • Injectable formulations can be sterilized, for example, by filtration through a bacterial-retaining filter, and/or by incorporating sterilizing agents in the form of sterile solid compositions which can be dissolved or dispersed in sterile water or other sterile injectable medium prior to use.
  • the rate of drug release can be controlled.
  • biodegradable polymers include poly(orthoesters) and poly(anhydrides).
  • Depot injectable formulations are prepared by entrapping the drug in liposomes or microemulsions which are compatible with body tissues.
  • compositions for rectal or vaginal administration are typically suppositories which can be prepared by mixing compositions with suitable non-irritating excipients such as cocoa butter, polyethylene glycol or a suppository wax which are solid at ambient temperature but liquid at body temperature and therefore melt in the rectum or vaginal cavity and release the active ingredient.
  • suitable non-irritating excipients such as cocoa butter, polyethylene glycol or a suppository wax which are solid at ambient temperature but liquid at body temperature and therefore melt in the rectum or vaginal cavity and release the active ingredient.
  • Solid dosage forms for oral administration include capsules, tablets, pills, powders, and granules.
  • an active ingredient is mixed with at least one inert, pharmaceutically acceptable excipient such as sodium citrate or dicalcium phosphate and/or fillers or extenders (e.g. starches, lactose, sucrose, glucose, mannitol, and silicic acid), binders (e.g. carboxymethylcellulose, alginates, gelatin, polyvinylpyrrolidinone, sucrose, and acacia), humectants (e.g. glycerol), disintegrating agents (e.g.
  • the dosage form may comprise buffering agents.
  • solution retarding agents e.g. paraffin
  • absorption accelerators e.g. quaternary ammonium compounds
  • wetting agents e.g. cetyl alcohol and glycerol monostearate
  • absorbents e.g. kaolin and bentonite clay
  • lubricants e.g. talc, calcium stearate, magnesium stearate, solid polyethylene glycols, sodium lauryl sulfate
  • the dosage form may comprise buffering agents.
  • Solid compositions of a similar type may be employed as fillers in soft and hard-filled gelatin capsules using such excipients as lactose or milk sugar as well as high molecular weight polyethylene glycols and the like.
  • Solid dosage forms of tablets, dragees, capsules, pills, and granules can be prepared with coatings and shells such as enteric coatings and other coatings well known in the pharmaceutical formulating art. They may optionally comprise opacifying agents and can be of a composition that they release the active ingredient(s) only, or preferentially, in a certain part of the intestinal tract, optionally, in a delayed manner. Examples of embedding compositions which can be used include polymeric substances and waxes.
  • Solid compositions of a similar type may be employed as fillers in soft and hard-filled gelatin capsules using such excipients as lactose or milk sugar as well as high molecular weight polyethylene glycols and the like.
  • Dosage forms for topical and/or transdermal administration of a composition may include ointments, pastes, creams, lotions, gels, powders, solutions, sprays, inhalants and/or patches.
  • an active ingredient is admixed under sterile conditions with a pharmaceutically acceptable excipient and/or any needed preservatives and/or buffers as may be required.
  • the present disclosure contemplates the use of transdermal patches, which often have the added advantage of providing controlled delivery of a compound to the body.
  • dosage forms may be prepared, for example, by dissolving and/or dispensing the compound in the proper medium.
  • rate may be controlled by either providing a rate controlling membrane and/or by dispersing the compound in a polymer matrix and/or gel.
  • Suitable devices for use in delivering intradermal pharmaceutical compositions described herein include short needle devices such as those described in U.S. Pat. Nos. 4,886,499; 5,190,521; 5,328,483; 5,527,288; 4,270,537; 5,015,235; 5,141,496; and 5,417,662.
  • Intradermal compositions may be administered by devices which limit the effective penetration length of a needle into the skin, such as those described in PCT publication WO 99/34850 and functional equivalents thereof.
  • Jet injection devices which deliver liquid compositions to the dermis via a liquid jet injector and/or via a needle which pierces the stratum corneum and produces a jet which reaches the dermis are suitable.
  • Jet injection devices are described, for example, in U.S. Pat. Nos. 5,480,381; 5,599,302; 5,334,144; 5,993,412; 5,649,912; 5,569,189; 5,704,911; 5,383,851; 5,893,397; 5,466,220; 5,339,163; 5,312,335; 5,503,627; 5,064,413; 5,520,639; 4,596,556; 4,790,824; 4,941,880; 4,940,460; and PCT publications WO 97/37705 and WO 97/13537.
  • Ballistic powder/particle delivery devices which use compressed gas to accelerate vaccine in powder form through the outer layers of the skin to the dermis are suitable.
  • conventional syringes may be used in the classical mantoux method of intradermal administration.
  • Formulations suitable for topical administration include, but are not limited to, liquid and/or semi liquid preparations such as liniments, lotions, oil in water and/or water in oil emulsions such as creams, ointments and/or pastes, and/or solutions and/or suspensions.
  • Topically-administrable formulations may, for example, comprise from about 1% to about 10% (w/w) active ingredient, although the concentration of active ingredient may be as high as the solubility limit of the active ingredient in the solvent.
  • Formulations for topical administration may further comprise one or more of the additional ingredients described herein.
  • a pharmaceutical composition may be prepared, packaged, and/or sold in a formulation suitable for pulmonary administration via the buccal cavity.
  • a formulation may comprise dry particles which comprise the active ingredient and which have a diameter in the range from about 0.5 nm to about 7 nm or from about 1 nm to about 6 nm.
  • Such compositions are conveniently in the form of dry powders for administration using a device comprising a dry powder reservoir to which a stream of propellant may be directed to disperse the powder and/or using a self propelling solvent/powder dispensing container such as a device comprising the active ingredient dissolved and/or suspended in a low-boiling propellant in a sealed container.
  • Such powders comprise particles wherein at least 98% of the particles by weight have a diameter greater than 0.5 nm and at least 95% of the particles by number have a diameter less than 7 nm. Alternatively, at least 95% of the particles by weight have a diameter greater than 1 nm and at least 90% of the particles by number have a diameter less than 6 nm.
  • Dry powder compositions may include a solid fine powder diluent such as sugar and are conveniently provided in a unit dose form.
  • Low boiling propellants generally include liquid propellants having a boiling point of below 65° F. at atmospheric pressure. Generally the propellant may constitute 50% to 99.9% (w/w) of the composition, and active ingredient may constitute 0.1% to 20% (w/w) of the composition.
  • a propellant may further comprise additional ingredients such as a liquid non-ionic and/or solid anionic surfactant and/or a solid diluent (which may have a particle size of the same order as particles comprising the active ingredient).
  • compositions formulated for pulmonary delivery may provide an active ingredient in the form of droplets of a solution and/or suspension.
  • Such formulations may be prepared, packaged, and/or sold as aqueous and/or dilute alcoholic solutions and/or suspensions, optionally sterile, comprising active ingredient, and may conveniently be administered using any nebulization and/or atomization device.
  • Such formulations may further comprise one or more additional ingredients including, but not limited to, a flavoring agent such as saccharin sodium, a volatile oil, a buffering agent, a surface active agent, and/or a preservative such as methylhydroxybenzoate.
  • Droplets provided by this route of administration may have an average diameter in the range from about 0.1 nm to about 200 nm.
  • Formulations described herein as being useful for pulmonary delivery are useful for intranasal delivery of a pharmaceutical composition.
  • Another formulation suitable for intranasal administration is a coarse powder comprising the active ingredient and having an average particle from about 0.2 ⁇ m to 500 ⁇ m. Such a formulation is administered in the manner in which snuff is taken, i.e. by rapid inhalation through the nasal passage from a container of the powder held close to the nose.
  • Formulations suitable for nasal administration may, for example, comprise from about as little as 0.1% (w/w) and as much as 100% (w/w) of active ingredient, and may comprise one or more of the additional ingredients described herein.
  • a pharmaceutical composition may be prepared, packaged, and/or sold in a formulation suitable for buccal administration. Such formulations may, for example, be in the form of tablets and/or lozenges made using conventional methods, and may, for example, 0.1% to 20% (w/w) active ingredient, the balance comprising an orally dissolvable and/or degradable composition and, optionally, one or more of the additional ingredients described herein.
  • formulations suitable for buccal administration may comprise a powder and/or an aerosolized and/or atomized solution and/or suspension comprising active ingredient.
  • Such powdered, aerosolized, and/or aerosolized formulations when dispersed, may have an average particle and/or droplet size in the range from about 0.1 nm to about 200 nm, and may further comprise one or more of any additional ingredients described herein.
  • a pharmaceutical composition may be prepared, packaged, and/or sold in a formulation suitable for ophthalmic administration.
  • Such formulations may, for example, be in the form of eye drops including, for example, a 0.1/1.0% (w/w) solution and/or suspension of the active ingredient in an aqueous or oily liquid excipient.
  • Such drops may further comprise buffering agents, salts, and/or one or more other of any additional ingredients described herein.
  • Other opthalmically-administrable formulations which are useful include those which comprise the active ingredient in microcrystalline form and/or in a liposomal preparation. Ear drops and/or eye drops are contemplated as being within the scope of this present disclosure.
  • the present disclosure provides methods comprising administering proteins or complexes in accordance with the present disclosure to a subject in need thereof.
  • Proteins or complexes, or pharmaceutical, imaging, diagnostic, or prophylactic compositions thereof may be administered to a subject using any amount and any route of administration effective for preventing, treating, diagnosing, or imaging a disease, disorder, and/or condition (e.g., a disease, disorder, and/or condition relating to working memory deficits).
  • a disease, disorder, and/or condition e.g., a disease, disorder, and/or condition relating to working memory deficits.
  • the exact amount required will vary from subject to subject, depending on the species, age, and general condition of the subject, the severity of the disease, the particular composition, its mode of administration, its mode of activity, and the like.
  • Compositions in accordance with the present disclosure are typically formulated in dosage unit form for ease of administration and uniformity of dosage.
  • compositions of the present disclosure will be decided by the attending physician within the scope of sound medical judgment.
  • the specific therapeutically effective, prophylactically effective, or appropriate imaging dose level for any particular patient will depend upon a variety of factors including the disorder being treated and the severity of the disorder; the activity of the specific compound employed; the specific composition employed; the age, body weight, general health, sex and diet of the patient; the time of administration, route of administration, and rate of excretion of the specific compound employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed; and like factors well known in the medical arts.
  • Proteins to be delivered and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof may be administered to animals, such as mammals (e.g., humans, domesticated animals, cats, dogs, mice, rats, etc.). In some embodiments, pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof are administered to humans.
  • Proteins to be delivered and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof in accordance with the present disclosure may be administered by any route.
  • proteins and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof are administered by one or more of a variety of routes, including oral, intravenous, intramuscular, intra-arterial, intramedullary, intrathecal, subcutaneous, intraventricular, transdermal, interdermal, rectal, intravaginal, intraperitoneal, topical (e.g.
  • proteins or complexes, and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof are administered by systemic intravenous injection.
  • proteins or complexes and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof may be administered intravenously and/or orally.
  • proteins or complexes, and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof may be administered in a way which allows the protein or complex to cross the blood-brain barrier, vascular barrier, or other epithelial barrier.
  • the present disclosure encompasses the delivery of proteins or complexes, and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof, by any appropriate route taking into consideration likely advances in the sciences of drug delivery.
  • the most appropriate route of administration will depend upon a variety of factors including the nature of the protein or complex comprising proteins associated with at least one agent to be delivered (e.g., its stability in the environment of the gastrointestinal tract, bloodstream, etc.), the condition of the patient (e.g., whether the patient is able to tolerate particular routes of administration), etc.
  • the present disclosure encompasses the delivery of the pharmaceutical, prophylactic, diagnostic, or imaging compositions by any appropriate route taking into consideration likely advances in the sciences of drug delivery.
  • compositions in accordance with the present disclosure may be administered at dosage levels sufficient to deliver from about 0.0001 mg/kg to about 100 mg/kg, from about 0.01 mg/kg to about 50 mg/kg, from about 0.1 mg/kg to about 40 mg/kg, from about 0.5 mg/kg to about 30 mg/kg, from about 0.01 mg/kg to about 10 mg/kg, from about 0.1 mg/kg to about mg/kg, or from about 1 mg/kg to about 25 mg/kg, of subject body weight per day, one or more times a day, to obtain the desired therapeutic, diagnostic, prophylactic, or imaging effect.
  • the desired dosage may be delivered three times a day, two times a day, once a day, every other day, every third day, every week, every two weeks, every three weeks, or every four weeks.
  • the desired dosage may be delivered using multiple administrations (e.g., two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, or more administrations).
  • Proteins or complexes may be used in combination with one or more other therapeutic, prophylactic, diagnostic, or imaging agents.
  • combination with it is not intended to imply that the agents must be administered at the same time and/or formulated for delivery together, although these methods of delivery are within the scope of the present disclosure.
  • Compositions can be administered concurrently with, prior to, or subsequent to, one or more other desired therapeutics or medical procedures. In general, each agent will be administered at a dose and/or on a time schedule determined for that agent.
  • the present disclosure encompasses the delivery of pharmaceutical, prophylactic, diagnostic, or imaging compositions in combination with agents that improve their bioavailability, reduce and/or modify their metabolism, inhibit their excretion, and/or modify their distribution within the body.
  • therapeutically, prophylactically, diagnostically, or imaging active agents utilized in combination may be administered together in a single composition or administered separately in different compositions.
  • agents utilized in combination with be utilized at levels that do not exceed the levels at which they are utilized individually. In some embodiments, the levels utilized in combination will be lower than those utilized individually.
  • the particular combination of therapies (therapeutics or procedures) to employ in a combination regimen will take into account compatibility of the desired therapeutics and/or procedures and the desired therapeutic effect to be achieved. It will also be appreciated that the therapies employed may achieve a desired effect for the same disorder (for example, a composition useful for treating cancer in accordance with the present disclosure may be administered concurrently with a chemotherapeutic agent), or they may achieve different effects (e.g., control of any adverse effects).
  • kits for conveniently and/or effectively carrying out methods of the present disclosure.
  • kits will comprise sufficient amounts and/or numbers of components to allow a user to perform multiple treatments of a subject(s) and/or to perform multiple experiments.
  • kits for protein production comprising a first isolated nucleic acid comprising a translatable region and a nucleic acid modification, wherein the nucleic acid is capable of evading or avoiding induction of an innate immune response of a cell into which the first isolated nucleic acid is introduced, and packaging and instructions.
  • kits for protein production comprising: a first isolated modified nucleic acid comprising a translatable region, provided in an amount effective to produce a desired amount of a protein encoded by the translatable region when introduced into a target cell; a second nucleic acid comprising an inhibitory nucleic acid, provided in an amount effective to substantially inhibit the innate immune response of the cell; and packaging and instructions.
  • kits for protein production comprising a first isolated nucleic acid comprising a translatable region and a nucleoside modification, wherein the nucleic acid exhibits reduced degradation by a cellular nuclease, and packaging and instructions.
  • kits for protein production comprising a first isolated nucleic acid comprising a translatable region and at least two different nucleoside modifications, wherein the nucleic acid exhibits reduced degradation by a cellular nuclease, and packaging and instructions.
  • kits for protein production comprising a first isolated nucleic acid comprising a translatable region and at least one nucleoside modification
  • nucleic acid exhibits reduced degradation by a cellular nuclease; a second nucleic acid comprising an inhibitory nucleic acid; and packaging and instructions.
  • the first isolated nucleic acid comprises messenger RNA (mRNA).
  • mRNA messenger RNA
  • the mRNA comprises at least one nucleoside selected from the group consisting of pyridin-4-one ribonucleoside, 5-aza-uridine, 2-thio-5-aza-uridine, 2-thiouridine, 4-thio-pseudouridine, 2-thio-pseudouridine, 5-hydroxyuridine, 3-methyluridine, 5-carboxymethyl-uridine, 1-carboxymethyl-pseudouridine, 5-propynyl-uridine, 1-propynyl-pseudouridine, 5-taurinomethyluridine, 1-taurinomethyl-pseudouridine, 5-taurinomethyl-2-thio-uridine, 1-taurinomethyl-4-thio-uridine, 5-methyl-uridine, 1-methyl-pseudouridine, 4-thio-1-methyl-pseudouridine, 2-thio-1
  • the mRNA comprises at least one nucleoside selected from the group consisting of 5-aza-cytidine, pseudoisocytidine, 3-methyl-cytidine, N4-acetylcytidine, 5-formylcytidine, N4-methylcytidine, 5-hydroxymethylcytidine, 1-methyl-pseudoisocytidine, pyrrolo-cytidine, pyrrolo-pseudoisocytidine, 2-thio-cytidine, 2-thio-5-methyl-cytidine, 4-thio-pseudoisocytidine, 4-thio-1-methyl-pseudoisocytidine, 4-thio-1-methyl-1-deaza-pseudoisocytidine, 1-methyl-1-deaza-pseudoisocytidine, zebularine, 5-aza-zebularine, 5-methyl-zebularine, 5-aza-2-thio-
  • the mRNA comprises at least one nucleoside selected from the group consisting of 2-aminopurine, 2,6-diaminopurine, 7-deaza-adenine, 7-deaza-8-aza-adenine, 7-deaza-2-aminopurine, 7-deaza-8-aza-2-aminopurine, 7-deaza-2,6-diaminopurine, 7-deaza-8-aza-2,6-diaminopurine, 1-methyladenosine, N6-methyladenosine, N6-isopentenyladenosine, N6-(cis-hydroxyisopentenyl)adenosine, 2-methylthio-N-6-(cis-hydroxyisopentenyl)adenosine, N6-glycinylcarbamoyladenosine, N6-threonylcarbamoyladenosine, 2-methylthio-N-6-threonyl carbamoyladen
  • the mRNA comprises at least one nucleoside selected from the group consisting of inosine, 1-methyl-inosine, wyosine, wybutosine, 7-deaza-guanosine, 7-deaza-8-aza-guanosine, 6-thio-guanosine, 6-thio-7-deaza-guanosine, 6-thio-7-deaza-8-aza-guanosine, 7-methyl-guanosine, 6-thio-7-methyl-guanosine, 7-methylinosine, 6-methoxy-guanosine, 1-methylguanosine, N2-methylguanosine, N2,N2-dimethylguanosine, 8-oxo-guanosine, 7-methyl-8-oxo-guanosine, 1-methyl-6-thio-guanosine, N2-methyl-6-thio-guanosine, N2,N2-dimethyl-6-thio-guanosine or any disclosed herein.
  • compositions for protein production comprising a first isolated nucleic acid comprising a translatable region and a nucleoside modification, wherein the nucleic acid exhibits reduced degradation by a cellular nuclease, and a mammalian cell suitable for translation of the translatable region of the first nucleic acid.
  • substituents of compounds of the present disclosure are disclosed in groups or in ranges. It is specifically intended that the present disclosure include each and every individual subcombination of the members of such groups and ranges.
  • C 1-6 alkyl is specifically intended to individually disclose methyl, ethyl, C 3 alkyl, C 4 alkyl, C 5 alkyl, and C 6 alkyl.
  • Administered in combination means that two or more agents are administered to a subject at the same time or within an interval such that there may be an overlap of an effect of each agent on the patient. In some embodiments, they are administered within about 60, 30, 15, 10, 5, or 1 minute of one another. In some embodiments, the administrations of the agents are spaced sufficiently closely together such that a combinatorial (e.g., a synergistic) effect is achieved.
  • animal refers to any member of the animal kingdom. In some embodiments, “animal” refers to humans at any stage of development. In some embodiments, “animal” refers to non-human animals at any stage of development. In certain embodiments, the non-human animal is a mammal (e.g., a rodent, a mouse, a rat, a rabbit, a monkey, a dog, a cat, a sheep, cattle, a primate, or a pig). In some embodiments, animals include, but are not limited to, mammals, birds, reptiles, amphibians, fish, and worms. In some embodiments, the animal is a transgenic animal, genetically-engineered animal, or a clone.
  • mammal e.g., a rodent, a mouse, a rat, a rabbit, a monkey, a dog, a cat, a sheep, cattle, a primate, or a pig.
  • animals include, but are not limited to, mammals,
  • Antigens of interest or desired antigens include those proteins and other biomolecules provided herein that are immunospecifically bound by the antibodies and fragments, mutants, variants, and alterations thereof described herein.
  • antigens of interest include, but are not limited to, insulin, insulin-like growth factor, hGH, tPA, cytokines, such as interleukins (IL), e.g., IL-1, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-10, IL-11, IL-12, IL-13, IL-14, IL-15, IL-16, IL-17, IL-18, interferon
  • IL interleukins
  • IFN alpha IFN beta alpha
  • IFN beta IFN beta
  • IFN gamma IFN omega or IFN tau
  • TNF tumor necrosis factor
  • TNF alpha and TNF beta TNF beta
  • TNF gamma TNF beta
  • TRAIL tumor necrosis factor
  • G-CSF G-CSF
  • GM-CSF GM-CSF
  • M-CSF MCP-1 and VEGF.
  • association means that the moieties are physically associated or connected with one another, either directly or via one or more additional moieties that serves as a linking agent, to form a structure that is sufficiently stable so that the moieties remain physically associated under the conditions in which the structure is used, e.g., physiological conditions.
  • An “association” need not be strictly through direct covalent chemical bonding. It may also suggest ionic or hydrogen bonding or a hybridization based connectivity sufficiently stable such that the “associated” entities remain physically associated.
  • Biocompatible As used herein, the term “biocompatible” means compatible with living cells, tissues, organs or systems posing little to no risk of injury, toxicity or rejection by the immune system.
  • Biodegradable As used herein, the term “biodegradable” means capable of being broken down into innocuous products by the action of living things.
  • biologically active refers to a characteristic of any substance that has activity in a biological system and/or organism. For instance, a substance that, when administered to an organism, has a biological effect on that organism, is considered to be biologically active.
  • a polynucleotide of the present invention may be considered biologically active if even a portion of the polynucleotide is biologically active or mimics an activity considered biologically relevant.
  • acyl represents a hydrogen or an alkyl group (e.g., a haloalkyl group), as defined herein, that is attached to the parent molecular group through a carbonyl group, as defined herein, and is exemplified by formyl (i.e., a carboxyaldehyde group), acetyl, trifluoroacetyl, propionyl, butanoyl and the like.
  • exemplary unsubstituted acyl groups include from 1 to 7, from 1 to 11, or from 1 to 21 carbons.
  • the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein.
  • acylamino represents an acyl group, as defined herein, attached to the parent molecular group though an amino group, as defined herein (i.e., —N(R N1 )—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group (e.g., haloalkyl) and R N1 is as defined herein).
  • exemplary unsubstituted acylamino groups include from 1 to 41 carbons (e.g., from 1 to 7, from 1 to 13, from 1 to 21, from 2 to 7, from 2 to 13, from 2 to 21, or from 2 to 41 carbons).
  • the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein, and/or the amino group is —NH 2 or —NHR N1 , wherein R N1 is, independently, OH, NO 2 , NH 2 , NR N22 , SO 2 OR N2 , SO 2 R N2 , SOR N2 , alkyl, aryl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), or alkoxycarbonylalkyl, and each R N2 can be H, alkyl, or aryl.
  • R N1 is, independently, OH, NO 2 , NH 2 , NR N22 , SO 2 OR N2 , SO 2 R N2 , SOR N2 , alkyl, aryl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), or alkoxycarbonylalkyl, and
  • acylaminoalkyl represents an acyl group, as defined herein, attached to an amino group that is in turn attached to the parent molecular group though an alkyl group, as defined herein (i.e., -alkyl-N(R N1 )—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group (e.g., haloalkyl) and R N1 is as defined herein).
  • alkyl group as defined herein (i.e., -alkyl-N(R N1 )—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group (e.g., haloalkyl) and R N1 is as defined herein).
  • acylamino groups include from 1 to 41 carbons (e.g., from 1 to 7, from 1 to 13, from 1 to 21, from 2 to 7, from 2 to 13, from 2 to 21, or from 2 to 41 carbons).
  • the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein, and/or the amino group is —NH 2 or —NHR N1 , wherein R N1 is, independently, OH, NO 2 , NH 2 , NR N22 , SO 2 OR N2 , SO 2 R N2 , SOR N2 , alkyl, aryl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), or alkoxycarbonylalkyl, and each R N2 can be H, alkyl, or aryl.
  • acyloxy represents an acyl group, as defined herein, attached to the parent molecular group though an oxygen atom (i.e., —O—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group).
  • oxygen atom i.e., —O—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group.
  • exemplary unsubstituted acyloxy groups include from 1 to 21 carbons (e.g., from 1 to 7 or from 1 to 11 carbons).
  • the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein.
  • acyloxyalkyl represents an acyl group, as defined herein, attached to an oxygen atom that in turn is attached to the parent molecular group though an alkyl group (i.e., -alkyl-O—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group).
  • alkyl group i.e., -alkyl-O—C(O)—R, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group.
  • exemplary unsubstituted acyloxyalkyl groups include from 1 to 21 carbons (e.g., from 1 to 7 or from 1 to 11 carbons).
  • the alkyl group is, independently, further substituted with 1, 2, 3, or 4 substituents as described herein.
  • alkaryl represents an aryl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein.
  • exemplary unsubstituted alkaryl groups are from 7 to 30 carbons (e.g., from 7 to 16 or from 7 to 20 carbons, such as C 1-6 alk-C 6-10 aryl, C 1-10 alk-C 6-10 aryl, or C 1-20 alk-C 6-10 aryl).
  • the alkylene and the aryl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective groups.
  • Other groups preceded by the prefix “alk-” are defined in the same manner, where “alk” refers to a C 1-6 alkylene, unless otherwise noted, and the attached chemical structure is as defined herein.
  • alkcycloalkyl represents a cycloalkyl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein (e.g., an alkylene group of from 1 to 4, from 1 to 6, from 1 to 10, or form 1 to 20 carbons).
  • alkylene group as defined herein (e.g., an alkylene group of from 1 to 4, from 1 to 6, from 1 to 10, or form 1 to 20 carbons).
  • the alkylene and the cycloalkyl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • alkenyl represents monovalent straight or branched chain groups of, unless otherwise specified, from 2 to 20 carbons (e.g., from 2 to 6 or from 2 to 10 carbons) containing one or more carbon-carbon double bonds and is exemplified by ethenyl, 1-propenyl, 2-propenyl, 2-methyl-1-propenyl, 1-butenyl, 2-butenyl, and the like. Alkenyls include both cis and trans isomers.
  • Alkenyl groups may be optionally substituted with 1, 2, 3, or 4 substituent groups that are selected, independently, from amino, aryl, cycloalkyl, or heterocyclyl (e.g., heteroaryl), as defined herein, or any of the exemplary alkyl substituent groups described herein.
  • alkenyloxy represents a chemical substituent of formula —OR′, where R is a C 2-20 alkenyl group (e.g., C 2-6 or C 2-10 alkenyl), unless otherwise specified.
  • alkenyloxy groups include ethenyloxy, propenyloxy, and the like.
  • the alkenyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein (e.g., a hydroxy group).
  • alkheteroaryl refers to a heteroaryl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein.
  • exemplary unsubstituted alkheteroaryl groups are from 2 to 32 carbons (e.g., from 2 to 22, from 2 to 18, from 2 to 17, from 2 to 16, from 3 to 15, from 2 to 14, from 2 to 13, or from 2 to 12 carbons, such as C 1-6 alk-C 1-12 heteroaryl, C 1-10 alk-C 1-12 heteroaryl, or C 1-20 alk-C 1-12 heteroaryl).
  • the alkylene and the heteroaryl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • Alkheteroaryl groups are a subset of alkheterocyclyl groups.
  • alkheterocyclyl represents a heterocyclyl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein.
  • exemplary unsubstituted alkheterocyclyl groups are from 2 to 32 carbons (e.g., from 2 to 22, from 2 to 18, from 2 to 17, from 2 to 16, from 3 to 15, from 2 to 14, from 2 to 13, or from 2 to 12 carbons, such as C 1-6 alk-C 1-12 heterocyclyl, C 1-10 alk-C 1-12 heterocyclyl, or C 1-20 alk-C 1-12 heterocyclyl).
  • the alkylene and the heterocyclyl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • alkoxy represents a chemical substituent of formula —OR′, where R is a C 1-20 alkyl group (e.g., C 1-6 or C 1-10 alkyl), unless otherwise specified.
  • exemplary alkoxy groups include methoxy, ethoxy, propoxy (e.g., n-propoxy and isopropoxy), t-butoxy, and the like.
  • the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein (e.g., hydroxy or alkoxy).
  • alkoxyalkoxy represents an alkoxy group that is substituted with an alkoxy group.
  • exemplary unsubstituted alkoxyalkoxy groups include between 2 to 40 carbons (e.g., from 2 to 12 or from 2 to 20 carbons, such as C 1-6 alkoxy-C 1-6 alkoxy, C 1-10 alkoxy-C 1-10 alkoxy, or C 1-20 alkoxy-C 1-20 alkoxy).
  • the each alkoxy group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • alkoxyalkyl represents an alkyl group that is substituted with an alkoxy group.
  • exemplary unsubstituted alkoxyalkyl groups include between 2 to 40 carbons (e.g., from 2 to 12 or from 2 to 20 carbons, such as C 1-6 alkoxy-C 1-6 alkyl, C 1-10 alkoxy-C 1-10 alkyl, or C 1-20 alkoxy-C 1-20 alkyl).
  • the alkyl and the alkoxy each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • alkoxycarbonyl represents an alkoxy, as defined herein, attached to the parent molecular group through a carbonyl atom (e.g., —C(O)—OR′, where R is H or an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group).
  • exemplary unsubstituted alkoxycarbonyl include from 1 to 21 carbons (e.g., from 1 to 11 or from 1 to 7 carbons).
  • the alkoxy group is further substituted with 1, 2, 3, or 4 substituents as described herein.
  • alkoxycarbonylacyl represents an acyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., —C(O)-alkyl-C(O)—OR′, where R is an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group).
  • Exemplary unsubstituted alkoxycarbonylacyl include from 3 to 41 carbons (e.g., from 3 to 10, from 3 to 13, from 3 to 17, from 3 to 21, or from 3 to 31 carbons, such as C 1-6 alkoxycarbonyl-C 1-6 acyl, C 1-10 alkoxycarbonyl-C 1-10 acyl, or C 1-20 alkoxycarbonyl-C 1-20 acyl).
  • each alkoxy and alkyl group is further independently substituted with 1, 2, 3, or 4 substituents, as described herein (e.g., a hydroxy group) for each group.
  • alkoxycarbonylalkoxy represents an alkoxy group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., —O-alkyl-C(O)—OR′, where R is an optionally substituted C 1-6 , C 1-10 , or C 1-20 alkyl group).
  • Exemplary unsubstituted alkoxycarbonylalkoxy include from 3 to 41 carbons (e.g., from 3 to 10, from 3 to 13, from 3 to 17, from 3 to 21, or from 3 to 31 carbons, such as C 1-6 alkoxycarbonyl-C 1-6 alkoxy, C 1-10 alkoxycarbonyl-C 1-10 alkoxy, or C 1-20 alkoxycarbonyl-C 1-20 alkoxy).
  • each alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents, as described herein (e.g., a hydroxy group).
  • alkoxycarbonylalkyl represents an alkyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., -alkyl-C(O)—OR′, where R is an optionally substituted C 1-20 , C 1-10 , or C 1-6 alkyl group).
  • Exemplary unsubstituted alkoxycarbonylalkyl include from 3 to 41 carbons (e.g., from 3 to 10, from 3 to 13, from 3 to 17, from 3 to 21, or from 3 to 31 carbons, such as C 1-6 alkoxycarbonyl-C 1-6 alkyl, C 1-10 alkoxycarbonyl-C 1-10 alkyl, or C 1-20 alkoxycarbonyl-C 1-20 alkyl).
  • each alkyl and alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents as described herein (e.g., a hydroxy group).
  • alkoxycarbonylalkenyl represents an alkenyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., -alkenyl-C(O)—OR′, where R is an optionally substituted C 1-20 , C 1-10 , or C 1-6 alkyl group).
  • Exemplary unsubstituted alkoxycarbonylalkenyl include from 4 to 41 carbons (e.g., from 4 to 10, from 4 to 13, from 4 to 17, from 4 to 21, or from 4 to 31 carbons, such as C 1-6 alkoxycarbonyl-C 2-6 alkenyl, C 1-10 alkoxycarbonyl-C 2-10 alkenyl, or C 1-20 alkoxycarbonyl-C 2-20 alkenyl).
  • each alkyl, alkenyl, and alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents as described herein (e.g., a hydroxy group).
  • alkoxycarbonylalkynyl represents an alkynyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., -alkynyl-C(O)—OR′, where R is an optionally substituted C 1-20 , C 1-10 , or C 1-6 alkyl group).
  • Exemplary unsubstituted alkoxycarbonylalkynyl include from 4 to 41 carbons (e.g., from 4 to 10, from 4 to 13, from 4 to 17, from 4 to 21, or from 4 to 31 carbons, such as C 1-6 alkoxycarbonyl-C 2-6 alkynyl, C 1-10 alkoxycarbonyl-C 2-10 alkynyl, or C 1-20 alkoxycarbonyl-C 2-20 alkynyl).
  • each alkyl, alkynyl, and alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents as described herein (e.g., a hydroxy group).
  • alkyl is inclusive of both straight chain and branched chain saturated groups from 1 to 20 carbons (e.g., from 1 to 10 or from 1 to 6), unless otherwise specified.
  • Alkyl groups are exemplified by methyl, ethyl, n- and iso-propyl, n-, sec-, iso- and tert-butyl, neopentyl, and the like, and may be optionally substituted with one, two, three, or, in the case of alkyl groups of two carbons or more, four substituents independently selected from the group consisting of: (1) C 1-6 alkoxy; (2) C 1-6 alkylsulfinyl; (3) amino, as defined herein (e.g., unsubstituted amino (i.e., —NH 2 ) or a substituted amino (i.e., —N(R N1 ) 2 , where R N1 is as defined for amino); (4) C 6-10 aryl-
  • alkylene and the prefix “alk-,” as used herein, represent a saturated divalent hydrocarbon group derived from a straight or branched chain saturated hydrocarbon by the removal of two hydrogen atoms, and is exemplified by methylene, ethylene, isopropylene, and the like.
  • C x-y alkylene and the prefix “C x-y alk-” represent alkylene groups having between x and y carbons.
  • Exemplary values for x are 1, 2, 3, 4, 5, and 6, and exemplary values for y are 2, 3, 4, 5, 6, 7, 8, 9, 10, 12, 14, 16, 18, or 20 (e.g., C 1-6 , C 1-10 , C 2-20 , C 2-6 , C 2-10 , or C 2-20 alkylene).
  • the alkylene can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for an alkyl group.
  • alkylsulfinyl represents an alkyl group attached to the parent molecular group through an —S(O)— group.
  • exemplary unsubstituted alkylsulfinyl groups are from 1 to 6, from 1 to 10, or from 1 to 20 carbons.
  • the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • alkylsulfinylalkyl represents an alkyl group, as defined herein, substituted by an alkylsulfinyl group.
  • exemplary unsubstituted alkylsulfinylalkyl groups are from 2 to 12, from 2 to 20, or from 2 to 40 carbons.
  • each alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • alkynyl represents monovalent straight or branched chain groups from 2 to 20 carbon atoms (e.g., from 2 to 4, from 2 to 6, or from 2 to 10 carbons) containing a carbon-carbon triple bond and is exemplified by ethynyl, 1-propynyl, and the like.
  • Alkynyl groups may be optionally substituted with 1, 2, 3, or 4 substituent groups that are selected, independently, from aryl, cycloalkyl, or heterocyclyl (e.g., heteroaryl), as defined herein, or any of the exemplary alkyl substituent groups described herein.
  • alkynyloxy represents a chemical substituent of formula —OR′, where R is a C 2-20 alkynyl group (e.g., C 2-6 or C 2-10 alkynyl), unless otherwise specified.
  • exemplary alkynyloxy groups include ethynyloxy, propynyloxy, and the like.
  • the alkynyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein (e.g., a hydroxy group).
  • amidine represents a —C( ⁇ NH)NH 2 group.
  • amino represents —N(R N1 ) 2 , wherein each R N1 is, independently, H, OH, NO 2 , N(R N2 ) 2 , SO 2 OR N2 , SO 2 R N2 , SOR N2 , an N-protecting group, alkyl, alkenyl, alkynyl, alkoxy, aryl, alkaryl, cycloalkyl, alkcycloalkyl, carboxyalkyl (e.g., optionally substituted with an O-protecting group, such as optionally substituted arylalkoxycarbonyl groups or any described herein), sulfoalkyl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), alkoxycarbonylalkyl (e.g., optionally substituted with an O-protecting group, such as optionally substituted arylalkoxycarbonyl groups or any described herein
  • amino groups of the invention can be an unsubstituted amino (i.e., —NH 2 ) or a substituted amino (i.e., —N(R N1 ) 2 ).
  • amino is —NH 2 or —NHR N1 , wherein R N1 is, independently, OH, NO 2 , NH 2 , NR N2 2 , SO 2 OR N2 , SO 2 R N2 , SOR N2 , alkyl, carboxyalkyl, sulfoalkyl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), alkoxycarbonylalkyl (e.g., t-butoxycarbonylalkyl) or aryl, and each R N2 can be H, C 1-20 alkyl (e.g., C 1-6 alkyl), or C 6-10 aryl.
  • amino acid refers to a molecule having a side chain, an amino group, and an acid group (e.g., a carboxy group of —CO 2 H or a sulfo group of —SO 3 H), wherein the amino acid is attached to the parent molecular group by the side chain, amino group, or acid group (e.g., the side chain).
  • the amino acid is attached to the parent molecular group by a carbonyl group, where the side chain or amino group is attached to the carbonyl group.
  • Exemplary side chains include an optionally substituted alkyl, aryl, heterocyclyl, alkaryl, alkheterocyclyl, aminoalkyl, carbamoylalkyl, and carboxyalkyl.
  • Exemplary amino acids include alanine, arginine, asparagine, aspartic acid, cysteine, glutamic acid, glutamine, glycine, histidine, hydroxynorvaline, isoleucine, leucine, lysine, methionine, norvaline, ornithine, phenylalanine, proline, pyrrolysine, selenocysteine, serine, taurine, threonine, tryptophan, tyrosine, and valine.
  • Amino acid groups may be optionally substituted with one, two, three, or, in the case of amino acid groups of two carbons or more, four substituents independently selected from the group consisting of: (1) C 1-6 alkoxy; (2) C 1-6 alkylsulfinyl; (3) amino, as defined herein (e.g., unsubstituted amino (i.e., —NH 2 ) or a substituted amino (i.e., —N(R N1 ) 2 , where R N1 is as defined for amino); (4) C 6-10 aryl-C 1-6 alkoxy; (5) azido; (6) halo; (7) (C 2-9 heterocyclyl)oxy; (8) hydroxy; (9) nitro; (10) oxo (e.g., carboxyaldehyde or acyl); (11) C 1-7 -spirocyclyl; (12) thioalkoxy; (13) thiol; (14) —CO 2 R A′ , where R A
  • aminoalkoxy represents an alkoxy group, as defined herein, substituted by an amino group, as defined herein.
  • the alkyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO 2 R A′ , where R A′ is selected from the group consisting of (a) C 1-6 alkyl, (b) C 6-10 aryl, (c) hydrogen, and (d) C 1-6 alk-C 6-10 aryl, e.g., carboxy).
  • aminoalkyl represents an alkyl group, as defined herein, substituted by an amino group, as defined herein.
  • the alkyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO 2 R A′ , where R A′ is selected from the group consisting of (a) C 1-6 alkyl, (b) C 6-10 aryl, (c) hydrogen, and (d) C 1-6 alk-C 6-10 aryl, e.g., carboxy, and/or an N-protecting group).
  • aminoalkenyl represents an alkenyl group, as defined herein, substituted by an amino group, as defined herein.
  • the alkenyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO 2 R A′ , where R A′ is selected from the group consisting of (a) C 1-6 alkyl, (b) C 6-10 aryl, (c) hydrogen, and (d) C 1-6 alk-C 6-10 aryl, e.g., carboxy, and/or an N-protecting group).
  • aminoalkynyl represents an alkynyl group, as defined herein, substituted by an amino group, as defined herein.
  • the alkynyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO 2 R A′ , where R A′ is selected from the group consisting of (a) C 1-6 alkyl, (b) C 6-10 aryl, (c) hydrogen, and (d) C 1-6 alk-C 6-10 aryl, e.g., carboxy, and/or an N-protecting group).
  • aryl represents a mono-, bicyclic, or multicyclic carbocyclic ring system having one or two aromatic rings and is exemplified by phenyl, naphthyl, 1,2-dihydronaphthyl, 1,2,3,4-tetrahydronaphthyl, anthracenyl, phenanthrenyl, fluorenyl, indanyl, indenyl, and the like, and may be optionally substituted with 1, 2, 3, 4, or 5 substituents independently selected from the group consisting of: (1) C 1-7 acyl (e.g., carboxyaldehyde); (2) C 1-20 alkyl (e.g., C 1-6 alkyl, C 1-6 alkoxy-C 1-6 alkyl, C 1-6 alkylsulfinyl-C 1-6 alkyl, amino-C 1-6 alkyl, azido-C 1-6 alkyl, (carboxyaldehyde)-C
  • each of these groups can be further substituted as described herein.
  • the alkylene group of a C 1 -alkaryl or a C 1 -alkheterocyclyl can be further substituted with an oxo group to afford the respective aryloyl and (heterocyclyl)oyl substituent group.
  • arylalkoxy represents an alkaryl group, as defined herein, attached to the parent molecular group through an oxygen atom.
  • exemplary unsubstituted arylalkoxy groups include from 7 to 30 carbons (e.g., from 7 to 16 or from 7 to 20 carbons, such as C 6-10 aryl-C 1-6 alkoxy, C 6-10 aryl-C 1-10 alkoxy, or C 6-10 aryl-C 1-20 alkoxy).
  • the arylalkoxy group can be substituted with 1, 2, 3, or 4 substituents as defined herein
  • arylalkoxycarbonyl represents an arylalkoxy group, as defined herein, attached to the parent molecular group through a carbonyl (e.g., —C(O)—O-alkyl-aryl).
  • exemplary unsubstituted arylalkoxy groups include from 8 to 31 carbons (e.g., from 8 to 17 or from 8 to 21 carbons, such as C 6-10 aryl-C 1-6 alkoxy-carbonyl, C 6-10 aryl-C 1-10 alkoxy-carbonyl, or C 6-10 aryl-C 1-20 alkoxy-carbonyl).
  • the arylalkoxycarbonyl group can be substituted with 1, 2, 3, or 4 substituents as defined herein.
  • aryloxy represents a chemical substituent of formula —OR′, where R′ is an aryl group of 6 to 18 carbons, unless otherwise specified.
  • the aryl group can be substituted with 1, 2, 3, or 4 substituents as defined herein.
  • aryloyl represents an aryl group, as defined herein, that is attached to the parent molecular group through a carbonyl group.
  • exemplary unsubstituted aryloyl groups are of 7 to 11 carbons.
  • the aryl group can be substituted with 1, 2, 3, or 4 substituents as defined herein.
  • azido represents an —N 3 group, which can also be represented as —N ⁇ N ⁇ N.
  • bicyclic refers to a structure having two rings, which may be aromatic or non-aromatic.
  • Bicyclic structures include spirocyclyl groups, as defined herein, and two rings that share one or more bridges, where such bridges can include one atom or a chain including two, three, or more atoms.
  • Exemplary bicyclic groups include a bicyclic carbocyclyl group, where the first and second rings are carbocyclyl groups, as defined herein; a bicyclic aryl groups, where the first and second rings are aryl groups, as defined herein; bicyclic heterocyclyl groups, where the first ring is a heterocyclyl group and the second ring is a carbocyclyl (e.g., aryl) or heterocyclyl (e.g., heteroaryl) group; and bicyclic heteroaryl groups, where the first ring is a heteroaryl group and the second ring is a carbocyclyl (e.g., aryl) or heterocyclyl (e.g., heteroaryl) group.
  • the bicyclic group can be substituted with 1, 2, 3, or 4 substituents as defined herein for cycloalkyl, heterocyclyl, and aryl groups.
  • boranyl represents —B(R B1 ) 3 , where each R B1 is, independently, selected from the group consisting of H and optionally substituted alkyl.
  • the boranyl group can be substituted with 1, 2, 3, or 4 substituents as defined herein for alkyl.
  • Carbocyclic and “carbocyclyl,” as used herein, refer to an optionally substituted C 3-12 monocyclic, bicyclic, or tricyclic structure in which the rings, which may be aromatic or non-aromatic, are formed by carbon atoms.
  • Carbocyclic structures include cycloalkyl, cycloalkenyl, and aryl groups.
  • carbamoyl represents —C(O)—N(R N1 ) 2 , where the meaning of each R N1 is found in the definition of “amino” provided herein.
  • carbamoylalkyl represents an alkyl group, as defined herein, substituted by a carbamoyl group, as defined herein.
  • the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • carbamate group refers to a carbamate group having the structure —NR N1 C( ⁇ O)OR or —OC( ⁇ O)N(R N1 ) 2 , where the meaning of each R N1 is found in the definition of “amino” provided herein, and R is alkyl, cycloalkyl, alkcycloalkyl, aryl, alkaryl, heterocyclyl (e.g., heteroaryl), or alkheterocyclyl (e.g., alkheteroaryl), as defined herein.
  • carbonyl represents a C(O) group, which can also be represented as C ⁇ O.
  • carboxyaldehyde represents an acyl group having the structure —CHO.
  • carboxyalkoxy represents an alkoxy group, as defined herein, substituted by a carboxy group, as defined herein.
  • the alkoxy group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the alkyl group, and the carboxy group can be optionally substituted with one or more O-protecting groups.
  • carboxyalkyl represents an alkyl group, as defined herein, substituted by a carboxy group, as defined herein.
  • the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein, and the carboxy group can be optionally substituted with one or more O-protecting groups.
  • carboxyaminoalkyl represents an aminoalkyl group, as defined herein, substituted by a carboxy, as defined herein.
  • the carboxy, alkyl, and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO 2 R A′ , where R A′ is selected from the group consisting of (a) C 1-6 alkyl, (b) C 6-10 aryl, (c) hydrogen, and (d) C 1-6 alk-C 6-10 aryl, e.g., carboxy, and/or an N-protecting group, and/or an O-protecting group).
  • cyano represents an —CN group.
  • cycloalkoxy represents a chemical substituent of formula —OR′, where R is a C 3-8 cycloalkyl group, as defined herein, unless otherwise specified.
  • the cycloalkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • Exemplary unsubstituted cycloalkoxy groups are from 3 to 8 carbons.
  • the cycloalkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • cycloalkyl represents a monovalent saturated or unsaturated non-aromatic cyclic hydrocarbon group from three to eight carbons, unless otherwise specified, and is exemplified by cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, bicycle heptyl, and the like.
  • cycloalkyl group includes one carbon-carbon double bond
  • the cycloalkyl group can be referred to as a “cycloalkenyl” group.
  • Exemplary cycloalkenyl groups include cyclopentenyl, cyclohexenyl, and the like.
  • the cycloalkyl groups of this invention can be optionally substituted with: (1) C 1-7 acyl (e.g., carboxyaldehyde); (2) C 1-20 alkyl (e.g., C 1-6 alkyl, C 1-6 alkoxy-C 1-6 alkyl, C 1-6 alkylsulfinyl-C 1-6 alkyl, amino-C 1-6 alkyl, azido-C 1-6 alkyl, (carboxyaldehyde)-C 1-6 alkyl, halo-C 1-6 alkyl (e.g., perfluoroalkyl), hydroxy-C 1-6 alkyl, nitro-C 1-6 alkyl, or C 1-6 thioalkoxy-C 1-6 alkyl); (3) C 1-20 alkoxy (e.g., C 1-6 alkoxy, such as perfluoroalkoxy); (4) C 1-6 alkylsulfinyl; (5) C 6-10 aryl; (6) amino; (7)
  • each of these groups can be further substituted as described herein.
  • the alkylene group of a C 1 -alkaryl or a C 1 -alkheterocyclyl can be further substituted with an oxo group to afford the respective aryloyl and (heterocyclyl)oyl substituent group.
  • stereomer as used herein means stereoisomers that are not mirror images of one another and are non-superimposable on one another.
  • an effective amount of an agent is that amount sufficient to effect beneficial or desired results, for example, clinical results, and, as such, an “effective amount” depends upon the context in which it is being applied.
  • an effective amount of an agent is, for example, an amount sufficient to achieve treatment, as defined herein, of cancer, as compared to the response obtained without administration of the agent.
  • enantiomer means each individual optically active form of a compound of the invention, having an optical purity or enantiomeric excess (as determined by methods standard in the art) of at least 80% (i.e., at least 90% of one enantiomer and at most 10% of the other enantiomer), preferably at least 90% and more preferably at least 98%.
  • halo represents a halogen selected from bromine, chlorine, iodine, or fluorine.
  • haloalkoxy represents an alkoxy group, as defined herein, substituted by a halogen group (i.e., F, Cl, Br, or I).
  • a haloalkoxy may be substituted with one, two, three, or, in the case of alkyl groups of two carbons or more, four halogens.
  • Haloalkoxy groups include perfluoroalkoxys (e.g., —OCF 3 ), —OCHF 2 , —OCH 2 F, —OCCl 3 , —OCH 2 CH 2 Br, —OCH 2 CH(CH 2 CH 2 Br)CH 3 , and —OCHICH 3 .
  • the haloalkoxy group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for alkyl groups.
  • haloalkyl represents an alkyl group, as defined herein, substituted by a halogen group (i.e., F, Cl, Br, or I).
  • a haloalkyl may be substituted with one, two, three, or, in the case of alkyl groups of two carbons or more, four halogens.
  • Haloalkyl groups include perfluoroalkyls (e.g., —CF 3 ), —CHF 2 , —CH 2 F, —CCl 3 , —CH 2 CH 2 Br, —CH 2 CH(CH 2 CH 2 Br)CH 3 , and —CHICH 3 .
  • the haloalkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for alkyl groups.
  • heteroalkylene refers to an alkylene group, as defined herein, in which one or two of the constituent carbon atoms have each been replaced by nitrogen, oxygen, or sulfur.
  • the heteroalkylene group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for alkylene groups.
  • heteroaryl represents that subset of heterocyclyls, as defined herein, which are aromatic: i.e., they contain 4n+2 pi electrons within the mono- or multicyclic ring system.
  • exemplary unsubstituted heteroaryl groups are of 1 to 12 (e.g., 1 to 11, 1 to 10, 1 to 9, 2 to 12, 2 to 11, 2 to 10, or 2 to 9) carbons.
  • the heteroaryl is substituted with 1, 2, 3, or 4 substituents groups as defined for a heterocyclyl group.
  • heterocyclyl represents a 5-, 6- or 7-membered ring, unless otherwise specified, containing one, two, three, or four heteroatoms independently selected from the group consisting of nitrogen, oxygen, and sulfur.
  • the 5-membered ring has zero to two double bonds, and the 6- and 7-membered rings have zero to three double bonds.
  • Exemplary unsubstituted heterocyclyl groups are of 1 to 12 (e.g., 1 to 11, 1 to 10, 1 to 9, 2 to 12, 2 to 11, 2 to 10, or 2 to 9) carbons.
  • heterocyclyl also represents a heterocyclic compound having a bridged multicyclic structure in which one or more carbons and/or heteroatoms bridges two non-adjacent members of a monocyclic ring, e.g., a quinuclidinyl group.
  • heterocyclyl includes bicyclic, tricyclic, and tetracyclic groups in which any of the above heterocyclic rings is fused to one, two, or three carbocyclic rings, e.g., an aryl ring, a cyclohexane ring, a cyclohexene ring, a cyclopentane ring, a cyclopentene ring, or another monocyclic heterocyclic ring, such as indolyl, quinolyl, isoquinolyl, tetrahydroquinolyl, benzofuryl, benzothienyl and the like.
  • fused heterocyclyls include tropanes and 1,2,3,5,8,8a-hexahydroindolizine.
  • Heterocyclics include pyrrolyl, pyrrolinyl, pyrrolidinyl, pyrazolyl, pyrazolinyl, pyrazolidinyl, imidazolyl, imidazolinyl, imidazolidinyl, pyridyl, piperidinyl, homopiperidinyl, pyrazinyl, piperazinyl, pyrimidinyl, pyridazinyl, oxazolyl, oxazolidinyl, isoxazolyl, isoxazolidiniyl, morpholinyl, thiomorpholinyl, thiazolyl, thiazolidinyl, isothiazolyl, isothiazolidinyl, indolyl, indazolyl, quinolyl, isoquinolyl,
  • Still other exemplary heterocyclyls include: 2,3,4,5-tetrahydro-2-oxo-oxazolyl; 2,3-dihydro-2-oxo-1H-imidazolyl; 2,3,4,5-tetrahydro-5-oxo-1H-pyrazolyl (e.g., 2,3,4,5-tetrahydro-2-phenyl-5-oxo-1H-pyrazolyl); 2,3,4,5-tetrahydro-2,4-dioxo-1H-imidazolyl (e.g., 2,3,4,5-tetrahydro-2,4-dioxo-5-methyl-5-phenyl-1H-imidazolyl); 2,3-dihydro-2-thioxo-1,3,4-oxadiazolyl (e.g., 2,3-dihydro-2-thioxo-5-phenyl-1,3,4-oxadiazolyl); 4,5-dihydro-5-oxo-1H-triazolyl (
  • heterocyclics include 3,3a,4,5,6,6a-hexahydro-pyrrolo[3,4-b]pyrrol-(2H)-yl, and 2,5-diazabicyclo[2.2.1]heptan-2-yl, homopiperazinyl (or diazepanyl), tetrahydropyranyl, dithiazolyl, benzofuranyl, benzothienyl, oxepanyl, thiepanyl, azocanyl, oxecanyl, and thiocanyl.
  • Heterocyclic groups also include groups of the formula
  • E′ is selected from the group consisting of —N— and —CH—
  • F′ is selected from the group consisting of —N ⁇ CH—, —NH—CH 2 —, —NH—C(O)—, —NH—, —CH ⁇ N—, —CH 2 —NH—, —C(O)—NH—, —CH ⁇ CH—, —CH 2 —, —CH 2 CH 2 —, —CH 2 O—, —OCH 2 —, —O—, and —S—; and G′ is selected from the group consisting of —CH— and —N—.
  • any of the heterocyclyl groups mentioned herein may be optionally substituted with one, two, three, four or five substituents independently selected from the group consisting of: (1) C 1-7 acyl (e.g., carboxyaldehyde); (2) C 1-20 alkyl (e.g., C 1-6 alkyl, C 1-6 alkoxy-C 1-6 alkyl, C 1-6 alkylsulfinyl-C 1-6 alkyl, amino-C 1-6 alkyl, azido-C 1-6 alkyl, (carboxyaldehyde)-C 1-6 alkyl, halo-C 1-6 alkyl (e.g., perfluoroalkyl), hydroxy-C 1-6 alkyl, nitro-C 1-6 alkyl, or C 1-6 thioalkoxy-C 1-6 alkyl); (3) C 1-20 alkoxy (e.g., C 1-6 alkoxy, such as perfluoroalkoxy); (4) C 1-6 alkylsul
  • each of these groups can be further substituted as described herein.
  • the alkylene group of a C 1 -alkaryl or a C 1 -alkheterocyclyl can be further substituted with an oxo group to afford the respective aryloyl and (heterocyclyl)oyl substituent group.
  • heterocyclyl imino represents a heterocyclyl group, as defined herein, attached to the parent molecular group through an imino group.
  • the heterocyclyl group can be substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • heterocyclyloxy represents a heterocyclyl group, as defined herein, attached to the parent molecular group through an oxygen atom.
  • the heterocyclyl group can be substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • heterocyclyl represents a heterocyclyl group, as defined herein, attached to the parent molecular group through a carbonyl group.
  • the heterocyclyl group can be substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • hydrocarbon represents a group consisting only of carbon and hydrogen atoms.

Abstract

The present disclosure provides modified nucleosides, nucleotides, and nucleic acids, and methods of using them.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This application is a continuation of U.S. patent application Ser. No. 13/644,072, filed Oct. 3, 2012, entitled Modified Nucleosides, Nucleotides, and Nucleic Acids, and Uses Thereof which claims priority to U.S. Provisional Patent Application No. 61/542,533, filed Oct. 3, 2011, entitled Modified Nucleosides, Nucleotides, and Nucleic Acids, and Uses Thereof, the contents of each are herein incorporated by reference in their entirety.
  • REFERENCE TO THE SEQUENCE LISTING
  • The present application is being filed along with a Sequence Listing in electronic format. The Sequence Listing file, entitled M009SQLST.txt, was created on Jan. 17, 2013 and is 9,970 bytes in size. The information in electronic format of the Sequence Listing is incorporated herein by reference in its entirety.
  • TECHNICAL FIELD
  • The present disclosure provides compositions and methods using modified nucleic acids to modulate cellular function. The modified nucleic acids of the invention may encode peptides, polypeptides or multiple proteins. The encoded molecules may be used as therapeutics and/or diagnostics.
  • BACKGROUND OF THE INVENTION
  • Naturally occurring RNAs are synthesized from four basic ribonucleotides: ATP, CTP, UTP and GTP, but may contain post-transcriptionally modified nucleotides. Further, approximately one hundred different nucleoside modifications have been identified in RNA (Rozenski, J, Crain, P, and McCloskey, J. (1999). The RNA Modification Database: 1999 update. Nucl Acids Res 27: 196-197). The role of nucleoside modifications on the immune-stimulatory potential and on the translation efficiency of RNA, however, is unclear.
  • There are multiple problems with prior methodologies of effecting protein expression. For example, heterologous DNA introduced into a cell can be inherited by daughter cells (whether or not the heterologous DNA has integrated into the chromosome) or by offspring. Introduced DNA can integrate into host cell genomic DNA at some frequency, resulting in alterations and/or damage to the host cell genomic DNA. In addition, multiple steps must occur before a protein is made. Once inside the cell, DNA must be transported into the nucleus where it is transcribed into RNA. The RNA transcribed from DNA must then enter the cytoplasm where it is translated into protein. This need for multiple processing steps creates lag times before the generation of a protein of interest. Further, it is difficult to obtain DNA expression in cells; frequently DNA enters cells but is not expressed or not expressed at reasonable rates or concentrations. This can be a particular problem when DNA is introduced into cells such as primary cells or modified cell lines.
  • There is a need in the art for biological modalities to address the modulation of intracellular translation of nucleic acids.
  • SUMMARY OF THE INVENTION
  • The present disclosure provides, inter alia, modified nucleosides, modified nucleotides, and modified nucleic acids which can exhibit a reduced innate immune response when introduced into a population of cells, both in vivo and ex vivo.
  • The present invention provides polynucleotides which may be isolated or purified. These polynucleotides may encode one or more polypeptides of interest and comprise a sequence of n number of linked nucleosides or nucleotides comprising at least one modified nucleoside or nucleotide as compared to the chemical structure of an A, G, U or C nucleoside or nucleotide. The polynucleotides may also contain a 5′ UTR comprising at least one Kozak sequence, a 3′ UTR, and at least one 5′ cap structure. The isolated polynucleotides may further contain a poly-A tail and may be purified.
  • The isolated polynucleotides of the invention also comprise at least one 5′ cap structure selected from the group consisting of Cap0, Cap 1, ARCA, inosine, N1-methyl-guanosine, 2′fluoro-guanosine, 7-deaza-guanosine, 8-oxo-guanosine, 2-amino-guanosine, LNA-guanosine, and 2-azido-guanosine.
  • Modifications of the polynucleotides of the invention may be on the nucleoside base and/or sugar portion of the nucleosides which comprise the polynucleotide.
  • In some embodiments, the modification is on the nucleobase and is selected from the group consisting of pseudouridine or N1-methylpseudouridine.
  • In some embodiments, the modified nucleoside is not pseudouridine (ψ) or 5-methyl-cytidine (m5C).
  • In some embodiments, multiple modifications are included in the modified nucleic acid or in one or more individual nucleoside or nucleotide. For example, modifications to a nucleoside may include one or more modifications to the nucleobase and the sugar.
  • In some embodiments are provided novel building blocks, e.g., nucleosides and nucleotides for the preparation of modified polynucleotides and their method of synthesis and manufacture.
  • The present invention also provides for pharmaceutical compositions comprising the modified polynucleotides described herein. These may also further include one or more pharmaceutically acceptable excipients selected from a solvent, aqueous solvent, non-aqueous solvent, dispersion media, diluent, dispersion, suspension aid, surface active agent, isotonic agent, thickening or emulsifying agent, preservative, lipid, lipidoids liposome, lipid nanoparticle, core-shell nanoparticles, polymer, lipoplexe peptide, protein, cell, hyaluronidase, and mixtures thereof.
  • Methods of using the polynucleotides and modified nucleic acids of the invention are also provided. In this instance, the polynucleotides may be formulated by any means known in the art or administered via any of several routes including injection by intradermal, subcutaneous or intramuscular means.
  • Administration of the modified nucleic acids of the invention may be via two or more equal or unequal split doses. In some embodiments, the level of the polypeptide produced by the subject by administering split doses of the polynucleotide is greater than the levels produced by administering the same total daily dose of polynucleotide as a single administration.
  • Detection of the modified nucleic acids or the encoded polypeptides may be performed in the bodily fluid of the subject or patient where the bodily fluid is selected from the group consisting of peripheral blood, serum, plasma, ascites, urine, cerebrospinal fluid (CSF), sputum, saliva, bone marrow, synovial fluid, aqueous humor, amniotic fluid, cerumen, breast milk, broncheoalveolar lavage fluid, semen, prostatic fluid, cowper's fluid or pre-ejaculatory fluid, sweat, fecal matter, hair, tears, cyst fluid, pleural and peritoneal fluid, pericardial fluid, lymph, chyme, chyle, bile, interstitial fluid, menses, pus, sebum, vomit, vaginal secretions, mucosal secretion, stool water, pancreatic juice, lavage fluids from sinus cavities, bronchopulmonary aspirates, blastocyl cavity fluid, and umbilical cord blood.
  • In some embodiments, administration is according to a dosing regimen which occurs over the course of hours, days, weeks, months, or years and may be achieved by using one or more devices selected from multi-needle injection systems, catheter or lumen systems, and ultrasound, electrical or radiation based systems.
  • Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Methods and materials are described herein for use in the present disclosure; other, suitable methods and materials known in the art can also be used. The materials, methods, and examples are illustrative only and not intended to be limiting. All publications, patent applications, patents, sequences, database entries, and other references mentioned herein are incorporated by reference in their entirety. In case of conflict, the present specification, including definitions, will control.
  • Other features and advantages of the present disclosure will be apparent from the following detailed description and figures, and from the claims.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • The foregoing and other objects, features and advantages will be apparent from the following description of particular embodiments of the invention, as illustrated in the accompanying drawings in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of various embodiments of the invention.
  • FIG. 1 provides the spectrum and graphs of the analytical results for N4-Me-CTP (NTP of compound 1). FIG. 1A provides the nuclear magnetic resonance (NMR) spectrum in DMSO and FIG. 1B provides the NMR spectrum in D2O, FIG. 1C provides the mass spectrometry (MS) results, and FIG. 1D is the high performance liquid chromatography (HPLC) results for N4-methylcytidine (N4-Me-cytidine, compound 1).
  • FIG. 2 shows the HPLC results for N4-Me-CTP (NTP of compound 1).
  • FIG. 3 provides the analytical results for 2′-OMe-N,N-di-Me-CTP (NTP of compound 2). FIG. 3A provides the NMR spectrum. FIG. 3B provides the MS results. FIG. 3C provides HPLC results for 2′-O-methyl-N4,N4-dimethylcytidine (2′-OMe-N,N-di-Me-cytidine, compound 2).
  • FIG. 4 shows the HPLC results for 2′-OMe-N,N-di-Me-CTP (NTP of compound 2).
  • FIG. 5 provides the HPLC results for 5-methoxycarbonylmethoxy-UTP (NTP of compound 3).
  • FIG. 6 provides the analytical results of 3-methyl pseudouridine (compound 4). FIG. 6A provides the NMR spectrum of 3-methyl pseudouridine (compound 4) and FIG. 6B provides the HPLC results for 3-methyl pseudouridine (compound 4).
  • FIG. 7 provides the analytical results of 5-TBDMS-OCH2-cytidine (compound 6). FIG. 7A provide the NMR spectrum, FIG. 7B provides the MS results, and FIG. 7C provides the HPLC results for 5-TBDMS-OCH2-cytidine (compound 6).
  • FIG. 8 provides the analytical results of 5-trifluoromethyl uridine (compound 8). FIG. 8A provides the NMR spectrum, FIG. 8B provides MS results, and FIG. 8C provides HPLC results for 5-trifluoromethyl uridine (compound 8).
  • FIG. 9 provides the NMR spectrum results for of 5-(methoxycarbonyl)methyl uridine (compound 9).
  • FIG. 10 provides a graph showing the variability of protein (GCSF; line B) and cytokine (interferon-alpha (IFNa); line A and tumor necrosis factor-alpha (TNFa); line C) expression as function of percent modification.
  • DETAILED DESCRIPTION
  • The present disclosure provides, inter alia, modified nucleosides, modified nucleotides, and modified nucleic acids that exhibit improved therapeutic properties including, but not limited to, a reduced innate immune response when introduced into a population of cells.
  • As there remains a need in the art for therapeutic modalities to address the myriad of barriers surrounding the efficacious modulation of intracellular translation and processing of nucleic acids encoding polypeptides or fragments thereof, the inventors have shown that certain modified mRNA sequences have the potential as therapeutics with benefits beyond just evading, avoiding or diminishing the immune response.
  • The present invention addresses this need by providing nucleic acid based compounds or polynucleotides which encode a polypeptide of interest (e.g., modified mRNA) and which have structural and/or chemical features that avoid one or more of the problems in the art, for example, features which are useful for optimizing nucleic acid-based therapeutics while retaining structural and functional integrity, overcoming the threshold of expression, improving expression rates, half life and/or protein concentrations, optimizing protein localization, and avoiding deleterious bio-responses such as the immune response and/or degradation pathways.
  • Provided herein, in part, are polynucleotides encoding polypeptides of interest which have been chemically modified to improve one or more of the stability and/or clearance in tissues, receptor uptake and/or kinetics, cellular access by the compositions, engagement with translational machinery, mRNA half-life, translation efficiency, immune evasion, protein production capacity, secretion efficiency (when applicable), accessibility to circulation, protein half-life and/or modulation of a cell's status, function and/or activity.
  • The modified nucleosides, nucleotides and nucleic acids of the invention, including the combination of modifications taught herein have superior properties making them more suitable as therapeutic modalities.
  • It has been determined that the “all or none” model in the art is sorely insufficient to describe the biological phenomena associated with the therapeutic utility of modified mRNA. The present inventors have determined that to improve protein production, one may consider the nature of the modification, or combination of modifications, the percent modification and survey more than one cytokine or metric to determine the efficacy and risk profile of a particular modified mRNA.
  • In one aspect of the invention, methods of determining the effectiveness of a modified mRNA as compared to unmodified involves the measure and analysis of one or more cytokines whose expression is triggered by the administration of the exogenous nucleic acid of the invention. These values are compared to administration of an unmodified nucleic acid or to a standard metric such as cytokine response, PolyIC, R-848 or other standard known in the art.
  • One example of a standard metric developed herein is the measure of the ratio of the level or amount of encoded polypeptide (protein) produced in the cell, tissue or organism to the level or amount of one or more (or a panel) of cytokines whose expression is triggered in the cell, tissue or organism as a result of administration or contact with the modified nucleic acid. Such ratios are referred to herein as the Protein:Cytokine Ratio or “PC” Ratio. The higher the PC ratio, the more efficacious the modified nucleic acid (polynucleotide encoding the protein measured). Preferred PC Ratios, by cytokine, of the present invention may be greater than 1, greater than 10, greater than 100, greater than 1000, greater than 10,000 or more. Modified nucleic acids having higher PC Ratios than a modified nucleic acid of a different or unmodified construct are preferred.
  • The PC ratio may be further qualified by the percent modification present in the polynucleotide. For example, normalized to a 100% modified nucleic acid, the protein production as a function of cytokine (or risk) or cytokine profile can be determined.
  • In one embodiment, the present invention provides a method for determining, across chemistries, cytokines or percent modification, the relative efficacy of any particular modified polynucleotide by comparing the PC Ratio of the modified nucleic acid (polynucleotide).
  • In another embodiment, the chemically modified mRNA are substantially non toxic and non mutagenic.
  • In one embodiment, the modified nucleosides, modified nucleotides, and modified nucleic acids can be chemically modified on the major groove face, thereby disrupting major groove binding partner interactions, which may cause innate immune responses. Further, these modified nucleosides, modified nucleotides, and modified nucleic acids can be used to deliver a payload, e.g., detectable or therapeutic agent, to a biological target. For example, the nucleic acids can be covalently linked to a payload, e.g. a detectable or therapeutic agent, through a linker attached to the nucleobase or the sugar moiety. The compositions and methods described herein can be used, in vivo and in vitro, both extracellarly or intracellularly, as well as in assays such as cell free assays.
  • In some embodiments, the present disclosure provides compounds comprising a nucleotide that disrupts binding of a major groove interacting, e.g. binding, partner with a nucleic acid, wherein the nucleotide has decreased binding affinity to major groove interacting partners.
  • In another aspect, the present disclosure provides nucleotides that contain chemical modifications, wherein the nucleotide has altered binding to major groove interacting partners.
  • In some embodiments, the chemical modifications are located on the major groove face of the nucleobase, and wherein the chemical modifications can include replacing or substituting an atom of a pyrimidine nucleobase with an amine, an SH, an alkyl (e.g., methyl or ethyl), or a halo (e.g., chloro or fluoro).
  • In another aspect, the present disclosure provides chemical modifications located on the sugar moiety of the nucleotide.
  • In another aspect, the present disclosure provides chemical modifications located on the phosphate backbone of the nucleic acid.
  • In some embodiments, the chemical modifications alter the electrochemistry on the major groove face of the nucleic acid.
  • In another aspect, the present disclosure provides nucleotides that contain chemical modifications, wherein the nucleotide reduces the cellular innate immune response, as compared to the cellular innate immune induced by a corresponding unmodified nucleic acid.
  • In another aspect, the present disclosure provides nucleic acid sequences comprising at least two nucleotides, the nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid sequence, wherein the nucleotide has decreased binding affinity to the major groove binding partner.
  • In another aspect, the present disclosure provides compositions comprising a compound as described herein. In some embodiments, the composition is a reaction mixture. In some embodiments, the composition is a pharmaceutical composition. In some embodiments, the composition is a cell culture. In some embodiments, the composition further comprises an RNA polymerase and a cDNA template. In some embodiments, the composition further comprises a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • In a further aspect, the present disclosure provides methods of making a pharmaceutical formulation comprising a physiologically active secreted protein, comprising transfecting a first population of human cells with the pharmaceutical nucleic acid made by the methods described herein, wherein the secreted protein is active upon a second population of human cells.
  • In some embodiments, the secreted protein is capable of interacting with a receptor on the surface of at least one cell present in the second population.
  • In some embodiments, the secreted protein is Granulocyte-Colony Stimulating Factor (G-CSF).
  • In some embodiments, the second population contains myeloblast cells that express the G-CSF receptor.
  • In certain embodiments, provided herein are combination therapeutics containing one or more modified nucleic acids containing translatable regions that encode for a protein or proteins that boost a mammalian subject's immunity along with a protein that induces antibody-dependent cellular toxitity. For example, provided are therapeutics containing one or more nucleic acids that encode trastuzumab and granulocyte-colony stimulating factor (G-CSF). In particular, such combination therapeutics are useful in Her2+ breast cancer patients who develop induced resistance to trastuzumab. (See, e.g., Albrecht, Immunotherapy. 2 (6):795-8 (2010)).
  • In one embodiment, it is intended that the compounds of the present disclosure are stable. It is further appreciated that certain features of the present disclosure, which are, for clarity, described in the context of separate embodiments, can also be provided in combination in a single embodiment. Conversely, various features of the present disclosure which are, for brevity, described in the context of a single embodiment, can also be provided separately or in any suitable subcombination.
  • Modified Nucleotides, Nucleosides and Polynucleotides of the Invention
  • Herein, in a nucleotide, nucleoside or polynucleotide (such as the nucleic acids of the invention, e.g., mRNA molecule), the terms “modification” or, as appropriate, “modified” refer to modification with respect to A, G, U or C ribonucleotides. Generally, herein, these terms are not intended to refer to the ribonucleotide modifications in naturally occurring 5′-terminal mRNA cap moieties. In a polypeptide, the term “modification” refers to a modification as compared to the canonical set of 20 amino acids, moiety)
  • The modifications may be various distinct modifications. In some embodiments, where the nucleic acid is an mRNA, the coding region, the flanking regions and/or the terminal regions may contain one, two, or more (optionally different) nucleoside or nucleotide modifications. In some embodiments, a modified polynucleotide introduced to a cell may exhibit reduced degradation in the cell, as compared to an unmodified polynucleotide.
  • The polynucleotides can include any useful modification, such as to the sugar, the nucleobase, or the internucleoside linkage (e.g. to a linking phosphate/to a phosphodiester linkage/to the phosphodiester backbone). For example, the major groove of a polynucleotide, or the major groove face of a nucleobase may comprise one or more modifications. One or more atoms of a pyrimidine nucleobase (e.g. on the major groove face) may be replaced or substituted with optionally substituted amino, optionally substituted thiol, optionally substituted alkyl (e.g., methyl or ethyl), or halo (e.g., chloro or fluoro). In certain embodiments, modifications (e.g., one or more modifications) are present in each of the sugar and the internucleoside linkage. Modifications according to the present invention may be modifications of ribonucleic acids (RNAs) to deoxyribonucleic acids (DNAs), e.g., the substitution of the 2′OH of the ribofuranysyl ring to 2′H, threose nucleic acids (TNAs), glycol nucleic acids (GNAs), peptide nucleic acids (PNAs), locked nucleic acids (LNAs) or hybrids thereof). Additional modifications are described herein.
  • As described herein, the polynucleotides of the invention do not substantially induce an innate immune response of a cell into which the polynucleotide (e.g., mRNA) is introduced. Features of an induced innate immune response include 1) increased expression of pro-inflammatory cytokines, 2) activation of intracellular PRRs (RIG-I, MDA5, etc, and/or 3) termination or reduction in protein translation.
  • In certain embodiments, it may desirable for a modified nucleic acid molecule introduced into the cell to be degraded intracellulary. For example, degradation of a modified nucleic acid molecule may be preferable if precise timing of protein production is desired. Thus, in some embodiments, the invention provides a modified nucleic acid molecule containing a degradation domain, which is capable of being acted on in a directed manner within a cell. In another aspect, the present disclosure provides polynucleotides comprising a nucleoside or nucleotide that can disrupt the binding of a major groove interacting, e.g. binding, partner with the polynucleotide (e.g., where the modified nucleotide has decreased binding affinity to major groove interacting partner, as compared to an unmodified nucleotide).
  • The polynucleotides can optionally include other agents (e.g., RNAi-inducing agents, RNAi agents, siRNAs, shRNAs, miRNAs, antisense RNAs, ribozymes, catalytic DNA, tRNA, RNAs that induce triple helix formation, aptamers, vectors, etc.). In some embodiments, the polynucleotides may include one or more messenger RNAs (mRNAs) having one or more modified nucleoside or nucleotides (i.e., modified mRNA molecules). Details for these polynucleotides follow.
  • Polynucleotides
  • The polynucleotides of the invention includes a first region of linked nucleosides encoding a polypeptide of interest, a first flanking region located at the 5′ terminus of the first region, and a second flanking region located at the 3′ terminus of the first region.
  • In some embodiments, the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Ia) or Formula (Ia-1):
  • Figure US20130123481A1-20130516-C00001
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein U is O, S, N(RU)nu, or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl;
  • — is a single bond or absent;
  • each of R1′, R2′, R1″, R2″, R1, R2, R3, R4, and R5, if present, is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent; wherein the combination of R3 with one or more of R1′, R1″, R2′, R2″, or R5 (e.g., the combination of R1′ and R3, the combination of R1″ and R3, the combination of R2′ and R3, the combination of R2″ and R3, or the combination of R5 and R3) can join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl); wherein the combination of R5 with one or more of R1′, R1″, R2′, or R2″ (e.g., the combination of R1′ and R5, the combination of R1″ and R5, the combination of R2′ and R5, or the combination of R2″ and R5) can join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl); and wherein the combination of R4 and one or more of R1′, R1″, R2′, R2″, R3, or R5 can join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl);
  • each of m′ and m″ is, independently, an integer from 0 to 3 (e.g., from 0 to 2, from 0 to 1, from 1 to 3, or from 1 to 2);
  • each of Y1, Y2, and Y3, is, independently, O, S, Se, —NRN1—, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, or absent;
  • each Y4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y5 is, independently, O, S, Se, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000; and
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof), wherein the combination of B and R1′, the combination of B and R2′, the combination of B and R1″, or the combination of B and R2″ can, taken together with the carbons to which they are attached, optionally form a bicyclic group (e.g., a bicyclic heterocyclyl) or wherein the combination of B, R1″, and R3 or the combination of B, R2″, and R3 can optionally form a tricyclic or tetracyclic group (e.g., a tricyclic or tetracyclic heterocyclyl, such as in Formula (IIo)-(IIp) herein).
  • In some embodiments, the polynucleotide includes a modified ribose. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (Ia-2)-(Ia-5) or a pharmaceutically acceptable salt or stereoisomer thereof.
  • Figure US20130123481A1-20130516-C00002
  • In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (Ib) or Formula (Ib-1):
  • Figure US20130123481A1-20130516-C00003
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • U is O, S, N(RU)nu, or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl;
  • — is a single bond or absent;
  • each of R1, R3′, R3″, and R4 is, independently, H, halo, hydroxy, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent; and wherein the combination of R1 and R3′ or the combination of R1 and R3″ can be taken together to form optionally substituted alkylene or optionally substituted heteroalkylene (e.g., to produce a locked nucleic acid);
  • each R5 is, independently, H, halo, hydroxy, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, or absent;
  • each of Y1, Y2, and Y3 is, independently, O, S, Se, NRN1—, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl;
  • each Y4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • n is an integer from 1 to 100,000; and
  • B is a nucleobase.
  • In some embodiments, the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Ic):
  • Figure US20130123481A1-20130516-C00004
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • U is O, S, N(RU)nu, or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl;
  • — is a single bond or absent;
  • each of B1, B2, and B3 is, independently, a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof, as described herein), H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl, wherein one and only one of B1, B2, and B3 is a nucleobase;
  • each of Rb1, Rb2, Rb3, R3, and R5 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl;
  • each of Y1, Y2, and Y3, is, independently, O, S, Se, —NRN1—, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl;
  • each Y4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y5 is, independently, O, S, Se, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000; and
  • wherein the ring including U can include one or more double bonds.
  • In particular embodiments, the ring including U does not have a double bond between U-CB3Rb3 or between CB3Rb3—CB2Rb2.
  • In some embodiments, the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Id):
  • Figure US20130123481A1-20130516-C00005
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein U is O, S, N(RU)nu, or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl;
  • each R3 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl;
  • each of Y1, Y2, and Y3, is, independently, O, S, Se, —NRN1—, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl;
  • each Y4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y5 is, independently, O, S, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000; and
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof).
  • In some embodiments, the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (Ie):
  • Figure US20130123481A1-20130516-C00006
  • or a pharmaceutically acceptable salt or stereoisomer thereof,
  • wherein each of U′ and U″ is, independently, O, S, N(RU)nu, or C(RU)nu, wherein nu is an integer from 0 to 2 and each Ru is, independently, H, halo, or optionally substituted alkyl;
  • each R6 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl;
  • each Y5′ is, independently, O, S, optionally substituted alkylene (e.g., methylene or ethylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000; and
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof).
  • In some embodiments, the polynucleotide (e.g., the first region, first flanking region, or second flanking region) includes n number of linked nucleosides having Formula (If) or (If-1):
  • Figure US20130123481A1-20130516-C00007
  • or a pharmaceutically acceptable salt or stereoisomer thereof,
  • wherein each of U′ and U″ is, independently, O, S, N,N(RU)nu, or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl (e.g., U′ is O and U″ is N);
  • — is a single bond or absent;
  • each of R1′, R2′, R1″, R2″, R3, and R4 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent; and wherein the combination of R1′ and R3, the combination of R1″ and R3, the combination of R2′ and R3, or the combination of R2″ and R3 can be taken together to form optionally substituted alkylene or optionally substituted heteroalkylene (e.g., to produce a locked nucleic acid); each of m′ and m″ is, independently, an integer from 0 to 3 (e.g., from 0 to 2, from 0 to 1, from 1 to 3, or from 1 to 2);
  • each of Y1, Y2, and Y3, is, independently, O, S, Se, —NRN1—, optionally substituted alkylene, or optionally substituted heteroalkylene, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, or absent;
  • each Y4 is, independently, H, hydroxy, thiol, boranyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino;
  • each Y5 is, independently, O, S, Se, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene;
  • n is an integer from 1 to 100,000; and
  • B is a nucleobase (e.g., a purine, a pyrimidine, or derivatives thereof).
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), the ring including U has one or two double bonds.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), each of R1, R1′, and R1″, if present, is H. In further embodiments, each of R2, R2′, and R2″, if present, is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy. In particular embodiments, alkoxyalkoxy is —(CH2)s2(OCH2CH2)s1(CH2)s3OR, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl). In some embodiments, s2 is 0, s1 is 1 or 2, s3 is 0 or 1, and R′ is C1-6 alkyl.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), each of R2, R2′, and R2″, if present, is H. In further embodiments, each of R1, R1′, and R1″, if present, is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy. In particular embodiments, alkoxyalkoxy is —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl). In some embodiments, s2 is 0, s1 is 1 or 2, s3 is 0 or 1, and R′ is C1-6 alkyl.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), each of R3, R4, and R5 is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkyl, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy. In particular embodiments, R3 is H, R4 is H, R5 is H, or R3, R4, and R5 are all H. In particular embodiments, R3 is C1-6 alkyl, R4 is C1-6 alkyl, R5 is C1-6 alkyl, or R3, R4, and R5 are all C1-6 alkyl. In particular embodiments, R3 and R4 are both H, and R5 is C1-6 alkyl.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), R3 and R5 join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl, such as trans-3′,4′ analogs, wherein R3 and R5 join together to form heteroalkylene (e.g., —(CH2)b1O(CH2)b2O(CH2)b3—, wherein each of b1, b2, and b3 are, independently, an integer from 0 to 3).
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), R3 and one or more of R1′, R1″, R2′, R2″, or R5 join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl, R3 and one or more of R1′, R1″, R2′, R2″, or R5 join together to form heteroalkylene (e.g., —(CH2)b1O(CH2)b2O(CH2)b3—, wherein each of b1, b2, and b3 are, independently, an integer from 0 to 3).
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), R5 and one or more of R1′, R1″, R2′, or R2″ join together to form optionally substituted alkylene or optionally substituted heteroalkylene and, taken together with the carbons to which they are attached, provide an optionally substituted heterocyclyl (e.g., a bicyclic, tricyclic, or tetracyclic heterocyclyl, R5 and one or more of R1′, R1″, R2′, or R2″ join together to form heteroalkylene (e.g., —(CH2)b1O(CH2)b2O(CH2)b3—, wherein each of b1, b2, and b3 are, independently, an integer from 0 to 3).
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), each Y2 is, independently, O, S, or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl. In particular embodiments, Y2 is NRN1—, wherein RN1 is H or optionally substituted alkyl (e.g., C1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl).
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(lip), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), each Y3 is, independently, O or S.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), R1 is H; each R2 is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy (e.g., —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, such as wherein s2 is 0, s1 is 1 or 2, s3 is 0 or 1, and R′ is C1-6 alkyl); each Y2 is, independently, O or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein RN1 is H or optionally substituted alkyl (e.g., C1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl)); and each Y3 is, independently, O or S (e.g., S). In further embodiments, R3 is H, halo (e.g., fluoro), hydroxy, optionally substituted alkyl, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy. In yet further embodiments, each Y1 is, independently, O or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein RN1 is H or optionally substituted alkyl (e.g., C1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl)); and each Y4 is, independently, H, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(lip), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), each R1 is, independently, H, halo (e.g., fluoro), hydroxy, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy (e.g., —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, such as wherein s2 is 0, s1 is 1 or 2, s3 is 0 or 1, and R′ is C1-6 alkyl); R2 is H; each Y2 is, independently, O or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein RN1 is H or optionally substituted alkyl (e.g., C1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl)); and each Y3 is, independently, O or S (e.g., S). In further embodiments, R3 is H, halo (e.g., fluoro), hydroxy, optionally substituted alkyl, optionally substituted alkoxy (e.g., methoxy or ethoxy), or optionally substituted alkoxyalkoxy. In yet further embodiments, each Y1 is, independently, O or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl (e.g., wherein RN1 is H or optionally substituted alkyl (e.g., C1-6 alkyl, such as methyl, ethyl, isopropyl, or n-propyl)); and each Y4 is, independently, H, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted alkoxyalkoxy, or optionally substituted amino.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), the ring including U is in the β-D (e.g., β-D-ribo) configuration.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), the ring including U is in the α-L (e.g., α-L-ribo) configuration.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), one or more B is not pseudouridine (ψ) or 5-methyl-cytidine (m5C).
  • In some embodiments, about 10% to about 100% of n number of B nucleobases is not ψ or m5C (e.g., from 10% to 20%, from 10% to 35%, from 10% to 50%, from 10% to 60%, from 10% to 75%, from 10% to 90%, from 10% to 95%, from 10% to 98%, from 10% to 99%, from 20% to 35%, from 20% to 50%, from 20% to 60%, from 20% to 75%, from 20% to 90%, from 20% to 95%, from 20% to 98%, from 20% to 99%, from 20% to 100%, from 50% to 60%, from 50% to 75%, from 50% to 90%, from 50% to 95%, from 50% to 98%, from 50% to 99%, from 50% to 100%, from 75% to 90%, from 75% to 95%, from 75% to 98%, from 75% to 99%, and from 75% to 100% of n number of B is not ψ or m5C). In some embodiments, B is not ψ or m5C.
  • In some embodiments of the polynucleotides (e.g., Formulas (Ia)-(Ia-5), (Ib)-(If-1), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr)), when B is an unmodified nucleobase selected from cytosine, guanine, uracil and adenine, then at least one of Y1, Y2, or Y3 is not O.
  • In some embodiments, the polynucleotide includes a modified ribose. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIa)-(IIc):
  • Figure US20130123481A1-20130516-C00008
  • or a pharmaceutically acceptable salt or stereoisomer thereof. In particular embodiments, U is O or C(RU)nu, wherein nu is an integer from 0 to 2 and each Ru is, independently, H, halo, or optionally substituted alkyl (e.g., U is —CH2— or —CH—). In other embodiments, each of R1, R2, R3, R4, and R5 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent (e.g., each R1 and R2 is, independently H, halo, hydroxy, optionally substituted alkyl, or optionally substituted alkoxy; each R3 and R4 is, independently, H or optionally substituted alkyl; and R5 is H or hydroxy), and
    Figure US20130123481A1-20130516-P00001
    is a single bond or double bond.
  • In particular embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIb-1)-(IIb-2):
  • Figure US20130123481A1-20130516-C00009
  • or a pharmaceutically acceptable salt or stereoisomer thereof. In some embodiments, U is O or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl (e.g., U is —CH2— or —CH—). In other embodiments, each of R1 and R2 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent (e.g., each R1 and R2 is, independently, H, halo, hydroxy, optionally substituted alkyl, or optionally substituted alkoxy, e.g., H, halo, hydroxy, alkyl, or alkoxy). In particular embodiments, R2 is hydroxy or optionally substituted alkoxy (e.g., methoxy, ethoxy, or any described herein).
  • In particular embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIc-1)-(IIc-4):
  • Figure US20130123481A1-20130516-C00010
  • or a pharmaceutically acceptable salt or stereoisomer thereof.
  • In some embodiments, U is O or C(RU)nu, wherein nu is an integer from 0 to 2 and each RU is, independently, H, halo, or optionally substituted alkyl (e.g., U is —CH2— or —CH—). In some embodiments, each of R1, R2, and R3 is, independently, H, halo, hydroxy, thiol, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted hydroxyalkoxy, optionally substituted amino, azido, optionally substituted aryl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or absent (e.g., each R1 and R2 is, independently, H, halo, hydroxy, optionally substituted alkyl, or optionally substituted alkoxy, e.g., H, halo, hydroxy, alkyl, or alkoxy; and each R3 is, independently, H or optionally substituted alkyl)). In particular embodiments, R2 is optionally substituted alkoxy (e.g., methoxy or ethoxy, or any described herein). In particular embodiments, R1 is optionally substituted alkyl, and R2 is hydroxy. In other embodiments, R1 is hydroxy, and R2 is optionally substituted alkyl. In further embodiments, R3 is optionally substituted alkyl.
  • In some embodiments, the polynucleotide includes an acyclic modified ribose. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IId)-(IIf):
  • Figure US20130123481A1-20130516-C00011
  • or a pharmaceutically acceptable salt or stereoisomer thereof.
  • In some embodiments, the polynucleotide includes an acyclic modified hexitol. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIg)-(IIj):
  • Figure US20130123481A1-20130516-C00012
  • or a pharmaceutically acceptable salt or stereoisomer thereof.
  • In some embodiments, the polynucleotide includes a sugar moiety having a contracted or an expanded ribose ring. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIk)-(IIm):
  • Figure US20130123481A1-20130516-C00013
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each of R1″, R1′, R2′, and R2″ is, independently, H, halo, hydroxy, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, or absent; and wherein the combination of R2′ and R3 or the combination of R2″ and R3 can be taken together to form optionally substituted alkylene or optionally substituted heteroalkylene.
  • In some embodiments, the polynucleotide includes a locked modified ribose. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIn):
  • Figure US20130123481A1-20130516-C00014
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein R3′ is O, S, or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl and R3″ is optionally substituted alkylene (e.g., —CH2—, —CH2CH2—, or —CH2CH2CH2—) or optionally substituted heteroalkylene (e.g., —CH2NH—, —CH2CH2NH—, —CH2OCH2—, or —CH2CH2OCH2—) (e.g., R3′ is O and R3″ is optionally substituted alkylene (e.g., —CH2—, —CH2CH2—, or —CH2CH2CH2—)).
  • In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIn-1)-(II-n2):
  • Figure US20130123481A1-20130516-C00015
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein R3′ is O, S, or —NRN1—, wherein RN1 is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted aryl and R3″ is optionally substituted alkylene (e.g., —CH2—, —CH2CH2—, or —CH2CH2CH2—) or optionally substituted heteroalkylene (e.g., —CH2NH—, —CH2CH2NH—, —CH2OCH2—, or —CH2CH2OCH2—) (e.g., R3′ is O and R3″ is optionally substituted alkylene (e.g., —CH2—, —CH2CH2—, or —CH2CH2CH2—)).
  • In some embodiments, the polynucleotide includes a locked modified ribose that forms a tetracyclic heterocyclyl. In some embodiments, the polynucleotide (e.g., the first region, the first flanking region, or the second flanking region) includes n number of linked nucleosides having Formula (IIo):
  • Figure US20130123481A1-20130516-C00016
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein R12a, R12c, T1′, T1″, T2′, T2″, V1, and V3 are as described herein.
  • Any of the formulas for the polynucleotides can include one or more nucleobases described herein (e.g., Formulas (b1)-(b43)).
  • In one embodiment, the present invention provides methods of preparing a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid, wherein the polynucleotide comprises n number of nucleosides having Formula (Ia), as defined herein:
  • Figure US20130123481A1-20130516-C00017
  • the method comprising reacting a compound of Formula (IIIa), as defined herein:
  • Figure US20130123481A1-20130516-C00018
  • with an RNA polymerase, and a cDNA template.
  • In a further embodiment, the present invention provides methods of amplifying a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove binding partner with the polynucleotide sequence, the method comprising: reacting a compound of Formula (IIIa), as defined herein, with a primer, a cDNA template, and an RNA polymerase.
  • In one embodiment, the present invention provides methods of preparing a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid, wherein the polynucleotide comprises n number of nucleosides having Formula (Ia-1), as defined herein:
  • Figure US20130123481A1-20130516-C00019
  • the method comprising reacting a compound of Formula (IIIa-1), as defined herein:
  • Figure US20130123481A1-20130516-C00020
  • with an RNA polymerase, and a cDNA template.
  • In a further embodiment, the present invention provides methods of amplifying a polynucleotide comprising at least one nucleotide (e.g., modified mRNA molecule) that disrupts binding of a major groove binding partner with the polynucleotide sequence, the method comprising: reacting a compound of Formula (IIIa-1), as defined herein, with a primer, a cDNA template, and an RNA polymerase.
  • In one embodiment, the present invention provides methods of preparing a polynucleotide comprising at least one nucleotide that disrupts binding of a major groove interacting partner with the nucleic acid sequence, wherein the polynucleotide comprises n number of nucleosides having Formula (Ia-2), as defined herein:
  • Figure US20130123481A1-20130516-C00021
  • the method comprising reacting a compound of Formula (IIIa-2), as defined herein:
  • Figure US20130123481A1-20130516-C00022
  • with an RNA polymerase, and a cDNA template.
  • In a further embodiment, the present invention provides methods of amplifying a polynucleotide comprising at least one nucleotide (e.g., modified mRNA molecule) that disrupts binding of a major groove binding partner with the polynucleotide, the method comprising reacting a compound of Formula (IIIa-2), as defined herein, with a primer, a cDNA template, and an RNA polymerase.
  • In some embodiments, the reaction may be repeated from 1 to about 7,000 times. In any of the embodiments herein, B may be a nucleobase of Formula (b1)-(b43).
  • The polynucleotides can optionally include 5′ and/or 3′ flanking regions, which are described herein.
  • Modified Nucleotides and Nucleosides
  • The present invention also includes the building blocks, e.g., modified ribonucleosides, modified ribonucleotides, of the polynucleotides, e.g., modified RNA (or mRNA) molecules. For example, these building blocks can be useful for preparing the polynucleotides of the invention.
  • In some embodiments, the building block molecule has Formula (IIIa) or (IIIa-1):
  • Figure US20130123481A1-20130516-C00023
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein the substituents are as described herein (e.g., for Formula (Ia) and (Ia-1)), and wherein when B is an unmodified nucleobase selected from cytosine, guanine, uracil and adenine, then at least one of Y1, Y2, or Y3 is not O.
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide, has Formula (IVa)-(IVb):
  • Figure US20130123481A1-20130516-C00024
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein B is as described herein (e.g., any one of (b1)-(b43)).
  • In particular embodiments, Formula (IVa) or (IVb) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)). In particular embodiments, Formula (IVa) or (IVb) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)). In particular embodiments, Formula (IVa) or (IVb) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)). In particular embodiments, Formula (IVa) or (IVb) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide, has Formula (IVc)-(IVk):
  • Figure US20130123481A1-20130516-C00025
    Figure US20130123481A1-20130516-C00026
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein B is as described herein (e.g., any one of (b1)-(b43)).
  • In particular embodiments, one of Formulas (IVc)-(IVk) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • In particular embodiments, one of Formulas (IVc)-(IVk) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • In particular embodiments, one of Formulas (IVc)-(IVk) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • In particular embodiments, one of Formulas (IVc)-(IVk) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • In other embodiments, the building block molecule, which may be incorporated into a polynucleotide has Formula (Va) or (Vb):
  • Figure US20130123481A1-20130516-C00027
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein B is as described herein (e.g., any one of (b1)-(b43)).
  • In other embodiments, the building block molecule, which may be incorporated into a polynucleotide has Formula (IXa)-(IXd):
  • Figure US20130123481A1-20130516-C00028
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein B is as described herein (e.g., any one of (b1)-(b43)). In particular embodiments, one of Formulas (IXa)-(IXd) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)). In particular embodiments, one of Formulas (IXa)-(IXd) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • In particular embodiments, one of Formulas (IXa)-(IXd) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)). In particular embodiments, one of Formulas (IXa)-(IXd) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • In other embodiments, the building block molecule, which may be incorporated into a polynucleotide has Formula (IXe)-(IXg):
  • Figure US20130123481A1-20130516-C00029
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein B is as described herein (e.g., any one of (b1)-(b43)).
  • In particular embodiments, one of Formulas (IXe)-(IXg) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • In particular embodiments, one of Formulas (IXe)-(IXg) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • In particular embodiments, one of Formulas (IXe)-(IXg) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)).
  • In particular embodiments, one of Formulas (IXe)-(IXg) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • In other embodiments, the building block molecule, which may be incorporated into a polynucleotide has Formula (IXh)-(IXk):
  • Figure US20130123481A1-20130516-C00030
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein B is as described herein (e.g., any one of (b1)-(b43)). In particular embodiments, one of Formulas (IXh)-(IXk) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)). In particular embodiments, one of Formulas (IXh)-(IXk) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • In particular embodiments, one of Formulas (IXh)-(IXk) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)). In particular embodiments, one of Formulas (IXh)-(IXk) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • In other embodiments, the building block molecule, which may be incorporated into a polynucleotide has Formula (IXl)-(IXr):
  • Figure US20130123481A1-20130516-C00031
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each r1 and r2 is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5) and B is as described herein (e.g., any one of (b1)-(b43)).
  • In particular embodiments, one of Formulas (IXl)-(IXr) is combined with a modified uracil (e.g., any one of formulas (b1)-(b9), (b21)-(b23), and (b28)-(b31), such as formula (b1), (b8), (b28), (b29), or (b30)).
  • In particular embodiments, one of Formulas (IXl)-(IXr) is combined with a modified cytosine (e.g., any one of formulas (b10)-(b14), (b24), (b25), and (b32)-(b36), such as formula (b10) or (b32)).
  • In particular embodiments, one of Formulas (IXl)-(IXr) is combined with a modified guanine (e.g., any one of formulas (b15)-(b17) and (b37)-(b40)). In particular embodiments, one of Formulas (IXl)-(IXr) is combined with a modified adenine (e.g., any one of formulas (b18)-(b20) and (b41)-(b43)).
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide can be selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00032
    Figure US20130123481A1-20130516-C00033
  • pharmaceutically acceptable salt or stereoisomer thereof, wherein each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide can be selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00034
    Figure US20130123481A1-20130516-C00035
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5) and s1 is as described herein.
  • In some embodiments, the building block molecule, which may be incorporated into a nucleic acid (e.g., RNA, mRNA, polynucleotide), is a modified uridine (e.g., selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00036
    Figure US20130123481A1-20130516-C00037
    Figure US20130123481A1-20130516-C00038
    Figure US20130123481A1-20130516-C00039
    Figure US20130123481A1-20130516-C00040
    Figure US20130123481A1-20130516-C00041
    Figure US20130123481A1-20130516-C00042
    Figure US20130123481A1-20130516-C00043
    Figure US20130123481A1-20130516-C00044
    Figure US20130123481A1-20130516-C00045
    Figure US20130123481A1-20130516-C00046
    Figure US20130123481A1-20130516-C00047
    Figure US20130123481A1-20130516-C00048
    Figure US20130123481A1-20130516-C00049
    Figure US20130123481A1-20130516-C00050
    Figure US20130123481A1-20130516-C00051
    Figure US20130123481A1-20130516-C00052
    Figure US20130123481A1-20130516-C00053
    Figure US20130123481A1-20130516-C00054
    Figure US20130123481A1-20130516-C00055
    Figure US20130123481A1-20130516-C00056
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein Y1, Y3, Y4, Y6, and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide is a modified cytidine (e.g., selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00057
    Figure US20130123481A1-20130516-C00058
    Figure US20130123481A1-20130516-C00059
    Figure US20130123481A1-20130516-C00060
    Figure US20130123481A1-20130516-C00061
    Figure US20130123481A1-20130516-C00062
    Figure US20130123481A1-20130516-C00063
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein Y1, Y3, Y4, Y6, and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)). For example, the building block molecule, which may be incorporated into a polynucleotide can be:
  • Figure US20130123481A1-20130516-C00064
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide is a modified adenosine (e.g., selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00065
    Figure US20130123481A1-20130516-C00066
    Figure US20130123481A1-20130516-C00067
    Figure US20130123481A1-20130516-C00068
    Figure US20130123481A1-20130516-C00069
    Figure US20130123481A1-20130516-C00070
    Figure US20130123481A1-20130516-C00071
    Figure US20130123481A1-20130516-C00072
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein Y1, Y3, Y4, Y6, and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • In some embodiments, the building block molecule, which may be incorporated into a polynucleotide, is a modified guanosine (e.g., selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00073
    Figure US20130123481A1-20130516-C00074
    Figure US20130123481A1-20130516-C00075
    Figure US20130123481A1-20130516-C00076
    Figure US20130123481A1-20130516-C00077
    Figure US20130123481A1-20130516-C00078
    Figure US20130123481A1-20130516-C00079
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein Y1, Y3, Y4, Y6, and r are as described herein (e.g., each r is, independently, an integer from 0 to 5, such as from 0 to 3, from 1 to 3, or from 1 to 5)).
  • In some embodiments, the major groove chemical modification can include replacement of C group at C-5 of the ring (e.g., for a pyrimidine nucleoside, such as cytosine or uracil) with N (e.g., replacement of the >CH group at C-5 with >NRN1 group, wherein RN1 is H or optionally substituted alkyl). For example, the building block molecule, which may be incorporated into a polynucleotide can be:
  • Figure US20130123481A1-20130516-C00080
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • In another embodiment, the major groove chemical modification can include replacement of the hydrogen at C-5 of cytosine with halo (e.g., Br, Cl, F, or I) or optionally substituted alkyl (e.g., methyl). For example, the building block molecule, which may be incorporated into a polynucleotide can be:
  • Figure US20130123481A1-20130516-C00081
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • In yet a further embodiment, the major groove chemical modification can include a fused ring that is formed by the NH2 at the C-4 position and the carbon atom at the C-5 position. For example, the building block molecule, which may be incorporated into a polynucleotide can be:
  • Figure US20130123481A1-20130516-C00082
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein each r is, independently, an integer from 0 to 5 (e.g., from 0 to 3, from 1 to 3, or from 1 to 5).
  • Modifications on the Sugar
  • The modified nucleosides and nucleotides (e.g., building block molecules), which may be incorporated into a polynucleotide (e.g., RNA or mRNA, as described herein), can be modified on the sugar of the ribonucleic acid. For example, the 2′ hydroxyl group (OH) can be modified or replaced with a number of different substituents. Exemplary substitutions at the 2′-position include, but are not limited to, H, halo, optionally substituted C1-6 alkyl; optionally substituted C1-6 alkoxy; optionally substituted C6-10 aryloxy; optionally substituted C3-8cycloalkyl; optionally substituted C3-8 cycloalkoxy; optionally substituted C6-10 aryloxy; optionally substituted C6-10 aryl-C1-6 alkoxy, optionally substituted C1-12 (heterocyclyl)oxy; a sugar (e.g., ribose, pentose, or any described herein); a polyethyleneglycol (PEG), —O(CH2CH2O)nCH2CH2OR′, where R is H or optionally substituted alkyl, and n is an integer from 0 to 20 (e.g., from 0 to 4, from 0 to 8, from 0 to 10, from 0 to 16, from 1 to 4, from 1 to 8, from 1 to 10, from 1 to 16, from 1 to 20, from 2 to 4, from 2 to 8, from 2 to 10, from 2 to 16, from 2 to 20, from 4 to 8, from 4 to 10, from 4 to 16, and from 4 to 20); “locked” nucleic acids (LNA) in which the 2′-hydroxyl is connected by a C1-6 alkylene or C1-6 heteroalkylene bridge to the 4′-carbon of the same ribose sugar, where exemplary bridges included methylene, propylene, ether, or amino bridges; aminoalkyl, as defined herein; aminoalkoxy, as defined herein; amino as defined herein; and amino acid, as defined herein
  • Generally, RNA includes the sugar group ribose, which is a 5-membered ring having an oxygen. Exemplary, non-limiting modified nucleotides include replacement of the oxygen in ribose (e.g., with S, Se, or alkylene, such as methylene or ethylene); addition of a double bond (e.g., to replace ribose with cyclopentenyl or cyclohexenyl); ring contraction of ribose (e.g., to form a 4-membered ring of cyclobutane or oxetane); ring expansion of ribose (e.g., to form a 6- or 7-membered ring having an additional carbon or heteroatom, such as for anhydrohexitol, altritol, mannitol, cyclohexanyl, cyclohexenyl, and morpholino that also has a phosphoramidate backbone); multicyclic forms (e.g., tricyclo; and “unlocked” forms, such as glycol nucleic acid (GNA) (e.g., R-GNA or S-GNA, where ribose is replaced by glycol units attached to phosphodiester bonds), threose nucleic acid (TNA, where ribose is replace with α-L-threofuranosyl-(3′→2′)), and peptide nucleic acid (PNA, where 2-amino-ethyl-glycine linkages replace the ribose and phosphodiester backbone). The sugar group can also contain one or more carbons that possess the opposite stereochemical configuration than that of the corresponding carbon in ribose. Thus, a polynucleotide molecule can include nucleotides containing, e.g., arabinose, as the sugar.
  • Modifications on the Nucleobase
  • The present disclosure provides for modified nucleosides and nucleotides. As described herein “nucleoside” is defined as a compound containing a sugar molecule (e.g., a pentose or ribose) or derivative thereof in combination with an organic base (e.g., a purine or pyrimidine) or a derivative thereof (also referred to herein as “nucleobase”). As described herein, “nucleotide” is defined as a nucleoside including a phosphate group. In some embodiments, the nucleosides and nucleotides described herein are generally chemically modified on the major groove face. Exemplary non-limiting modifications include an amino group, a thiol group, an alkyl group, a halo group, or any described herein. The modified nucleotides may by synthesized by any useful method, as described herein (e.g., chemically, enzymatically, or recombinantly to include one or more modified or non-natural nucleosides).
  • The modified nucleotide base pairing encompasses not only the standard adenosine-thymine, adenosine-uracil, or guanosine-cytosine base pairs, but also base pairs formed between nucleotides and/or modified nucleotides comprising non-standard or modified bases, wherein the arrangement of hydrogen bond donors and hydrogen bond acceptors permits hydrogen bonding between a non-standard base and a standard base or between two complementary non-standard base structures. One example of such non-standard base pairing is the base pairing between the modified nucleotide inosine and adenine, cytosine or uracil.
  • The modified nucleosides and nucleotides can include a modified nucleobase. Examples of nucleobases found in RNA include, but are not limited to, adenine, guanine, cytosine, and uracil. Examples of nucleobase found in DNA include, but are not limited to, adenine, guanine, cytosine, and thymine. These nucleobases can be modified or wholly replaced to provide polynucleotide molecules having enhanced properties, e.g., resistance to nucleases, stability, and these properties may manifest through disruption of the binding of a major groove binding partner. For example, the nucleosides and nucleotides described can be chemically modified on the major groove face. In some embodiments, the major groove chemical modifications can include an amino group, a thiol group, an alkyl group, or a halo group.
  • Table 1 below identifies the chemical faces of each canonical nucleotide. Circles identify the atoms comprising the respective chemical regions.
  • TABLE 1
    Major Groove Minor Groove
    Face Face
    Pyrimdines
    Cytidine:
    Figure US20130123481A1-20130516-C00083
    Figure US20130123481A1-20130516-C00084
    Uridine:
    Figure US20130123481A1-20130516-C00085
    Figure US20130123481A1-20130516-C00086
    Purines
    Adenosine:
    Figure US20130123481A1-20130516-C00087
    Figure US20130123481A1-20130516-C00088
    Guanosine:
    Figure US20130123481A1-20130516-C00089
    Figure US20130123481A1-20130516-C00090
    Watson-Crick
    Base-pairing
    Face
    Pyrimidines
    Cytidine:
    Figure US20130123481A1-20130516-C00091
    Uridine:
    Figure US20130123481A1-20130516-C00092
    Purines
    Adenosine:
    Figure US20130123481A1-20130516-C00093
    Guanosine:
    Figure US20130123481A1-20130516-C00094
  • In some embodiments, B is a modified uracil. Exemplary modified uracils include those having Formula (b1)-(b5):
  • Figure US20130123481A1-20130516-C00095
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • Figure US20130123481A1-20130516-P00002
    is a single or double bond;
  • each of T1′, T1″, T2′, and T2″ is, independently, H, optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy, or the combination of T1′ and T1″ or the combination of T2′ and T2″ join together (e.g., as in T2) to form O (oxo), S (thio), or Se (seleno);
  • each of V1 and V2 is, independently, O, S, N(RVb)nv, or C(RVb)nv, wherein nv is an integer from 0 to 2 and each RVb is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted acylaminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl), optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, or optionally substituted alkoxycarbonylalkoxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl);
  • R10 is H, halo, optionally substituted amino acid, hydroxy, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aminoalkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl;
  • R11 is H or optionally substituted alkyl;
  • R12a is H, optionally substituted alkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, or optionally substituted carbamoylalkyl; and
  • R12c is H, halo, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted amino, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl.
  • Other exemplary modified uracils include those having Formula (b6)-(b9):
  • Figure US20130123481A1-20130516-C00096
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • Figure US20130123481A1-20130516-P00002
    is a single or double bond;
  • each of T1′, T1″, T2′, and T2″ is, independently, H, optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy, or the combination of T1′ and T1″ join together (e.g., as in T1) or the combination of T2′ and T2″ join together (e.g., as in T2) to form O (oxo), S (thio), or Se (seleno), or each T1 and T2 is, independently, O (oxo), S (thio), or Se (seleno);
  • each of W1 and W2 is, independently, N(RWa)nw or C(RWa)nw, wherein nw is an integer from 0 to 2 and each RWa is, independently, H, optionally substituted alkyl, or optionally substituted alkoxy;
  • each V3 is, independently, O, S, N(RVa)nv, or C(RVa)nv, wherein nv is an integer from 0 to 2 and each RVa is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted alkoxy, optionally substituted alkenyloxy, or optionally substituted alkynyloxy, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted acylaminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl), optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylacyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy and/or an O-protecting group), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, or optionally substituted carbamoylalkyl (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl), and wherein RVa and R12c taken together with the carbon atoms to which they are attached can form optionally substituted cycloalkyl, optionally substituted aryl, or optionally substituted heterocyclyl (e.g., a 5- or 6-membered ring);
  • R12a is H, optionally substituted alkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy and/or an O-protecting group), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, optionally substituted carbamoylalkyl, or absent;
  • R12b is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkaryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted amino acid, optionally substituted alkoxycarbonylacyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy and/or an O-protecting group), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, or optionally substituted carbamoylalkyl,
  • wherein the combination of R12b and T1′ or the combination of R12b and R12c can join together to form optionally substituted heterocyclyl; and
  • R12c is H, halo, optionally substituted alkyl, optionally substituted alkoxy, optionally substituted thioalkoxy, optionally substituted amino, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl.
  • Further exemplary modified uracils include those having Formula (b28)-(b31):
  • Figure US20130123481A1-20130516-C00097
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each of T1 and T2 is, independently, O (oxo), S (thio), or Se (seleno);
  • each RVb′ and RVb″ is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted acylaminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl), optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylacyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkyl (e.g., optionally substituted with hydroxy and/or an O-protecting group), optionally substituted carboxyalkoxy, optionally substituted carboxyaminoalkyl, or optionally substituted carbamoylalkyl (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl) (e.g., RVb′ is optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted aminoalkyl, e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl);
  • R12a is H, optionally substituted alkyl, optionally substituted carboxyaminoalkyl, optionally substituted aminoalkyl (e.g., e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl; and
  • R12b is H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl (e.g., e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted alkoxycarbonylacyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl.
  • In particular embodiments, T1 is O (oxo), and T2 is S (thio) or Se (seleno). In other embodiments, T1 is S (thio), and T2 is O (oxo) or Se (seleno). In some embodiments, RVb′ is H, optionally substituted alkyl, or optionally substituted alkoxy.
  • In other embodiments, each R12a and R12b is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, or optionally substituted hydroxyalkyl. In particular embodiments, R12a is H. In other embodiments, both R12a and R12b are H.
  • In some embodiments, each RVb′ of R12b is, independently, optionally substituted aminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl, or sulfoalkyl), optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, or optionally substituted acylaminoalkyl (e.g., substituted with an N-protecting group, such as any described herein, e.g., trifluoroacetyl). In some embodiments, the amino and/or alkyl of the optionally substituted aminoalkyl is substituted with one or more of optionally substituted alkyl, optionally substituted alkenyl, optionally substituted sulfoalkyl, optionally substituted carboxy (e.g., substituted with an O-protecting group), optionally substituted hydroxy (e.g., substituted with an O-protecting group), optionally substituted carboxyalkyl (e.g., substituted with an O-protecting group), optionally substituted alkoxycarbonylalkyl (e.g., substituted with an O-protecting group), or N-protecting group. In some embodiments, optionally substituted aminoalkyl is substituted with an optionally substituted sulfoalkyl or optionally substituted alkenyl. In particular embodiments, R12a and RVb″ are both H. In particular embodiments, T1 is O (oxo), and T2 is S (thio) or Se (seleno).
  • In some embodiments, RVb′ is optionally substituted alkoxycarbonylalkyl or optionally substituted carbamoylalkyl.
  • In particular embodiments, the optional substituent for R12a, R12b, R12c, or RVa is a polyethylene glycol group (e.g., —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl); or an amino-polyethylene glycol group (e.g., —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl).
  • In some embodiments, B is a modified cytosine. Exemplary modified cytosines include compounds of Formula (b10)-(b14):
  • Figure US20130123481A1-20130516-C00098
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each of T3′ and T3″ is, independently, H, optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy, or the combination of T3′ and T3″ join together (e.g., as in T3) to form O (oxo), S (thio), or Se (seleno);
  • each V4 is, independently, O, S, N(RVc))nv, or C(RVc)nv, wherein nv is an integer from 0 to 2 and each Rye is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, or optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl), wherein the combination of R13b and RVc can be taken together to form optionally substituted heterocyclyl;
  • each V5 is, independently, N(RVd)nv, or C(RVd)nv, wherein nv is an integer from 0 to 2 and each RVd is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, or optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl) (e.g., V5 is —CH or N);
  • each of R13a and R13b is, independently, H, optionally substituted acyl, optionally substituted acyloxyalkyl, optionally substituted alkyl, or optionally substituted alkoxy, wherein the combination of R13b and R14 can be taken together to form optionally substituted heterocyclyl;
  • each R14 is, independently, H, halo, hydroxy, thiol, optionally substituted acyl, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl (e.g., substituted with an O-protecting group), optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted acyloxyalkyl, optionally substituted amino (e.g., —NHR, wherein R is H, alkyl, aryl, or phosphoryl), azido, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl; and
  • each of R5 and R16 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl.
  • Further exemplary modified cytosines include those having Formula (b32)-(b35):
  • Figure US20130123481A1-20130516-C00099
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each of T1 and T3 is, independently, O (oxo), S (thio), or Se (seleno);
  • each of R13a and R13b is, independently, H, optionally substituted acyl, optionally substituted acyloxyalkyl, optionally substituted alkyl, or optionally substituted alkoxy, wherein the combination of R13b and R14 can be taken together to form optionally substituted heterocyclyl;
  • each R14 is, independently, H, halo, hydroxy, thiol, optionally substituted acyl, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl (e.g., substituted with an O-protecting group), optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted acyloxyalkyl, optionally substituted amino (e.g., —NHR, wherein R is H, alkyl, aryl, or phosphoryl), azido, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted aminoalkyl (e.g., hydroxyalkyl, alkyl, alkenyl, or alkynyl), optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl; and
  • each of R15 and R16 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl (e.g., R15 is H, and R16 is H or optionally substituted alkyl).
  • In some embodiments, R15 is H, and R16 is H or optionally substituted alkyl. In particular embodiments, R14 is H, acyl, or hydroxyalkyl. In some embodiments, R14 is halo. In some embodiments, both R14 and R15 are H. In some embodiments, both R15 and R16 are H. In some embodiments, each of R14 and R15 and R16 is H. In further embodiments, each of R13a and R13b is independently, H or optionally substituted alkyl.
  • Further non-limiting examples of modified cytosines include compounds of Formula (b36):
  • Figure US20130123481A1-20130516-C00100
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each R13b is, independently, H, optionally substituted acyl, optionally substituted acyloxyalkyl, optionally substituted alkyl, or optionally substituted alkoxy, wherein the combination of R13b and R14b can be taken together to form optionally substituted heterocyclyl;
  • each R14a and R14b is, independently, H, halo, hydroxy, thiol, optionally substituted acyl, optionally substituted amino acid, optionally substituted alkyl, optionally substituted haloalkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl (e.g., substituted with an O-protecting group), optionally substituted hydroxyalkenyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy, optionally substituted aminoalkoxy, optionally substituted alkoxyalkoxy, optionally substituted acyloxyalkyl, optionally substituted amino (e.g., —NHR, wherein R is H, alkyl, aryl, phosphoryl, optionally substituted aminoalkyl, or optionally substituted carboxyaminoalkyl), azido, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkheterocyclyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, or optionally substituted aminoalkynyl; and
  • each of R5 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl.
  • In particular embodiments, R14b is an optionally substituted amino acid (e.g., optionally substituted lysine). In some embodiments, R14a is H.
  • In some embodiments, B is a modified guanine. Exemplary modified guanines include compounds of Formula (b15)-(b17):
  • Figure US20130123481A1-20130516-C00101
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • Each of T4′, T4″, T5′, T5″, T6′, and T6″ is, independently, H, optionally substituted alkyl, or optionally substituted alkoxy, and wherein the combination of T4′ and T4″ (e.g., as in T4) or the combination of T5 and T5″ (e.g., as in T5) or the combination of T6′ and T6″ join together (e.g., as in T6) form O (oxo), S (thio), or Se (seleno);
  • each of V5 and V6 is, independently, O, S, N(RVd)nv, or C(RVd)nv, wherein nv is an integer from 0 to 2 and each RVd is, independently, H, halo, thiol, optionally substituted amino acid, cyano, amidine, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl), optionally substituted thioalkoxy, or optionally substituted amino; and
  • each of R17, R18, R19a, R19b, R21, R22, R23, and R24 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, optionally substituted amino, or optionally substituted amino acid.
  • Exemplary modified guanosines include compounds of Formula (b37)-(b40):
  • Figure US20130123481A1-20130516-C00102
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each of T4′ is, independently, H, optionally substituted alkyl, or optionally substituted alkoxy, and each T4 is, independently, O (oxo), S (thio), or Se (seleno);
  • each of R18, R19a, R19b, and R21 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, optionally substituted amino, or optionally substituted amino acid.
  • In some embodiments, R18 is H or optionally substituted alkyl. In further embodiments, T4 is oxo. In some embodiments, each of R19a and R19b is, independently, H or optionally substituted alkyl.
  • In some embodiments, B is a modified adenine. Exemplary modified adenines include compounds of Formula (b18)-(b20):
  • Figure US20130123481A1-20130516-C00103
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each V7 is, independently, O, S, N(RVe)nv, or C(RVe)nv, wherein nv is an integer from 0 to 2 and each Rye is, independently, H, halo, optionally substituted amino acid, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted alkenyloxy, or optionally substituted alkynyloxy (e.g., optionally substituted with any substituent described herein, such as those selected from (1)-(21) for alkyl);
  • each R25 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, or optionally substituted amino;
  • each of R26a and R26b is, independently, H, optionally substituted acyl, optionally substituted amino acid, optionally substituted carbamoylalkyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, or polyethylene glycol group (e.g., —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl); or an amino-polyethylene glycol group (e.g., —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl);
  • each R27 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted thioalkoxy, or optionally substituted amino;
  • each R28 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, or optionally substituted alkynyl; and
  • each R29 is, independently, H, optionally substituted acyl, optionally substituted amino acid, optionally substituted carbamoylalkyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted alkoxy, or optionally substituted amino.
  • Exemplary modified adenines include compounds of Formula (b41)-(b43):
  • Figure US20130123481A1-20130516-C00104
  • or a pharmaceutically acceptable salt or stereoisomer thereof, wherein
  • each R25 is, independently, H, halo, thiol, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted thioalkoxy, or optionally substituted amino;
  • each of R26a and R26b is, independently, H, optionally substituted acyl, optionally substituted amino acid, optionally substituted carbamoylalkyl, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted hydroxyalkyl, optionally substituted hydroxyalkenyl, optionally substituted hydroxyalkynyl, optionally substituted alkoxy, or polyethylene glycol group (e.g., —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl); or an amino-polyethylene glycol group (e.g., —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl); and
  • each R27 is, independently, H, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted alkoxy, optionally substituted thioalkoxy, or optionally substituted amino.
  • In some embodiments, R26a is H, and R26b is optionally substituted alkyl. In some embodiments, each of R26a and R26b is, independently, optionally substituted alkyl. In particular embodiments, R27 is optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy. In other embodiments, R25 is optionally substituted alkyl, optionally substituted alkoxy, or optionally substituted thioalkoxy.
  • In particular embodiments, the optional substituent for R26a, R26b, or R29 is a polyethylene glycol group (e.g., —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl); or an amino-polyethylene glycol group (e.g., —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl).
  • In some embodiments, B may have Formula (b21):
  • Figure US20130123481A1-20130516-C00105
  • wherein X12 is, independently, O, S, optionally substituted alkylene (e.g., methylene), or optionally substituted heteroalkylene, xa is an integer from 0 to 3, and R12a and T2 are as described herein.
  • In some embodiments, B may have Formula (b22):
  • Figure US20130123481A1-20130516-C00106
  • wherein R10′ is, independently, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl, and R11, R12a, T1, and T2 are as described herein.
  • In some embodiments, B may have Formula (b23):
  • Figure US20130123481A1-20130516-C00107
  • wherein R10 is optionally substituted heterocyclyl (e.g., optionally substituted furyl, optionally substituted thienyl, or optionally substituted pyrrolyl), optionally substituted aryl (e.g., optionally substituted phenyl or optionally substituted naphthyl), or any substituent described herein (e.g., for R10); and wherein R11 (e.g., H or any substituent described herein), R12a (e.g., H or any substituent described herein), Ti (e.g., oxo or any substituent described herein), and T2 (e.g., oxo or any substituent described herein) are as described herein.
  • In some embodiments, B may have Formula (b24):
  • Figure US20130123481A1-20130516-C00108
  • wherein R14′ is, independently, optionally substituted alkyl, optionally substituted alkenyl, optionally substituted alkynyl, optionally substituted aryl, optionally substituted heterocyclyl, optionally substituted alkaryl, optionally substituted alkheterocyclyl, optionally substituted aminoalkyl, optionally substituted aminoalkenyl, optionally substituted aminoalkynyl, optionally substituted alkoxy, optionally substituted alkoxycarbonylalkyl, optionally substituted alkoxycarbonylalkenyl, optionally substituted alkoxycarbonylalkynyl, optionally substituted alkoxycarbonylalkoxy, optionally substituted carboxyalkoxy, optionally substituted carboxyalkyl, or optionally substituted carbamoylalkyl, and R13a, R13b, R15, and T3 are as described herein.
  • In some embodiments, B may have Formula (b25):
  • Figure US20130123481A1-20130516-C00109
  • wherein R14′ is optionally substituted heterocyclyl (e.g., optionally substituted furyl, optionally substituted thienyl, or optionally substituted pyrrolyl), optionally substituted aryl (e.g., optionally substituted phenyl or optionally substituted naphthyl), or any substituent described herein (e.g., for R14 or R14′); and wherein R13a (e.g., H or any substituent described herein), R13b (e.g., H or any substituent described herein), R15 (e.g., H or any substituent described herein), and T3 (e.g., oxo or any substituent described herein) are as described herein.
  • In some embodiments, B is a nucleobase selected from the group consisting of cytosine, guanine, adenine, and uracil. In some embodiments, B may be:
  • Figure US20130123481A1-20130516-C00110
  • In some embodiments, the modified nucleobase is a modified uracil. Exemplary nucleobases and nucleosides having a modified uracil include pseudouridine (ψ), pyridin-4-one ribonucleoside, 5-aza-uridine, 6-aza-uridine, 2-thio-5-aza-uridine, 2-thio-uridine (s2U), 4-thio-uridine (s4U), 4-thio-pseudouridine, 2-thio-pseudouridine, 5-hydroxy-uridine (ho5U), 5-aminoallyl-uridine, 5-halo-uridine (e.g., 5-iodo-uridineor 5-bromo-uridine), 3-methyl-uridine (m3U), 5-methoxy-uridine (mo5U), uridine 5-oxyacetic acid (cmo5U), uridine 5-oxyacetic acid methyl ester (mcmosU), 5-carboxymethyl-uridine (cm5U), 1-carboxymethyl-pseudouridine, 5-carboxyhydroxymethyl-uridine (chm5U), 5-carboxyhydroxymethyl-uridine methyl ester (mchm5U), 5-methoxycarbonylmethyl-uridine (mcm5U), 5-methoxycarbonylmethyl-2-thio-uridine (mcm5s2U), 5-aminomethyl-2-thio-uridine (nm5s2U), 5-methylaminomethyl-uridine (mnm5U), 5-methylaminomethyl-2-thio-uridine (mnm5s2U), 5-methylaminomethyl-2-seleno-uridine (mnm5se2U), 5-carbamoylmethyl-uridine (ncm5U), 5-carboxymethylaminomethyl-uridine (cmnm5U), 5-carboxymethylaminomethyl-2-thio-uridine (cmnm5s2U), 5-propynyl-uridine, 1-propynyl-pseudouridine, 5-taurinomethyl-uridine (τmSU), 1-taurinomethyl-pseudouridine, 5-taurinomethyl-2-thio-uridine (τcm5s2U), 1-taurinomethyl-4-thio-pseudouridine, 5-methyl-uridine (m5U, i.e., having the nucleobase deoxythymine), 1-methyl-pseudouridine (m1ψ), 5-methyl-2-thio-uridine (m5s2U), 1-methyl-4-thio-pseudouridine (m1s4ψ), 4-thio-1-methyl-pseudouridine, 3-methyl-pseudouridine (m3ψ), 2-thio-1-methyl-pseudouridine, 1-methyl-1-deaza-pseudouridine, 2-thio-1-methyl-1-deaza-pseudouridine, dihydrouridine (D), dihydropseudouridine, 5,6-dihydrouridine, 5-methyl-dihydrouridine (m5D), 2-thio-dihydrouridine, 2-thio-dihydropseudouridine, 2-methoxy-uridine, 2-methoxy-4-thio-uridine, 4-methoxy-pseudouridine, 4-methoxy-2-thio-pseudouridine, N1-methyl-pseudouridine, 3-(3-amino-3-carboxypropyl)uridine (acp3U), 1-methyl-3-(3-amino-3-carboxypropyl)pseudouridine (acp3ψ), 5-(isopentenylaminomethyl)uridine (inm5U), 5-(isopentenylaminomethyl)-2-thio-uridine (inm5s2U), α-thio-uridine, 2′-O-methyl-uridine (Um), 5,2′-O-dimethyl-uridine (m5Um), 2′-O-methyl-pseudouridine (ψm), 2-thio-2′-O-methyl-uridine (s2Um), 5-methoxycarbonylmethyl-2′-O-methyl-uridine (mcm5Um), 5-carbamoylmethyl-2′-O-methyl-uridine (ncm5Um), 5-carboxymethylaminomethyl-2′-O-methyl-uridine (cmnm5Um), 3,2′-O-dimethyl-uridine (m3Um), and 5-(isopentenylaminomethyl)-2′-O-methyl-uridine (inm5Um), 1-thio-uridine, deoxythymidine, 2′-F-ara-uridine, 2′-F-uridine, 2′-OH-ara-uridine, 5-(2-carbomethoxyvinyl)uridine, and 5-[3-(1-E-propenylamino)uridine.
  • In some embodiments, the modified nucleobase is a modified cytosine. Exemplary nucleobases and nucleosides having a modified cytosine include 5-aza-cytidine, 6-aza-cytidine, pseudoisocytidine, 3-methyl-cytidine (m3C), N4-acetyl-cytidine (ac4C), 5-formyl-cytidine (f5C), N4-methyl-cytidine (m4C), 5-methyl-cytidine (m5C), 5-halo-cytidine (e.g., 5-iodo-cytidine), 5-hydroxymethyl-cytidine (hm5C), 1-methyl-pseudoisocytidine, pyrrolo-cytidine, pyrrolo-pseudoisocytidine, 2-thio-cytidine (s2C), 2-thio-5-methyl-cytidine, 4-thio-pseudoisocytidine, 4-thio-1-methyl-pseudoisocytidine, 4-thio-1-methyl-1-deaza-pseudoisocytidine, 1-methyl-1-deaza-pseudoisocytidine, zebularine, 5-aza-zebularine, 5-methyl-zebularine, 5-aza-2-thio-zebularine, 2-thio-zebularine, 2-methoxy-cytidine, 2-methoxy-5-methyl-cytidine, 4-methoxy-pseudoisocytidine, 4-methoxy-1-methyl-pseudoisocytidine, lysidine (k2C), α-thio-cytidine, 2′-O-methyl-cytidine (Cm), 5,2′-O-dimethyl-cytidine (m5Cm), N4-acetyl-2′-O-methyl-cytidine (ac4Cm), N4,2′-O-dimethyl-cytidine (m4Cm), 5-formyl-2′-O-methyl-cytidine (fsCm), N4,N4,2′-O-trimethyl-cytidine (m42Cm), 1-thio-cytidine, 2′-F-ara-cytidine, 2′-F-cytidine, and 2′-OH-ara-cytidine.
  • In some embodiments, the modified nucleobase is a modified adenine. Exemplary nucleobases and nucleosides having a modified adenine include 2-amino-purine, 2,6-diaminopurine, 2-amino-6-halo-purine (e.g., 2-amino-6-chloro-purine), 6-halo-purine (e.g., 6-chloro-purine), 2-amino-6-methyl-purine, 8-azido-adenosine, 7-deaza-adenine, 7-deaza-8-aza-adenine, 7-deaza-2-amino-purine, 7-deaza-8-aza-2-amino-purine, 7-deaza-2,6-diaminopurine, 7-deaza-8-aza-2,6-diaminopurine, 1-methyl-adenosine (m′ A), 2-methyl-adenine (m2A), N6-methyl-adenosine (m6A), 2-methylthio-N-6-methyl-adenosine (ms2m6A), N6-isopentenyl-adenosine (i6A), 2-methylthio-N-6-isopentenyl-adenosine (ms2i6A), N6-(cis-hydroxyisopentenyl)adenosine (io6A), 2-methylthio-N-6-(cis-hydroxyisopentenyl)adenosine (ms2io6A), N6-glycinylcarbamoyl-adenosine (g6A), N6-threonylcarbamoyl-adenosine (t6A), N6-methyl-N-6-threonylcarbamoyl-adenosine (m6t6A), 2-methylthio-N-6-threonylcarbamoyl-adenosine (ms2g6A), N6,N6-dimethyl-adenosine (m62A), N6-hydroxynorvalylcarbamoyl-adenosine (hn6A), 2-methylthio-N-6-hydroxynorvalylcarbamoyl-adenosine (ms2hn6A), N6-acetyl-adenosine (ac6A), 7-methyl-adenine, 2-methylthio-adenine, 2-methoxy-adenine, α-thio-adenosine, 2′-O-methyl-adenosine (Am), N6,2′-O-dimethyl-adenosine (m6Am), N6,N6,2′-O-trimethyl-adenosine (m6 2Am), 1,2′-O-dimethyl-adenosine (m1Am), 2′-O-ribosyladenosine (phosphate) (Ar(p)), 2-amino-N-6-methyl-purine, 1-thio-adenosine, 8-azido-adenosine, 2′-F-ara-adenosine, 2′-F-adenosine, 2′-OH-ara-adenosine, and N6-(19-amino-pentaoxanonadecyl)-adenosine.
  • In some embodiments, the modified nucleobase is a modified guanine. Exemplary nucleobases and nucleosides having a modified guanine include inosine (I), 1-methyl-inosine (m1I), wyosine (imG), methylwyosine (mimG), 4-demethyl-wyosine (imG-14), isowyosine (imG2), wybutosine (yW), peroxywybutosine (o2yW), hydroxywybutosine (OHyW), undermodified hydroxywybutosine (OHyW*), 7-deaza-guanosine, queuosine (Q), epoxyqueuosine (oQ), galactosyl-queuosine (galQ), mannosyl-queuosine (manQ), 7-cyano-7-deaza-guanosine (preQ0), 7-aminomethyl-7-deaza-guanosine (preQ1), archaeosine (G+), 7-deaza-8-aza-guanosine, 6-thio-guanosine, 6-thio-7-deaza-guanosine, 6-thio-7-deaza-8-aza-guanosine, 7-methyl-guanosine (m7G), 6-thio-7-methyl-guanosine, 7-methyl-inosine, 6-methoxy-guanosine, 1-methyl-guanosine (m1G), N2-methyl-guanosine (m2G), N2,N2-dimethyl-guanosine (m2 2G), N2,7-dimethyl-guanosine (m2,7G), N2, N2,7-dimethyl-guanosine (m2,2,7G), 8-oxo-guanosine, 7-methyl-8-oxo-guanosine, 1-methyl-6-thio-guanosine, N2-methyl-6-thio-guanosine, N2,N2-dimethyl-6-thio-guanosine, α-thio-guanosine, 2′-O-methyl-guanosine (Gm), N2-methyl-2′-O-methyl-guanosine (m2Gm), N2,N2-dimethyl-2′-O-methyl-guanosine (m2 2Gm), 1-methyl-2′-O-methyl-guanosine (m1Gm), N2,7-dimethyl-2′-O-methyl-guanosine (m2,7Gm), 2′-O-methyl-inosine (Im), 1,2′-O-dimethyl-inosine (m1Im), 2′-O-ribosylguanosine (phosphate) (Gr(p)), 1-thio-guanosine, O6-methyl-guanosine, 2′-F-ara-guanosine, and 2′-F-guanosine.
  • In some embodiments, the nucleotide can be modified on the major groove face. For example, such modifications include replacing hydrogen on C-5 of uracil or cytosine with alkyl (e.g., methyl) or halo.
  • The nucleobase of the nucleotide can be independently selected from a purine, a pyrimidine, a purine or pyrimidine analog. For example, the nucleobase can each be independently selected from adenine, cytosine, guanine, uracil, or hypoxanthine. In another embodiment, the nucleobase can also include, for example, naturally-occurring and synthetic derivatives of a base, including pyrazolo[3,4-d]pyrimidines, 5-methylcytosine (5-me-C), 5-hydroxymethyl cytosine, xanthine, hypoxanthine, 2-aminoadenine, 6-methyl and other alkyl derivatives of adenine and guanine, 2-propyl and other alkyl derivatives of adenine and guanine, 2-thiouracil, 2-thiothymine and 2-thiocytosine, 5-propynyl uracil and cytosine, 6-azo uracil, cytosine and thymine, 5-uracil (pseudouracil), 4-thiouracil, 8-halo (e.g., 8-bromo), 8-amino, 8-thiol, 8-thioalkyl, 8-hydroxyl and other 8-substituted adenines and guanines, 5-halo particularly 5-bromo, 5-trifluoromethyl and other 5-substituted uracils and cytosines, 7-methylguanine and 7-methyladenine, 8-azaguanine and 8-azaadenine, deazaguanine, 7-deazaguanine, 3-deazaguanine, deazaadenine, 7-deazaadenine, 3-deazaadenine, pyrazolo[3,4-d]pyrimidine, imidazo[1,5-a]1,3,5 triazinones, 9-deazapurines, imidazo[4,5-d]pyrazines, thiazolo[4,5-d]pyrimidines, pyrazin-2-ones, 1,2,4-triazine, pyridazine; and 1,3,5 triazine. When the nucleotides are depicted using the shorthand A, G, C, T or U, each letter refers to the representative base and/or derivatives thereof, e.g., A includes adenine or adenine analogs, e.g., 7-deaza adenine).
  • In some embodiments, the modified nucleotide is a compound of Formula XI:
  • Figure US20130123481A1-20130516-C00111
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes a single or a double bond;
  • — denotes an optional single bond;
  • U is O, S, —NRa—, or —CRaRb— when
    Figure US20130123481A1-20130516-P00002
    denotes a single bond, or U is —CRa— when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond;
  • Z is H, C1-12 alkyl, or C6-20 aryl, or Z is absent when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond; and
  • Z can be —CRaRb— and form a bond with A;
  • A is H, OH, NHR wherein R=alkyl or aryl or phosphoryl, sulfate, —NH2, N3, azido, —SH, N an amino acid, or a peptide comprising 1 to 12 amino acids;
  • D is H, OH, NHR wherein R=alkyl or aryl or phosphoryl, —NH2, —SH, an amino acid, a peptide comprising 1 to 12 amino acids, or a group of Formula XII:
  • Figure US20130123481A1-20130516-C00112
  • or A and D together with the carbon atoms to which they are attached form a 5-membered ring;
  • X is O or S;
  • each of Y1 is independently selected from —ORa1, —NRa1Rb1, and —SRa1;
  • each of Y2 and Y3 are independently selected from O, —CRaRb—, NRc, S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • n is 0, 1, 2, or 3;
  • m is 0, 1, 2 or 3;
  • B is nucleobase;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl;
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • Ra1 and Rb1 are each independently H or a counterion; and
  • —ORc1 is OH at a pH of about 1 or —ORc1 is O at physiological pH;
  • provided that the ring encompassing the variables A, B, D, U, Z, Y2 and Y3 cannot be ribose.
  • In some embodiments, B is a nucleobase selected from the group consisting of cytosine, guanine, adenine, and uracil.
  • In some embodiments, the nucleobase is a pyrimidine or derivative thereof.
  • In some embodiments, the modified nucleotides are a compound of Formula XI-a:
  • Figure US20130123481A1-20130516-C00113
  • In some embodiments, the modified nucleotides are a compound of Formula XI-b:
  • Figure US20130123481A1-20130516-C00114
  • In some embodiments, the modified nucleotides are a compound of Formula XI-c1, XI-c2, or XI-c3:
  • Figure US20130123481A1-20130516-C00115
  • In some embodiments, the modified nucleotides are a compound of Formula XI:
  • Figure US20130123481A1-20130516-C00116
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes a single or a double bond;
  • — denotes an optional single bond;
  • U is O, S, —NRa—, or —CRaRb— when
    Figure US20130123481A1-20130516-P00002
    denotes a single bond, or U is —CRa— when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond;
  • Z is H, C1-12 alkyl, or C6-20 aryl, or Z is absent when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond; and
  • Z can be —CRaRb— and form a bond with A;
  • A is H, OH, sulfate, —NH2, —SH, an amino acid, or a peptide comprising 1 to 12 amino acids;
  • D is H, OH, —NH2, —SH, an amino acid, a peptide comprising 1 to 12 amino acids, or a group of Formula XII:
  • Figure US20130123481A1-20130516-C00117
  • or A and D together with the carbon atoms to which they are attached form a 5-membered ring;
  • X is O or S;
  • each of Y1 is independently selected from —ORa1, —NRa1Rb1, and —SRa1;
  • each of Y2 and Y3 are independently selected from O, —CRaRb—, NRc, S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • n is 0, 1, 2, or 3;
  • m is 0, 1, 2 or 3;
  • B is a nucleobase of Formula XIII:
  • Figure US20130123481A1-20130516-C00118
  • wherein:
  • V is N or positively charged NRc;
  • R3 is NRcRd, —ORa, or —SRa;
  • R4 is H or can optionally form a bond with Y3;
  • R5 is H, —NRcRd, or —ORa;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl;
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • Ra1 and Rb1 are each independently H or a counterion; and
  • —ORc1 is OH at a pH of about 1 or —OR11 is O at physiological pH.
  • In some embodiments, B is:
  • Figure US20130123481A1-20130516-C00119
  • wherein R3 is —OH, —SH, or
  • Figure US20130123481A1-20130516-C00120
  • In some embodiments, B is:
  • Figure US20130123481A1-20130516-C00121
  • In some embodiments, B is:
  • Figure US20130123481A1-20130516-C00122
  • In some embodiments, the modified nucleotides are a compound of Formula I-d:
  • Figure US20130123481A1-20130516-C00123
  • In some embodiments, the modified nucleotides are a compound selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00124
    Figure US20130123481A1-20130516-C00125
  • or a pharmaceutically acceptable salt thereof.
  • In some embodiments, the modified nucleotides are a compound selected from the group consisting of:
  • Figure US20130123481A1-20130516-C00126
    Figure US20130123481A1-20130516-C00127
  • or a pharmaceutically acceptable salt thereof.
  • Modifications on the Internucleoside Linkage
  • The modified nucleotides, which may be incorporated into a polynucleotide molecule, can be modified on the internucleoside linkage (e.g., phosphate backbone). Herein, in the context of the polynucleotide backbone, the phrases “phosphate” and “phosphodiester” are used interchangeably. Backbone phosphate groups can be modified by replacing one or more of the oxygen atoms with a different substituent. Further, the modified nucleosides and nucleotides can include the wholesale replacement of an unmodified phosphate moiety with another internucleoside linkage as described herein. Examples of modified phosphate groups include, but are not limited to, phosphorothioate, phosphoroselenates, boranophosphates, boranophosphate esters, hydrogen phosphonates, phosphoramidates, phosphorodiamidates, alkyl or aryl phosphonates, and phosphotriesters. Phosphorodithioates have both non-linking oxygens replaced by sulfur. The phosphate linker can also be modified by the replacement of a linking oxygen with nitrogen (bridged phosphoramidates), sulfur (bridged phosphorothioates), and carbon (bridged methylene-phosphonates).
  • The α-thio substituted phosphate moiety is provided to confer stability to RNA and DNA polymers through the unnatural phosphorothioate backbone linkages. Phosphorothioate DNA and RNA have increased nuclease resistance and subsequently a longer half-life in a cellular environment. While not wishing to be bound by theory, phosphorothioate linked polynucleotide molecules are expected to also reduce the innate immune response through weaker binding/activation of cellular innate immune molecules.
  • In specific embodiments, a modified nucleoside includes an alpha-thio-nucleoside (e.g., 5′-O-(1-thiophosphate)-adenosine, 5′-O-(1-thiophosphate)-cytidine (α-thio-cytidine), 5′-O-(1-thiophosphate)-guanosine, 5′-O-(1-thiophosphate)-uridine, or 5′-O-(1-thiophosphate)-pseudouridine).
  • Other internucleoside linkages that may be employed according to the present invention, including internucleoside linkages which do not contain a phosphorous atom, are described herein below.
  • Combinations of Modified Sugars, Nucleobases, and Internucleoside Linkages
  • The polynucleotides of the invention can include a combination of modifications to the sugar, the nucleobase, and/or the internucleoside linkage. These combinations can include any one or more modifications described herein. For examples, any of the nucleotides described herein in Formulas (Ia), (Ia-1)-(Ia-3), (Ib)-(If), (IIa)-(IIp), (IIb-1), (IIb-2), (IIc-1)-(IIc-2), (IIn-1), (IIn-2), (IVa)-(IV1), and (IXa)-(IXr) can be combined with any of the nucleobases described herein (e.g., in Formulas (b1)-(b43) or any other described herein).
  • Synthesis of Polynucleotide Molecules
  • The polynucleotide molecules for use in accordance with the invention may be prepared according to any useful technique, as described herein. The modified nucleosides and nucleotides used in the synthesis of polynucleotide molecules disclosed herein can be prepared from readily available starting materials using the following general methods and procedures. Where typical or preferred process conditions (e.g., reaction temperatures, times, mole ratios of reactants, solvents, pressures, etc.) are provided, a skilled artisan would be able to optimize and develop additional process conditions. Optimum reaction conditions may vary with the particular reactants or solvent used, but such conditions can be determined by one skilled in the art by routine optimization procedures.
  • The processes described herein can be monitored according to any suitable method known in the art. For example, product formation can be monitored by spectroscopic means, such as nuclear magnetic resonance spectroscopy (e.g., 1H or 13C) infrared spectroscopy, spectrophotometry (e.g., UV-visible), or mass spectrometry, or by chromatography such as high performance liquid chromatography (HPLC) or thin layer chromatography.
  • Preparation of polynucleotide molecules of the present invention can involve the protection and deprotection of various chemical groups. The need for protection and deprotection, and the selection of appropriate protecting groups can be readily determined by one skilled in the art. The chemistry of protecting groups can be found, for example, in Greene, et al., Protective Groups in Organic Synthesis, 2d. Ed., Wiley & Sons, 1991, which is incorporated herein by reference in its entirety.
  • The reactions of the processes described herein can be carried out in suitable solvents, which can be readily selected by one of skill in the art of organic synthesis. Suitable solvents can be substantially nonreactive with the starting materials (reactants), the intermediates, or products at the temperatures at which the reactions are carried out, i.e., temperatures which can range from the solvent's freezing temperature to the solvent's boiling temperature. A given reaction can be carried out in one solvent or a mixture of more than one solvent. Depending on the particular reaction step, suitable solvents for a particular reaction step can be selected.
  • Resolution of racemic mixtures of modified polynucleotides or nucleic acids (e.g., polynucleotides or modified mRNA molecules) can be carried out by any of numerous methods known in the art. An example method includes fractional recrystallization using a “chiral resolving acid” which is an optically active, salt-forming organic acid. Suitable resolving agents for fractional recrystallization methods are, for example, optically active acids, such as the D and L forms of tartaric acid, diacetyltartaric acid, dibenzoyltartaric acid, mandelic acid, malic acid, lactic acid or the various optically active camphorsulfonic acids. Resolution of racemic mixtures can also be carried out by elution on a column packed with an optically active resolving agent (e.g., dinitrobenzoylphenylglycine). Suitable elution solvent composition can be determined by one skilled in the art.
  • Modified nucleosides and nucleotides (e.g., building block molecules) can be prepared according to the synthetic methods described in Ogata et al., J. Org. Chem. 74:2585-2588 (2009); Purmal et al., Nucl. Acids Res. 22 (1): 72-78, (1994); Fukuhara et al., Biochemistry, 1 (4): 563-568 (1962); and Xu et al., Tetrahedron, 48(9): 1729-1740 (1992), each of which are incorporated by reference in their entirety.
  • The polynucleotides of the invention may or may not be uniformly modified along the entire length of the molecule. For example, one or more or all types of nucleotide (e.g., purine or pyrimidine, or any one or more or all of A, G, U, C) may or may not be uniformly modified in a polynucleotide of the invention, or in a given predetermined sequence region thereof. In some embodiments, all nucleotides X in a polynucleotide of the invention (or in a given sequence region thereof) are modified, wherein X may any one of nucleotides A, G, U, C, or any one of the combinations A+G, A+U, A+C, G+U, G+C, U+C, A+G+U, A+G+C, G+U+C or A+G+C.
  • Different sugar modifications, nucleotide modifications, and/or internucleoside linkages (e.g., backbone structures) may exist at various positions in the polynucleotide. One of ordinary skill in the art will appreciate that the nucleotide analogs or other modification(s) may be located at any position(s) of a polynucleotide such that the function of the polynucleotide is not substantially decreased. A modification may also be a 5′ or 3′ terminal modification. The polynucleotide may contain from about 1% to about 100% modified nucleotides (either in relation to overall nucleotide content, or in relation to one or more types of nucleotide, i.e. any one or more of A, G, U or C) or any intervening percentage (e.g., from 1% to 20%, from 1% to 25%, from 1% to 50%, from 1% to 60%, from 1% to 70%, from 1% to 80%, from 1% to 90%, from 1% to 95%, from 10% to 20%, from 10% to 25%, from 10% to 50%, from 10% to 60%, from 10% to 70%, from 10% to 80%, from 10% to 90%, from 10% to 95%, from 10% to 100%, from 20% to 25%, from 20% to 50%, from 20% to 60%, from 20% to 70%, from 20% to 80%, from 20% to 90%, from 20% to 95%, from 20% to 100%, from 50% to 60%, from 50% to 70%, from 50% to 80%, from 50% to 90%, from 50% to 95%, from 50% to 100%, from 70% to 80%, from 70% to 90%, from 70% to 95%, from 70% to 100%, from 80% to 90%, from 80% to 95%, from 80% to 100%, from 90% to 95%, from 90% to 100%, and from 95% to 100%).
  • In some embodiments, the polynucleotide includes a modified pyrimidine (e.g., a modified uracil/uridine/U or modified cytosine/cytidine/C). In some embodiments, the uracil or uridine (generally: U) in the polynucleotide molecule may be replaced with from about 1% to about 100% of a modified uracil or modified uridine (e.g., from 1% to 20%, from 1% to 25%, from 1% to 50%, from 1% to 60%, from 1% to 70%, from 1% to 80%, from 1% to 90%, from 1% to 95%, from 10% to 20%, from 10% to 25%, from 10% to 50%, from 10% to 60%, from 10% to 70%, from 10% to 80%, from 10% to 90%, from 10% to 95%, from 10% to 100%, from 20% to 25%, from 20% to 50%, from 20% to 60%, from 20% to 70%, from 20% to 80%, from 20% to 90%, from 20% to 95%, from 20% to 100%, from 50% to 60%, from 50% to 70%, from 50% to 80%, from 50% to 90%, from 50% to 95%, from 50% to 100%, from 70% to 80%, from 70% to 90%, from 70% to 95%, from 70% to 100%, from 80% to 90%, from 80% to 95%, from 80% to 100%, from 90% to 95%, from 90% to 100%, and from 95% to 100% of a modified uracil or modified uridine). The modified uracil or uridine can be replaced by a compound having a single unique structure or by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures, as described herein). In some embodiments, the cytosine or cytidine (generally: C) in the polynucleotide molecule may be replaced with from about 1% to about 100% of a modified cytosine or modified cytidine (e.g., from 1% to 20%, from 1% to 25%, from 1% to 50%, from 1% to 60%, from 1% to 70%, from 1% to 80%, from 1% to 90%, from 1% to 95%, from 10% to 20%, from 10% to 25%, from 10% to 50%, from 10% to 60%, from 10% to 70%, from 10% to 80%, from 10% to 90%, from 10% to 95%, from 10% to 100%, from 20% to 25%, from 20% to 50%, from 20% to 60%, from 20% to 70%, from 20% to 80%, from 20% to 90%, from 20% to 95%, from 20% to 100%, from 50% to 60%, from 50% to 70%, from 50% to 80%, from 50% to 90%, from 50% to 95%, from 50% to 100%, from 70% to 80%, from 70% to 90%, from 70% to 95%, from 70% to 100%, from 80% to 90%, from 80% to 95%, from 80% to 100%, from 90% to 95%, from 90% to 100%, and from 95% to 100% of a modified cytosine or modified cytidine). The modified cytosine or cytidine can be replaced by a compound having a single unique structure or by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures, as described herein).
  • In some embodiments, the present disclosure provides methods of synthesizing a polynucleotide (e.g., the first region, first flanking region, or second flanking region) including n number of linked nucleosides having Formula (Ia-1):
  • Figure US20130123481A1-20130516-C00128
  • comprising:
  • a) reacting a nucleotide of Formula (IV-1):
  • Figure US20130123481A1-20130516-C00129
  • with a phosphoramidite compound of Formula (V-1):
  • Figure US20130123481A1-20130516-C00130
  • wherein Y9 is H, hydroxy, phosphoryl, pyrophosphate, sulfate, amino, thiol, optionally substituted amino acid, or a peptide (e.g., including from 2 to 12 amino acids); and each P1, P2, and P3 is, independently, a suitable protecting group; and
    Figure US20130123481A1-20130516-P00003
    denotes a solid support;
  • to provide a polynucleotide of Formula (VI-1):
  • Figure US20130123481A1-20130516-C00131
  • and
  • b) oxidizing or sulfurizing the polynucleotide of Formula (V) to yield a polynucleotide of Formula (VII-1):
  • Figure US20130123481A1-20130516-C00132
  • and
  • c) removing the protecting groups to yield the polynucleotide of Formula (Ia).
  • In some embodiments, steps a) and b) are repeated from 1 to about 10,000 times. In some embodiments, the methods further comprise a nucleotide selected from the group consisting of A, C, G and U adenosine, cytosine, guanosine, and uracil. In some embodiments, the nucleobase may be a pyrimidine or derivative thereof. In some embodiments, the polynucleotide is translatable.
  • Other components of polynucleotides are optional, and are beneficial in some embodiments. For example, a 5′ untranslated region (UTR) and/or a 3′ UTR are provided, wherein either or both may independently contain one or more different nucleotide modifications. In such embodiments, nucleotide modifications may also be present in the translatable region. Also provided are polynucleotides containing a Kozak sequence.
  • Combinations of Nucleotides
  • Further examples of modified nucleotides and modified nucleotide combinations are provided below in Table 2. These combinations of modified nucleotides can be used to form the polynucleotides of the invention. Unless otherwise noted, the modified nucleotides may be completely substituted for the natural nucleotides of the polynucleotides of the invention. As a non-limiting example, the natural nucleotide uridine may be substituted with a modified nucleoside described herein. In another non-limiting example, the natural nucleotide uridine may be partially substituted (e.g., about 0.1%, 1%, 5%, 10%, 15%, 20%, 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95% or 99.9%) with at least one of the modified nucleoside disclosed herein.
  • TABLE 2
    Modified Nucleotide Modified Nucleotide Combination
    α-thio-cytidine α-thio-cytidine/5-iodo-uridine
    α-thio-cytidine/N1-methyl-pseudo-uridine
    α-thio-cytidine/α-thio-uridine
    α-thio-cytidine/5-methyl-uridine
    α-thio-cytidine/pseudo-uridine
    about 50% of the cytosines are α-thio-cytidine
    pseudoisocytidine pseudoisocytidine/5-iodo-uridine
    pseudoisocytidine/N1-methyl-pseudouridine
    pseudoisocytidine/α-thio-uridine
    pseudoisocytidine/5-methyl-uridine
    pseudoisocytidine/pseudouridine
    about 25% of cytosines are pseudoisocytidine
    pseudoisocytidine/about 50% of uridines are
    N1-methyl-pseudouridine and about 50% of
    uridines are pseudouridine
    pseudoisocytidine/about 25% of uridines are
    N1-methyl-pseudouridine and about 25% of
    uridines are pseudouridine (e.g., 25%
    N1-methyl-pseudouridine/75% pseudouridine)
    pyrrolo-cytidine pyrrolo-cytidine/5-iodo-uridine
    pyrrolo-cytidine/N1-methyl-pseudouridine
    pyrrolo-cytidine/α-thio-uridine
    pyrrolo-cytidine/5-methyl-uridine
    pyrrolo-cytidine/pseudouridine
    about 50% of the cytosines are pyrrolo-cytidine
    5-methyl-cytidine 5-methyl-cytidine/5-iodo-uridine
    5-methyl-cytidine/N1-methyl-pseudouridine
    5-methyl-cytidine/α-thio-uridine
    5-methyl-cytidine/5-methyl-uridine
    5-methyl-cytidine/pseudouridine
    about 25% of cytosines are 5-methyl-cytidine
    about 50% of cytosines are 5-methyl-cytidine
    5-methyl-cytidine/5-methoxy-uridine
    5-methyl-cytidine/5-bromo-uridine
    5-methyl-cytidine/2-thio-uridine
    5-methyl-cytidine/about 50% of uridines are
    2-thio-uridine
    about 50% of uridines are 5-methyl-cytidine/
    about 50% of uridines are 2-thio-uridine
    N4-acetyl-cytidine N4-acetyl-cytidine/5-iodo-uridine
    N4-acetyl-cytidine/N1-methyl-pseudouridine
    N4-acetyl-cytidine/α-thio-uridine
    N4-acetyl-cytidine/5-methyl-uridine
    N4-acetyl-cytidine/pseudouridine
    about 50% of cytosines are N4-acetyl-cytidine
    about 25% of cytosines are N4-acetyl-cytidine
    N4-acetyl-cytidine/5-methoxy-uridine
    N4-acetyl-cytidine/5-bromo-uridine
    N4-acetyl-cytidine/2-thio-uridine
    about 50% of cytosines are N4-acetyl-cytidine/
    about 50% of uridines are 2-thio-uridine
  • Certain modified nucleotides and nucleotide combinations have been explored by the current inventors. These findings are described in U.S. Provisional Application No. 61/404,413, filed on Oct. 1, 2010, entitled Engineered Nucleic Acids and Methods of Use Thereof, U.S. patent application Ser. No. 13/251,840, filed on Oct. 3, 2011, entitled Modified Nucleotides, and Nucleic Acids, and Uses Thereof, now abandoned, U.S. patent application Ser. No. 13/481,127, filed on May 25, 2012, entitled Modified Nucleotides, and Nucleic Acids, and Uses Thereof, International Patent Publication No WO2012045075, filed on Oct. 3, 2011, entitled Modified Nucleosides, Nucleotides, And Nucleic Acids, and Uses Thereof, U.S. Patent Publication No US20120237975 filed on Oct. 3, 2011, entitled Engineered Nucleic Acids and Method of Use Thereof, and International Patent Publication No WO2012045082, which are incorporated by reference in their entireties.
  • Further examples of modified nucleotide combinations are provided below in Table 3. These combinations of modified nucleotides can be used to form the polynucleotides of the invention.
  • TABLE 3
    Modified Nucleotide Modified Nucleotide Combination
    modified cytidine having one or more modified cytidine with (b10)/pseudouridine
    nucleobases of Formula (b10) modified cytidine with (b10)/N1-methyl-pseudouridine
    modified cytidine with (b10)/5-methoxy-uridine
    modified cytidine with (b10)/5-methyl-uridine
    modified cytidine with (b10)/5-bromo-uridine
    modified cytidine with (b10)/2-thio-uridine
    about 50% of cytidine substituted with modified cytidine
    (b10)/about 50% of uridines are 2-thio-uridine
    modified cytidine having one or more modified cytidine with (b32)/pseudouridine
    nucleobases of Formula (b32) modified cytidine with (b32)/N1-methyl-pseudouridine
    modified cytidine with (b32)/5-methoxy-uridine
    modified cytidine with (b32)/5-methyl-uridine
    modified cytidine with (b32)/5-bromo-uridine
    modified cytidine with (b32)/2-thio-uridine
    about 50% of cytidine substituted with modified cytidine
    (b32)/about 50% of uridines are 2-thio-uridine
    modified uridine having one or more modified uridine with (b1)/N4-acetyl-cytidine
    nucleobases of Formula (b1) modified uridine with (b1)/5-methyl-cytidine
    modified uridine having one or more modified uridine with (b8)/N4-acetyl-cytidine
    nucleobases of Formula (b8) modified uridine with (b8)/5-methyl-cytidine
    modified uridine having one or more modified uridine with (b28)/N4-acetyl-cytidine
    nucleobases of Formula (b28) modified uridine with (b28)/5-methyl-cytidine
    modified uridine having one or more modified uridine with (b29)/N4-acetyl-cytidine
    nucleobases of Formula (b29) modified uridine with (b29)/5-methyl-cytidine
    modified uridine having one or more modified uridine with (b30)/N4-acetyl-cytidine
    nucleobases of Formula (b30) modified uridine with (b30)/5-methyl-cytidine
  • In some embodiments, at least 25% of the cytosines are replaced by a compound of Formula (b10)-(b14), (b24), (b25), or (b32)-(b35) (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100% of, e.g., a compound of Formula (b10) or (b32)).
  • In some embodiments, at least 25% of the uracils are replaced by a compound of Formula (b1)-(b9), (b21)-(b23), or (b28)-(b31) (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100% of, e.g., a compound of Formula (b1), (b8), (b28), (b29), or (b30)).
  • In some embodiments, at least 25% of the cytosines are replaced by a compound of Formula (b10)-(b14), (b24), (b25), or (b32)-(b35) (e.g. Formula (b10) or (b32)), and at least 25% of the uracils are replaced by a compound of Formula (b1)-(b9), (b21)-(b23), or (b28)-(b31) (e.g. Formula (b1), (b8), (b28), (b29), or (b30)) (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • Modifications Including Linker and a Payload
  • The nucleobase of the nucleotide can be covalently linked at any chemically appropriate position to a payload, e.g., detectable agent or therapeutic agent. For example, the nucleobase can be deaza-adenosine or deaza-guanosine and the linker can be attached at the C-7 or C-8 positions of the deaza-adenosine or deaza-guanosine. In other embodiments, the nucleobase can be cytosine or uracil and the linker can be attached to the N-3 or C-5 positions of cytosine or uracil. Scheme 1 below depicts an exemplary modified nucleotide wherein the nucleobase, adenine, is attached to a linker at the C-7 carbon of 7-deaza adenine. In addition, Scheme 1 depicts the modified nucleotide with the linker and payload, e.g., a detectable agent, incorporated onto the 3′ end of the mRNA. Disulfide cleavage and 1,2-addition of the thiol group onto the propargyl ester releases the detectable agent. The remaining structure (depicted, for example, as pApC5Parg in Scheme 1) is the inhibitor. The rationale for the structure of the modified nucleotides is that the tethered inhibitor sterically interferes with the ability of the polymerase to incorporate a second base. Thus, it is critical that the tether be long enough to affect this function and that the inhibitor be in a stereochemical orientation that inhibits or prohibits second and follow on nucleotides into the growing polynucleotide strand.
  • Figure US20130123481A1-20130516-C00133
    Figure US20130123481A1-20130516-C00134
  • Linker
  • The term “linker” as used herein refers to a group of atoms, e.g., 10-1,000 atoms, and can be comprised of the atoms or groups such as, but not limited to, carbon, amino, alkylamino, oxygen, sulfur, sulfoxide, sulfonyl, carbonyl, and imine. The linker can be attached to a modified nucleoside or nucleotide on the nucleobase or sugar moiety at a first end, and to a payload, e.g., detectable or therapeutic agent, at a second end. The linker is of sufficient length as to not interfere with incorporation into a nucleic acid sequence.
  • Examples of chemical groups that can be incorporated into the linker include, but are not limited to, an alkyl, alkene, an alkyne, an amido, an ether, a thioether, an or an ester group. The linker chain can also comprise part of a saturated, unsaturated or aromatic ring, including polycyclic and heteroaromatic rings wherein the heteroaromatic ring is an aryl group containing from one to four heteroatoms, N, O or S. Specific examples of linkers include, but are not limited to, unsaturated alkanes, polyethylene glycols, and dextran polymers.
  • For example, the linker can include ethylene or propylene glycol monomeric units, e.g., diethylene glycol, dipropylene glycol, triethylene glycol, tripropylene glycol, tetraethylene glycol, or tetraethylene glycol. In some embodiments, the linker can include a divalent alkyl, alkenyl, and/or alkynyl moiety. The linker can include an ester, amide, or ether moiety.
  • Other examples include cleavable moieties within the linker, such as, for example, a disulfide bond (—S—S—) or an azo bond (—N═N—), which can be cleaved using a reducing agent or photolysis. A cleavable bond incorporated into the linker and attached to a modified nucleotide, when cleaved, results in, for example, a short “scar” or chemical modification on the nucleotide. For example, after cleaving, the resulting scar on a nucleotide base, which formed part of the modified nucleotide, and is incorporated into a polynucleotide strand, is unreactive and does not need to be chemically neutralized. This increases the ease with which a subsequent nucleotide can be incorporated during sequencing of a nucleic acid polymer template. For example, conditions include the use of tris(2-carboxyethyl)phosphine (TCEP), dithiothreitol (DTT) and/or other reducing agents for cleavage of a disulfide bond. A selectively severable bond that includes an amido bond can be cleaved for example by the use of TCEP or other reducing agents, and/or photolysis. A selectively severable bond that includes an ester bond can be cleaved for example by acidic or basic hydrolysis.
  • Payload
  • The methods and compositions described herein are useful for delivering a payload to a biological target. The payload can be used, e.g., for labeling (e.g., a detectable agent such as a fluorophore), or for therapeutic purposes (e.g., a cytotoxin or other therapeutic agent).
  • Payload: Therapeutic Agents
  • In some embodiments the payload is a therapeutic agent such as a cytotoxin, radioactive ion, chemotherapeutic, or other therapeutic agent. A cytotoxin or cytotoxic agent includes any agent that is detrimental to cells. Examples include taxol, cytochalasin B, gramicidin D, ethidium bromide, emetine, mitomycin, etoposide, tenoposide, vincristine, vinblastine, colchicin, doxorubicin, daunorubicin, dihydroxy anthracin dione, mitoxantrone, mithramycin, actinomycin D, 1-dehydrotestosterone, glucocorticoids, procaine, tetracaine, lidocaine, propranolol, puromycin, maytansinoids, e.g., maytansinol (see U.S. Pat. No. 5,208,020), CC-1065 (see U.S. Pat. Nos. 5,475,092, 5,585,499, 5,846,545) and analogs or homologs thereof. Radioactive ions include, but are not limited to iodine (e.g., iodine 125 or iodine 131), strontium 89, phosphorous, palladium, cesium, iridium, phosphate, cobalt, yttrium 90, Samarium 153 and praseodymium. Other therapeutic agents include, but are not limited to, antimetabolites (e.g., methotrexate, 6-mercaptopurine, 6-thioguanine, cytarabine, 5-fluorouracil decarbazine), alkylating agents (e.g., mechlorethamine, thioepa chlorambucil, CC-1065, melphalan, carmustine (BSNU) and lomustine (CCNU), cyclothosphamide, busulfan, dibromomannitol, streptozotocin, mitomycin C, and cis-dichlorodiamine platinum (II) (DDP) cisplatin), anthracyclines (e.g., daunorubicin (formerly daunomycin) and doxorubicin), antibiotics (e.g., dactinomycin (formerly actinomycin), bleomycin, mithramycin, and anthramycin (AMC)), and anti-mitotic agents (e.g., vincristine, vinblastine, taxol and maytansinoids).
  • Payload:Detectable Agents
  • Examples of detectable substances include various organic small molecules, inorganic compounds, nanoparticles, enzymes or enzyme substrates, fluorescent materials, luminescent materials, bioluminescent materials, chemiluminescent materials, radioactive materials, and contrast agents. Such optically-detectable labels include for example, without limitation, 4-acetamido-4′-isothiocyanatostilbene-2,2′disulfonic acid; acridine and derivatives: acridine, acridine isothiocyanate; 5-(2′-aminoethyl)aminonaphthalene-1-sulfonic acid (EDANS); 4-amino-N-[3-vinylsulfonyl)phenyl]naphthalimide-3,5 disulfonate; N-(4-anilino-1-naphthyl)maleimide; anthranilamide; BODIPY; Brilliant Yellow; coumarin and derivatives; coumarin, 7-amino-4-methylcoumarin (AMC, Coumarin 120), 7-amino-4-trifluoromethylcouluarin (Coumaran 151); cyanine dyes; cyanosine; 4′,6-diaminidino-2-phenylindole (DAPI); 5′ 5″-dibromopyrogallol-sulfonaphthalein (Bromopyrogallol Red); 7-diethylamino-3-(4′-isothiocyanatophenyl)-4-methylcoumarin; diethylenetriamine pentaacetate; 4,4′-diisothiocyanatodihydro-stilbene-2,2′-disulfonic acid; 4,4′-diisothiocyanatostilbene-2,2′-disulfonic acid; 5-[dimethylamino]-naphthalene-1-sulfonyl chloride (DNS, dansylchloride); 4-dimethylaminophenylazophenyl-4′-isothiocyanate (DABITC); eosin and derivatives; eosin, eosin isothiocyanate, erythrosin and derivatives; erythrosin B, erythrosin, isothiocyanate; ethidium; fluorescein and derivatives; 5-carboxyfluorescein (FAM), 5-(4,6-dichlorotriazin-2-yl)aminofluorescein (DTAF), 2′,7′-dimethoxy-4′5′-dichloro-6-carboxyfluorescein, fluorescein, fluorescein isothiocyanate, QFITC, (XRITC); fluorescamine; IR144; IR1446; Malachite Green isothiocyanate; 4-methylumbelliferoneortho cresolphthalein; nitrotyrosine; pararosaniline; Phenol Red; B-phycoerythrin; o-phthaldialdehyde; pyrene and derivatives: pyrene, pyrene butyrate, succinimidyl 1-pyrene; butyrate quantum dots; Reactive Red 4 (Cibacron™ Brilliant Red 3B-A) rhodamine and derivatives: 6-carboxy-X-rhodamine (ROX), 6-carboxyrhodamine (R6G), lissamine rhodamine B sulfonyl chloride rhodamine (Rhod), rhodamine B, rhodamine 123, rhodamine X isothiocyanate, sulforhodamine B, sulforhodamine 101, sulfonyl chloride derivative of sulforhodamine 101 (Texas Red); N,N,N′,N′ tetramethyl-6-carboxyrhodamine (TAMRA); tetramethyl rhodamine; tetramethyl rhodamine isothiocyanate (TRITC); riboflavin; rosolic acid; terbium chelate derivatives; Cyanine-3 (Cy3); Cyanine-5 (Cy5); Cyanine-5.5 (Cy5.5), Cyanine-7 (Cy7); IRD 700; IRD 800; Alexa 647; La Jolta Blue; phthalo cyanine; and naphthalo cyanine. In some embodiments, the detectable label is a fluorescent dye, such as Cy5 and Cy3.
  • Examples luminescent material includes luminol; examples of bioluminescent materials include luciferase, luciferin, and aequorin.
  • Examples of suitable radioactive material include 18F, 67Ga, 81mKr, 82Rb, 111In, 123I, 133Xe, 201Tl, 125I, 35S, 14C, or 3H, 99mTc (e.g., as pertechnetate (technetate (VII), TcO4 ) either directly or indirectly, or other radioisotope detectable by direct counting of radioemission or by scintillation counting.
  • In addition, contrast agents, e.g., contrast agents for MRI or NMR, for X-ray CT, Raman imaging, optical coherence tomography, absorption imaging, ultrasound imaging, or thermal imaging can be used. Exemplary contrast agents include gold (e.g., gold nanoparticles), gadolinium (e.g., chelated Gd), iron oxides (e.g., superparamagnetic iron oxide (SPIO), monocrystalline iron oxide nanoparticles (MIONs), and ultrasmall superparamagnetic iron oxide (USPIO)), manganese chelates (e.g., Mn-DPDP), barium sulfate, iodinated contrast media (iohexyl), microbubbles, or perfluorocarbons can also be used.
  • In some embodiments, the detectable agent is a non-detectable pre-cursor that becomes detectable upon activation. Examples include fluorogenic tetrazine-fluorophore constructs (e.g., tetrazine-BODIPY FL, tetrazine-Oregon Green 488, or tetrazine-BODIPY TMR-X) or enzyme activatable fluorogenic agents (e.g., PROSENSE (VisEn Medical)).
  • When the compounds are enzymatically labeled with, for example, horseradish peroxidase, alkaline phosphatase, or luciferase, the enzymatic label is detected by determination of conversion of an appropriate substrate to product.
  • In vitro assays in which these compositions can be used include enzyme linked immunosorbent assays (ELISAs), immunoprecipitations, immunofluorescence, enzyme immunoassay (EIA), radioimmunoassay (RIA), and Western blot analysis.
  • Labels other than those described herein are contemplated by the present disclosure, including other optically-detectable labels. Labels can be attached to the modified nucleotide of the present disclosure at any position using standard chemistries such that the label can be removed from the incorporated base upon cleavage of the cleavable linker.
  • Payload: Cell Penetrating Payloads
  • In some embodiments, the modified nucleotides and modified nucleic acids can also include a payload that can be a cell penetrating moiety or agent that enhances intracellular delivery of the compositions. For example, the compositions can include a cell-penetrating peptide sequence that facilitates delivery to the intracellular space, e.g., HIV-derived TAT peptide, penetratins, transportans, or hCT derived cell-penetrating peptides, see, e.g., Caron et al., (2001) Mol. Ther. 3 (3):310-8; Langel, Cell-Penetrating Peptides: Processes and Applications (CRC Press, Boca Raton Fla. 2002); El-Andaloussi et al., (2005) Curr Pharm Des. 11 (28):3597-611; and Deshayes et al., (2005) Cell Mol Life Sci. 62(16):1839-49. The compositions can also be formulated to include a cell penetrating agent, e.g., liposomes, which enhance delivery of the compositions to the intracellular space.
  • Payload:Biological Targets
  • The modified nucleotides and modified nucleic acids described herein can be used to deliver a payload to any biological target for which a specific ligand exists or can be generated. The ligand can bind to the biological target either covalently or non-covalently.
  • Exemplary biological targets include biopolymers, e.g., antibodies, nucleic acids such as RNA and DNA, proteins, enzymes; exemplary proteins include enzymes, receptors, and ion channels. In some embodiments the target is a tissue- or cell-type specific marker, e.g., a protein that is expressed specifically on a selected tissue or cell type. In some embodiments, the target is a receptor, such as, but not limited to, plasma membrane receptors and nuclear receptors; more specific examples include G-protein-coupled receptors, cell pore proteins, transporter proteins, surface-expressed antibodies, HLA proteins, MHC proteins and growth factor receptors.
  • Synthesis of Modified Nucleotides
  • The modified nucleosides and nucleotides disclosed herein can be prepared from readily available starting materials using the following general methods and procedures. It is understood that where typical or preferred process conditions (i.e., reaction temperatures, times, mole ratios of reactants, solvents, pressures, etc.) are given; other process conditions can also be used unless otherwise stated. Optimum reaction conditions may vary with the particular reactants or solvent used, but such conditions can be determined by one skilled in the art by routine optimization procedures.
  • The processes described herein can be monitored according to any suitable method known in the art. For example, product formation can be monitored by spectroscopic means, such as nuclear magnetic resonance spectroscopy (e.g., 1H or 13C) infrared spectroscopy, spectrophotometry (e.g., UV-visible), or mass spectrometry, or by chromatography such as high performance liquid chromatography (HPLC) or thin layer chromatography.
  • Preparation of modified nucleosides and nucleotides can involve the protection and deprotection of various chemical groups. The need for protection and deprotection, and the selection of appropriate protecting groups can be readily determined by one skilled in the art. The chemistry of protecting groups can be found, for example, in Greene, et al., Protective Groups in Organic Synthesis, 2d. Ed., Wiley & Sons, 1991, which is incorporated herein by reference in its entirety.
  • The reactions of the processes described herein can be carried out in suitable solvents, which can be readily selected by one of skill in the art of organic synthesis. Suitable solvents can be substantially nonreactive with the starting materials (reactants), the intermediates, or products at the temperatures at which the reactions are carried out, i.e., temperatures which can range from the solvent's freezing temperature to the solvent's boiling temperature. A given reaction can be carried out in one solvent or a mixture of more than one solvent. Depending on the particular reaction step, suitable solvents for a particular reaction step can be selected.
  • Resolution of racemic mixtures of modified nucleosides and nucleotides can be carried out by any of numerous methods known in the art. An example method includes fractional recrystallization using a “chiral resolving acid” which is an optically active, salt-forming organic acid. Suitable resolving agents for fractional recrystallization methods are, for example, optically active acids, such as the D and L forms of tartaric acid, diacetyltartaric acid, dibenzoyltartaric acid, mandelic acid, malic acid, lactic acid or the various optically active camphorsulfonic acids. Resolution of racemic mixtures can also be carried out by elution on a column packed with an optically active resolving agent (e.g., dinitrobenzoylphenylglycine). Suitable elution solvent composition can be determined by one skilled in the art.
  • Exemplary syntheses of modified nucleotides, which are incorporated into a polynucleotides, e.g., RNA or mRNA, are provided below in Scheme 2 through Scheme 12. Scheme 2 provides a general method for phosphorylation of nucleosides, including modified nucleosides.
  • Figure US20130123481A1-20130516-C00135
  • Various protecting groups may be used to control the reaction. For example, Scheme 3 provides the use of multiple protecting and deprotecting steps to promote phosphorylation at the 5′ position of the sugar, rather than the 2′ and 3′ hydroxyl groups. Scheme 3
  • Figure US20130123481A1-20130516-C00136
  • Modified nucleotides can be synthesized in any useful manner. Schemes 4, 5, and 8 provide exemplary methods for synthesizing modified nucleotides having a modified purine nucleobase; and Schemes 6 and 7 provide exemplary methods for synthesizing modified nucleotides having a modified pseudouridine or pseudoisocytidine, respectively.
  • Figure US20130123481A1-20130516-C00137
  • Figure US20130123481A1-20130516-C00138
  • Figure US20130123481A1-20130516-C00139
  • Figure US20130123481A1-20130516-C00140
  • Figure US20130123481A1-20130516-C00141
  • Schemes 9 and 10 provide exemplary syntheses of modified nucleotides. Scheme 11 provides a non-limiting biocatalytic method for producing nucleotides.
  • Figure US20130123481A1-20130516-C00142
  • Figure US20130123481A1-20130516-C00143
  • Figure US20130123481A1-20130516-C00144
  • Scheme 12 provides an exemplary synthesis of a modified uracil, where the N1 position on the major groove face is modified with R12b, as provided elsewhere, and the 5′-position of ribose is phosphorylated. T1, T2, R12a, R12b, and r are as provided herein. This synthesis, as well as optimized versions thereof, can be used to modify the major groove face of other pyrimidine nucleobases and purine nucleobases (see e.g., Formulas (b1)-(b43)) and/or to install one or more phosphate groups (e.g., at the 5′ position of the sugar). This alkylating reaction can also be used to include one or more optionally substituted alkyl group at any reactive group (e.g., amino group) in any nucleobase described herein (e.g., the amino groups in the Watson-Crick base-pairing face for cytosine, uracil, adenine, and guanine).
  • Figure US20130123481A1-20130516-C00145
  • Modified nucleosides and nucleotides can also be prepared according to the synthetic methods described in Ogata et al. Journal of Organic Chemistry 74:2585-2588, 2009; Purmal et al. Nucleic Acids Research 22(1): 72-78, 1994; Fukuhara et al. Biochemistry 1(4): 563-568, 1962; and Xu et al. Tetrahedron 48(9): 1729-1740, 1992, each of which are incorporated by reference in their entirety.
  • Modified Nucleic Acids
  • The present disclosure provides nucleic acids (or polynucleotides), including RNAs such as mRNAs that contain one or more modified nucleosides (termed “modified nucleic acids”) or nucleotides as described herein, which have useful properties including the lack of a substantial induction of the innate immune response of a cell into which the mRNA is introduced. Because these modified nucleic acids enhance the efficiency of protein production, intracellular retention of nucleic acids, and viability of contacted cells, as well as possess reduced immunogenicity, these nucleic acids having these properties are also termed “enhanced nucleic acids” herein.
  • In addition, the present disclosure provides nucleic acids, which have decreased binding affinity to a major groove interacting, e.g. binding, partner. For example, the nucleic acids are comprised of at least one nucleotide that has been chemically modified on the major groove face as described herein.
  • The term “nucleic acid,” in its broadest sense, includes any compound and/or substance that is or can be incorporated into an oligonucleotide chain. In this context, the term nucleic acid is used synonymously with polynucleotide. Exemplary nucleic acids for use in accordance with the present disclosure include, but are not limited to, one or more of DNA, RNA including messenger mRNA (mRNA), hybrids thereof, RNAi-inducing agents, RNAi agents, siRNAs, shRNAs, miRNAs, antisense RNAs, ribozymes, catalytic DNA, RNAs that induce triple helix formation, aptamers, vectors, etc., described in detail herein.
  • Provided are modified nucleic acids containing a translatable region and one, two, or more than two different nucleoside modifications. In some embodiments, the modified nucleic acid exhibits reduced degradation in a cell into which the nucleic acid is introduced, relative to a corresponding unmodified nucleic acid. Exemplary nucleic acids include ribonucleic acids (RNAs), deoxyribonucleic acids (DNAs), threose nucleic acids (TNAs), glycol nucleic acids (GNAs), or a hybrid thereof. In preferred embodiments, the modified nucleic acid includes messenger RNAs (mRNAs). As described herein, the nucleic acids of the present disclosure do not substantially induce an innate immune response of a cell into which the mRNA is introduced.
  • In certain embodiments, it is desirable to intracellularly degrade a modified nucleic acid introduced into the cell, for example if precise timing of protein production is desired. Thus, the present disclosure provides a modified nucleic acid containing a degradation domain, which is capable of being acted on in a directed manner within a cell.
  • Other components of nucleic acid are optional, and are beneficial in some embodiments. For example, a 5′ untranslated region (UTR) and/or a 3′ UTR are provided, wherein either or both may independently contain one or more different nucleoside modifications. In such embodiments, nucleoside modifications may also be present in the translatable region. Also provided are nucleic acids containing a Kozak sequence.
  • Additionally, provided are nucleic acids containing one or more intronic nucleotide sequences capable of being excised from the nucleic acid.
  • Further, provided are nucleic acids containing an internal ribosome entry site (IRES). An IRES may act as the sole ribosome binding site, or may serve as one of multiple ribosome binding sites of an mRNA. An mRNA containing more than one functional ribosome binding site may encode several peptides or polypeptides that are translated independently by the ribosomes (“multicistronic mRNA”). When nucleic acids are provided with an IRES, further optionally provided is a second translatable region. Examples of IRES sequences that can be used according to the present disclosure include without limitation, those from picornaviruses (e.g. FMDV), pest viruses (CFFV), polio viruses (PV), encephalomyocarditis viruses (ECMV), foot-and-mouth disease viruses (FMDV), hepatitis C viruses (HCV), classical swine fever viruses (CSFV), murine leukemia virus (MLV), simian immune deficiency viruses (SIV) or cricket paralysis viruses (CrPV).
  • In another aspect, the present disclosure provides for nucleic acid sequences comprising at least two nucleotides, the nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove binding partner with the nucleic acid sequence, wherein the nucleotide has decreased binding affinity to the major groove binding partner.
  • In some embodiments, the nucleic acid is a compound of Formula XI-a:
  • Figure US20130123481A1-20130516-C00146
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes an optional double bond;
  • — denotes an optional single bond;
  • U is O, S, —NRa—, or —CRaRb— when
    Figure US20130123481A1-20130516-P00002
    denotes a single bond, or U is —CRa— when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH2, —SH, an amino acid, a peptide comprising 2 to 12 amino acids;
  • X is O or S;
  • each of Y1 is independently selected from —ORa1, —NRa1Rb1, and —SRa1;
  • each of Y2 and Y3 are independently selected from O, —CRaRb—, NRc, S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl;
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • Ra1 and Rb1 are each independently H or a counterion;
  • —ORc1 is OH at a pH of about 1 or —ORc1 is O at physiological pH; and
  • B is nucleobase;
  • provided that the ring encompassing the variables A, B, D, U, Z, Y2 and Y3 cannot be ribose.
  • In some embodiments, B is a nucleobase of Formula XII-a, XII-b, or XII-c:
  • Figure US20130123481A1-20130516-C00147
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes a single or double bond;
  • X is O or S;
  • U and W are each independently C or N;
  • V is O, S, C or N;
  • wherein when V is C then R1 is H, C1-6 alkyl, C1-6 alkenyl, C1-6 alkynyl, halo, or —ORc, wherein C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl are each optionally substituted with —OH, —NRaRb, —SH, —C(O)Rc, —C(O)ORc, —NHC(O)Rc, or —NHC(O)ORc;
  • and wherein when V is O, S, or N then R1 is absent;
  • R2 is H, —ORc, —SRc, —NRaRb, or halo;
  • or when V is C then R1 and R2 together with the carbon atoms to which they are attached can form a 5- or 6-membered ring optionally substituted with 1-4 substituents selected from halo, —OH, —SH, —NRaRb, C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl, C1-20 alkoxy, or C1-20 thioalkyl;
  • R3 is H or C1-20 alkyl;
  • R4 is H or C1-20 alkyl; wherein when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond then R4 is absent, or N—R4, taken together, forms a positively charged N substituted with C1-20 alkyl;
  • Ra and Rb are each independently H, C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl, or C6-20 aryl; and
  • Rc is H, C1-20 alkyl, C2-20 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • In some embodiments, B is a nucleobase of Formula XII-a1, XII-a2, XII-a3, XII-a4, or XII-a5:
  • Figure US20130123481A1-20130516-C00148
  • In some embodiments, the nucleobase is a pyrimidine or derivative thereof.
  • In some embodiments, the nucleic acid contains a plurality of structurally unique compounds of Formula XI-a.
  • In some embodiments, at least 25% of the cytosines are replaced by a compound of Formula XI-a (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • In some embodiments, at least 25% of the uracils are replaced by a compound of Formula XI-a (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • In some embodiments, at least 25% of the cytosines and 25% of the uracils are replaced by a compound of Formula XI-a (e.g., at least about 30%, at least about 35%, at least about 40%, at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, or about 100%).
  • In some embodiments, the nucleic acid is translatable.
  • In some embodiments, when the nucleic acid includes a nucleotide modified with a linker and payload, for example, as described herein, the nucleotide modified with a linker and payload is on the 3′ end of the nucleic acid.
  • Major Groove Interacting Partners
  • As described herein, the phrase “major groove interacting partner” refers RNA recognition receptors that detect and respond to RNA ligands through interactions, e.g. binding, with the major groove face of a nucleotide or nucleic acid. As such, RNA ligands comprising modified nucleotides or nucleic acids as described herein decrease interactions with major groove binding partners, and therefore decrease an innate immune response, or expression and secretion of pro-inflammatory cytokines, or both.
  • Example major groove interacting, e.g. binding, partners include, but are not limited to the following nucleases and helicases. Within membranes, TLRs (Toll-like Receptors) 3, 7, and 8 can respond to single- and double-stranded RNAs. Within the cytoplasm, members of the superfamily 2 class of DEX(D/H) helicases and ATPases can sense RNAs to initiate antiviral responses. These helicases include the RIG-I (retinoic acid-inducible gene I) and MDA5 (melanoma differentiation-associated gene 5). Other examples include laboratory of genetics and physiology 2 (LGP2), HIN-200 domain containing proteins, or Helicase-domain containing proteins.
  • Prevention or Reduction of Innate Cellular Immune Response
  • The term “innate immune response” includes a cellular response to exogenous single stranded nucleic acids, generally of viral or bacterial origin, which involves the induction of cytokine expression and release, particularly the interferons, and cell death. Protein synthesis is also reduced during the innate cellular immune response. While it is advantageous to eliminate the innate immune response in a cell which is triggered by introduction of exogenous nucleic acids, the present disclosure provides modified nucleic acids such as mRNAs that substantially reduce the immune response, including interferon signaling, without entirely eliminating such a response. In some embodiments, the immune response is reduced by 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90%, 95%, 99%, 99.9%, or greater than 99.9% as compared to the immune response induced by a corresponding unmodified nucleic acid. Such a reduction can be measured by expression or activity level of Type 1 interferons or the expression of interferon-regulated genes such as the toll-like receptors (e.g., TLR7 and TLR8). Reduction or lack of induction of innate immune response can also be measured by decreased cell death following one or more administrations of modified RNAs to a cell population; e.g., cell death is 10%, 25%, 50%, 75%, 85%, 90%, 95%, or over 95% less than the cell death frequency observed with a corresponding unmodified nucleic acid. Moreover, cell death may affect fewer than 50%, 40%, 30%, 20%, 10%, 5%, 1%, 0.1%, 0.01% or fewer than 0.01% of cells contacted with the modified nucleic acids.
  • In some embodiments, the modified nucleic acids, including polynucleotides and/or mRNA molecules are modified in such a way as to not induce, or induce only minimally, an immune response by the recipient cell or organism. Such evasion or avoidance of an immune response trigger or activation is a novel feature of the modified polynucleotides of the present invention.
  • The present disclosure provides for the repeated introduction (e.g., transfection) of modified nucleic acids into a target cell population, e.g., in vitro, ex vivo, or in vivo. The step of contacting the cell population may be repeated one or more times (such as two, three, four, five or more than five times). In some embodiments, the step of contacting the cell population with the modified nucleic acids is repeated a number of times sufficient such that a predetermined efficiency of protein translation in the cell population is achieved. Given the reduced cytotoxicity of the target cell population provided by the nucleic acid modifications, such repeated transfections are achievable in a diverse array of cell types in vitro and/or in vivo.
  • Polypeptide Variants
  • Provided are nucleic acids that encode variant polypeptides, which have a certain identity with a reference polypeptide sequence. The term “identity” as known in the art, refers to a relationship between the sequences of two or more peptides, as determined by comparing the sequences. In the art, “identity” also means the degree of sequence relatedness between peptides, as determined by the number of matches between strings of two or more amino acid residues. “Identity” measures the percent of identical matches between the smaller of two or more sequences with gap alignments (if any) addressed by a particular mathematical model or computer program (i.e., “algorithms”). Identity of related peptides can be readily calculated by known methods. Such methods include, but are not limited to, those described in Computational Molecular Biology, Lesk, A. M., ed., Oxford University Press, New York, 1988; Biocomputing: Informatics and Genome Projects, Smith, D. W., ed., Academic Press, New York, 1993; Computer Analysis of Sequence Data, Part 1, Griffin, A. M., and Griffin, H. G., eds., Humana Press, New Jersey, 1994; Sequence Analysis in Molecular Biology, von Heinje, G., Academic Press, 1987; Sequence Analysis Primer, Gribskov, M. and Devereux, J., eds., M. Stockton Press, New York, 1991; and Carillo et al., SIAM J. Applied Math. 48, 1073 (1988).
  • In some embodiments, the polypeptide variant has the same or a similar activity as the reference polypeptide. Alternatively, the variant has an altered activity (e.g., increased or decreased) relative to a reference polypeptide. Generally, variants of a particular polynucleotide or polypeptide of the present disclosure will have at least about 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, 99% or more sequence identity to that particular reference polynucleotide or polypeptide as determined by sequence alignment programs and parameters described herein and known to those skilled in the art.
  • As recognized by those skilled in the art, protein fragments, functional protein domains, and homologous proteins are also considered to be within the scope of this present disclosure. For example, provided herein is any protein fragment of a reference protein (meaning a polypeptide sequence at least one amino acid residue shorter than a reference polypeptide sequence but otherwise identical) 10, 20, 30, 40, 50, 60, 70, 80, 90, 100 or greater than 100 amino acids in length In another example, any protein that includes a stretch of about 20, about 30, about 40, about 50, or about 100 amino acids which are about 40%, about 50%, about 60%, about 70%, about 80%, about 90%, about 95%, or about 100% identical to any of the sequences described herein can be utilized in accordance with the present disclosure. In certain embodiments, a protein sequence to be utilized in accordance with the present disclosure includes 2, 3, 4, 5, 6, 7, 8, 9, 10, or more mutations as shown in any of the sequences provided or referenced herein.
  • Polypeptide Libraries
  • Also provided are polynucleotide libraries containing nucleoside modifications, wherein the polynucleotides individually contain a first nucleic acid sequence encoding a polypeptide, such as an antibody, protein binding partner, scaffold protein, and other polypeptides known in the art. Preferably, the polynucleotides are mRNA in a form suitable for direct introduction into a target cell host, which in turn synthesizes the encoded polypeptide.
  • In certain embodiments, multiple variants of a protein, each with different amino acid modification(s), are produced and tested to determine the best variant in terms of pharmacokinetics, stability, biocompatibility, and/or biological activity, or a biophysical property such as expression level. Such a library may contain 10, 102, 103, 104, 105, 106, 107, 108, 109, or over 109 possible variants (including substitutions, deletions of one or more residues, and insertion of one or more residues).
  • Polypeptide-Nucleic Acid Complexes
  • Proper protein translation involves the physical aggregation of a number of polypeptides and nucleic acids associated with the mRNA. Provided by the present disclosure are protein-nucleic acid complexes, containing a translatable mRNA having one or more nucleoside modifications (e.g., at least two different nucleoside modifications) and one or more polypeptides bound to the mRNA. Generally, the proteins are provided in an amount effective to prevent or reduce an innate immune response of a cell into which the complex is introduced.
  • Untranslatable Modified Nucleic Acids
  • As described herein, provided are mRNAs having sequences that are substantially not translatable. Such mRNA is effective as a vaccine when administered to a mammalian subject.
  • Also provided are modified nucleic acids that contain one or more noncoding regions. Such modified nucleic acids are generally not translated, but are capable of binding to and sequestering one or more translational machinery component such as a ribosomal protein or a transfer RNA (tRNA), thereby effectively reducing protein expression in the cell. The modified nucleic acid may contain a small nucleolar RNA (sno-RNA), micro RNA (miRNA), small interfering RNA (siRNA) or Piwi-interacting RNA (piRNA).
  • Synthesis of Modified Nucleic Acids
  • Nucleic acids for use in accordance with the present disclosure may be prepared according to any available technique including, but not limited to chemical synthesis, enzymatic synthesis, which is generally termed in vitro transcription, enzymatic or chemical cleavage of a longer precursor, etc. Methods of synthesizing RNAs are known in the art (see, e.g., Gait, M. J. (ed.) Oligonucleotide synthesis: a practical approach, Oxford [Oxfordshire], Washington, D.C.: IRL Press, 1984; and Herdewijn, P. (ed.) Oligonucleotide synthesis: methods and applications, Methods in Molecular Biology, v. 288 (Clifton, N.J.) Totowa, N.J.: Humana Press, 2005; both of which are incorporated herein by reference).
  • Modified nucleic acids need not be uniformly modified along the entire length of the molecule. Different nucleotide modifications and/or backbone structures may exist at various positions in the nucleic acid. One of ordinary skill in the art will appreciate that the nucleotide analogs or other modification(s) may be located at any position(s) of a nucleic acid such that the function of the nucleic acid is not substantially decreased. A modification may also be a 5′ or 3′ terminal modification. The nucleic acids may contain at a minimum one and at maximum 100% modified nucleotides, or any intervening percentage, such as at least 5% modified nucleotides, at least 10% modified nucleotides, at least 25% modified nucleotides, at least 50% modified nucleotides, at least 80% modified nucleotides, or at least 90% modified nucleotides. For example, the nucleic acids may contain a modified pyrimidine such as uracil or cytosine. In some embodiments, at least 5%, at least 10%, at least 25%, at least 50%, at least 80%, at least 90% or 100% of the uracil in the nucleic acid is replaced with a modified uracil. The modified uracil can be replaced by a compound having a single unique structure, or can be replaced by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures). In some embodiments, at least 5%, at least 10%, at least 25%, at least 50%, at least 80%, at least 90% or 100% of the cytosine in the nucleic acid is replaced with a modified cytosine. The modified cytosine can be replaced by a compound having a single unique structure, or can be replaced by a plurality of compounds having different structures (e.g., 2, 3, 4 or more unique structures).
  • Generally, the shortest length of a modified mRNA of the present disclosure can be the length of an mRNA sequence that is sufficient to encode for a dipeptide. In another embodiment, the length of the mRNA sequence is sufficient to encode for a tripeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a tetrapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a pentapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a hexapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a heptapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for an octapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a nonapeptide. In another embodiment, the length of an mRNA sequence is sufficient to encode for a decapeptide.
  • Examples of dipeptides that the modified nucleic acid sequences can encode for include, but are not limited to, carnosine and anserine.
  • In a further embodiment, the mRNA is greater than 30 nucleotides in length. In another embodiment, the RNA molecule is greater than 35 nucleotides in length. In another embodiment, the length is at least 40 nucleotides. In another embodiment, the length is at least 45 nucleotides. In another embodiment, the length is at least 55 nucleotides. In another embodiment, the length is at least 60 nucleotides. In another embodiment, the length is at least 60 nucleotides. In another embodiment, the length is at least 80 nucleotides. In another embodiment, the length is at least 90 nucleotides. In another embodiment, the length is at least 100 nucleotides. In another embodiment, the length is at least 120 nucleotides. In another embodiment, the length is at least 140 nucleotides. In another embodiment, the length is at least 160 nucleotides. In another embodiment, the length is at least 180 nucleotides. In another embodiment, the length is at least 200 nucleotides. In another embodiment, the length is at least 250 nucleotides. In another embodiment, the length is at least 300 nucleotides. In another embodiment, the length is at least 350 nucleotides. In another embodiment, the length is at least 400 nucleotides. In another embodiment, the length is at least 450 nucleotides. In another embodiment, the length is at least 500 nucleotides. In another embodiment, the length is at least 600 nucleotides. In another embodiment, the length is at least 700 nucleotides. In another embodiment, the length is at least 800 nucleotides. In another embodiment, the length is at least 900 nucleotides. In another embodiment, the length is at least 1000 nucleotides. In another embodiment, the length is at least 1100 nucleotides. In another embodiment, the length is at least 1200 nucleotides. In another embodiment, the length is at least 1300 nucleotides. In another embodiment, the length is at least 1400 nucleotides. In another embodiment, the length is at least 1500 nucleotides. In another embodiment, the length is at least 1600 nucleotides. In another embodiment, the length is at least 1800 nucleotides. In another embodiment, the length is at least 2000 nucleotides. In another embodiment, the length is at least 2500 nucleotides. In another embodiment, the length is at least 3000 nucleotides. In another embodiment, the length is at least 4000 nucleotides. In another embodiment, the length is at least 5000 nucleotides, or greater than 5000 nucleotides.
  • For example, the modified nucleic acids described herein can be prepared using methods that are known to those skilled in the art of nucleic acid synthesis.
  • In some embodiments, the present disclosure provides methods, e.g., enzymatic, of preparing a nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove binding partner with the nucleic acid sequence, wherein the nucleic acid sequence comprises a compound of Formula XI-a:
  • Figure US20130123481A1-20130516-C00149
  • wherein:
  • the nucleotide has decreased binding affinity to the major groove binding partner;
  • Figure US20130123481A1-20130516-P00002
    denotes an optional double bond;
  • — denotes an optional single bond;
  • U is O, S, —NRa—, or —CRaRb— when
    Figure US20130123481A1-20130516-P00002
    denotes a single bond, or U is —CRa— when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH2, —SH, an amino acid, a peptide comprising 2 to 12 amino acids;
  • X is O or S;
  • each of Y1 is independently selected from —ORa1, —NRa1Rb1, and —SRa1;
  • each of Y2 and Y3 are independently selected from O, —CRaRb—, NRc, S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl;
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • Ra1 and Rb1 are each independently H or a counterion;
  • —ORc1 is OH at a pH of about 1 or —ORc1 is O at physiological pH; and B is nucleobase;
  • provided that the ring encompassing the variables A, B, D, U, Z, Y2 and Y3 cannot be ribose the method comprising reacting a compound of Formula XIII:
  • Figure US20130123481A1-20130516-C00150
  • with an RNA polymerase, and a cDNA template.
  • In some embodiments, the reaction is repeated from 1 to about 7,000 times.
  • In some embodiments, B is a nucleobase of Formula XII-a, XII-b, or XII-c:
  • Figure US20130123481A1-20130516-C00151
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes a single or double bond;
  • X is O or S;
  • U and W are each independently C or N;
  • V is O, S, C or N;
  • wherein when V is C then R1 is H, C1-6 alkyl, C1-6 alkenyl, C1-6 alkynyl, halo, or —ORc, wherein C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl are each optionally substituted with —OH, —NRaRb, —SH, —C(O)Rc, —C(O)ORc, —NHC(O)Rc, or —NHC(O)ORc;
  • and wherein when V is O, S, or N then R1 is absent;
  • R2 is H, —ORc, —SRc, —NRaRb, or halo;
  • or when V is C then R1 and R2 together with the carbon atoms to which they are attached can form a 5- or 6-membered ring optionally substituted with 1-4 substituents selected from halo, —OH, —SH, —NRaRb, C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl, C1-20 alkoxy, or C1-20 thioalkyl;
  • R3 is H or C1-20 alkyl;
    Figure US20130123481A1-20130516-P00002
  • R4 is H or C1-20 alkyl; wherein when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond then R4 is absent, or N—R4 taken together, forms a positively charged N substituted with C1-20 alkyl;
  • Ra and Rb are each independently H, C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl, or C6-20 aryl; and
  • Rc is H, C1-20 alkyl, C2-20 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • In some embodiments, B is a nucleobase of Formula XII-a1, XII-a2, XII-a3, XII-a4, or XII-a5:
  • Figure US20130123481A1-20130516-C00152
  • In some embodiments, the methods further comprise a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • In some embodiments, the nucleobase is a pyrimidine or derivative thereof.
  • In another aspect, the present disclosure provides for methods of amplifying a nucleic acid sequence comprising a nucleotide that disrupts binding of a major groove binding partner with the nucleic acid sequence, the method comprising:
  • reacting a compound of Formula XI-d:
  • Figure US20130123481A1-20130516-C00153
  • wherein:
  • the nucleotide has decreased binding affinity to the major groove binding partner;
  • Figure US20130123481A1-20130516-P00002
    denotes a single or a double bond;
  • — denotes an optional single bond;
  • U is O, S, —NRa—, or —CRaRb— when
    Figure US20130123481A1-20130516-P00002
    denotes a single bond, or U is —CRa— when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond;
  • Z is H, C1-12 alkyl, or C6-20 aryl, or Z is absent when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond; and
  • Z can be —CRaRb— and form a bond with A;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH2, —SH, an amino acid, or a peptide comprising 1 to 12 amino acids;
  • X is O or S;
  • each of Y1 is independently selected from —ORa1, —NRa1Rb1, and —SRa1;
  • each of Y2 and Y3 are independently selected from O, —CRaRb—, NRc, S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • n is 0, 1, 2, or 3;
  • m is 0, 1, 2 or 3;
  • B is nucleobase;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl;
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • Ra1 and Rb1 are each independently H or a counterion; and
  • —ORc1 is OH at a pH of about 1 or —OR11 is O at physiological pH;
  • provided that the ring encompassing the variables A, B, D, U, Z, Y2 and Y3 cannot be ribose with a primer, a cDNA template, and an RNA polymerase.
  • In some embodiments, B is a nucleobase of Formula XII-a, XII-b, or XII-c:
  • Figure US20130123481A1-20130516-C00154
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes a single or double bond;
  • X is O or S;
  • U and W are each independently C or N;
  • V is O, S, C or N;
  • wherein when V is C then R1 is H, C1-6 alkyl, C1-6 alkenyl, C1-6 alkynyl, halo, or —ORc, wherein C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl are each optionally substituted with —OH, —NRaRb, —SH, —C(O)Rc, —C(O)ORc, —NHC(O)Rc, or —NHC(O)ORc;
  • and wherein when V is O, S, or N then R1 is absent;
  • R2 is H, —ORc, —SRc, —NRaRb, or halo;
  • or when V is C then R1 and R2 together with the carbon atoms to which they are attached can form a 5- or 6-membered ring optionally substituted with 1-4 substituents selected from halo, —OH, —SH, —NRaRb, C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl, C1-20 alkoxy, or C1-20 thioalkyl;
  • R3 is H or C1-20 alkyl;
  • R4 is H or C1-20 alkyl; wherein when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond then R4 is absent, or N—R4 taken together, forms a positively charged N substituted with C1-20 alkyl;
  • Ra and Rb are each independently H, C1-20 alkyl, C2-20 alkenyl, C2-20 alkynyl, or C6-20 aryl; and
  • Rc is H, C1-20 alkyl, C2-20 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • In some embodiments, B is a nucleobase of Formula XII-a1, XII-a2, XII-a3, XII-a4, or XII-a5:
  • Figure US20130123481A1-20130516-C00155
  • In some embodiments, the methods further comprise a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • In some embodiments, the nucleobase is a pyrimidine or derivative thereof.
  • In some embodiments, the present disclosure provides for methods of synthesizing a pharmaceutical nucleic acid, comprising the steps of:
  • a) providing a complementary deoxyribonucleic acid (cDNA) that encodes a pharmaceutical protein of interest;
  • selecting a nucleotide that is known to disrupt a binding of a major groove binding partner with a nucleic acid, wherein the nucleotide has decreased binding affinity to the major groove binding partner; and
  • c) contacting the provided cDNA and the selected nucleotide with an RNA polymerase, under conditions such that the pharmaceutical nucleic acid is synthesized.
  • In further embodiments, the pharmaceutical nucleic acid is a ribonucleic acid (RNA).
  • In still a further aspect of the present disclosure, the modified nucleic acids can be prepared using solid phase synthesis methods.
  • In some embodiments, the present disclosure provides methods of synthesizing a nucleic acid comprising a compound of Formula XI-a:
  • Figure US20130123481A1-20130516-C00156
  • wherein:
  • Figure US20130123481A1-20130516-P00002
    denotes an optional double bond;
  • — denotes an optional single bond;
  • U is O, S, —NRa—, or —CRaRb— when
    Figure US20130123481A1-20130516-P00002
    denotes a single bond, or U is —CRa— when
    Figure US20130123481A1-20130516-P00002
    denotes a double bond;
  • A is H, OH, phosphoryl, pyrophosphate, sulfate, —NH2, —SH, an amino acid, a peptide comprising 2 to 12 amino acids;
  • X is O or S;
  • each of Y1 is independently selected from —ORa1, —NRa1Rb1, and —SRa;
  • each of Y2 and Y3 are independently selected from O, —CRaRb—, NRc, S or a linker comprising one or more atoms selected from the group consisting of C, O, N, and S;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl;
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group;
  • Ra1 and Rb1 are each independently H or a counterion;
  • —ORc1 is OH at a pH of about 1 or —ORc1 is O at physiological pH; and
  • B is nucleobase;
  • provided that the ring encompassing the variables A, B, U, Z, Y2 and Y3 cannot be ribose;
  • comprising:
  • a) reacting a nucleotide of Formula XIII-a:
  • Figure US20130123481A1-20130516-C00157
  • with a phosphoramidite compound of Formula XIII-b:
  • Figure US20130123481A1-20130516-C00158
  • wherein:
    Figure US20130123481A1-20130516-P00003
    denotes a solid support; and
  • P1, P2 and P3 are each independently suitable protecting groups;
  • to provide a nucleic acid of Formula XIV-a:
  • Figure US20130123481A1-20130516-C00159
  • XIV-a and b) oxidizing or sulfurizing the nucleic acid of Formula XIV-a to yield a nucleic acid of Formula XIVb:
  • Figure US20130123481A1-20130516-C00160
  • and c) removing the protecting groups to yield the nucleic acid of Formula XI-a.
  • In some embodiments, the methods further comprise a nucleotide selected from the group consisting of adenosine, cytosine, guanosine, and uracil.
  • In some embodiments, B is a nucleobase of Formula XIII:
  • Figure US20130123481A1-20130516-C00161
  • wherein:
  • V is N or positively charged NRc;
  • R3 is NRcRd, —ORa, or —SRa;
  • R4 is H or can optionally form a bond with Y3;
  • R5 is H, —NRcRd, or —ORa;
  • Ra and Rb are each independently H, C1-12 alkyl, C2-12 alkenyl, C2-12 alkynyl, or C6-20 aryl; and
  • Rc is H, C1-12 alkyl, C2-12 alkenyl, phenyl, benzyl, a polyethylene glycol group, or an amino-polyethylene glycol group.
  • In some embodiments, steps a) and b) are repeated from 1 to about 10,000 times.
  • Uses of Modified Nucleic Acids Therapeutic Agents
  • The modified nucleic acids described herein can be used as therapeutic agents. For example, a modified nucleic acid described herein can be administered to an animal or subject, wherein the modified nucleic acid is translated in vivo to produce a therapeutic peptide in the animal or subject. Accordingly, provided herein are compositions, methods, kits, and reagents for treatment or prevention of disease or conditions in humans and other mammals. The active therapeutic agents of the present disclosure include modified nucleic acids, cells containing modified nucleic acids or polypeptides translated from the modified nucleic acids, polypeptides translated from modified nucleic acids, cells contacted with cells containing modified nucleic acids or polypeptides translated from the modified nucleic acids, tissues containing cells containing modified nucleic acids and organs containing tissues containing cells containing modified nucleic acids.
  • Provided are methods of inducing translation of a synthetic or recombinant polynucleotide to produce a polypeptide in a cell population using the modified nucleic acids described herein. Such translation can be in vivo, ex vivo, in culture, or in vitro. The cell population is contacted with an effective amount of a composition containing a nucleic acid that has at least one nucleoside modification, and a translatable region encoding the polypeptide. The population is contacted under conditions such that the nucleic acid is localized into one or more cells of the cell population and the recombinant polypeptide is translated in the cell from the nucleic acid.
  • An effective amount of the composition is provided based, at least in part, on the target tissue, target cell type, means of administration, physical characteristics of the nucleic acid (e.g., size, and extent of modified nucleosides), and other determinants. In general, an effective amount of the composition provides efficient protein production in the cell, preferably more efficient than a composition containing a corresponding unmodified nucleic acid. Increased efficiency may be demonstrated by increased cell transfection (i.e., the percentage of cells transfected with the nucleic acid), increased protein translation from the nucleic acid, decreased nucleic acid degradation (as demonstrated, e.g., by increased duration of protein translation from a modified nucleic acid), or reduced innate immune response of the host cell or improve therapeutic utility.
  • Aspects of the present disclosure are directed to methods of inducing in vivo translation of a recombinant polypeptide in a mammalian subject in need thereof. Therein, an effective amount of a composition containing a nucleic acid that has at least one nucleoside modification and a translatable region encoding the polypeptide is administered to the subject using the delivery methods described herein. The nucleic acid is provided in an amount and under other conditions such that the nucleic acid is localized into a cell or cells of the subject and the recombinant polypeptide is translated in the cell from the nucleic acid. The cell in which the nucleic acid is localized, or the tissue in which the cell is present, may be targeted with one or more than one rounds of nucleic acid administration.
  • Other aspects of the present disclosure relate to transplantation of cells containing modified nucleic acids to a mammalian subject. Administration of cells to mammalian subjects is known to those of ordinary skill in the art, such as local implantation (e.g., topical or subcutaneous administration), organ delivery or systemic injection (e.g., intravenous injection or inhalation), as is the formulation of cells in pharmaceutically acceptable carrier. Compositions containing modified nucleic acids are formulated for administration intramuscularly, transarterially, intraperitoneally, intravenously, intranasally, subcutaneously, endoscopically, transdermally, or intrathecally. In some embodiments, the composition is formulated for extended release.
  • The subject to whom the therapeutic agent is administered suffers from or is at risk of developing a disease, disorder, or deleterious condition. Provided are methods of identifying, diagnosing, and classifying subjects on these bases, which may include clinical diagnosis, biomarker levels, genome-wide association studies (GWAS), and other methods known in the art.
  • In certain embodiments, the administered modified nucleic acid directs production of one or more recombinant polypeptides that provide a functional activity which is substantially absent in the cell in which the recombinant polypeptide is translated. For example, the missing functional activity may be enzymatic, structural, or gene regulatory in nature.
  • In other embodiments, the administered modified nucleic acid directs production of one or more recombinant polypeptides that replace a polypeptide (or multiple polypeptides) that is substantially absent in the cell in which the recombinant polypeptide is translated. Such absence may be due to genetic mutation of the encoding gene or regulatory pathway thereof. In other embodiments, the administered modified nucleic acid directs production of one or more recombinant polypeptides to supplement the amount of polypeptide (or multiple polypeptides) that is present in the cell in which the recombinant polypeptide is translated. Alternatively, the recombinant polypeptide functions to antagonize the activity of an endogenous protein present in, on the surface of, or secreted from the cell. Usually, the activity of the endogenous protein is deleterious to the subject, for example, due to mutation of the endogenous protein resulting in altered activity or localization. Additionally, the recombinant polypeptide antagonizes, directly or indirectly, the activity of a biological moiety present in, on the surface of, or secreted from the cell. Examples of antagonized biological moieties include lipids (e.g., cholesterol), a lipoprotein (e.g., low density lipoprotein), a nucleic acid, a carbohydrate, or a small molecule toxin.
  • The recombinant proteins described herein are engineered for localization within the cell, potentially within a specific compartment such as the nucleus, or are engineered for secretion from the cell or translocation to the plasma membrane of the cell.
  • As described herein, a useful feature of the modified nucleic acids of the present disclosure is the capacity to reduce, evade, avoid or eliminate the innate immune response of a cell to an exogenous nucleic acid. Provided are methods for performing the titration, reduction or elimination of the immune response in a cell or a population of cells. In some embodiments, the cell is contacted with a first composition that contains a first dose of a first exogenous nucleic acid including a translatable region and at least one nucleoside modification, and the level of the innate immune response of the cell to the first exogenous nucleic acid is determined. Subsequently, the cell is contacted with a second composition, which includes a second dose of the first exogenous nucleic acid, the second dose containing a lesser amount of the first exogenous nucleic acid as compared to the first dose. Alternatively, the cell is contacted with a first dose of a second exogenous nucleic acid. The second exogenous nucleic acid may contain one or more modified nucleosides, which may be the same or different from the first exogenous nucleic acid or, alternatively, the second exogenous nucleic acid may not contain modified nucleosides. The steps of contacting the cell with the first composition and/or the second composition may be repeated one or more times. Additionally, efficiency of protein production (e.g., protein translation) in the cell is optionally determined, and the cell may be re-transfected with the first and/or second composition repeatedly until a target protein production efficiency is achieved.
  • Therapeutics for Diseases and Conditions
  • Provided are methods for treating or preventing a symptom of diseases characterized by missing or aberrant protein activity, by replacing the missing protein activity or overcoming the aberrant protein activity. Because of the rapid initiation of protein production following introduction of modified mRNAs, as compared to viral DNA vectors, the compounds of the present disclosure are particularly advantageous in treating acute diseases such as sepsis, stroke, and myocardial infarction. Moreover, the lack of transcriptional regulation of the modified mRNAs of the present disclosure is advantageous in that accurate titration of protein production is achievable. Multiple diseases are characterized by missing (or substantially diminished such that proper protein function does not occur) protein activity. Such proteins may not be present, are present in very low quantities or are essentially non-functional. The present disclosure provides a method for treating such conditions or diseases in a subject by introducing nucleic acid or cell-based therapeutics containing the modified nucleic acids provided herein, wherein the modified nucleic acids encode for a protein that replaces the protein activity missing from the target cells of the subject.
  • Diseases characterized by dysfunctional or aberrant protein activity include, but not limited to, cancer and proliferative diseases, genetic diseases (e.g., cystic fibrosis), autoimmune diseases, diabetes, neurodegenerative diseases, cardiovascular diseases, and metabolic diseases. The present disclosure provides a method for treating such conditions or diseases in a subject by introducing nucleic acid or cell-based therapeutics containing the modified nucleic acids provided herein, wherein the modified nucleic acids encode for a protein that antagonizes or otherwise overcomes the aberrant protein activity present in the cell of the subject.
  • Specific examples of a dysfunctional protein are the missense or nonsense mutation variants of the cystic fibrosis transmembrane conductance regulator (CFTR) gene, which produce a dysfunctional or nonfunctional, respectively, protein variant of CFTR protein, which causes cystic fibrosis.
  • Thus, provided are methods of treating cystic fibrosis in a mammalian subject by contacting a cell of the subject with a modified nucleic acid having a translatable region that encodes a functional CFTR polypeptide, under conditions such that an effective amount of the CTFR polypeptide is present in the cell. Preferred target cells are epithelial cells, such as the lung, and methods of administration are determined in view of the target tissue; i.e., for lung delivery, the RNA molecules are formulated for administration by inhalation.
  • In another embodiment, the present disclosure provides a method for treating hyperlipidemia in a subject, by introducing into a cell population of the subject with a modified mRNA molecule encoding Sortilin, a protein recently characterized by genomic studies, thereby ameliorating the hyperlipidemia in a subject. The SORT1 gene encodes a trans-Golgi network (TGN) transmembrane protein called Sortilin. Genetic studies have shown that one of five individuals has a single nucleotide polymorphism, rs12740374, in the 1p13 locus of the SORT1 gene that predisposes them to having low levels of low-density lipoprotein (LDL) and very-low-density lipoprotein (VLDL). Each copy of the minor allele, present in about 30% of people, alters LDL cholesterol by 8 mg/dL, while two copies of the minor allele, present in about 5% of the population, lowers LDL cholesterol 16 mg/dL. Carriers of the minor allele have also been shown to have a 40% decreased risk of myocardial infarction. Functional in vivo studies in mice describes that overexpression of SORT1 in mouse liver tissue led to significantly lower LDL-cholesterol levels, as much as 80% lower, and that silencing SORT1 increased LDL cholesterol approximately 200% (Musunuru K et al. From noncoding variant to phenotype via SORT1 at the 1p13 cholesterol locus. Nature 2010; 466: 714-721).
  • Methods of Cellular Nucleic Acid Delivery
  • Methods of the present disclosure enhance nucleic acid delivery into a cell population, in vivo, ex vivo, or in culture. For example, a cell culture containing a plurality of host cells (e.g., eukaryotic cells such as yeast or mammalian cells) is contacted with a composition that contains an enhanced nucleic acid having at least one nucleoside modification and, optionally, a translatable region. The composition also generally contains a transfection reagent or other compound that increases the efficiency of enhanced nucleic acid uptake into the host cells. The enhanced nucleic acid exhibits enhanced retention in the cell population, relative to a corresponding unmodified nucleic acid. The retention of the enhanced nucleic acid is greater than the retention of the unmodified nucleic acid. In some embodiments, it is at least about 50%, 75%, 90%, 95%, 100%, 150%, 200% or more than 200% greater than the retention of the unmodified nucleic acid. Such retention advantage may be achieved by one round of transfection with the enhanced nucleic acid, or may be obtained following repeated rounds of transfection.
  • In some embodiments, the enhanced nucleic acid is delivered to a target cell population with one or more additional nucleic acids. Such delivery may be at the same time, or the enhanced nucleic acid is delivered prior to delivery of the one or more additional nucleic acids. The additional one or more nucleic acids may be modified nucleic acids or unmodified nucleic acids. It is understood that the initial presence of the enhanced nucleic acids does not substantially induce an innate immune response of the cell population and, moreover, that the innate immune response will not be activated by the later presence of the unmodified nucleic acids. In this regard, the enhanced nucleic acid may not itself contain a translatable region, if the protein desired to be present in the target cell population is translated from the unmodified nucleic acids.
  • Targeting Moieties
  • In embodiments of the present disclosure, modified nucleic acids are provided to express a protein-binding partner or a receptor on the surface of the cell, which functions to target the cell to a specific tissue space or to interact with a specific moiety, either in vivo or in vitro. Suitable protein-binding partners include antibodies and functional fragments thereof, scaffold proteins, or peptides. Additionally, modified nucleic acids can be employed to direct the synthesis and extracellular localization of lipids, carbohydrates, or other biological moieties.
  • Permanent Gene Expression Silencing
  • A method for epigenetically silencing gene expression in a mammalian subject, comprising a nucleic acid where the translatable region encodes a polypeptide or polypeptides capable of directing sequence-specific histone H3 methylation to initiate heterochromatin formation and reduce gene transcription around specific genes for the purpose of silencing the gene. For example, a gain-of-function mutation in the Janus Kinase 2 gene is responsible for the family of Myeloproliferative Diseases.
  • Delivery of a Detectable or Therapeutic Agent to a Biological Target
  • The modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used in a number of different scenarios in which delivery of a substance (the “payload”) to a biological target is desired, for example delivery of detectable substances for detection of the target, or delivery of a therapeutic agent. Detection methods can include both imaging in vitro and in vivo imaging methods, e.g., immunohistochemistry, bioluminescence imaging (BLI), Magnetic Resonance Imaging (MRI), positron emission tomography (PET), electron microscopy, X-ray computed tomography, Raman imaging, optical coherence tomography, absorption imaging, thermal imaging, fluorescence reflectance imaging, fluorescence microscopy, fluorescence molecular tomographic imaging, nuclear magnetic resonance imaging, X-ray imaging, ultrasound imaging, photoacoustic imaging, lab assays, or in any situation where tagging/staining/imaging is required.
  • For example, the modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used in reprogramming induced pluripotent stem cells (iPS cells), which can then be used to directly track cells that are transfected compared to total cells in the cluster. In another example, a drug that is attached to the modified nucleic acid via a linker and is fluorescently labeled can be used to track the drug in vivo, e.g. intracellularly. Other examples include the use of a modified nucleic acid in reversible drug delivery into cells.
  • The modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used in intracellular targeting of a payload, e.g., detectable or therapeutic agent, to specific organelle. Exemplary intracellular targets can include the nuclear localization for advanced mRNA processing, or a nuclear localization sequence (NLS) linked to the mRNA containing an inhibitor.
  • In addition, the modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used to deliver therapeutic agents to cells or tissues, e.g., in living animals. For example, the modified nucleosides, modified nucleotides, and modified nucleic acids described herein can be used to deliver highly polar chemotherapeutics agents to kill cancer cells. The modified nucleic acids attached to the therapeutic agent through a linker can facilitate member permeation allowing the therapeutic agent to travel into a cell to reach an intracellular target.
  • In another example, the modified nucleosides, modified nucleotides, and modified nucleic acids can be attached to a viral inhibitory peptide (VIP) through a cleavable linker. The cleavable linker will release the VIP and dye into the cell. In another example, the modified nucleosides, modified nucleotides, and modified nucleic acids can be attached through the linker to a ADP-ribosylate, which is responsible for the actions of some bacterial toxins, such as cholera toxin, diphtheria toxin, and pertussis toxin. These toxin proteins are ADP-ribosyltransferases that modify target proteins in human cells. For example, cholera toxin ADP-ribosylates G proteins, causing massive fluid secretion from the lining of the small intestine, resulting in life-threatening diarrhea.
  • Pharmaceutical Compositions
  • The present disclosure provides proteins generated from modified mRNAs. Pharmaceutical compositions may optionally comprise one or more additional therapeutically active substances. In accordance with some embodiments, a method of administering pharmaceutical compositions comprising a modified nucleic acide encoding one or more proteins to be delivered to a subject in need thereof is provided. In some embodiments, compositions are administered to humans. For the purposes of the present disclosure, the phrase “active ingredient” generally refers to a protein, protein encoding or protein-containing complex as described herein.
  • Although the descriptions of pharmaceutical compositions provided herein are principally directed to pharmaceutical compositions which are suitable for administration to humans, it will be understood by the skilled artisan that such compositions are generally suitable for administration to animals of all sorts. Modification of pharmaceutical compositions suitable for administration to humans in order to render the compositions suitable for administration to various animals is well understood, and the ordinarily skilled veterinary pharmacologist can design and/or perform such modification with merely ordinary, if any, experimentation. Subjects to which administration of the pharmaceutical compositions is contemplated include, but are not limited to, humans and/or other primates; mammals, including commercially relevant mammals such as cattle, pigs, horses, sheep, cats, dogs, mice, and/or rats; and/or birds, including commercially relevant birds such as chickens, ducks, geese, and/or turkeys.
  • Formulations of the pharmaceutical compositions described herein may be prepared by any method known or hereafter developed in the art of pharmacology. In general, such preparatory methods include the step of bringing the active ingredient into association with an excipient and/or one or more other accessory ingredients, and then, if necessary and/or desirable, shaping and/or packaging the product into a desired single- or multi-dose unit.
  • A pharmaceutical composition in accordance with the present disclosure may be prepared, packaged, and/or sold in bulk, as a single unit dose, and/or as a plurality of single unit doses. As used herein, a “unit dose” is discrete amount of the pharmaceutical composition comprising a predetermined amount of the active ingredient. The amount of the active ingredient is generally equal to the dosage of the active ingredient which would be administered to a subject and/or a convenient fraction of such a dosage such as, for example, one-half or one-third of such a dosage.
  • Relative amounts of the active ingredient, the pharmaceutically acceptable excipient, and/or any additional ingredients in a pharmaceutical composition in accordance with the present disclosure will vary, depending upon the identity, size, and/or condition of the subject treated and further depending upon the route by which the composition is to be administered. By way of example, the composition may comprise between 0.1% and 100% (w/w) active ingredient.
  • Pharmaceutical formulations may additionally comprise a pharmaceutically acceptable excipient, which, as used herein, includes any and all solvents, dispersion media, diluents, or other liquid vehicles, dispersion or suspension aids, surface active agents, isotonic agents, thickening or emulsifying agents, preservatives, solid binders, lubricants and the like, as suited to the particular dosage form desired. Remington's The Science and Practice of Pharmacy, 21st Edition, A. R. Gennaro (Lippincott, Williams & Wilkins, Baltimore, Md., 2006; incorporated herein by reference) discloses various excipients used in formulating pharmaceutical compositions and known techniques for the preparation thereof. Except insofar as any conventional excipient medium is incompatible with a substance or its derivatives, such as by producing any undesirable biological effect or otherwise interacting in a deleterious manner with any other component(s) of the pharmaceutical composition, its use is contemplated to be within the scope of this present disclosure.
  • In some embodiments, a pharmaceutically acceptable excipient is at least 95%, at least 96%, at least 97%, at least 98%, at least 99%, or 100% pure. In some embodiments, an excipient is approved for use in humans and for veterinary use. In some embodiments, an excipient is approved by United States Food and Drug Administration. In some embodiments, an excipient is pharmaceutical grade. In some embodiments, an excipient meets the standards of the United States Pharmacopoeia (USP), the European Pharmacopoeia (EP), the British Pharmacopoeia, and/or the International Pharmacopoeia.
  • Pharmaceutically acceptable excipients used in the manufacture of pharmaceutical compositions include, but are not limited to, inert diluents, dispersing and/or granulating agents, surface active agents and/or emulsifiers, disintegrating agents, binding agents, preservatives, buffering agents, lubricating agents, and/or oils. Such excipients may optionally be included in pharmaceutical formulations. Excipients such as cocoa butter and suppository waxes, coloring agents, coating agents, sweetening, flavoring, and/or perfuming agents can be present in the composition, according to the judgment of the formulator.
  • Exemplary diluents include, but are not limited to, calcium carbonate, sodium carbonate, calcium phosphate, dicalcium phosphate, calcium sulfate, calcium hydrogen phosphate, sodium phosphate lactose, sucrose, cellulose, microcrystalline cellulose, kaolin, mannitol, sorbitol, inositol, sodium chloride, dry starch, cornstarch, powdered sugar, etc., and/or combinations thereof.
  • Exemplary granulating and/or dispersing agents include, but are not limited to, potato starch, corn starch, tapioca starch, sodium starch glycolate, clays, alginic acid, guar gum, citrus pulp, agar, bentonite, cellulose and wood products, natural sponge, cation-exchange resins, calcium carbonate, silicates, sodium carbonate, cross-linked poly(vinyl-pyrrolidone) (crospovidone), sodium carboxymethyl starch (sodium starch glycolate), carboxymethyl cellulose, cross-linked sodium carboxymethyl cellulose (croscarmellose), methylcellulose, pregelatinized starch (starch 1500), microcrystalline starch, water insoluble starch, calcium carboxymethyl cellulose, magnesium aluminum silicate (Veegum), sodium lauryl sulfate, quaternary ammonium compounds, etc., and/or combinations thereof.
  • Exemplary surface active agents and/or emulsifiers include, but are not limited to, natural emulsifiers (e.g. acacia, agar, alginic acid, sodium alginate, tragacanth, chondrux, cholesterol, xanthan, pectin, gelatin, egg yolk, casein, wool fat, cholesterol, wax, and lecithin), colloidal clays (e.g. bentonite [aluminum silicate] and Veegum® [magnesium aluminum silicate]), long chain amino acid derivatives, high molecular weight alcohols (e.g. stearyl alcohol, cetyl alcohol, oleyl alcohol, triacetin monostearate, ethylene glycol distearate, glyceryl monostearate, and propylene glycol monostearate, polyvinyl alcohol), carbomers (e.g. carboxy polymethylene, polyacrylic acid, acrylic acid polymer, and carboxyvinyl polymer), carrageenan, cellulosic derivatives (e.g. carboxymethylcellulose sodium, powdered cellulose, hydroxymethyl cellulose, hydroxypropyl cellulose, hydroxypropyl methylcellulose, methylcellulose), sorbitan fatty acid esters (e.g. polyoxyethylene sorbitan monolaurate [Tween® 20], polyoxyethylene sorbitan [Tween® 60], polyoxyethylene sorbitan monooleate [Tween® 80], sorbitan monopalmitate [Span® 40], sorbitan monostearate [Span® 60], sorbitan tristearate [Span® 65], glyceryl monooleate, sorbitan monooleate [Span® 80]), polyoxyethylene esters (e.g. polyoxyethylene monostearate [Myrj® 45], polyoxyethylene hydrogenated castor oil, polyethoxylated castor oil, polyoxymethylene stearate, and Solutol®), sucrose fatty acid esters, polyethylene glycol fatty acid esters (e.g. Cremophor®), polyoxyethylene ethers, (e.g. polyoxyethylene lauryl ether [Brij® 30]), poly(vinyl-pyrrolidone), diethylene glycol monolaurate, triethanolamine oleate, sodium oleate, potassium oleate, ethyl oleate, oleic acid, ethyl laurate, sodium lauryl sulfate, Pluronic®F 68, Poloxamer® 188, cetrimonium bromide, cetylpyridinium chloride, benzalkonium chloride, docusate sodium, etc. and/or combinations thereof.
  • Exemplary binding agents include, but are not limited to, starch (e.g. cornstarch and starch paste); gelatin; sugars (e.g. sucrose, glucose, dextrose, dextrin, molasses, lactose, lactitol, mannitol,); natural and synthetic gums (e.g. acacia, sodium alginate, extract of Irish moss, panwar gum, ghatti gum, mucilage of isapol husks, carboxymethylcellulose, methylcellulose, ethylcellulose, hydroxyethylcellulose, hydroxypropyl cellulose, hydroxypropyl methylcellulose, microcrystalline cellulose, cellulose acetate, poly(vinyl-pyrrolidone), magnesium aluminum silicate (Veegum®), and larch arabogalactan); alginates; polyethylene oxide; polyethylene glycol; inorganic calcium salts; silicic acid; polymethacrylates; waxes; water; alcohol; etc.; and combinations thereof.
  • Exemplary preservatives may include, but are not limited to, antioxidants, chelating agents, antimicrobial preservatives, antifungal preservatives, alcohol preservatives, acidic preservatives, and/or other preservatives. Exemplary antioxidants include, but are not limited to, alpha tocopherol, ascorbic acid, acorbyl palmitate, butylated hydroxyanisole, butylated hydroxytoluene, monothioglycerol, potassium metabisulfite, propionic acid, propyl gallate, sodium ascorbate, sodium bisulfite, sodium metabisulfite, and/or sodium sulfite. Exemplary chelating agents include ethylenediaminetetraacetic acid (EDTA), citric acid monohydrate, disodium edetate, dipotassium edetate, edetic acid, fumaric acid, malic acid, phosphoric acid, sodium edetate, tartaric acid, and/or trisodium edetate. Exemplary antimicrobial preservatives include, but are not limited to, benzalkonium chloride, benzethonium chloride, benzyl alcohol, bronopol, cetrimide, cetylpyridinium chloride, chlorhexidine, chlorobutanol, chlorocresol, chloroxylenol, cresol, ethyl alcohol, glycerin, hexetidine, imidurea, phenol, phenoxyethanol, phenylethyl alcohol, phenylmercuric nitrate, propylene glycol, and/or thimerosal. Exemplary antifungal preservatives include, but are not limited to, butyl paraben, methyl paraben, ethyl paraben, propyl paraben, benzoic acid, hydroxybenzoic acid, potassium benzoate, potassium sorbate, sodium benzoate, sodium propionate, and/or sorbic acid. Exemplary alcohol preservatives include, but are not limited to, ethanol, polyethylene glycol, phenol, phenolic compounds, bisphenol, chlorobutanol, hydroxybenzoate, and/or phenylethyl alcohol. Exemplary acidic preservatives include, but are not limited to, vitamin A, vitamin C, vitamin E, beta-carotene, citric acid, acetic acid, dehydroacetic acid, ascorbic acid, sorbic acid, and/or phytic acid. Other preservatives include, but are not limited to, tocopherol, tocopherol acetate, deteroxime mesylate, cetrimide, butylated hydroxyanisol (BHA), butylated hydroxytoluened (BHT), ethylenediamine, sodium lauryl sulfate (SLS), sodium lauryl ether sulfate (SLES), sodium bisulfite, sodium metabisulfite, potassium sulfite, potassium metabisulfite, Glydant Plus®, Phenonip®, methylparaben, Germall® 115, Germaben® II, Neolone™, Kathon™, and/or Euxyl®.
  • Exemplary buffering agents include, but are not limited to, citrate buffer solutions, acetate buffer solutions, phosphate buffer solutions, ammonium chloride, calcium carbonate, calcium chloride, calcium citrate, calcium glubionate, calcium gluceptate, calcium gluconate, d-gluconic acid, calcium glycerophosphate, calcium lactate, propanoic acid, calcium levulinate, pentanoic acid, dibasic calcium phosphate, phosphoric acid, tribasic calcium phosphate, calcium hydroxide phosphate, potassium acetate, potassium chloride, potassium gluconate, potassium mixtures, dibasic potassium phosphate, monobasic potassium phosphate, potassium phosphate mixtures, sodium acetate, sodium bicarbonate, sodium chloride, sodium citrate, sodium lactate, dibasic sodium phosphate, monobasic sodium phosphate, sodium phosphate mixtures, tromethamine, magnesium hydroxide, aluminum hydroxide, alginic acid, pyrogen-free water, isotonic saline, Ringer's solution, ethyl alcohol, etc., and/or combinations thereof.
  • Exemplary lubricating agents include, but are not limited to, magnesium stearate, calcium stearate, stearic acid, silica, talc, malt, glyceryl behanate, hydrogenated vegetable oils, polyethylene glycol, sodium benzoate, sodium acetate, sodium chloride, leucine, magnesium lauryl sulfate, sodium lauryl sulfate, etc., and combinations thereof.
  • Exemplary oils include, but are not limited to, almond, apricot kernel, avocado, babassu, bergamot, black current seed, borage, cade, camomile, canola, caraway, carnauba, castor, cinnamon, cocoa butter, coconut, cod liver, coffee, corn, cotton seed, emu, eucalyptus, evening primrose, fish, flaxseed, geraniol, gourd, grape seed, hazel nut, hyssop, isopropyl myristate, jojoba, kukui nut, lavandin, lavender, lemon, litsea cubeba, macademia nut, mallow, mango seed, meadowfoam seed, mink, nutmeg, olive, orange, orange roughy, palm, palm kernel, peach kernel, peanut, poppy seed, pumpkin seed, rapeseed, rice bran, rosemary, safflower, sandalwood, sasquana, savoury, sea buckthorn, sesame, shea butter, silicone, soybean, sunflower, tea tree, thistle, tsubaki, vetiver, walnut, and wheat germ oils. Exemplary oils include, but are not limited to, butyl stearate, caprylic triglyceride, capric triglyceride, cyclomethicone, diethyl sebacate, dimethicone 360, isopropyl myristate, mineral oil, octyldodecanol, oleyl alcohol, silicone oil, and/or combinations thereof.
  • Liquid dosage forms for oral and parenteral administration include, but are not limited to, pharmaceutically acceptable emulsions, microemulsions, solutions, suspensions, syrups, and/or elixirs. In addition to active ingredients, liquid dosage forms may comprise inert diluents commonly used in the art such as, for example, water or other solvents, solubilizing agents and emulsifiers such as ethyl alcohol, isopropyl alcohol, ethyl carbonate, ethyl acetate, benzyl alcohol, benzyl benzoate, propylene glycol, 1,3-butylene glycol, dimethylformamide, oils (in particular, cottonseed, groundnut, corn, germ, olive, castor, and sesame oils), glycerol, tetrahydrofurfuryl alcohol, polyethylene glycols and fatty acid esters of sorbitan, and mixtures thereof. Besides inert diluents, oral compositions can include adjuvants such as wetting agents, emulsifying and suspending agents, sweetening, flavoring, and/or perfuming agents. In certain embodiments for parenteral administration, compositions are mixed with solubilizing agents such as Cremophor®, alcohols, oils, modified oils, glycols, polysorbates, cyclodextrins, polymers, and/or combinations thereof.
  • Injectable preparations, for example, sterile injectable aqueous or oleaginous suspensions may be formulated according to the known art using suitable dispersing agents, wetting agents, and/or suspending agents. Sterile injectable preparations may be sterile injectable solutions, suspensions, and/or emulsions in nontoxic parenterally acceptable diluents and/or solvents, for example, as a solution in 1,3-butanediol. Among the acceptable vehicles and solvents that may be employed are water, Ringer's solution, U.S.P., and isotonic sodium chloride solution. Sterile, fixed oils are conventionally employed as a solvent or suspending medium. For this purpose any bland fixed oil can be employed including synthetic mono- or diglycerides. Fatty acids such as oleic acid can be used in the preparation of injectables.
  • Injectable formulations can be sterilized, for example, by filtration through a bacterial-retaining filter, and/or by incorporating sterilizing agents in the form of sterile solid compositions which can be dissolved or dispersed in sterile water or other sterile injectable medium prior to use.
  • In order to prolong the effect of an active ingredient, it is often desirable to slow the absorption of the active ingredient from subcutaneous or intramuscular injection. This may be accomplished by the use of a liquid suspension of crystalline or amorphous material with poor water solubility. The rate of absorption of the drug then depends upon its rate of dissolution which, in turn, may depend upon crystal size and crystalline form. Alternatively, delayed absorption of a parenterally administered drug form is accomplished by dissolving or suspending the drug in an oil vehicle. Injectable depot forms are made by forming microencapsule matrices of the drug in biodegradable polymers such as polylactide-polyglycolide. Depending upon the ratio of drug to polymer and the nature of the particular polymer employed, the rate of drug release can be controlled. Examples of other biodegradable polymers include poly(orthoesters) and poly(anhydrides). Depot injectable formulations are prepared by entrapping the drug in liposomes or microemulsions which are compatible with body tissues.
  • Compositions for rectal or vaginal administration are typically suppositories which can be prepared by mixing compositions with suitable non-irritating excipients such as cocoa butter, polyethylene glycol or a suppository wax which are solid at ambient temperature but liquid at body temperature and therefore melt in the rectum or vaginal cavity and release the active ingredient.
  • Solid dosage forms for oral administration include capsules, tablets, pills, powders, and granules. In such solid dosage forms, an active ingredient is mixed with at least one inert, pharmaceutically acceptable excipient such as sodium citrate or dicalcium phosphate and/or fillers or extenders (e.g. starches, lactose, sucrose, glucose, mannitol, and silicic acid), binders (e.g. carboxymethylcellulose, alginates, gelatin, polyvinylpyrrolidinone, sucrose, and acacia), humectants (e.g. glycerol), disintegrating agents (e.g. agar, calcium carbonate, potato or tapioca starch, alginic acid, certain silicates, and sodium carbonate), solution retarding agents (e.g. paraffin), absorption accelerators (e.g. quaternary ammonium compounds), wetting agents (e.g. cetyl alcohol and glycerol monostearate), absorbents (e.g. kaolin and bentonite clay), and lubricants (e.g. talc, calcium stearate, magnesium stearate, solid polyethylene glycols, sodium lauryl sulfate), and mixtures thereof. In the case of capsules, tablets and pills, the dosage form may comprise buffering agents.
  • Solid compositions of a similar type may be employed as fillers in soft and hard-filled gelatin capsules using such excipients as lactose or milk sugar as well as high molecular weight polyethylene glycols and the like. Solid dosage forms of tablets, dragees, capsules, pills, and granules can be prepared with coatings and shells such as enteric coatings and other coatings well known in the pharmaceutical formulating art. They may optionally comprise opacifying agents and can be of a composition that they release the active ingredient(s) only, or preferentially, in a certain part of the intestinal tract, optionally, in a delayed manner. Examples of embedding compositions which can be used include polymeric substances and waxes. Solid compositions of a similar type may be employed as fillers in soft and hard-filled gelatin capsules using such excipients as lactose or milk sugar as well as high molecular weight polyethylene glycols and the like.
  • Dosage forms for topical and/or transdermal administration of a composition may include ointments, pastes, creams, lotions, gels, powders, solutions, sprays, inhalants and/or patches. Generally, an active ingredient is admixed under sterile conditions with a pharmaceutically acceptable excipient and/or any needed preservatives and/or buffers as may be required. Additionally, the present disclosure contemplates the use of transdermal patches, which often have the added advantage of providing controlled delivery of a compound to the body. Such dosage forms may be prepared, for example, by dissolving and/or dispensing the compound in the proper medium. Alternatively or additionally, rate may be controlled by either providing a rate controlling membrane and/or by dispersing the compound in a polymer matrix and/or gel.
  • Suitable devices for use in delivering intradermal pharmaceutical compositions described herein include short needle devices such as those described in U.S. Pat. Nos. 4,886,499; 5,190,521; 5,328,483; 5,527,288; 4,270,537; 5,015,235; 5,141,496; and 5,417,662. Intradermal compositions may be administered by devices which limit the effective penetration length of a needle into the skin, such as those described in PCT publication WO 99/34850 and functional equivalents thereof. Jet injection devices which deliver liquid compositions to the dermis via a liquid jet injector and/or via a needle which pierces the stratum corneum and produces a jet which reaches the dermis are suitable. Jet injection devices are described, for example, in U.S. Pat. Nos. 5,480,381; 5,599,302; 5,334,144; 5,993,412; 5,649,912; 5,569,189; 5,704,911; 5,383,851; 5,893,397; 5,466,220; 5,339,163; 5,312,335; 5,503,627; 5,064,413; 5,520,639; 4,596,556; 4,790,824; 4,941,880; 4,940,460; and PCT publications WO 97/37705 and WO 97/13537. Ballistic powder/particle delivery devices which use compressed gas to accelerate vaccine in powder form through the outer layers of the skin to the dermis are suitable. Alternatively or additionally, conventional syringes may be used in the classical mantoux method of intradermal administration.
  • Formulations suitable for topical administration include, but are not limited to, liquid and/or semi liquid preparations such as liniments, lotions, oil in water and/or water in oil emulsions such as creams, ointments and/or pastes, and/or solutions and/or suspensions. Topically-administrable formulations may, for example, comprise from about 1% to about 10% (w/w) active ingredient, although the concentration of active ingredient may be as high as the solubility limit of the active ingredient in the solvent. Formulations for topical administration may further comprise one or more of the additional ingredients described herein.
  • A pharmaceutical composition may be prepared, packaged, and/or sold in a formulation suitable for pulmonary administration via the buccal cavity. Such a formulation may comprise dry particles which comprise the active ingredient and which have a diameter in the range from about 0.5 nm to about 7 nm or from about 1 nm to about 6 nm. Such compositions are conveniently in the form of dry powders for administration using a device comprising a dry powder reservoir to which a stream of propellant may be directed to disperse the powder and/or using a self propelling solvent/powder dispensing container such as a device comprising the active ingredient dissolved and/or suspended in a low-boiling propellant in a sealed container. Such powders comprise particles wherein at least 98% of the particles by weight have a diameter greater than 0.5 nm and at least 95% of the particles by number have a diameter less than 7 nm. Alternatively, at least 95% of the particles by weight have a diameter greater than 1 nm and at least 90% of the particles by number have a diameter less than 6 nm. Dry powder compositions may include a solid fine powder diluent such as sugar and are conveniently provided in a unit dose form.
  • Low boiling propellants generally include liquid propellants having a boiling point of below 65° F. at atmospheric pressure. Generally the propellant may constitute 50% to 99.9% (w/w) of the composition, and active ingredient may constitute 0.1% to 20% (w/w) of the composition. A propellant may further comprise additional ingredients such as a liquid non-ionic and/or solid anionic surfactant and/or a solid diluent (which may have a particle size of the same order as particles comprising the active ingredient).
  • Pharmaceutical compositions formulated for pulmonary delivery may provide an active ingredient in the form of droplets of a solution and/or suspension. Such formulations may be prepared, packaged, and/or sold as aqueous and/or dilute alcoholic solutions and/or suspensions, optionally sterile, comprising active ingredient, and may conveniently be administered using any nebulization and/or atomization device. Such formulations may further comprise one or more additional ingredients including, but not limited to, a flavoring agent such as saccharin sodium, a volatile oil, a buffering agent, a surface active agent, and/or a preservative such as methylhydroxybenzoate. Droplets provided by this route of administration may have an average diameter in the range from about 0.1 nm to about 200 nm.
  • Formulations described herein as being useful for pulmonary delivery are useful for intranasal delivery of a pharmaceutical composition. Another formulation suitable for intranasal administration is a coarse powder comprising the active ingredient and having an average particle from about 0.2 μm to 500 μm. Such a formulation is administered in the manner in which snuff is taken, i.e. by rapid inhalation through the nasal passage from a container of the powder held close to the nose.
  • Formulations suitable for nasal administration may, for example, comprise from about as little as 0.1% (w/w) and as much as 100% (w/w) of active ingredient, and may comprise one or more of the additional ingredients described herein. A pharmaceutical composition may be prepared, packaged, and/or sold in a formulation suitable for buccal administration. Such formulations may, for example, be in the form of tablets and/or lozenges made using conventional methods, and may, for example, 0.1% to 20% (w/w) active ingredient, the balance comprising an orally dissolvable and/or degradable composition and, optionally, one or more of the additional ingredients described herein. Alternately, formulations suitable for buccal administration may comprise a powder and/or an aerosolized and/or atomized solution and/or suspension comprising active ingredient. Such powdered, aerosolized, and/or aerosolized formulations, when dispersed, may have an average particle and/or droplet size in the range from about 0.1 nm to about 200 nm, and may further comprise one or more of any additional ingredients described herein.
  • A pharmaceutical composition may be prepared, packaged, and/or sold in a formulation suitable for ophthalmic administration. Such formulations may, for example, be in the form of eye drops including, for example, a 0.1/1.0% (w/w) solution and/or suspension of the active ingredient in an aqueous or oily liquid excipient. Such drops may further comprise buffering agents, salts, and/or one or more other of any additional ingredients described herein. Other opthalmically-administrable formulations which are useful include those which comprise the active ingredient in microcrystalline form and/or in a liposomal preparation. Ear drops and/or eye drops are contemplated as being within the scope of this present disclosure.
  • General considerations in the formulation and/or manufacture of pharmaceutical agents may be found, for example, in Remington: The Science and Practice of Pharmacy 21st ed., Lippincott Williams & Wilkins, 2005 (incorporated herein by reference).
  • Administration
  • The present disclosure provides methods comprising administering proteins or complexes in accordance with the present disclosure to a subject in need thereof. Proteins or complexes, or pharmaceutical, imaging, diagnostic, or prophylactic compositions thereof, may be administered to a subject using any amount and any route of administration effective for preventing, treating, diagnosing, or imaging a disease, disorder, and/or condition (e.g., a disease, disorder, and/or condition relating to working memory deficits). The exact amount required will vary from subject to subject, depending on the species, age, and general condition of the subject, the severity of the disease, the particular composition, its mode of administration, its mode of activity, and the like. Compositions in accordance with the present disclosure are typically formulated in dosage unit form for ease of administration and uniformity of dosage. It will be understood, however, that the total daily usage of the compositions of the present disclosure will be decided by the attending physician within the scope of sound medical judgment. The specific therapeutically effective, prophylactically effective, or appropriate imaging dose level for any particular patient will depend upon a variety of factors including the disorder being treated and the severity of the disorder; the activity of the specific compound employed; the specific composition employed; the age, body weight, general health, sex and diet of the patient; the time of administration, route of administration, and rate of excretion of the specific compound employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed; and like factors well known in the medical arts.
  • Proteins to be delivered and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof may be administered to animals, such as mammals (e.g., humans, domesticated animals, cats, dogs, mice, rats, etc.). In some embodiments, pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof are administered to humans.
  • Proteins to be delivered and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof in accordance with the present disclosure may be administered by any route. In some embodiments, proteins and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof, are administered by one or more of a variety of routes, including oral, intravenous, intramuscular, intra-arterial, intramedullary, intrathecal, subcutaneous, intraventricular, transdermal, interdermal, rectal, intravaginal, intraperitoneal, topical (e.g. by powders, ointments, creams, gels, lotions, and/or drops), mucosal, nasal, buccal, enteral, vitreal, intratumoral, sublingual; by intratracheal instillation, bronchial instillation, and/or inhalation; as an oral spray, nasal spray, and/or aerosol, and/or through a portal vein catheter. In some embodiments, proteins or complexes, and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof, are administered by systemic intravenous injection. In specific embodiments, proteins or complexes and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof may be administered intravenously and/or orally. In specific embodiments, proteins or complexes, and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof, may be administered in a way which allows the protein or complex to cross the blood-brain barrier, vascular barrier, or other epithelial barrier.
  • However, the present disclosure encompasses the delivery of proteins or complexes, and/or pharmaceutical, prophylactic, diagnostic, or imaging compositions thereof, by any appropriate route taking into consideration likely advances in the sciences of drug delivery.
  • In general the most appropriate route of administration will depend upon a variety of factors including the nature of the protein or complex comprising proteins associated with at least one agent to be delivered (e.g., its stability in the environment of the gastrointestinal tract, bloodstream, etc.), the condition of the patient (e.g., whether the patient is able to tolerate particular routes of administration), etc. The present disclosure encompasses the delivery of the pharmaceutical, prophylactic, diagnostic, or imaging compositions by any appropriate route taking into consideration likely advances in the sciences of drug delivery.
  • In certain embodiments, compositions in accordance with the present disclosure may be administered at dosage levels sufficient to deliver from about 0.0001 mg/kg to about 100 mg/kg, from about 0.01 mg/kg to about 50 mg/kg, from about 0.1 mg/kg to about 40 mg/kg, from about 0.5 mg/kg to about 30 mg/kg, from about 0.01 mg/kg to about 10 mg/kg, from about 0.1 mg/kg to about mg/kg, or from about 1 mg/kg to about 25 mg/kg, of subject body weight per day, one or more times a day, to obtain the desired therapeutic, diagnostic, prophylactic, or imaging effect. The desired dosage may be delivered three times a day, two times a day, once a day, every other day, every third day, every week, every two weeks, every three weeks, or every four weeks. In certain embodiments, the desired dosage may be delivered using multiple administrations (e.g., two, three, four, five, six, seven, eight, nine, ten, eleven, twelve, thirteen, fourteen, or more administrations).
  • Proteins or complexes may be used in combination with one or more other therapeutic, prophylactic, diagnostic, or imaging agents. By “in combination with,” it is not intended to imply that the agents must be administered at the same time and/or formulated for delivery together, although these methods of delivery are within the scope of the present disclosure. Compositions can be administered concurrently with, prior to, or subsequent to, one or more other desired therapeutics or medical procedures. In general, each agent will be administered at a dose and/or on a time schedule determined for that agent. In some embodiments, the present disclosure encompasses the delivery of pharmaceutical, prophylactic, diagnostic, or imaging compositions in combination with agents that improve their bioavailability, reduce and/or modify their metabolism, inhibit their excretion, and/or modify their distribution within the body.
  • It will further be appreciated that therapeutically, prophylactically, diagnostically, or imaging active agents utilized in combination may be administered together in a single composition or administered separately in different compositions. In general, it is expected that agents utilized in combination with be utilized at levels that do not exceed the levels at which they are utilized individually. In some embodiments, the levels utilized in combination will be lower than those utilized individually.
  • The particular combination of therapies (therapeutics or procedures) to employ in a combination regimen will take into account compatibility of the desired therapeutics and/or procedures and the desired therapeutic effect to be achieved. It will also be appreciated that the therapies employed may achieve a desired effect for the same disorder (for example, a composition useful for treating cancer in accordance with the present disclosure may be administered concurrently with a chemotherapeutic agent), or they may achieve different effects (e.g., control of any adverse effects).
  • Kits
  • The present disclosure provides a variety of kits for conveniently and/or effectively carrying out methods of the present disclosure. Typically kits will comprise sufficient amounts and/or numbers of components to allow a user to perform multiple treatments of a subject(s) and/or to perform multiple experiments.
  • In one aspect, the disclosure provides kits for protein production, comprising a first isolated nucleic acid comprising a translatable region and a nucleic acid modification, wherein the nucleic acid is capable of evading or avoiding induction of an innate immune response of a cell into which the first isolated nucleic acid is introduced, and packaging and instructions.
  • In one aspect, the disclosure provides kits for protein production, comprising: a first isolated modified nucleic acid comprising a translatable region, provided in an amount effective to produce a desired amount of a protein encoded by the translatable region when introduced into a target cell; a second nucleic acid comprising an inhibitory nucleic acid, provided in an amount effective to substantially inhibit the innate immune response of the cell; and packaging and instructions.
  • In one aspect, the disclosure provides kits for protein production, comprising a first isolated nucleic acid comprising a translatable region and a nucleoside modification, wherein the nucleic acid exhibits reduced degradation by a cellular nuclease, and packaging and instructions.
  • In one aspect, the disclosure provides kits for protein production, comprising a first isolated nucleic acid comprising a translatable region and at least two different nucleoside modifications, wherein the nucleic acid exhibits reduced degradation by a cellular nuclease, and packaging and instructions.
  • In one aspect, the disclosure provides kits for protein production, comprising a first isolated nucleic acid comprising a translatable region and at least one nucleoside modification,
  • wherein the nucleic acid exhibits reduced degradation by a cellular nuclease; a second nucleic acid comprising an inhibitory nucleic acid; and packaging and instructions.
  • In some embodiments, the first isolated nucleic acid comprises messenger RNA (mRNA). In some embodiments the mRNA comprises at least one nucleoside selected from the group consisting of pyridin-4-one ribonucleoside, 5-aza-uridine, 2-thio-5-aza-uridine, 2-thiouridine, 4-thio-pseudouridine, 2-thio-pseudouridine, 5-hydroxyuridine, 3-methyluridine, 5-carboxymethyl-uridine, 1-carboxymethyl-pseudouridine, 5-propynyl-uridine, 1-propynyl-pseudouridine, 5-taurinomethyluridine, 1-taurinomethyl-pseudouridine, 5-taurinomethyl-2-thio-uridine, 1-taurinomethyl-4-thio-uridine, 5-methyl-uridine, 1-methyl-pseudouridine, 4-thio-1-methyl-pseudouridine, 2-thio-1-methyl-pseudouridine, 1-methyl-1-deaza-pseudouridine, 2-thio-1-methyl-1-deaza-pseudouridine, dihydrouridine, dihydropseudouridine, 2-thio-dihydrouridine, 2-thio-dihydropseudouridine, 2-methoxyuridine, 2-methoxy-4-thio-uridine, 4-methoxy-pseudouridine, 4-methoxy-2-thio-pseudouridine or any disclosed herein.
  • In some embodiments, the mRNA comprises at least one nucleoside selected from the group consisting of 5-aza-cytidine, pseudoisocytidine, 3-methyl-cytidine, N4-acetylcytidine, 5-formylcytidine, N4-methylcytidine, 5-hydroxymethylcytidine, 1-methyl-pseudoisocytidine, pyrrolo-cytidine, pyrrolo-pseudoisocytidine, 2-thio-cytidine, 2-thio-5-methyl-cytidine, 4-thio-pseudoisocytidine, 4-thio-1-methyl-pseudoisocytidine, 4-thio-1-methyl-1-deaza-pseudoisocytidine, 1-methyl-1-deaza-pseudoisocytidine, zebularine, 5-aza-zebularine, 5-methyl-zebularine, 5-aza-2-thio-zebularine, 2-thio-zebularine, 2-methoxy-cytidine, 2-methoxy-5-methyl-cytidine, 4-methoxy-pseudoisocytidine, 4-methoxy-1-methyl-pseudoisocytidine or any disclosed herein.
  • In some embodiments, the mRNA comprises at least one nucleoside selected from the group consisting of 2-aminopurine, 2,6-diaminopurine, 7-deaza-adenine, 7-deaza-8-aza-adenine, 7-deaza-2-aminopurine, 7-deaza-8-aza-2-aminopurine, 7-deaza-2,6-diaminopurine, 7-deaza-8-aza-2,6-diaminopurine, 1-methyladenosine, N6-methyladenosine, N6-isopentenyladenosine, N6-(cis-hydroxyisopentenyl)adenosine, 2-methylthio-N-6-(cis-hydroxyisopentenyl)adenosine, N6-glycinylcarbamoyladenosine, N6-threonylcarbamoyladenosine, 2-methylthio-N-6-threonyl carbamoyladenosine, N6,N6-dimethyladenosine, 7-methyladenine, 2-methylthio-adenine, 2-methoxy-adenine or any disclosed herein.
  • In some embodiments, the mRNA comprises at least one nucleoside selected from the group consisting of inosine, 1-methyl-inosine, wyosine, wybutosine, 7-deaza-guanosine, 7-deaza-8-aza-guanosine, 6-thio-guanosine, 6-thio-7-deaza-guanosine, 6-thio-7-deaza-8-aza-guanosine, 7-methyl-guanosine, 6-thio-7-methyl-guanosine, 7-methylinosine, 6-methoxy-guanosine, 1-methylguanosine, N2-methylguanosine, N2,N2-dimethylguanosine, 8-oxo-guanosine, 7-methyl-8-oxo-guanosine, 1-methyl-6-thio-guanosine, N2-methyl-6-thio-guanosine, N2,N2-dimethyl-6-thio-guanosine or any disclosed herein.
  • In another aspect, the disclosure provides compositions for protein production, comprising a first isolated nucleic acid comprising a translatable region and a nucleoside modification, wherein the nucleic acid exhibits reduced degradation by a cellular nuclease, and a mammalian cell suitable for translation of the translatable region of the first nucleic acid.
  • DEFINITIONS
  • At various places in the present specification, substituents of compounds of the present disclosure are disclosed in groups or in ranges. It is specifically intended that the present disclosure include each and every individual subcombination of the members of such groups and ranges. For example, the term “C1-6 alkyl” is specifically intended to individually disclose methyl, ethyl, C3 alkyl, C4 alkyl, C5 alkyl, and C6 alkyl.
  • About: As used herein, the term “about” means +/−10% of the recited value.
  • Administered in combination: As used herein, the term “administered in combination” or “combined administration” means that two or more agents are administered to a subject at the same time or within an interval such that there may be an overlap of an effect of each agent on the patient. In some embodiments, they are administered within about 60, 30, 15, 10, 5, or 1 minute of one another. In some embodiments, the administrations of the agents are spaced sufficiently closely together such that a combinatorial (e.g., a synergistic) effect is achieved.
  • Animal: As used herein, the term “animal” refers to any member of the animal kingdom. In some embodiments, “animal” refers to humans at any stage of development. In some embodiments, “animal” refers to non-human animals at any stage of development. In certain embodiments, the non-human animal is a mammal (e.g., a rodent, a mouse, a rat, a rabbit, a monkey, a dog, a cat, a sheep, cattle, a primate, or a pig). In some embodiments, animals include, but are not limited to, mammals, birds, reptiles, amphibians, fish, and worms. In some embodiments, the animal is a transgenic animal, genetically-engineered animal, or a clone.
  • Antigens of interest or desired antigens: As used herein, the terms “antigens of interest” or “desired antigens” include those proteins and other biomolecules provided herein that are immunospecifically bound by the antibodies and fragments, mutants, variants, and alterations thereof described herein. Examples of antigens of interest include, but are not limited to, insulin, insulin-like growth factor, hGH, tPA, cytokines, such as interleukins (IL), e.g., IL-1, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-10, IL-11, IL-12, IL-13, IL-14, IL-15, IL-16, IL-17, IL-18, interferon
  • (IFN) alpha, IFN beta, IFN gamma, IFN omega or IFN tau, tumor necrosis factor (TNF), such as TNF alpha and TNF beta, TNF gamma, TRAIL; G-CSF, GM-CSF, M-CSF, MCP-1 and VEGF.
  • Approximately: As used herein, the term “approximately” or “about,” as applied to one or more values of interest, refers to a value that is similar to a stated reference value. In certain embodiments, the term “approximately” or “about” refers to a range of values that fall within 25%, 20%, 19%, 18%, 17%, 16%, 15%, 14%, 13%, 12%, 11%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, 1%, or less in either direction (greater than or less than) of the stated reference value unless otherwise stated or otherwise evident from the context (except where such number would exceed 100% of a possible value).
  • Associated with: As used herein, the terms “associated with,” “conjugated,” “linked,” “attached,” and “tethered,” when used with respect to two or more moieties, means that the moieties are physically associated or connected with one another, either directly or via one or more additional moieties that serves as a linking agent, to form a structure that is sufficiently stable so that the moieties remain physically associated under the conditions in which the structure is used, e.g., physiological conditions. An “association” need not be strictly through direct covalent chemical bonding. It may also suggest ionic or hydrogen bonding or a hybridization based connectivity sufficiently stable such that the “associated” entities remain physically associated.
  • Biocompatible: As used herein, the term “biocompatible” means compatible with living cells, tissues, organs or systems posing little to no risk of injury, toxicity or rejection by the immune system.
  • Biodegradable: As used herein, the term “biodegradable” means capable of being broken down into innocuous products by the action of living things.
  • Biologically active: As used herein, the phrase “biologically active” refers to a characteristic of any substance that has activity in a biological system and/or organism. For instance, a substance that, when administered to an organism, has a biological effect on that organism, is considered to be biologically active. In particular embodiments, a polynucleotide of the present invention may be considered biologically active if even a portion of the polynucleotide is biologically active or mimics an activity considered biologically relevant.
  • Chemical terms: The following provides the definition of various chemical terms from “acyl” to “thiol.”
  • The term “acyl,” as used herein, represents a hydrogen or an alkyl group (e.g., a haloalkyl group), as defined herein, that is attached to the parent molecular group through a carbonyl group, as defined herein, and is exemplified by formyl (i.e., a carboxyaldehyde group), acetyl, trifluoroacetyl, propionyl, butanoyl and the like. Exemplary unsubstituted acyl groups include from 1 to 7, from 1 to 11, or from 1 to 21 carbons. In some embodiments, the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein.
  • The term “acylamino,” as used herein, represents an acyl group, as defined herein, attached to the parent molecular group though an amino group, as defined herein (i.e., —N(RN1)—C(O)—R, where R is H or an optionally substituted C1-6, C1-10, or C1-20 alkyl group (e.g., haloalkyl) and RN1 is as defined herein). Exemplary unsubstituted acylamino groups include from 1 to 41 carbons (e.g., from 1 to 7, from 1 to 13, from 1 to 21, from 2 to 7, from 2 to 13, from 2 to 21, or from 2 to 41 carbons). In some embodiments, the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein, and/or the amino group is —NH2 or —NHRN1, wherein RN1 is, independently, OH, NO2, NH2, NRN22, SO2ORN2, SO2RN2, SORN2, alkyl, aryl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), or alkoxycarbonylalkyl, and each RN2 can be H, alkyl, or aryl.
  • The term “acylaminoalkyl,” as used herein, represents an acyl group, as defined herein, attached to an amino group that is in turn attached to the parent molecular group though an alkyl group, as defined herein (i.e., -alkyl-N(RN1)—C(O)—R, where R is H or an optionally substituted C1-6, C1-10, or C1-20 alkyl group (e.g., haloalkyl) and RN1 is as defined herein). Exemplary unsubstituted acylamino groups include from 1 to 41 carbons (e.g., from 1 to 7, from 1 to 13, from 1 to 21, from 2 to 7, from 2 to 13, from 2 to 21, or from 2 to 41 carbons). In some embodiments, the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein, and/or the amino group is —NH2 or —NHRN1, wherein RN1 is, independently, OH, NO2, NH2, NRN22, SO2ORN2, SO2RN2, SORN2, alkyl, aryl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), or alkoxycarbonylalkyl, and each RN2 can be H, alkyl, or aryl.
  • The term “acyloxy,” as used herein, represents an acyl group, as defined herein, attached to the parent molecular group though an oxygen atom (i.e., —O—C(O)—R, where R is H or an optionally substituted C1-6, C1-10, or C1-20 alkyl group). Exemplary unsubstituted acyloxy groups include from 1 to 21 carbons (e.g., from 1 to 7 or from 1 to 11 carbons). In some embodiments, the alkyl group is further substituted with 1, 2, 3, or 4 substituents as described herein.
  • The term “acyloxyalkyl,” as used herein, represents an acyl group, as defined herein, attached to an oxygen atom that in turn is attached to the parent molecular group though an alkyl group (i.e., -alkyl-O—C(O)—R, where R is H or an optionally substituted C1-6, C1-10, or C1-20 alkyl group). Exemplary unsubstituted acyloxyalkyl groups include from 1 to 21 carbons (e.g., from 1 to 7 or from 1 to 11 carbons). In some embodiments, the alkyl group is, independently, further substituted with 1, 2, 3, or 4 substituents as described herein.
  • The term “alkaryl,” as used herein, represents an aryl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein. Exemplary unsubstituted alkaryl groups are from 7 to 30 carbons (e.g., from 7 to 16 or from 7 to 20 carbons, such as C1-6 alk-C6-10 aryl, C1-10 alk-C6-10 aryl, or C1-20 alk-C6-10 aryl). In some embodiments, the alkylene and the aryl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective groups. Other groups preceded by the prefix “alk-” are defined in the same manner, where “alk” refers to a C1-6 alkylene, unless otherwise noted, and the attached chemical structure is as defined herein.
  • The term “alkcycloalkyl” represents a cycloalkyl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein (e.g., an alkylene group of from 1 to 4, from 1 to 6, from 1 to 10, or form 1 to 20 carbons). In some embodiments, the alkylene and the cycloalkyl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • The term “alkenyl,” as used herein, represents monovalent straight or branched chain groups of, unless otherwise specified, from 2 to 20 carbons (e.g., from 2 to 6 or from 2 to 10 carbons) containing one or more carbon-carbon double bonds and is exemplified by ethenyl, 1-propenyl, 2-propenyl, 2-methyl-1-propenyl, 1-butenyl, 2-butenyl, and the like. Alkenyls include both cis and trans isomers. Alkenyl groups may be optionally substituted with 1, 2, 3, or 4 substituent groups that are selected, independently, from amino, aryl, cycloalkyl, or heterocyclyl (e.g., heteroaryl), as defined herein, or any of the exemplary alkyl substituent groups described herein.
  • The term “alkenyloxy” represents a chemical substituent of formula —OR′, where R is a C2-20 alkenyl group (e.g., C2-6 or C2-10 alkenyl), unless otherwise specified. Exemplary alkenyloxy groups include ethenyloxy, propenyloxy, and the like. In some embodiments, the alkenyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein (e.g., a hydroxy group).
  • The term “alkheteroaryl” refers to a heteroaryl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein. Exemplary unsubstituted alkheteroaryl groups are from 2 to 32 carbons (e.g., from 2 to 22, from 2 to 18, from 2 to 17, from 2 to 16, from 3 to 15, from 2 to 14, from 2 to 13, or from 2 to 12 carbons, such as C1-6 alk-C1-12 heteroaryl, C1-10 alk-C1-12 heteroaryl, or C1-20 alk-C1-12 heteroaryl). In some embodiments, the alkylene and the heteroaryl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group. Alkheteroaryl groups are a subset of alkheterocyclyl groups.
  • The term “alkheterocyclyl” represents a heterocyclyl group, as defined herein, attached to the parent molecular group through an alkylene group, as defined herein. Exemplary unsubstituted alkheterocyclyl groups are from 2 to 32 carbons (e.g., from 2 to 22, from 2 to 18, from 2 to 17, from 2 to 16, from 3 to 15, from 2 to 14, from 2 to 13, or from 2 to 12 carbons, such as C1-6 alk-C1-12 heterocyclyl, C1-10 alk-C1-12 heterocyclyl, or C1-20 alk-C1-12 heterocyclyl). In some embodiments, the alkylene and the heterocyclyl each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • The term “alkoxy” represents a chemical substituent of formula —OR′, where R is a C1-20 alkyl group (e.g., C1-6 or C1-10 alkyl), unless otherwise specified. Exemplary alkoxy groups include methoxy, ethoxy, propoxy (e.g., n-propoxy and isopropoxy), t-butoxy, and the like. In some embodiments, the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein (e.g., hydroxy or alkoxy).
  • The term “alkoxyalkoxy” represents an alkoxy group that is substituted with an alkoxy group. Exemplary unsubstituted alkoxyalkoxy groups include between 2 to 40 carbons (e.g., from 2 to 12 or from 2 to 20 carbons, such as C1-6 alkoxy-C1-6 alkoxy, C1-10alkoxy-C1-10 alkoxy, or C1-20 alkoxy-C1-20 alkoxy). In some embodiments, the each alkoxy group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • The term “alkoxyalkyl” represents an alkyl group that is substituted with an alkoxy group. Exemplary unsubstituted alkoxyalkyl groups include between 2 to 40 carbons (e.g., from 2 to 12 or from 2 to 20 carbons, such as C1-6 alkoxy-C1-6 alkyl, C1-10 alkoxy-C1-10 alkyl, or C1-20 alkoxy-C1-20 alkyl). In some embodiments, the alkyl and the alkoxy each can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for the respective group.
  • The term “alkoxycarbonyl,” as used herein, represents an alkoxy, as defined herein, attached to the parent molecular group through a carbonyl atom (e.g., —C(O)—OR′, where R is H or an optionally substituted C1-6, C1-10, or C1-20 alkyl group). Exemplary unsubstituted alkoxycarbonyl include from 1 to 21 carbons (e.g., from 1 to 11 or from 1 to 7 carbons). In some embodiments, the alkoxy group is further substituted with 1, 2, 3, or 4 substituents as described herein.
  • The term “alkoxycarbonylacyl,” as used herein, represents an acyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., —C(O)-alkyl-C(O)—OR′, where R is an optionally substituted C1-6, C1-10, or C1-20 alkyl group). Exemplary unsubstituted alkoxycarbonylacyl include from 3 to 41 carbons (e.g., from 3 to 10, from 3 to 13, from 3 to 17, from 3 to 21, or from 3 to 31 carbons, such as C1-6 alkoxycarbonyl-C1-6 acyl, C1-10 alkoxycarbonyl-C1-10 acyl, or C1-20 alkoxycarbonyl-C1-20 acyl). In some embodiments, each alkoxy and alkyl group is further independently substituted with 1, 2, 3, or 4 substituents, as described herein (e.g., a hydroxy group) for each group.
  • The term “alkoxycarbonylalkoxy,” as used herein, represents an alkoxy group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., —O-alkyl-C(O)—OR′, where R is an optionally substituted C1-6, C1-10, or C1-20 alkyl group). Exemplary unsubstituted alkoxycarbonylalkoxy include from 3 to 41 carbons (e.g., from 3 to 10, from 3 to 13, from 3 to 17, from 3 to 21, or from 3 to 31 carbons, such as C1-6 alkoxycarbonyl-C1-6 alkoxy, C1-10 alkoxycarbonyl-C1-10 alkoxy, or C1-20 alkoxycarbonyl-C1-20 alkoxy). In some embodiments, each alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents, as described herein (e.g., a hydroxy group).
  • The term “alkoxycarbonylalkyl,” as used herein, represents an alkyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., -alkyl-C(O)—OR′, where R is an optionally substituted C1-20, C1-10, or C1-6 alkyl group). Exemplary unsubstituted alkoxycarbonylalkyl include from 3 to 41 carbons (e.g., from 3 to 10, from 3 to 13, from 3 to 17, from 3 to 21, or from 3 to 31 carbons, such as C1-6 alkoxycarbonyl-C1-6 alkyl, C1-10alkoxycarbonyl-C1-10 alkyl, or C1-20 alkoxycarbonyl-C1-20 alkyl). In some embodiments, each alkyl and alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents as described herein (e.g., a hydroxy group).
  • The term “alkoxycarbonylalkenyl,” as used herein, represents an alkenyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., -alkenyl-C(O)—OR′, where R is an optionally substituted C1-20, C1-10, or C1-6 alkyl group). Exemplary unsubstituted alkoxycarbonylalkenyl include from 4 to 41 carbons (e.g., from 4 to 10, from 4 to 13, from 4 to 17, from 4 to 21, or from 4 to 31 carbons, such as C1-6 alkoxycarbonyl-C2-6alkenyl, C1-10 alkoxycarbonyl-C2-10 alkenyl, or C1-20 alkoxycarbonyl-C2-20 alkenyl). In some embodiments, each alkyl, alkenyl, and alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents as described herein (e.g., a hydroxy group).
  • The term “alkoxycarbonylalkynyl,” as used herein, represents an alkynyl group, as defined herein, that is substituted with an alkoxycarbonyl group, as defined herein (e.g., -alkynyl-C(O)—OR′, where R is an optionally substituted C1-20, C1-10, or C1-6 alkyl group). Exemplary unsubstituted alkoxycarbonylalkynyl include from 4 to 41 carbons (e.g., from 4 to 10, from 4 to 13, from 4 to 17, from 4 to 21, or from 4 to 31 carbons, such as C1-6 alkoxycarbonyl-C2-6alkynyl, C1-10 alkoxycarbonyl-C2-10 alkynyl, or C1-20 alkoxycarbonyl-C2-20 alkynyl). In some embodiments, each alkyl, alkynyl, and alkoxy group is further independently substituted with 1, 2, 3, or 4 substituents as described herein (e.g., a hydroxy group).
  • The term “alkyl,” as used herein, is inclusive of both straight chain and branched chain saturated groups from 1 to 20 carbons (e.g., from 1 to 10 or from 1 to 6), unless otherwise specified. Alkyl groups are exemplified by methyl, ethyl, n- and iso-propyl, n-, sec-, iso- and tert-butyl, neopentyl, and the like, and may be optionally substituted with one, two, three, or, in the case of alkyl groups of two carbons or more, four substituents independently selected from the group consisting of: (1) C1-6 alkoxy; (2) C1-6 alkylsulfinyl; (3) amino, as defined herein (e.g., unsubstituted amino (i.e., —NH2) or a substituted amino (i.e., —N(RN1)2, where RN1 is as defined for amino); (4) C6-10 aryl-C1-6 alkoxy; (5) azido; (6) halo; (7) (C2-9heterocyclyl)oxy; (8) hydroxy, optionally substituted with an O-protecting group; (9) nitro; (10) oxo (e.g., carboxyaldehyde or acyl); (11) C1-7-spirocyclyl; (12) thioalkoxy; (13) thiol; (14) —CO2RA′, optionally substituted with an O-protecting group and where RA′ is selected from the group consisting of (a) C1-20 alkyl (e.g., C1-6 alkyl), (b) C2-20 alkenyl (e.g., C2-6alkenyl), (c) C6-10 aryl, (d) hydrogen, (e) C1-6 alk-C6-10 aryl, (f) amino-C1-20 alkyl, (g) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; (15) —C(O)NRB′RC′, where each of RB′ and RC′ is, independently, selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (16) —SO2RD′, where RD′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) C1-6 alk-C6-10 aryl, and (d) hydroxy; (17) —SO2NRE′RF′, where each of RE′ and RF′ is, independently, selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl and (d) C1-6 alk-C6-10 aryl; (18) —C(O)RG′, where RG′ is selected from the group consisting of (a) C1-20 alkyl (e.g., C1-6 alkyl), (b) C2-20 alkenyl (e.g., C2-6alkenyl), (c) C6-10 aryl, (d) hydrogen, (e) C1-6 alk-C6-10 aryl, (f) amino-C1-20 alkyl, (g) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; (19) —NRH′C(O)R1, wherein RH′ is selected from the group consisting of (a1) hydrogen and (b1) C1-6 alkyl, and RI′ is selected from the group consisting of (a2) C1-20 alkyl (e.g., C1-6 alkyl), (b2) C2-20 alkenyl (e.g., C2-6alkenyl), (c2) C6-10 aryl, (d2) hydrogen, (e2) C1-6 alk-C6-10 aryl, (f2) amino-C1-20 alkyl, (g2) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h2) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; (20) —NRJ′C(O)ORK′, wherein RJ′ is selected from the group consisting of (a1) hydrogen and (b1) C1-6 alkyl, and RK′ is selected from the group consisting of (a2) C1-20 alkyl (e.g., C1-6 alkyl), (b2) C2-20 alkenyl (e.g., C2-6alkenyl), (c2) C6-10 aryl, (d2) hydrogen, (e2) C1-6 alk-C6-10 aryl, (f2) amino-C1-20 alkyl, (g2) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h2) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; and (21) amidine. In some embodiments, each of these groups can be further substituted as described herein. For example, the alkylene group of a C1-alkaryl can be further substituted with an oxo group to afford the respective aryloyl substituent.
  • The term “alkylene” and the prefix “alk-,” as used herein, represent a saturated divalent hydrocarbon group derived from a straight or branched chain saturated hydrocarbon by the removal of two hydrogen atoms, and is exemplified by methylene, ethylene, isopropylene, and the like. The term “Cx-y alkylene” and the prefix “Cx-y alk-” represent alkylene groups having between x and y carbons. Exemplary values for x are 1, 2, 3, 4, 5, and 6, and exemplary values for y are 2, 3, 4, 5, 6, 7, 8, 9, 10, 12, 14, 16, 18, or 20 (e.g., C1-6, C1-10, C2-20, C2-6, C2-10, or C2-20 alkylene). In some embodiments, the alkylene can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein for an alkyl group.
  • The term “alkylsulfinyl,” as used herein, represents an alkyl group attached to the parent molecular group through an —S(O)— group. Exemplary unsubstituted alkylsulfinyl groups are from 1 to 6, from 1 to 10, or from 1 to 20 carbons. In some embodiments, the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • The term “alkylsulfinylalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by an alkylsulfinyl group. Exemplary unsubstituted alkylsulfinylalkyl groups are from 2 to 12, from 2 to 20, or from 2 to 40 carbons. In some embodiments, each alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • The term “alkynyl,” as used herein, represents monovalent straight or branched chain groups from 2 to 20 carbon atoms (e.g., from 2 to 4, from 2 to 6, or from 2 to 10 carbons) containing a carbon-carbon triple bond and is exemplified by ethynyl, 1-propynyl, and the like. Alkynyl groups may be optionally substituted with 1, 2, 3, or 4 substituent groups that are selected, independently, from aryl, cycloalkyl, or heterocyclyl (e.g., heteroaryl), as defined herein, or any of the exemplary alkyl substituent groups described herein.
  • The term “alkynyloxy” represents a chemical substituent of formula —OR′, where R is a C2-20 alkynyl group (e.g., C2-6 or C2-10 alkynyl), unless otherwise specified. Exemplary alkynyloxy groups include ethynyloxy, propynyloxy, and the like. In some embodiments, the alkynyl group can be further substituted with 1, 2, 3, or 4 substituent groups as defined herein (e.g., a hydroxy group).
  • The term “amidine,” as used herein, represents a —C(═NH)NH2 group.
  • The term “amino,” as used herein, represents —N(RN1)2, wherein each RN1 is, independently, H, OH, NO2, N(RN2)2, SO2ORN2, SO2RN2, SORN2, an N-protecting group, alkyl, alkenyl, alkynyl, alkoxy, aryl, alkaryl, cycloalkyl, alkcycloalkyl, carboxyalkyl (e.g., optionally substituted with an O-protecting group, such as optionally substituted arylalkoxycarbonyl groups or any described herein), sulfoalkyl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), alkoxycarbonylalkyl (e.g., optionally substituted with an O-protecting group, such as optionally substituted arylalkoxycarbonyl groups or any described herein), heterocyclyl (e.g., heteroaryl), or alkheterocyclyl (e.g., alkheteroaryl), wherein each of these recited RN1 groups can be optionally substituted, as defined herein for each group; or two RN1 combine to form a heterocyclyl or an N-protecting group, and wherein each RN2 is, independently, H, alkyl, or aryl. The amino groups of the invention can be an unsubstituted amino (i.e., —NH2) or a substituted amino (i.e., —N(RN1)2). In a preferred embodiment, amino is —NH2 or —NHRN1, wherein RN1 is, independently, OH, NO2, NH2, NRN2 2, SO2ORN2, SO2RN2, SORN2, alkyl, carboxyalkyl, sulfoalkyl, acyl (e.g., acetyl, trifluoroacetyl, or others described herein), alkoxycarbonylalkyl (e.g., t-butoxycarbonylalkyl) or aryl, and each RN2 can be H, C1-20 alkyl (e.g., C1-6 alkyl), or C6-10 aryl.
  • The term “amino acid,” as described herein, refers to a molecule having a side chain, an amino group, and an acid group (e.g., a carboxy group of —CO2H or a sulfo group of —SO3H), wherein the amino acid is attached to the parent molecular group by the side chain, amino group, or acid group (e.g., the side chain). In some embodiments, the amino acid is attached to the parent molecular group by a carbonyl group, where the side chain or amino group is attached to the carbonyl group. Exemplary side chains include an optionally substituted alkyl, aryl, heterocyclyl, alkaryl, alkheterocyclyl, aminoalkyl, carbamoylalkyl, and carboxyalkyl. Exemplary amino acids include alanine, arginine, asparagine, aspartic acid, cysteine, glutamic acid, glutamine, glycine, histidine, hydroxynorvaline, isoleucine, leucine, lysine, methionine, norvaline, ornithine, phenylalanine, proline, pyrrolysine, selenocysteine, serine, taurine, threonine, tryptophan, tyrosine, and valine. Amino acid groups may be optionally substituted with one, two, three, or, in the case of amino acid groups of two carbons or more, four substituents independently selected from the group consisting of: (1) C1-6 alkoxy; (2) C1-6 alkylsulfinyl; (3) amino, as defined herein (e.g., unsubstituted amino (i.e., —NH2) or a substituted amino (i.e., —N(RN1)2, where RN1 is as defined for amino); (4) C6-10 aryl-C1-6 alkoxy; (5) azido; (6) halo; (7) (C2-9heterocyclyl)oxy; (8) hydroxy; (9) nitro; (10) oxo (e.g., carboxyaldehyde or acyl); (11) C1-7-spirocyclyl; (12) thioalkoxy; (13) thiol; (14) —CO2RA′, where RA′ is selected from the group consisting of (a) C1-20 alkyl (e.g., C1-6 alkyl), (b) C2-20 alkenyl (e.g., C2-6 alkenyl), (c) C6-10 aryl, (d) hydrogen, (e) C1-6 alk-C6-10 aryl, (f) amino-C1-20 alkyl, (g) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2H2O)s(CH2)s3NRN1, wherein s1 is an integer from 1 to (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; (15) —C(O)NRB′RC′, where each of RB′ and RC′ is, independently, selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (16) —SO2RD′, where RD′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) C1-6 alk-C6-10 aryl, and (d) hydroxy; (17) —SO2NRE′RF′, where each of RE′ and RF′ is, independently, selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl and (d) C1-6 alk-C6-10 aryl; (18) —C(O)RG′, where RG′ is selected from the group consisting of (a) C1-20 alkyl (e.g., C1-6 alkyl), (b) C2-20 alkenyl (e.g., C2-6alkenyl), (c) C6-10 aryl, (d) hydrogen, (e) C1-6 alk-C6-10 aryl, (f) amino-C1-20 alkyl, (g) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; (19) —NRH′C(O)R1, wherein RH′ is selected from the group consisting of (a1) hydrogen and (b1) C1-6 alkyl, and R′ is selected from the group consisting of (a2) C1-20 alkyl (e.g., C1-6 alkyl), (b2) C2-20 alkenyl (e.g., C2-6alkenyl), (c2) C6-10 aryl, (d2) hydrogen, (e2) C1-6 alk-C6-10 aryl, (f2) amino-C1-20 alkyl, (g2) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h2) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; (20) —NRJ′C(O)ORK′, wherein RJ′ is selected from the group consisting of (a1) hydrogen and (b1) C1-6 alkyl, and RK′ is selected from the group consisting of (a2) C1-20 alkyl (e.g., C1-6 alkyl), (b2) C2-20 alkenyl (e.g., C2-6alkenyl), (c2) C6-10 aryl, (d2) hydrogen, (e2) C1-6 alk-C6-10 aryl, (f2) amino-C1-20 alkyl, (g2) polyethylene glycol of —(CH2)s2(OCH2CH2)s1(CH2)s3OR′, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and R′ is H or C1-20 alkyl, and (h2) amino-polyethylene glycol of —NRN1(CH2)s2(CH2CH2O)s1(CH2)s3NRN1, wherein s1 is an integer from 1 to 10 (e.g., from 1 to 6 or from 1 to 4), each of s2 and s3, independently, is an integer from 0 to 10 (e.g., from 0 to 4, from 0 to 6, from 1 to 4, from 1 to 6, or from 1 to 10), and each RN1 is, independently, hydrogen or optionally substituted C1-6 alkyl; and (21) amidine. In some embodiments, each of these groups can be further substituted as described herein.
  • The term “aminoalkoxy,” as used herein, represents an alkoxy group, as defined herein, substituted by an amino group, as defined herein. The alkyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO2RA′, where RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl, e.g., carboxy).
  • The term “aminoalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by an amino group, as defined herein. The alkyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO2RA′, where RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl, e.g., carboxy, and/or an N-protecting group).
  • The term “aminoalkenyl,” as used herein, represents an alkenyl group, as defined herein, substituted by an amino group, as defined herein. The alkenyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO2RA′, where RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl, e.g., carboxy, and/or an N-protecting group).
  • The term “aminoalkynyl,” as used herein, represents an alkynyl group, as defined herein, substituted by an amino group, as defined herein. The alkynyl and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO2RA′, where RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl, e.g., carboxy, and/or an N-protecting group).
  • The term “aryl,” as used herein, represents a mono-, bicyclic, or multicyclic carbocyclic ring system having one or two aromatic rings and is exemplified by phenyl, naphthyl, 1,2-dihydronaphthyl, 1,2,3,4-tetrahydronaphthyl, anthracenyl, phenanthrenyl, fluorenyl, indanyl, indenyl, and the like, and may be optionally substituted with 1, 2, 3, 4, or 5 substituents independently selected from the group consisting of: (1) C1-7 acyl (e.g., carboxyaldehyde); (2) C1-20 alkyl (e.g., C1-6 alkyl, C1-6 alkoxy-C1-6 alkyl, C1-6 alkylsulfinyl-C1-6 alkyl, amino-C1-6 alkyl, azido-C1-6 alkyl, (carboxyaldehyde)-C1-6 alkyl, halo-C1-6 alkyl (e.g., perfluoroalkyl), hydroxy-C1-6 alkyl, nitro-C1-6 alkyl, or C1-6 thioalkoxy-C1-6 alkyl); (3) C1-20 alkoxy (e.g., C1-6 alkoxy, such as perfluoroalkoxy); (4) C1-6 alkylsulfinyl; (5) C6-10 aryl; (6) amino; (7) C1-6 alk-C6-10 aryl; (8) azido; (9) C3-8cycloalkyl; (10) C1-6 alk-C3-8 cycloalkyl; (11) halo; (12) C1-12 heterocyclyl (e.g., C1-12 heteroaryl); (13) (C1-12 heterocyclyl)oxy; (14) hydroxy; (15) nitro; (16) C1-20 thioalkoxy (e.g., C1-6 thioalkoxy); (17) —(CH2)qCO2RA′, where q is an integer from zero to four, and RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl; (18) —(CH2)qCONRB′RC′, where q is an integer from zero to four and where RB′ and RC′ are independently selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (19) —(CH2)qSO2RD′, where q is an integer from zero to four and where RD′ is selected from the group consisting of (a) alkyl, (b) C6-10 aryl, and (c) alk-C6-10 aryl; (20) —(CH2)qSO2NRE′RF′, where q is an integer from zero to four and where each of RE′ and RF′ is, independently, selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (21) thiol; (22) C6-10 aryloxy; (23) C3-8cycloalkoxy; (24) C6-10 aryl-C1-6 alkoxy; (25) C1-6 alk-C1-12 heterocyclyl (e.g., C1-6 alk-C1-12 heteroaryl); (26) C2-20 alkenyl; and (27) C2-20 alkynyl. In some embodiments, each of these groups can be further substituted as described herein. For example, the alkylene group of a C1-alkaryl or a C1-alkheterocyclyl can be further substituted with an oxo group to afford the respective aryloyl and (heterocyclyl)oyl substituent group.
  • The term “arylalkoxy,” as used herein, represents an alkaryl group, as defined herein, attached to the parent molecular group through an oxygen atom. Exemplary unsubstituted arylalkoxy groups include from 7 to 30 carbons (e.g., from 7 to 16 or from 7 to 20 carbons, such as C6-10 aryl-C1-6 alkoxy, C6-10 aryl-C1-10 alkoxy, or C6-10 aryl-C1-20 alkoxy). In some embodiments, the arylalkoxy group can be substituted with 1, 2, 3, or 4 substituents as defined herein
  • The term “arylalkoxycarbonyl,” as used herein, represents an arylalkoxy group, as defined herein, attached to the parent molecular group through a carbonyl (e.g., —C(O)—O-alkyl-aryl). Exemplary unsubstituted arylalkoxy groups include from 8 to 31 carbons (e.g., from 8 to 17 or from 8 to 21 carbons, such as C6-10 aryl-C1-6 alkoxy-carbonyl, C6-10 aryl-C1-10 alkoxy-carbonyl, or C6-10 aryl-C1-20 alkoxy-carbonyl). In some embodiments, the arylalkoxycarbonyl group can be substituted with 1, 2, 3, or 4 substituents as defined herein.
  • The term “aryloxy” represents a chemical substituent of formula —OR′, where R′ is an aryl group of 6 to 18 carbons, unless otherwise specified. In some embodiments, the aryl group can be substituted with 1, 2, 3, or 4 substituents as defined herein.
  • The term “aryloyl,” as used herein, represents an aryl group, as defined herein, that is attached to the parent molecular group through a carbonyl group. Exemplary unsubstituted aryloyl groups are of 7 to 11 carbons. In some embodiments, the aryl group can be substituted with 1, 2, 3, or 4 substituents as defined herein.
  • The term “azido” represents an —N3 group, which can also be represented as —N═N═N.
  • The term “bicyclic,” as used herein, refer to a structure having two rings, which may be aromatic or non-aromatic. Bicyclic structures include spirocyclyl groups, as defined herein, and two rings that share one or more bridges, where such bridges can include one atom or a chain including two, three, or more atoms. Exemplary bicyclic groups include a bicyclic carbocyclyl group, where the first and second rings are carbocyclyl groups, as defined herein; a bicyclic aryl groups, where the first and second rings are aryl groups, as defined herein; bicyclic heterocyclyl groups, where the first ring is a heterocyclyl group and the second ring is a carbocyclyl (e.g., aryl) or heterocyclyl (e.g., heteroaryl) group; and bicyclic heteroaryl groups, where the first ring is a heteroaryl group and the second ring is a carbocyclyl (e.g., aryl) or heterocyclyl (e.g., heteroaryl) group. In some embodiments, the bicyclic group can be substituted with 1, 2, 3, or 4 substituents as defined herein for cycloalkyl, heterocyclyl, and aryl groups.
  • The term “boranyl,” as used herein, represents —B(RB1)3, where each RB1 is, independently, selected from the group consisting of H and optionally substituted alkyl. In some embodiments, the boranyl group can be substituted with 1, 2, 3, or 4 substituents as defined herein for alkyl.
  • The terms “carbocyclic” and “carbocyclyl,” as used herein, refer to an optionally substituted C3-12 monocyclic, bicyclic, or tricyclic structure in which the rings, which may be aromatic or non-aromatic, are formed by carbon atoms. Carbocyclic structures include cycloalkyl, cycloalkenyl, and aryl groups.
  • The term “carbamoyl,” as used herein, represents —C(O)—N(RN1)2, where the meaning of each RN1 is found in the definition of “amino” provided herein.
  • The term “carbamoylalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by a carbamoyl group, as defined herein. The alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • The term “carbamyl,” as used herein, refers to a carbamate group having the structure —NRN1C(═O)OR or —OC(═O)N(RN1)2, where the meaning of each RN1 is found in the definition of “amino” provided herein, and R is alkyl, cycloalkyl, alkcycloalkyl, aryl, alkaryl, heterocyclyl (e.g., heteroaryl), or alkheterocyclyl (e.g., alkheteroaryl), as defined herein.
  • The term “carbonyl,” as used herein, represents a C(O) group, which can also be represented as C═O.
  • The term “carboxyaldehyde” represents an acyl group having the structure —CHO.
  • The term “carboxy,” as used herein, means —CO2H.
  • The term “carboxyalkoxy,” as used herein, represents an alkoxy group, as defined herein, substituted by a carboxy group, as defined herein. The alkoxy group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the alkyl group, and the carboxy group can be optionally substituted with one or more O-protecting groups.
  • The term “carboxyalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by a carboxy group, as defined herein. The alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein, and the carboxy group can be optionally substituted with one or more O-protecting groups.
  • The term “carboxyaminoalkyl,” as used herein, represents an aminoalkyl group, as defined herein, substituted by a carboxy, as defined herein. The carboxy, alkyl, and amino each can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for the respective group (e.g., CO2RA′, where RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl, e.g., carboxy, and/or an N-protecting group, and/or an O-protecting group).
  • The term “cyano,” as used herein, represents an —CN group.
  • The term “cycloalkoxy” represents a chemical substituent of formula —OR′, where R is a C3-8cycloalkyl group, as defined herein, unless otherwise specified. The cycloalkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein. Exemplary unsubstituted cycloalkoxy groups are from 3 to 8 carbons. In some embodiment, the cycloalkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • The term “cycloalkyl,” as used herein represents a monovalent saturated or unsaturated non-aromatic cyclic hydrocarbon group from three to eight carbons, unless otherwise specified, and is exemplified by cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, bicycle heptyl, and the like. When the cycloalkyl group includes one carbon-carbon double bond, the cycloalkyl group can be referred to as a “cycloalkenyl” group. Exemplary cycloalkenyl groups include cyclopentenyl, cyclohexenyl, and the like. The cycloalkyl groups of this invention can be optionally substituted with: (1) C1-7 acyl (e.g., carboxyaldehyde); (2) C1-20 alkyl (e.g., C1-6 alkyl, C1-6 alkoxy-C1-6 alkyl, C1-6 alkylsulfinyl-C1-6 alkyl, amino-C1-6 alkyl, azido-C1-6 alkyl, (carboxyaldehyde)-C1-6 alkyl, halo-C1-6 alkyl (e.g., perfluoroalkyl), hydroxy-C1-6 alkyl, nitro-C1-6 alkyl, or C1-6 thioalkoxy-C1-6 alkyl); (3) C1-20 alkoxy (e.g., C1-6 alkoxy, such as perfluoroalkoxy); (4) C1-6 alkylsulfinyl; (5) C6-10 aryl; (6) amino; (7) C1-6 alk-C6-10 aryl; (8) azido; (9) C3-8cycloalkyl; (10) C1-6 alk-C3-8 cycloalkyl; (11) halo; (12) C1-12 heterocyclyl (e.g., C1-12 heteroaryl); (13) (C1-12 heterocyclyl)oxy; (14) hydroxy; (15) nitro; (16) C1-20 thioalkoxy (e.g., C1-6 thioalkoxy); (17) —(CH2)qCO2RA′, where q is an integer from zero to four, and RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl; (18) —(CH2)qCONRB′RC′, where q is an integer from zero to four and where RB′ and RC′ are independently selected from the group consisting of (a) hydrogen, (b) C6-10 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (19) —(CH2)qSO2RD′, where q is an integer from zero to four and where RD′ is selected from the group consisting of (a) C6-10 alkyl, (b) C6-10 aryl, and (c) C1-6 alk-C6-10 aryl; (20) —(CH2)qSO2NRE′RF′, where q is an integer from zero to four and where each of RE′ and RF′ is, independently, selected from the group consisting of (a) hydrogen, (b) C6-10 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (21) thiol; (22) C6-10 aryloxy; (23) C3-8cycloalkoxy; (24) C6-10 aryl-C1-6 alkoxy; (25) C1-6 alk-C1-12 heterocyclyl (e.g., C1-6 alk-C1-12 heteroaryl); (26) oxo; (27) C2-20 alkenyl; and (28) C2-20 alkynyl. In some embodiments, each of these groups can be further substituted as described herein. For example, the alkylene group of a C1-alkaryl or a C1-alkheterocyclyl can be further substituted with an oxo group to afford the respective aryloyl and (heterocyclyl)oyl substituent group.
  • The term “diastereomer,” as used herein means stereoisomers that are not mirror images of one another and are non-superimposable on one another.
  • The term “effective amount” of an agent, as used herein, is that amount sufficient to effect beneficial or desired results, for example, clinical results, and, as such, an “effective amount” depends upon the context in which it is being applied. For example, in the context of administering an agent that treats cancer, an effective amount of an agent is, for example, an amount sufficient to achieve treatment, as defined herein, of cancer, as compared to the response obtained without administration of the agent.
  • The term “enantiomer,” as used herein, means each individual optically active form of a compound of the invention, having an optical purity or enantiomeric excess (as determined by methods standard in the art) of at least 80% (i.e., at least 90% of one enantiomer and at most 10% of the other enantiomer), preferably at least 90% and more preferably at least 98%.
  • The term “halo,” as used herein, represents a halogen selected from bromine, chlorine, iodine, or fluorine.
  • The term “haloalkoxy,” as used herein, represents an alkoxy group, as defined herein, substituted by a halogen group (i.e., F, Cl, Br, or I). A haloalkoxy may be substituted with one, two, three, or, in the case of alkyl groups of two carbons or more, four halogens. Haloalkoxy groups include perfluoroalkoxys (e.g., —OCF3), —OCHF2, —OCH2F, —OCCl3, —OCH2CH2Br, —OCH2CH(CH2CH2Br)CH3, and —OCHICH3. In some embodiments, the haloalkoxy group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for alkyl groups.
  • The term “haloalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by a halogen group (i.e., F, Cl, Br, or I). A haloalkyl may be substituted with one, two, three, or, in the case of alkyl groups of two carbons or more, four halogens. Haloalkyl groups include perfluoroalkyls (e.g., —CF3), —CHF2, —CH2F, —CCl3, —CH2CH2Br, —CH2CH(CH2CH2Br)CH3, and —CHICH3. In some embodiments, the haloalkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for alkyl groups.
  • The term “heteroalkylene,” as used herein, refers to an alkylene group, as defined herein, in which one or two of the constituent carbon atoms have each been replaced by nitrogen, oxygen, or sulfur. In some embodiments, the heteroalkylene group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein for alkylene groups.
  • The term “heteroaryl,” as used herein, represents that subset of heterocyclyls, as defined herein, which are aromatic: i.e., they contain 4n+2 pi electrons within the mono- or multicyclic ring system. Exemplary unsubstituted heteroaryl groups are of 1 to 12 (e.g., 1 to 11, 1 to 10, 1 to 9, 2 to 12, 2 to 11, 2 to 10, or 2 to 9) carbons. In some embodiment, the heteroaryl is substituted with 1, 2, 3, or 4 substituents groups as defined for a heterocyclyl group.
  • The term “heterocyclyl,” as used herein represents a 5-, 6- or 7-membered ring, unless otherwise specified, containing one, two, three, or four heteroatoms independently selected from the group consisting of nitrogen, oxygen, and sulfur. The 5-membered ring has zero to two double bonds, and the 6- and 7-membered rings have zero to three double bonds. Exemplary unsubstituted heterocyclyl groups are of 1 to 12 (e.g., 1 to 11, 1 to 10, 1 to 9, 2 to 12, 2 to 11, 2 to 10, or 2 to 9) carbons. The term “heterocyclyl” also represents a heterocyclic compound having a bridged multicyclic structure in which one or more carbons and/or heteroatoms bridges two non-adjacent members of a monocyclic ring, e.g., a quinuclidinyl group. The term “heterocyclyl” includes bicyclic, tricyclic, and tetracyclic groups in which any of the above heterocyclic rings is fused to one, two, or three carbocyclic rings, e.g., an aryl ring, a cyclohexane ring, a cyclohexene ring, a cyclopentane ring, a cyclopentene ring, or another monocyclic heterocyclic ring, such as indolyl, quinolyl, isoquinolyl, tetrahydroquinolyl, benzofuryl, benzothienyl and the like. Examples of fused heterocyclyls include tropanes and 1,2,3,5,8,8a-hexahydroindolizine. Heterocyclics include pyrrolyl, pyrrolinyl, pyrrolidinyl, pyrazolyl, pyrazolinyl, pyrazolidinyl, imidazolyl, imidazolinyl, imidazolidinyl, pyridyl, piperidinyl, homopiperidinyl, pyrazinyl, piperazinyl, pyrimidinyl, pyridazinyl, oxazolyl, oxazolidinyl, isoxazolyl, isoxazolidiniyl, morpholinyl, thiomorpholinyl, thiazolyl, thiazolidinyl, isothiazolyl, isothiazolidinyl, indolyl, indazolyl, quinolyl, isoquinolyl, quinoxalinyl, dihydroquinoxalinyl, quinazolinyl, cinnolinyl, phthalazinyl, benzimidazolyl, benzothiazolyl, benzoxazolyl, benzothiadiazolyl, furyl, thienyl, thiazolidinyl, isothiazolyl, triazolyl, tetrazolyl, oxadiazolyl (e.g., 1,2,3-oxadiazolyl), purinyl, thiadiazolyl (e.g., 1,2,3-thiadiazolyl), tetrahydrofuranyl, dihydrofuranyl, tetrahydrothienyl, dihydrothienyl, dihydroindolyl, dihydroquinolyl, tetrahydroquinolyl, tetrahydroisoquinolyl, dihydroisoquinolyl, pyranyl, dihydropyranyl, dithiazolyl, benzofuranyl, isobenzofuranyl, benzothienyl, and the like, including dihydro and tetrahydro forms thereof, where one or more double bonds are reduced and replaced with hydrogens. Still other exemplary heterocyclyls include: 2,3,4,5-tetrahydro-2-oxo-oxazolyl; 2,3-dihydro-2-oxo-1H-imidazolyl; 2,3,4,5-tetrahydro-5-oxo-1H-pyrazolyl (e.g., 2,3,4,5-tetrahydro-2-phenyl-5-oxo-1H-pyrazolyl); 2,3,4,5-tetrahydro-2,4-dioxo-1H-imidazolyl (e.g., 2,3,4,5-tetrahydro-2,4-dioxo-5-methyl-5-phenyl-1H-imidazolyl); 2,3-dihydro-2-thioxo-1,3,4-oxadiazolyl (e.g., 2,3-dihydro-2-thioxo-5-phenyl-1,3,4-oxadiazolyl); 4,5-dihydro-5-oxo-1H-triazolyl (e.g., 4,5-dihydro-3-methyl-4-amino 5-oxo-1H-triazolyl); 1,2,3,4-tetrahydro-2,4-dioxopyridinyl (e.g., 1,2,3,4-tetrahydro-2,4-dioxo-3,3-diethylpyridinyl); 2,6-dioxo-piperidinyl (e.g., 2,6-dioxo-3-ethyl-3-phenylpiperidinyl); 1,6-dihydro-6-oxopyridiminyl; 1,6-dihydro-4-oxopyrimidinyl (e.g., 2-(methylthio)-1,6-dihydro-4-oxo-5-methylpyrimidin-1-yl); 1,2,3,4-tetrahydro-2,4-dioxopyrimidinyl (e.g., 1,2,3,4-tetrahydro-2,4-dioxo-3-ethylpyrimidinyl); 1,6-dihydro-6-oxo-pyridazinyl (e.g., 1,6-dihydro-6-oxo-3-ethylpyridazinyl); 1,6-dihydro-6-oxo-1,2,4-triazinyl (e.g., 1,6-dihydro-5-isopropyl-6-oxo-1,2,4-triazinyl); 2,3-dihydro-2-oxo-1H-indolyl (e.g., 3,3-dimethyl-2,3-dihydro-2-oxo-1H-indolyl and 2,3-dihydro-2-oxo-3,3′-spiropropane-1H-indol-1-yl); 1,3-dihydro-1-oxo-2H-iso-indolyl; 1,3-dihydro-1,3-dioxo-2H-iso-indolyl; 1H-benzopyrazolyl (e.g., 1-(ethoxycarbonyl)-1H-benzopyrazolyl); 2,3-dihydro-2-oxo-1H-benzimidazolyl (e.g., 3-ethyl-2,3-dihydro-2-oxo-1H-benzimidazolyl); 2,3-dihydro-2-oxo-benzoxazolyl (e.g., 5-chloro-2,3-dihydro-2-oxo-benzoxazolyl); 2,3-dihydro-2-oxo-benzoxazolyl; 2-oxo-2H-benzopyranyl; 1,4-benzodioxanyl; 1,3-benzodioxanyl; 2,3-dihydro-3-oxo, 4H-1,3-benzothiazinyl; 3,4-dihydro-4-oxo-3H-quinazolinyl (e.g., 2-methyl-3,4-dihydro-4-oxo-3H-quinazolinyl); 1,2,3,4-tetrahydro-2,4-dioxo-3H-quinazolyl (e.g., 1-ethyl-1,2,3,4-tetrahydro-2,4-dioxo-3H-quinazolyl); 1,2,3,6-tetrahydro-2,6-dioxo-7H-purinyl (e.g., 1,2,3,6-tetrahydro-1,3-dimethyl-2,6-dioxo-7H-purinyl); 1,2,3,6-tetrahydro-2,6-dioxo-1H-purinyl (e.g., 1,2,3,6-tetrahydro-3,7-dimethyl-2,6-dioxo-1H-purinyl); 2-oxobenz[c,d]indolyl; 1,1-dioxo-2H-naphth[1,8-c, d]isothiazolyl; and 1,8-naphthylenedicarboxamido. Additional heterocyclics include 3,3a,4,5,6,6a-hexahydro-pyrrolo[3,4-b]pyrrol-(2H)-yl, and 2,5-diazabicyclo[2.2.1]heptan-2-yl, homopiperazinyl (or diazepanyl), tetrahydropyranyl, dithiazolyl, benzofuranyl, benzothienyl, oxepanyl, thiepanyl, azocanyl, oxecanyl, and thiocanyl. Heterocyclic groups also include groups of the formula
  • Figure US20130123481A1-20130516-C00162
  • where E′ is selected from the group consisting of —N— and —CH—; F′ is selected from the group consisting of —N═CH—, —NH—CH2—, —NH—C(O)—, —NH—, —CH═N—, —CH2—NH—, —C(O)—NH—, —CH═CH—, —CH2—, —CH2CH2—, —CH2O—, —OCH2—, —O—, and —S—; and G′ is selected from the group consisting of —CH— and —N—. Any of the heterocyclyl groups mentioned herein may be optionally substituted with one, two, three, four or five substituents independently selected from the group consisting of: (1) C1-7 acyl (e.g., carboxyaldehyde); (2) C1-20 alkyl (e.g., C1-6 alkyl, C1-6 alkoxy-C1-6 alkyl, C1-6 alkylsulfinyl-C1-6 alkyl, amino-C1-6 alkyl, azido-C1-6 alkyl, (carboxyaldehyde)-C1-6 alkyl, halo-C1-6 alkyl (e.g., perfluoroalkyl), hydroxy-C1-6 alkyl, nitro-C1-6 alkyl, or C1-6 thioalkoxy-C1-6 alkyl); (3) C1-20 alkoxy (e.g., C1-6 alkoxy, such as perfluoroalkoxy); (4) C1-6 alkylsulfinyl; (5) C6-10 aryl; (6) amino; (7) C1-6 alk-C6-10 aryl; (8) azido; (9) C3-8cycloalkyl; (10) C1-6 alk-C3-8 cycloalkyl; (11) halo; (12) C1-12 heterocyclyl (e.g., C2-12 heteroaryl); (13) (C1-12 heterocyclyl)oxy; (14) hydroxy; (15) nitro; (16) C1-20 thioalkoxy (e.g., C1-6 thioalkoxy); (17) —(CH2)qCO2RA′, where q is an integer from zero to four, and RA′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, (c) hydrogen, and (d) C1-6 alk-C6-10 aryl; (18) —(CH2)qCONRB′RC′, where q is an integer from zero to four and where RB′ and RC′ are independently selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (19) —(CH2)qSO2RD′, where q is an integer from zero to four and where RD′ is selected from the group consisting of (a) C1-6 alkyl, (b) C6-10 aryl, and (c) C1-6 alk-C6-10 aryl; (20) —(CH2)qSO2NRE′RF′, where q is an integer from zero to four and where each of RE′ and RF′ is, independently, selected from the group consisting of (a) hydrogen, (b) C1-6 alkyl, (c) C6-10 aryl, and (d) C1-6 alk-C6-10 aryl; (21) thiol; (22) C6-10 aryloxy; (23) C3-8cycloalkoxy; (24) arylalkoxy; (25) C1-6 alk-C1-12 heterocyclyl (e.g., C1-6 alk-C1-12 heteroaryl); (26) oxo; (27) (C1-12 heterocyclyl)imino; (28) C2-20 alkenyl; and (29) C2-20 alkynyl. In some embodiments, each of these groups can be further substituted as described herein. For example, the alkylene group of a C1-alkaryl or a C1-alkheterocyclyl can be further substituted with an oxo group to afford the respective aryloyl and (heterocyclyl)oyl substituent group.
  • The term “(heterocyclyl) imino,” as used herein, represents a heterocyclyl group, as defined herein, attached to the parent molecular group through an imino group. In some embodiments, the heterocyclyl group can be substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • The term “(heterocyclyl)oxy,” as used herein, represents a heterocyclyl group, as defined herein, attached to the parent molecular group through an oxygen atom. In some embodiments, the heterocyclyl group can be substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • The term “(heterocyclyl)oyl,” as used herein, represents a heterocyclyl group, as defined herein, attached to the parent molecular group through a carbonyl group. In some embodiments, the heterocyclyl group can be substituted with 1, 2, 3, or 4 substituent groups as defined herein.
  • The term “hydrocarbon,” as used herein, represents a group consisting only of carbon and hydrogen atoms.
  • The term “hydroxy,” as used herein, represents an —OH group. In some embodiments, the hydroxy group can be substituted with 1, 2, 3, or 4 substituent groups (e.g., O-protecting groups) as defined herein for an alkyl.
  • The term “hydroxyalkenyl,” as used herein, represents an alkenyl group, as defined herein, substituted by one to three hydroxy groups, with the proviso that no more than one hydroxy group may be attached to a single carbon atom of the alkyl group, and is exemplified by dihydroxypropenyl, hydroxyisopentenyl, and the like. In some embodiments, the hydroxyalkenyl group can be substituted with 1, 2, 3, or 4 substituent groups (e.g., O-protecting groups) as defined herein for an alkyl.
  • The term “hydroxyalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by one to three hydroxy groups, with the proviso that no more than one hydroxy group may be attached to a single carbon atom of the alkyl group, and is exemplified by hydroxymethyl, dihydroxypropyl, and the like. In some embodiments, the hydroxyalkyl group can be substituted with 1, 2, 3, or 4 substituent groups (e.g., O-protecting groups) as defined herein for an alkyl.
  • The term “hydroxyalkynyl,” as used herein, represents an alkynyl group, as defined herein, substituted by one to three hydroxy groups, with the proviso that no more than one hydroxy group may be attached to a single carbon atom of the alkyl group. In some embodiments, the hydroxyalkynyl group can be substituted with 1, 2, 3, or 4 substituent groups (e.g., O-protecting groups) as defined herein for an alkyl.
  • The term “isomer,” as used herein, means any tautomer, stereoisomer, enantiomer, or diastereomer of any compound of the invention. It is recognized that the compounds of the invention can have one or more chiral centers and/or double bonds and, therefore, exist as stereoisomers, such as double-bond isomers (i.e., geometric E/Z isomers) or diastereomers (e.g., enantiomers (i.e., (+) or (−)) or cis/trans isomers). According to the invention, the chemical structures depicted herein, and therefore the compounds of the invention, encompass all of the corresponding stereoisomers, that is, both the stereomerically pure form (e.g., geometrically pure, enantiomerically pure, or diastereomerically pure) and enantiomeric and stereoisomeric mixtures, e.g., racemates. Enantiomeric and stereoisomeric mixtures of compounds of the invention can typically be resolved into their component enantiomers or stereoisomers by well-known methods, such as chiral-phase gas chromatography, chiral-phase high performance liquid chromatography, crystallizing the compound as a chiral salt complex, or crystallizing the compound in a chiral solvent. Enantiomers and stereoisomers can also be obtained from stereomerically or enantiomerically pure intermediates, reagents, and catalysts by well-known asymmetric synthetic methods.
  • The term “N-protected amino,” as used herein, refers to an amino group, as defined herein, to which is attached one or two N-protecting groups, as defined herein.
  • The term “N-protecting group,” as used herein, represents those groups intended to protect an amino group against undesirable reactions during synthetic procedures. Commonly used N-protecting groups are disclosed in Greene, “Protective Groups in Organic Synthesis,” 3rd Edition (John Wiley & Sons, New York, 1999), which is incorporated herein by reference. N-protecting groups include acyl, aryloyl, or carbamyl groups such as formyl, acetyl, propionyl, pivaloyl, t-butylacetyl, 2-chloroacetyl, 2-bromoacetyl, trifluoroacetyl, trichloroacetyl, phthalyl, o-nitrophenoxyacetyl, α-chlorobutyryl, benzoyl, 4-chlorobenzoyl, 4-bromobenzoyl, 4-nitrobenzoyl, and chiral auxiliaries such as protected or unprotected D, L or D, L-amino acids such as alanine, leucine, phenylalanine, and the like; sulfonyl-containing groups such as benzenesulfonyl, p-toluenesulfonyl, and the like; carbamate forming groups such as benzyloxycarbonyl, p-chlorobenzyloxycarbonyl, p-methoxybenzyloxycarbonyl, p-nitrobenzyloxycarbonyl, 2-nitrobenzyloxycarbonyl, p-bromobenzyloxycarbonyl, 3,4-dimethoxybenzyloxycarbonyl, 3,5-dimethoxybenzyloxycarbonyl, 2,4-dimethoxybenzyloxycarbonyl, 4-methoxybenzyloxycarbonyl, 2-nitro-4,5-dimethoxybenzyloxycarbonyl, 3,4,5-trimethoxybenzyloxycarbonyl, 1-(p-biphenylyl)-1-methylethoxycarbonyl, α,α-dimethyl-3,5-dimethoxybenzyloxycarbonyl, benzhydryloxy carbonyl, t-butyloxycarbonyl, diisopropylmethoxycarbonyl, isopropyloxycarbonyl, ethoxycarbonyl, methoxycarbonyl, allyloxycarbonyl, 2,2,2-trichloroethoxycarbonyl, phenoxycarbonyl, 4-nitrophenoxy carbonyl, fluorenyl-9-methoxycarbonyl, cyclopentyloxycarbonyl, adamantyloxycarbonyl, cyclohexyloxycarbonyl, phenylthiocarbonyl, and the like, alkaryl groups such as benzyl, triphenylmethyl, benzyloxymethyl, and the like and silyl groups, such as trimethylsilyl, and the like. Preferred N-protecting groups are formyl, acetyl, benzoyl, pivaloyl, t-butylacetyl, alanyl, phenylsulfonyl, benzyl, t-butyloxycarbonyl (Boc), and benzyloxycarbonyl (Cbz).
  • The term “nitro,” as used herein, represents an —NO2 group.
  • The term “O-protecting group,” as used herein, represents those groups intended to protect an oxygen containing (e.g., phenol, hydroxyl, or carbonyl) group against undesirable reactions during synthetic procedures. Commonly used O-protecting groups are disclosed in Greene, “Protective Groups in Organic Synthesis,” 3rd Edition (John Wiley & Sons, New York, 1999), which is incorporated herein by reference. Exemplary O-protecting groups include acyl, aryloyl, or carbamyl groups, such as formyl, acetyl, propionyl, pivaloyl, t-butylacetyl, 2-chloroacetyl, 2-bromoacetyl, trifluoroacetyl, trichloroacetyl, phthalyl, o-nitrophenoxyacetyl, α-chlorobutyryl, benzoyl, 4-chlorobenzoyl, 4-bromobenzoyl, t-butyldimethylsilyl, tri-iso-propylsilyloxymethyl, 4,4′-dimethoxytrityl, isobutyryl, phenoxyacetyl, 4-isopropylpehenoxyacetyl, dimethylformamidino, and 4-nitrobenzoyl; alkylcarbonyl groups, such as acyl, acetyl, propionyl, pivaloyl, and the like; optionally substituted arylcarbonyl groups, such as benzoyl; silyl groups, such as trimethylsilyl (TMS), tert-butyldimethylsilyl (TBDMS), tri-iso-propylsilyloxymethyl (TOM), triisopropylsilyl (TIPS), and the like; ether-forming groups with the hydroxyl, such methyl, methoxymethyl, tetrahydropyranyl, benzyl, p-methoxybenzyl, trityl, and the like; alkoxycarbonyls, such as methoxycarbonyl, ethoxycarbonyl, isopropoxycarbonyl, n-isopropoxycarbonyl, n-butyloxycarbonyl, isobutyloxycarbonyl, sec-butyloxycarbonyl, t-butyloxycarbonyl, 2-ethylhexyloxycarbonyl, cyclohexyloxycarbonyl, methyloxycarbonyl, and the like; alkoxyalkoxycarbonyl groups, such as methoxymethoxycarbonyl, ethoxymethoxycarbonyl, 2-methoxyethoxycarbonyl, 2-ethoxyethoxycarbonyl, 2-butoxyethoxycarbonyl, 2-methoxyethoxymethoxycarbonyl, allyloxycarbonyl, propargyloxycarbonyl, 2-butenoxycarbonyl, 3-methyl-2-butenoxycarbonyl, and the like; haloalkoxycarbonyls, such as 2-chloroethoxycarbonyl, 2-chloroethoxycarbonyl, 2,2,2-trichloroethoxycarbonyl, and the like; optionally substituted arylalkoxycarbonyl groups, such as benzyloxycarbonyl, p-methylbenzyloxycarbonyl, p-methoxybenzyloxycarbonyl, p-nitrobenzyloxycarbonyl, 2,4-dinitrobenzyloxycarbonyl, 3,5-dimethylbenzyloxycarbonyl, p-chlorobenzyloxycarbonyl, p-bromobenzyloxy-carbonyl, fluorenylmethyloxycarbonyl, and the like; and optionally substituted aryloxycarbonyl groups, such as phenoxycarbonyl, p-nitrophenoxycarbonyl, o-nitrophenoxycarbonyl, 2,4-dinitrophenoxycarbonyl, p-methyl-phenoxycarbonyl, m-methylphenoxycarbonyl, o-bromophenoxycarbonyl, 3,5-dimethylphenoxycarbonyl, p-chlorophenoxycarbonyl, 2-chloro-4-nitrophenoxy-carbonyl, and the like); substituted alkyl, aryl, and alkaryl ethers (e.g., trityl; methylthiomethyl; methoxymethyl; benzyloxymethyl; siloxymethyl; 2,2,2-trichloroethoxymethyl; tetrahydropyranyl; tetrahydrofuranyl; ethoxyethyl; 1-[2-(trimethylsilyl)ethoxy]ethyl; 2-trimethylsilylethyl; t-butyl ether; p-chlorophenyl, p-methoxyphenyl, p-nitrophenyl, benzyl, p-methoxybenzyl, and nitrobenzyl); silyl ethers (e.g., trimethylsilyl; triethylsilyl; triisopropylsilyl; dimethylisopropylsilyl; t-butyldimethylsilyl; t-butyldiphenylsilyl; tribenzylsilyl; triphenylsilyl; and diphenymethylsilyl); carbonates (e.g., methyl, methoxymethyl, 9-fluorenylmethyl; ethyl; 2,2,2-trichloroethyl; 2-(trimethylsilyl)ethyl; vinyl, allyl, nitrophenyl; benzyl; methoxybenzyl; 3,4-dimethoxybenzyl; and nitrobenzyl); carbonyl-protecting groups (e.g., acetal and ketal groups, such as dimethyl acetal, 1,3-dioxolane, and the like; acylal groups; and dithiane groups, such as 1,3-dithianes, 1,3-dithiolane, and the like); carboxylic acid-protecting groups (e.g., ester groups, such as methyl ester, benzyl ester, t-butyl ester, orthoesters, and the like; and oxazoline groups.
  • The term “oxo” as used herein, represents ═O.
  • The term “perfluoroalkyl,” as used herein, represents an alkyl group, as defined herein, where each hydrogen radical bound to the alkyl group has been replaced by a fluoride radical. Perfluoroalkyl groups are exemplified by trifluoromethyl, pentafluoroethyl, and the like.
  • The term “perfluoroalkoxy,” as used herein, represents an alkoxy group, as defined herein, where each hydrogen radical bound to the alkoxy group has been replaced by a fluoride radical. Perfluoroalkoxy groups are exemplified by trifluoromethoxy, pentafluoroethoxy, and the like.
  • The term “spirocyclyl,” as used herein, represents a C2-7alkylene diradical, both ends of which are bonded to the same carbon atom of the parent group to form a spirocyclic group, and also a C1-6 heteroalkylene diradical, both ends of which are bonded to the same atom. The heteroalkylene radical forming the spirocyclyl group can containing one, two, three, or four heteroatoms independently selected from the group consisting of nitrogen, oxygen, and sulfur. In some embodiments, the spirocyclyl group includes one to seven carbons, excluding the carbon atom to which the diradical is attached. The spirocyclyl groups of the invention may be optionally substituted with 1, 2, 3, or 4 substituents provided herein as optional substituents for cycloalkyl and/or heterocyclyl groups.
  • The term “stereoisomer,” as used herein, refers to all possible different isomeric as well as conformational forms which a compound may possess (e.g., a compound of any formula described herein), in particular all possible stereochemically and conformationally isomeric forms, all diastereomers, enantiomers and/or conformers of the basic molecular structure. Some compounds of the present invention may exist in different tautomeric forms, all of the latter being included within the scope of the present invention.
  • The term “sulfoalkyl,” as used herein, represents an alkyl group, as defined herein, substituted by a sulfo group of —SO3H. In some embodiments, the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein, and the sulfo group can be further substituted with one or more O-protecting groups (e.g., as described herein).
  • The term “sulfonyl,” as used herein, represents an —S(O)2— group.
  • The term “thioalkaryl,” as used herein, represents a chemical substituent of formula —SR, where R is an alkaryl group. In some embodiments, the alkaryl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • The term “thioalkheterocyclyl,” as used herein, represents a chemical substituent of formula —SR, where R is an alkheterocyclyl group. In some embodiments, the alkheterocyclyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • The term “thioalkoxy,” as used herein, represents a chemical substituent of formula —SR, where R is an alkyl group, as defined herein. In some embodiments, the alkyl group can be further substituted with 1, 2, 3, or 4 substituent groups as described herein.
  • Compound: As used herein, the term “compound,” is meant to include all stereoisomers, geometric isomers, tautomers, and isotopes of the structures depicted.
  • The compounds described herein can be asymmetric (e.g., having one or more stereocenters). All stereoisomers, such as enantiomers and diastereomers, are intended unless otherwise indicated. Compounds of the present disclosure that contain asymmetrically substituted carbon atoms can be isolated in optically active or racemic forms. Methods on how to prepare optically active forms from optically active starting materials are known in the art, such as by resolution of racemic mixtures or by stereoselective synthesis. Many geometric isomers of olefins, C═N double bonds, and the like can also be present in the compounds described herein, and all such stable isomers are contemplated in the present disclosure. Cis and trans geometric isomers of the compounds of the present disclosure are described and may be isolated as a mixture of isomers or as separated isomeric forms.
  • Compounds of the present disclosure also include tautomeric forms. Tautomeric forms result from the swapping of a single bond with an adjacent double bond and the concomitant migration of a proton. Tautomeric forms include prototropic tautomers which are isomeric protonation states having the same empirical formula and total charge. Examples prototropic tautomers include ketone—enol pairs, amide—imidic acid pairs, lactam—lactim pairs, amide—imidic acid pairs, enamine—imine pairs, and annular forms where a proton can occupy two or more positions of a heterocyclic system, such as, 1H- and 3H-imidazole, 1H-, 2H- and 4H-1,2,4-triazole, 1H- and 2H-isoindole, and 1H- and 2H-pyrazole. Tautomeric forms can be in equilibrium or sterically locked into one form by appropriate substitution.
  • Compounds of the present disclosure also include all of the isotopes of the atoms occurring in the intermediate or final compounds. “Isotopes” refers to atoms having the same atomic number but different mass numbers resulting from a different number of neutrons in the nuclei. For example, isotopes of hydrogen include tritium and deuterium.
  • The compounds and salts of the present disclosure can be prepared in combination with solvent or water molecules to form solvates and hydrates by routine methods.
  • Conserved: As used herein, the term “conserved” refers to nucleotides or amino acid residues of a polynucleotide sequence or polypeptide sequence, respectively, that are those that occur unaltered in the same position of two or more sequences being compared. Nucleotides or amino acids that are relatively conserved are those that are conserved amongst more related sequences than nucleotides or amino acids appearing elsewhere in the sequences.
  • In some embodiments, two or more sequences are said to be “completely conserved” if they are 100% identical to one another. In some embodiments, two or more sequences are said to be “highly conserved” if they are at least 70% identical, at least 80% identical, at least 90% identical, or at least 95% identical to one another. In some embodiments, two or more sequences are said to be “highly conserved” if they are about 70% identical, about 80% identical, about 90% identical, about 95%, about 98%, or about 99% identical to one another. In some embodiments, two or more sequences are said to be “conserved” if they are at least 30% identical, at least 40% identical, at least 50% identical, at least 60% identical, at least 70% identical, at least 80% identical, at least 90% identical, or at least 95% identical to one another. In some embodiments, two or more sequences are said to be “conserved” if they are about 30% identical, about 40% identical, about 50% identical, about 60% identical, about 70% identical, about 80% identical, about 90% identical, about 95% identical, about 98% identical, or about 99% identical to one another. Conservation of sequence may apply to the entire length of an oligonucleotide or polypeptide or may apply to a portion, region or feature thereof.
  • Cyclic or Cyclized: As used herein, the term “cyclic” refers to the presence of a continuous loop. Cyclic molecules need not be circular, only joined to form an unbroken chain of subunits. Cyclic molecules such as the mRNA of the present invention may be single units or multimers or comprise one or more components of a complex or higher order structure.
  • Cytostatic: As used herein, “cytostatic” refers to inhibiting, reducing, suppressing the growth, division, or multiplication of a cell (e.g., a mammalian cell (e.g., a human cell)), bacterium, virus, fungus, protozoan, parasite, prion, or a combination thereof.
  • Cytotoxic: As used herein, “cytotoxic” refers to killing or causing injurious, toxic, or deadly effect on a cell (e.g., a mammalian cell (e.g., a human cell)), bacterium, virus, fungus, protozoan, parasite, prion, or a combination thereof.
  • Delivery: As used herein, “delivery” refers to the act or manner of delivering a compound, substance, entity, moiety, cargo or payload.
  • Delivery Agent: As used herein, “delivery agent” refers to any substance which facilitates, at least in part, the in vivo delivery of a polynucleotide to targeted cells.
  • Destabilized: As used herein, the term “destable,” “destabilize,” or “destabilizing region” means a region or molecule that is less stable than a starting, wild-type or native form of the same region or molecule.
  • Detectable label: As used herein, “detectable label” refers to one or more markers, signals, or moieties which are attached, incorporated or associated with another entity that is readily detected by methods known in the art including radiography, fluorescence, chemiluminescence, enzymatic activity, absorbance and the like. Detectable labels include radioisotopes, fluorophores, chromophores, enzymes, dyes, metal ions, ligands such as biotin, avidin, streptavidin and haptens, quantum dots, and the like. Detectable labels may be located at any position in the peptides or proteins disclosed herein. They may be within the amino acids, the peptides, or proteins, or located at the N- or C-termini.
  • Digest: As used herein, the term “digest” means to break apart into smaller pieces or components. When referring to polypeptides or proteins, digestion results in the production of peptides.
  • Distal: As used herein, the term “distal” means situated away from the center or away from a point or region of interest.
  • Encoded protein cleavage signal: As used herein, “encoded protein cleavage signal” refers to the nucleotide sequence which encodes a protein cleavage signal.
  • Engineered: As used herein, embodiments of the invention are “engineered” when they are designed to have a feature or property, whether structural or chemical, that varies from a starting point, wild type or native molecule.
  • Expression: As used herein, “expression” of a nucleic acid sequence refers to one or more of the following events: (1) production of an RNA template from a DNA sequence (e.g., by transcription); (2) processing of an RNA transcript (e.g., by splicing, editing, 5′ cap formation, and/or 3′ end processing); (3) translation of an RNA into a polypeptide or protein; and (4) post-translational modification of a polypeptide or protein.
  • Feature: As used herein, a “feature” refers to a characteristic, a property, or a distinctive element.
  • Formulation: As used herein, a “formulation” includes at least a polynucleotide and a delivery agent.
  • Fragment: A “fragment,” as used herein, refers to a portion. For example, fragments of proteins may comprise polypeptides obtained by digesting full-length protein isolated from cultured cells.
  • Functional: As used herein, a “functional” biological molecule is a biological molecule in a form in which it exhibits a property and/or activity by which it is characterized.
  • Homology: As used herein, the term “homology” refers to the overall relatedness between polymeric molecules, e.g. between nucleic acid molecules (e.g. DNA molecules and/or RNA molecules) and/or between polypeptide molecules. In some embodiments, polymeric molecules are considered to be “homologous” to one another if their sequences are at least 25%, 30%, 35%, 40%, 45%, 50%, 55%, 60%, 65%, 70%, 75%, 80%, 85%, 90%, 95%, or 99% identical or similar. The term “homologous” necessarily refers to a comparison between at least two sequences (polynucleotide or polypeptide sequences). In accordance with the invention, two polynucleotide sequences are considered to be homologous if the polypeptides they encode are at least about 50%, 60%, 70%, 80%, 90%, 95%, or even 99% for at least one stretch of at least about 20 amino acids. In some embodiments, homologous polynucleotide sequences are characterized by the ability to encode a stretch of at least 4-5 uniquely specified amino acids. For polynucleotide sequences less than 60 nucleotides in length, homology is determined by the ability to encode a stretch of at least 4-5 uniquely specified amino acids. In accordance with the invention, two protein sequences are considered to be homologous if the proteins are at least about 50%, 60%, 70%, 80%, or 90% identical for at least one stretch of at least about 20 amino acids.
  • Identity: As used herein, the term “identity” refers to the overall relatedness between polymeric molecules, e.g., between oligonucleotide molecules (e.g. DNA molecules and/or RNA molecules) and/or between polypeptide molecules. Calculation of the percent identity of two polynucleotide sequences, for example, can be performed by aligning the two sequences for optimal comparison purposes (e.g., gaps can be introduced in one or both of a first and a second nucleic acid sequences for optimal alignment and non-identical sequences can be disregarded for comparison purposes). In certain embodiments, the length of a sequence aligned for comparison purposes is at least 30%, at least 40%, at least 50%, at least 60%, at least 70%, at least 80%, at least 90%, at least 95%, or 100% of the length of the reference sequence. The nucleotides at corresponding nucleotide positions are then compared. When a position in the first sequence is occupied by the same nucleotide as the corresponding position in the second sequence, then the molecules are identical at that position. The percent identity between the two sequences is a function of the number of identical positions shared by the sequences, taking into account the number of gaps, and the length of each gap, which needs to be introduced for optimal alignment of the two sequences. The comparison of sequences and determination of percent identity between two sequences can be accomplished using a mathematical algorithm. For example, the percent identity between two nucleotide sequences can be determined using methods such as those described in Computational Molecular Biology, Lesk, A. M., ed., Oxford University Press, New York, 1988; Biocomputing: Informatics and Genome Projects, Smith, D. W., ed., Academic Press, New York, 1993; Sequence Analysis in Molecular Biology, von Heinje, G., Academic Press, 1987; Computer Analysis of Sequence Data, Part I, Griffin, A. M., and Griffin, H. G., eds., Humana Press, New Jersey, 1994; and Sequence Analysis Primer, Gribskov, M. and Devereux, J., eds., M Stockton Press, New York, 1991; each of which is incorporated herein by reference. For example, the percent identity between two nucleotide sequences can be determined using the algorithm of Meyers and Miller (CABIOS, 1989, 4:11-17), which has been incorporated into the ALIGN program (version 2.0) using a PAM120 weight residue table, a gap length penalty of 12 and a gap penalty of 4. The percent identity between two nucleotide sequences can, alternatively, be determined using the GAP program in the GCG software package using an NWSgapdna.CMP matrix. Methods commonly employed to determine percent identity between sequences include, but are not limited to those disclosed in Carillo, H., and Lipman, D., SIAM J Applied Math., 48:1073 (1988); incorporated herein by reference. Techniques for determining identity are codified in publicly available computer programs. Exemplary computer software to determine homology between two sequences include, but are not limited to, GCG program package, Devereux, J., et al., Nucleic Acids Research, 12(1), 387 (1984)), BLASTP, BLASTN, and FASTA Altschul, S. F. et al., J. Molec. Biol., 215, 403 (1990)).
  • Inhibit expression of a gene: As used herein, the phrase “inhibit expression of a gene” means to cause a reduction in the amount of an expression product of the gene. The expression product can be an RNA transcribed from the gene (e.g., an mRNA) or a polypeptide translated from an mRNA transcribed from the gene. Typically a reduction in the level of an mRNA results in a reduction in the level of a polypeptide translated therefrom. The level of expression may be determined using standard techniques for measuring mRNA or protein.
  • In vitro: As used herein, the term “in vitro” refers to events that occur in an artificial environment, e.g., in a test tube or reaction vessel, in cell culture, in a Petri dish, etc., rather than within an organism (e.g., animal, plant, or microbe).
  • In vivo: As used herein, the term “in vivo” refers to events that occur within an organism (e.g., animal, plant, or microbe or cell or tissue thereof).
  • Isolated: As used herein, the term “isolated” refers to a substance or entity that has been separated from at least some of the components with which it was associated (whether in nature or in an experimental setting). Isolated substances may have varying levels of purity in reference to the substances from which they have been associated. Isolated substances and/or entities may be separated from at least about 10%, about 20%, about 30%, about 40%, about 50%, about 60%, about 70%, about 80%, about 90%, or more of the other components with which they were initially associated. In some embodiments, isolated agents are more than about 80%, about 85%, about 90%, about 91%, about 92%, about 93%, about 94%, about 95%, about 96%, about 97%, about 98%, about 99%, or more than about 99% pure. As used herein, a substance is “pure” if it is substantially free of other components. Substantially isolated: By “substantially isolated” is meant that the compound is substantially separated from the environment in which it was formed or detected. Partial separation can include, for example, a composition enriched in the compound of the present disclosure. Substantial separation can include compositions containing at least about 50%, at least about 60%, at least about 70%, at least about 80%, at least about 90%, at least about 95%, at least about 97%, or at least about 99% by weight of the compound of the present disclosure, or salt thereof. Methods for isolating compounds and their salts are routine in the art.
  • Linker: As used herein, a linker refers to a group of atoms, e.g., 10-1,000 atoms, and can be comprised of the atoms or groups such as, but not limited to, carbon, amino, alkylamino, oxygen, sulfur, sulfoxide, sulfonyl, carbonyl, and imine. The linker can be attached to a modified nucleoside or nucleotide on the nucleobase or sugar moiety at a first end, and to a payload, e.g., a detectable or therapeutic agent, at a second end. The linker may be of sufficient length as to not interfere with incorporation into a nucleic acid sequence. The linker can be used for any useful purpose, such as to form multimers (e.g., through linkage of two or more polynucleotides) or conjugates, as well as to administer a payload, as described herein. Examples of chemical groups that can be incorporated into the linker include, but are not limited to, alkyl, alkenyl, alkynyl, amido, amino, ether, thioether, ester, alkylene, heteroalkylene, aryl, or heterocyclyl, each of which can be optionally substituted, as described herein. Examples of linkers include, but are not limited to, unsaturated alkanes, polyethylene glycols (e.g., ethylene or propylene glycol monomeric units, e.g., diethylene glycol, dipropylene glycol, triethylene glycol, tripropylene glycol, tetraethylene glycol, or tetraethylene glycol), and dextran polymers, Other examples include, but are not limited to, cleavable moieties within the linker, such as, for example, a disulfide bond (—S—S—) or an azo bond (—N═N—), which can be cleaved using a reducing agent or photolysis. Non-limiting examples of a selectively cleavable bond include an amido bond can be cleaved for example by the use of tris(2-carboxyethyl)phosphine (TCEP), or other reducing agents, and/or photolysis, as well as an ester bond can be cleaved for example by acidic or basic hydrolysis.
  • Modified: As used herein “modified” refers to a changed state or structure of a molecule of the invention. Molecules may be modified in many ways including chemically, structurally, and functionally. In one embodiment, the mRNA molecules of the present invention are modified by the introduction of non-natural nucleosides and/or nucleotides, e.g., as it relates to the natural ribonucleotides A, U, G, and C. Noncanonical nucleotides such as the cap structures are not considered “modified” although they differ from the chemical structure of the A, C, G, U ribonucleotides.
  • Naturally occurring: As used herein, “naturally occurring” means existing in nature without artificial aid.
  • Non-human vertebrate: As used herein, a “non human vertebrate” includes all vertebrates except Homo sapiens, including wild and domesticated species. Examples of non-human vertebrates include, but are not limited to, mammals, such as alpaca, banteng, bison, camel, cat, cattle, deer, dog, donkey, gayal, goat, guinea pig, horse, llama, mule, pig, rabbit, reindeer, sheep water buffalo, and yak.
  • Off-target: As used herein, “off target” refers to any unintended effect on any one or more target, gene, or cellular transcript.
  • Open reading frame: As used herein, “open reading frame” or “ORF” refers to a sequence which does not contain a stop codon in a given reading frame.
  • Operably linked: As used herein, the phrase “operably linked” refers to a functional connection between two or more molecules, constructs, transcripts, entities, moieties or the like.
  • Paratope: As used herein, a “paratope” refers to the antigen-binding site of an antibody. Patient: As used herein, “patient” refers to a subject who may seek or be in need of treatment, requires treatment, is receiving treatment, will receive treatment, or a subject who is under care by a trained professional for a particular disease or condition.
  • Optionally substituted: Herein a phrase of the form “optionally substituted X” (e.g., optionally substituted alkyl) is intended to be equivalent to “X, wherein X is optionally substituted” (e.g., “alkyl, wherein said alkyl is optionally substituted”). It is not intended to mean that the feature “X” (e.g. alkyl) per se is optional.
  • Peptide: As used herein, “peptide” is less than or equal to 50 amino acids long, e.g., about 5, 10, 15, 20, 25, 30, 35, 40, 45, or 50 amino acids long.
  • Pharmaceutically acceptable: The phrase “pharmaceutically acceptable” is employed herein to refer to those compounds, materials, compositions, and/or dosage forms which are, within the scope of sound medical judgment, suitable for use in contact with the tissues of human beings and animals without excessive toxicity, irritation, allergic response, or other problem or complication, commensurate with a reasonable benefit/risk ratio.
  • Pharmaceutically acceptable excipients: The phrase “pharmaceutically acceptable excipient,” as used herein, refers any ingredient other than the compounds described herein (for example, a vehicle capable of suspending or dissolving the active compound) and having the properties of being substantially nontoxic and non-inflammatory in a patient. Excipients may include, for example: antiadherents, antioxidants, binders, coatings, compression aids, disintegrants, dyes (colors), emollients, emulsifiers, fillers (diluents), film formers or coatings, flavors, fragrances, glidants (flow enhancers), lubricants, preservatives, printing inks, sorbents, suspensing or dispersing agents, sweeteners, and waters of hydration. Exemplary excipients include, but are not limited to: butylated hydroxytoluene (BHT), calcium carbonate, calcium phosphate (dibasic), calcium stearate, croscarmellose, crosslinked polyvinyl pyrrolidone, citric acid, crospovidone, cysteine, ethylcellulose, gelatin, hydroxypropyl cellulose, hydroxypropyl methylcellulose, lactose, magnesium stearate, maltitol, mannitol, methionine, methylcellulose, methyl paraben, microcrystalline cellulose, polyethylene glycol, polyvinyl pyrrolidone, povidone, pregelatinized starch, propyl paraben, retinyl palmitate, shellac, silicon dioxide, sodium carboxymethyl cellulose, sodium citrate, sodium starch glycolate, sorbitol, starch (corn), stearic acid, sucrose, talc, titanium dioxide, vitamin A, vitamin E, vitamin C, and xylitol.
  • Pharmaceutically acceptable salts: The present disclosure also includes pharmaceutically acceptable salts of the compounds described herein. As used herein, “pharmaceutically acceptable salts” refers to derivatives of the disclosed compounds wherein the parent compound is modified by converting an existing acid or base moiety to its salt form (e.g., by reacting the free base group with a suitable organic acid). Examples of pharmaceutically acceptable salts include, but are not limited to, mineral or organic acid salts of basic residues such as amines; alkali or organic salts of acidic residues such as carboxylic acids; and the like. Representative acid addition salts include acetate, adipate, alginate, ascorbate, aspartate, benzenesulfonate, benzoate, bisulfate, borate, butyrate, camphorate, camphorsulfonate, citrate, cyclopentanepropionate, digluconate, dodecylsulfate, ethanesulfonate, fumarate, glucoheptonate, glycerophosphate, hemisulfate, heptonate, hexanoate, hydrobromide, hydrochloride, hydroiodide, 2-hydroxy-ethanesulfonate, lactobionate, lactate, laurate, lauryl sulfate, malate, maleate, malonate, methanesulfonate, 2-naphthalenesulfonate, nicotinate, nitrate, oleate, oxalate, palmitate, pamoate, pectinate, persulfate, 3-phenylpropionate, phosphate, picrate, pivalate, propionate, stearate, succinate, sulfate, tartrate, thiocyanate, toluenesulfonate, undecanoate, valerate salts, and the like. Representative alkali or alkaline earth metal salts include sodium, lithium, potassium, calcium, magnesium, and the like, as well as nontoxic ammonium, quaternary ammonium, and amine cations, including, but not limited to ammonium, tetramethylammonium, tetraethylammonium, methylamine, dimethylamine, trimethylamine, triethylamine, ethylamine, and the like. The pharmaceutically acceptable salts of the present disclosure include the conventional non-toxic salts of the parent compound formed, for example, from non-toxic inorganic or organic acids. The pharmaceutically acceptable salts of the present disclosure can be synthesized from the parent compound which contains a basic or acidic moiety by conventional chemical methods. Generally, such salts can be prepared by reacting the free acid or base forms of these compounds with a stoichiometric amount of the appropriate base or acid in water or in an organic solvent, or in a mixture of the two; generally, nonaqueous media like ether, ethyl acetate, ethanol, isopropanol, or acetonitrile are preferred. Lists of suitable salts are found in Remington's Pharmaceutical Sciences, 17th ed., Mack Publishing Company, Easton, Pa., 1985, p. 1418, Pharmaceutical Salts: Properties, Selection, and Use, P. H. Stahl and C. G. Wermuth (eds.), Wiley-VCH, 2008, and Berge et al., Journal of Pharmaceutical Science, 66, 1-19 (1977), each of which is incorporated herein by reference in its entirety.
  • Pharmacokinetic: As used herein, “pharmacokinetic” refers to any one or more properties of a molecule or compound as it relates to the determination of the fate of substances administered to a living organism. Pharmacokinetics is divided into several areas including the extent and rate of absorption, distribution, metabolism and excretion. This is commonly referred to as ADME where: (A) Absorption is the process of a substance entering the blood circulation; (D) Distribution is the dispersion or dissemination of substances throughout the fluids and tissues of the body; (M) Metabolism (or Biotransformation) is the irreversible transformation of parent compounds into daughter metabolites; and (E) Excretion (or Elimination) refers to the elimination of the substances from the body. In rare cases, some drugs irreversibly accumulate in body tissue.
  • Pharmaceutically acceptable solvate: The term “pharmaceutically acceptable solvate,” as used herein, means a compound of the invention wherein molecules of a suitable solvent are incorporated in the crystal lattice. A suitable solvent is physiologically tolerable at the dosage administered. For example, solvates may be prepared by crystallization, recrystallization, or precipitation from a solution that includes organic solvents, water, or a mixture thereof. Examples of suitable solvents are ethanol, water (for example, mono-, di-, and tri-hydrates), N-methylpyrrolidinone (NMP), dimethyl sulfoxide (DMSO), N,N′-dimethylformamide (DMF), N,N′-dimethylacetamide (DMAC), 1,3-dimethyl-2-imidazolidinone (DMEU), 1,3-dimethyl-3,4,5,6-tetrahydro-2-(1H)-pyrimidinone (DMPU), acetonitrile (ACN), propylene glycol, ethyl acetate, benzyl alcohol, 2-pyrrolidone, benzyl benzoate, and the like. When water is the solvent, the solvate is referred to as a “hydrate.”
  • Physicochemical: As used herein, “physicochemical” means of or relating to a physical and/or chemical property.
  • Preventing: As used herein, the term “preventing” refers to partially or completely delaying onset of an infection, disease, disorder and/or condition; partially or completely delaying onset of one or more symptoms, features, or clinical manifestations of a particular infection, disease, disorder, and/or condition; partially or completely delaying onset of one or more symptoms, features, or manifestations of a particular infection, disease, disorder, and/or condition; partially or completely delaying progression from an infection, a particular disease, disorder and/or condition; and/or decreasing the risk of developing pathology associated with the infection, the disease, disorder, and/or condition.
  • Prodrug: The present disclosure also includes prodrugs of the compounds described herein. As used herein, “prodrugs” refer to any substance, molecule or entity which is in a form predicate for that substance, molecule or entity to act as a therapeutic upon chemical or physical alteration. Prodrugs may by covalently bonded or sequestered in some way and which release or are converted into the active drug moiety prior to, upon or after administered to a mammalian subject. Prodrugs can be prepared by modifying functional groups present in the compounds in such a way that the modifications are cleaved, either in routine manipulation or in vivo, to the parent compounds. Prodrugs include compounds wherein hydroxyl, amino, sulfhydryl, or carboxyl groups are bonded to any group that, when administered to a mammalian subject, cleaves to form a free hydroxyl, amino, sulfhydryl, or carboxyl group respectively. Preparation and use ofprodrugs is discussed in T. Higuchi and V. Stella, “Pro-drugs as Novel Delivery Systems,” Vol. 14 of the A.C.S. Symposium Series, and in Bioreversible Carriers in Drug Design, ed. Edward B. Roche, American Pharmaceutical Association and Pergamon Press, 1987, both of which are hereby incorporated by reference in their entirety.
  • Proliferate: As used herein, the term “proliferate” means to grow, expand or increase or cause to grow, expand or increase rapidly. “Proliferative” means having the ability to proliferate.
  • “Anti-proliferative” means having properties counter to or inapposite to proliferative properties.
  • Protein cleavage site: As used herein, “protein cleavage site” refers to a site where controlled cleavage of the amino acid chain can be accomplished by chemical, enzymatic or photochemical means.
  • Protein cleavage signal: As used herein “protein cleavage signal” refers to at least one amino acid that flags or marks a polypeptide for cleavage.
  • Protein of interest: As used herein, the terms “proteins of interest” or “desired proteins” include those provided herein and fragments, mutants, variants, and alterations thereof.
  • Proximal: As used herein, the term “proximal” means situated nearer to the center or to a point or region of interest.
  • Purified: As used herein, “purify,” “purified,” “purification” means to make substantially pure or clear from unwanted components, material defilement, admixture or imperfection.
  • Sample: As used herein, the term “sample” or “biological sample” refers to a subset of its tissues, cells or component parts (e.g. body fluids, including but not limited to blood, mucus, lymphatic fluid, synovial fluid, cerebrospinal fluid, saliva, amniotic fluid, amniotic cord blood, urine, vaginal fluid and semen). A sample further may include a homogenate, lysate or extract prepared from a whole organism or a subset of its tissues, cells or component parts, or a fraction or portion thereof, including but not limited to, for example, plasma, serum, spinal fluid, lymph fluid, the external sections of the skin, respiratory, intestinal, and genitourinary tracts, tears, saliva, milk, blood cells, tumors, organs. A sample further refers to a medium, such as a nutrient broth or gel, which may contain cellular components, such as proteins or nucleic acid molecule.
  • Signal Sequences: As used herein, the phrase “signal sequences” refers to a sequence which can direct the transport or localization of a protein.
  • Significant or Significantly: As used herein, the terms “significant” or “significantly” are used synonymously with the term “substantially.”
  • Single unit dose: As used herein, a “single unit dose” is a dose of any therapeutic administered in one dose/at one time/single route/single point of contact, i.e., single administration event.
  • Similarity: As used herein, the term “similarity” refers to the overall relatedness between polymeric molecules, e.g. between polynucleotide molecules (e.g. DNA molecules and/or RNA molecules) and/or between polypeptide molecules. Calculation of percent similarity of polymeric molecules to one another can be performed in the same manner as a calculation of percent identity, except that calculation of percent similarity takes into account conservative substitutions as is understood in the art.
  • Split dose: As used herein, a “split dose” is the division of single unit dose or total daily dose into two or more doses.
  • Stable: As used herein “stable” refers to a compound that is sufficiently robust to survive isolation to a useful degree of purity from a reaction mixture, and preferably capable of formulation into an efficacious therapeutic agent.
  • Stabilized: As used herein, the term “stabilize”, “stabilized,” “stabilized region” means to make or become stable.
  • Subject: As used herein, the term “subject” or “patient” refers to any organism to which a composition in accordance with the invention may be administered, e.g., for experimental, diagnostic, prophylactic, and/or therapeutic purposes. Typical subjects include animals (e.g., mammals such as mice, rats, rabbits, non-human primates, and humans) and/or plants.
  • Substantially: As used herein, the term “substantially” refers to the qualitative condition of exhibiting total or near-total extent or degree of a characteristic or property of interest. One of ordinary skill in the biological arts will understand that biological and chemical phenomena rarely, if ever, go to completion and/or proceed to completeness or achieve or avoid an absolute result. The term “substantially” is therefore used herein to capture the potential lack of completeness inherent in many biological and chemical phenomena.
  • Substantially equal: As used herein as it relates to time differences between doses, the term means plus/minus 2%.
  • Substantially simultaneously: As used herein and as it relates to plurality of doses, the term means within 2 seconds.
  • Suffering from: An individual who is “suffering from” a disease, disorder, and/or condition has been diagnosed with or displays one or more symptoms of a disease, disorder, and/or condition.
  • Susceptible to: An individual who is “susceptible to” a disease, disorder, and/or condition has not been diagnosed with and/or may not exhibit symptoms of the disease, disorder, and/or condition but harbors a propensity to develop a disease or its symptoms. In some embodiments, an individual who is susceptible to a disease, disorder, and/or condition (for example, cancer) may be characterized by one or more of the following: (1) a genetic mutation associated with development of the disease, disorder, and/or condition; (2) a genetic polymorphism associated with development of the disease, disorder, and/or condition; (3) increased and/or decreased expression and/or activity of a protein and/or nucleic acid associated with the disease, disorder, and/or condition; (4) habits and/or lifestyles associated with development of the disease, disorder, and/or condition; (5) a family history of the disease, disorder, and/or condition; and (6) exposure to and/or infection with a microbe associated with development of the disease, disorder, and/or condition. In some embodiments, an individual who is susceptible to a disease, disorder, and/or condition will develop the disease, disorder, and/or condition. In some embodiments, an individual who is susceptible to a disease, disorder, and/or condition will not develop the disease, disorder, and/or condition.
  • Synthetic: The term “synthetic” means produced, prepared, and/or manufactured by the hand of man. Synthesis of polynucleotides or polypeptides or other molecules of the present invention may be chemical or enzymatic.
  • Targeted Cells: As used herein, “targeted cells” refers to any one or more cells of interest. The cells may be found in vitro, in vivo, in situ or in the tissue or organ of an organism. The organism may be an animal, preferably a mammal, more preferably a human and most preferably a patient.
  • Therapeutic Agent: The term “therapeutic agent” refers to any agent that, when administered to a subject, has a therapeutic, diagnostic, and/or prophylactic effect and/or elicits a desired biological and/or pharmacological effect.
  • Therapeutically effective amount: As used herein, the term “therapeutically effective amount” means an amount of an agent to be delivered (e.g., nucleic acid, drug, therapeutic agent, diagnostic agent, prophylactic agent, etc.) that is sufficient, when administered to a subject suffering from or susceptible to an infection, disease, disorder, and/or condition, to treat, improve symptoms of, diagnose, prevent, and/or delay the onset of the infection, disease, disorder, and/or condition.
  • Therapeutically effective outcome: As used herein, the term “therapeutically effective outcome” means an outcome that is sufficient in a subject suffering from or susceptible to an infection, disease, disorder, and/or condition, to treat, improve symptoms of, diagnose, prevent, and/or delay the onset of the infection, disease, disorder, and/or condition.
  • Total daily dose: As used herein, a “total daily dose” is an amount given or prescribed in 24 hr period. It may be administered as a single unit dose.
  • Transcription factor: As used herein, the term “transcription factor” refers to a DNA-binding protein that regulates transcription of DNA into RNA, for example, by activation or repression of transcription. Some transcription factors effect regulation of transcription alone, while others act in concert with other proteins. Some transcription factor can both activate and repress transcription under certain conditions. In general, transcription factors bind a specific target sequence or sequences highly similar to a specific consensus sequence in a regulatory region of a target gene. Transcription factors may regulate transcription of a target gene alone or in a complex with other molecules.
  • Treating: As used herein, the term “treating” refers to partially or completely alleviating, ameliorating, improving, relieving, delaying onset of, inhibiting progression of, reducing severity of, and/or reducing incidence of one or more symptoms or features of a particular infection, disease, disorder, and/or condition. For example, “treating” cancer may refer to inhibiting survival, growth, and/or spread of a tumor. Treatment may be administered to a subject who does not exhibit signs of a disease, disorder, and/or condition and/or to a subject who exhibits only early signs of a disease, disorder, and/or condition for the purpose of decreasing the risk of developing pathology associated with the disease, disorder, and/or condition.
  • Unmodified: As used herein, “unmodified” refers to any substance, compound or molecule prior to being changed in any way. Unmodified may, but does not always, refer to the wild type or native form of a biomolecule. Molecules may undergo a series of modifications whereby each modified molecule may serve as the “unmodified” starting molecule for a subsequent modification.
  • EQUIVALENTS AND SCOPE
  • Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments in accordance with the invention described herein. The scope of the present invention is not intended to be limited to the above Description, but rather is as set forth in the appended claims.
  • In the claims, articles such as “a,” “an,” and “the” may mean one or more than one unless indicated to the contrary or otherwise evident from the context. Claims or descriptions that include “or” between one or more members of a group are considered satisfied if one, more than one, or all of the group members are present in, employed in, or otherwise relevant to a given product or process unless indicated to the contrary or otherwise evident from the context. The invention includes embodiments in which exactly one member of the group is present in, employed in, or otherwise relevant to a given product or process. The invention includes embodiments in which more than one, or all of the group members are present in, employed in, or otherwise relevant to a given product or process.
  • It is also noted that the term “comprising” is intended to be open and permits but does not require the inclusion of additional elements or steps. When the term “comprising” is used herein, the term “consisting of” is thus also encompassed and disclosed.
  • Where ranges are given, endpoints are included. Furthermore, it is to be understood that unless otherwise indicated or otherwise evident from the context and understanding of one of ordinary skill in the art, values that are expressed as ranges can assume any specific value or subrange within the stated ranges in different embodiments of the invention, to the tenth of the unit of the lower limit of the range, unless the context clearly dictates otherwise.
  • In addition, it is to be understood that any particular embodiment of the present invention that falls within the prior art may be explicitly excluded from any one or more of the claims. Since such embodiments are deemed to be known to one of ordinary skill in the art, they may be excluded even if the exclusion is not set forth explicitly herein. Any particular embodiment of the compositions of the invention (e.g., any nucleic acid or protein encoded thereby; any method of production; any method of use; etc.) can be excluded from any one or more claims, for any reason, whether or not related to the existence of prior art.
  • All cited sources, for example, references, publications, databases, database entries, and art cited herein, are incorporated into this application by reference, even if not expressly stated in the citation. In case of conflicting statements of a cited source and the instant application, the statement in the instant application shall control.
  • EXAMPLES
  • The present disclosure is further described in the following examples, which do not limit the scope of the disclosure described in the claims.
  • Example 1 Modified mRNA In Vitro Transcription A. Materials and Methods
  • Modified mRNAs according to the invention are made using standard laboratory methods and materials for in vitro transcription with the exception that the nucleotide mix contains modified nucleotides. The open reading frame (ORF) of the gene of interest is flanked by a 5′ untranslated region (UTR) containing a strong Kozak translational initiation signal and an alpha-globin 3′ UTR terminating with an oligo(dT) sequence for templated addition of a polyA tail for mRNAs not incorporating adenosine analogs. Adenosine-containing mRNAs are synthesized without an oligo (dT) sequence to allow for post-transcription poly (A) polymerase poly-(A) tailing.
  • The modified mRNAs may be modified to reduce the cellular innate immune response. The modifications to reduce the cellular response may include pseudouridine (ψ) and 5-methyl-cytidine (5meC, 5 mc or m5C). (See, Kariko K et al. Immunity 23:165-75 (2005), Kariko K et al. Mol Ther 16:1833-40 (2008), Anderson B R et al. NAR (2010); herein incorporated by reference).
  • The ORF may also include various upstream or downstream additions (such as, but not limited to, β-globin, tags, etc.) may be ordered from an optimization service such as, but limited to, DNA2.0 (Menlo Park, Calif.) and may contain multiple cloning sites which may have XbaI recognition. Upon receipt of the construct, it may be reconstituted and transformed into chemically competent E. coli.
  • For the present invention, NEB DH5-alpha Competent E. coli are used. Transformations are performed according to NEB instructions using 100 ng of plasmid. The protocol is as follows:
  • Thaw a tube of NEB 5-alpha Competent E. coli cells on ice for 10 minutes.
  • Add 1-5 μl containing 1 pg-100 ng of plasmid DNA to the cell mixture. Carefully flick the tube 4-5 times to mix cells and DNA. Do not vortex.
  • Place the mixture on ice for 30 minutes. Do not mix.
  • Heat shock at 42° C. for exactly 30 seconds. Do not mix.
  • Place on ice for 5 minutes. Do not mix.
  • Pipette 950 μl of room temperature SOC into the mixture.
  • Place at 37° C. for 60 minutes. Shake vigorously (250 rpm) or rotate.
  • Warm selection plates to 37° C.
  • Mix the cells thoroughly by flicking the tube and inverting.
  • Spread 50-100 μl of each dilution onto a selection plate and incubate overnight at 37° C. Alternatively, incubate at 30° C. for 24-36 hours or 25° C. for 48 hours.
  • A single colony is then used to inoculate 5 ml of LB growth media using the appropriate antibiotic and then allowed to grow (250 RPM, 37° C.) for 5 hours. This is then used to inoculate a 200 ml culture medium and allowed to grow overnight under the same conditions.
  • To isolate the plasmid (up to 850 μg), a maxi prep is performed using the Invitrogen PURELINK™ HiPure Maxiprep Kit (Carlsbad, Calif.), following the manufacturer's instructions.
  • In order to generate cDNA for In Vitro Transcription (IVT), the plasmid (an Example of which is shown in FIG. 3) is first linearized using a restriction enzyme such as XbaI. A typical restriction digest with XbaI will comprise the following: Plasmid 1.0 μg; 10× Buffer 1.0 μl; XbaI 1.5 μl; dH2O up to 10 μl; incubated at 37° C. for 1 hr. If performing at lab scale (<5 μg), the reaction is cleaned up using Invitrogen's PURELINK™ PCR Micro Kit (Carlsbad, Calif.) per manufacturer's instructions. Larger scale purifications may need to be done with a product that has a larger load capacity such as Invitrogen's standard PURELINK™ PCR Kit (Carlsbad, Calif.). Following the cleanup, the linearized vector is quantified using the NanoDrop and analyzed to confirm linearization using agarose gel electrophoresis.
  • B. Agarose Gel Electrophoresis of Modified mRNA
  • Individual modified mRNAs (200-400 ng in a 20 μl volume) are loaded into a well on a non-denaturing 1.2% Agarose E-Gel (Invitrogen, Carlsbad, Calif.) and run for 12-15 minutes according to the manufacturer protocol.
  • C. Agarose Gel Electrophoresis of RT-PCR Products
  • Individual reverse transcribed-PCR products (200-400 ng) are loaded into a well of a non-denaturing 1.2% Agarose E-Gel (Invitrogen, Carlsbad, Calif.) and run for 12-15 minutes according to the manufacturer protocol.
  • D. Nanodrop Modified mRNA Quantification and UV Spectral Data
  • Modified mRNAs in TE buffer (1 μl) are used for Nanodrop UV absorbance readings to quantitate the yield of each modified mRNA from an in vitro transcription reaction (UV absorbance traces are not shown).
  • Example 2 Modified mRNA Transfection A. Reverse Transfection
  • For experiments performed in a 24-well collagen-coated tissue culture plate, Keratinocytes are seeded at a cell density of 1×105. For experiments performed in a 96-well collagen-coated tissue culture plate, Keratinocytes are seeded at a cell density of 0.5×105. For each modified mRNA to be transfected, modified mRNA: RNAIMAX™ are prepared as described and mixed with the cells in the multi-well plate within 6 hours of cell seeding before cells had adhered to the tissue culture plate.
  • B. Forward Transfection
  • In a 24-well collagen-coated tissue culture plate, Keratinocytes are seeded at a cell density of 0.7×105. For experiments performed in a 96-well collagen-coated tissue culture plate, Keratinocytes are seeded at a cell density of 0.3×105. Keratinocytes are then grown to a confluency of >70% for over 24 hours. For each modified mRNA to be transfected, modified mRNA: RNAIMAX™ are prepared as described and transfected onto the cells in the multi-well plate over 24 hours after cell seeding and adherence to the tissue culture plate.
  • C. Modified mRNA Translation Screen G-CSF ELISA
  • Keratinocytes are grown in EpiLife medium with Supplement S7 from Invitrogen at a confluence of >70%. Keratinocytes are reverse transfected with 300 ng of the indicated chemically modified mRNA complexed with RNAIMAX™ from Invitrogen. Alternatively, keratinocytes are forward transfected with 300 ng modified mRNA complexed with RNAIMAX™ from Invitrogen. The RNA: RNAIMAX™ complex is formed by first incubating the RNA with Supplement-free EPILIFE® media in a 5× volumetric dilution for 10 minutes at room temperature.
  • In a second vial, RNAIMAX™ reagent is incubated with Supplement-free EPILIFE® Media in a 10× volumetric dilution for 10 minutes at room temperature. The RNA vial is then mixed with the RNAIMAX™ vial and incubated for 20-30 at room temperature before being added to the cells in a drop-wise fashion. Secreted huG-CSF concentration in the culture medium is measured at 18 hours post-transfection for each of the chemically modified mRNAs in triplicate. Secretion of Human Granulocyte-Colony Stimulating Factor (G-CSF) from transfected human keratinocytes is quantified using an ELISA kit from Invitrogen or R&D Systems (Minneapolis, Minn.) following the manufacturers recommended instructions.
  • D. Modified mRNA Dose and Duration G-CSF ELISA
  • Keratinocytes are grown in EPILIFE® medium with Supplement S7 from Invitrogen at a confluence of >70%. Keratinocytes are reverse transfected with 0 ng, 46.875 ng, 93.75 ng, 187.5 ng, 375 ng, 750 ng, or 1500 ng modified mRNA complexed with RNAIMAX™ from Invitrogen. The modified mRNA: RNAIMAX™ complex is formed as described. Secreted huG-CSF concentration in the culture medium is measured at 0, 6, 12, 24, and 48 hours post-transfection for each concentration of each modified mRNA in triplicate. Secretion of Human Granulocyte-Colony Stimulating Factor (G-CSF) from transfected human keratinocytes is quantified using an ELISA kit from Invitrogen or R&D Systems following the manufacturers recommended instructions.
  • Example 3 Cellular Innate Immune Response to Modified Nucleic Acids: IFN-Beta ELISA and TNF-Alpha ELISA
  • An enzyme-linked immunosorbent assay (ELISA) for Human Tumor Necrosis Factor-α (TNF-α), Human Interferon-β (IFN-β) and Human Granulocyte-Colony Stimulating Factor (G-CSF) secreted from in vitro-transfected Human Keratinocyte cells is tested for the detection of a cellular innate immune response.
  • Keratinocytes are grown in EPILIFE® medium with Human Keratinocyte Growth Supplement in the absence of hydrocortisone from Invitrogen at a confluence of >70%. Keratinocytes are reverse transfected with 0 ng, 93.75 ng, 187.5 ng, 375 ng, 750 ng, 1500 ng or 3000 ng of the indicated chemically modified mRNA complexed with RNAIMAX™ from Invitrogen as described in triplicate. Secreted TNF-α in the culture medium is measured 24 hours post-transfection for each of the chemically modified mRNAs using an ELISA kit from Invitrogen according to the manufacturer protocols.
  • Secreted IFN-β is measured 24 hours post-transfection for each of the chemically modified mRNAs using an ELISA kit from Invitrogen according to the manufacturer protocols. Secreted hu-G-CSF concentration is measured at 24 hours post-transfection for each of the chemically modified mRNAs. Secretion of Human Granulocyte-Colony Stimulating Factor (G-CSF) from transfected human keratinocytes is quantified using an ELISA kit from Invitrogen or R&D Systems (Minneapolis, Minn.) following the manufacturers recommended instructions. These data indicate which modified mRNA are capable eliciting a reduced cellular innate immune response in comparison to natural and other chemically modified polynucleotides or reference compounds by measuring exemplary type 1 cytokines TNF-alpha and IFN-beta.
  • Example 4 Human Granulocyte-Colony Stimulating Factor-Modified mRNA-Induced Cell Proliferation Assay
  • Human keratinocytes are grown in EPILIFE® medium with Supplement S7 from Invitrogen at a confluence of >70% in a 24-well collagen-coated TRANSWELL® (Corning, Lowell, Mass.) co-culture tissue culture plate. Keratinocytes are reverse transfected with 750 ng of the indicated chemically modified mRNA complexed with RNAIMAX™ from Invitrogen as described in triplicate. The modified mRNA: RNAIMAX™ complex is formed as described. Keratinocyte media is exchanged 6-8 hours post-transfection. 42-hours post-transfection, the 24-well TRANSWELL® plate insert with a 0.4 μm-pore semi-permeable polyester membrane is placed into the hu-G-CSF modified mRNA-transfected keratinocyte containing culture plate.
  • Human myeloblast cells, Kasumi-1 cells or KG-1 (0.2×105 cells), are seeded into the insert well and cell proliferation is quantified 42 hours post-co-culture initiation using the CyQuant Direct Cell Proliferation Assay (Invitrogen) in a 100-120 μl volume in a 96-well plate. modified mRNA-encoding hu-G-CSF-induced myeloblast cell proliferation is expressed as a percent cell proliferation normalized to untransfected keratinocyte/myeloblast co-culture control wells. Secreted hu-G-CSF concentration in both the keratinocyte and myeloblast insert co-culture wells is measured at 42 hours post-co-culture initiation for each modified mRNA in duplicate. Secretion of Human Granulocyte-Colony Stimulating Factor (G-CSF) is quantified using an ELISA kit from Invitrogen following the manufacturers recommended instructions.
  • Transfected hu-G-CSF modified mRNA in human keratinocyte feeder cells and untransfected human myeloblast cells are detected by RT-PCR. Total RNA from sample cells is extracted and lysed using RNAEASY® kit (Qiagen, Valencia, Calif.) according to the manufacturer instructions. Extracted total RNA is submitted to RT-PCR for specific amplification of modified mRNA-G-CSF using PROTOSCRIPT® M-MuLV Taq RT-PCR kit (New England BioLabs, Ipswich, Mass.) according to the manufacturer instructions with hu-G-CSF-specific primers. RT-PCR products are visualized by 1.2% agarose gel electrophoresis.
  • Example 5 Cytotoxicity and Apoptosis
  • This experiment demonstrates cellular viability, cytotoxity and apoptosis for distinct modified mRNA-in vitro transfected Human Keratinocyte cells. Keratinocytes are grown in EPILIFE® medium with Human Keratinocyte Growth Supplement in the absence of hydrocortisone from Invitrogen at a confluence of >70%. Keratinocytes are reverse transfected with 0 ng, 46.875 ng, 93.75 ng, 187.5 ng, 375 ng, 750 ng, 1500 ng, 3000 ng, or 6000 ng of modified mRNA complexed with RNAIMAX™ from Invitrogen. The modified mRNA: RNAIMAX™ complex is formed. Secreted huG-CSF concentration in the culture medium is measured at 0, 6, 12, 24, and 48 hours post-transfection for each concentration of each modified mRNA in triplicate. Secretion of Human Granulocyte-Colony Stimulating Factor (G-CSF) from transfected human keratinocytes is quantified using an ELISA kit from Invitrogen or R&D Systems following the manufacturers recommended instructions. Cellular viability, cytotoxicity and apoptosis is measured at 0, 12, 48, 96, and 192 hours post-transfection using the APOTOX-GLO™ kit from Promega (Madison, Wis.) according to manufacturer instructions.
  • Example 6 Co-Culture Environment
  • The modified mRNA comprised of chemically-distinct modified nucleotides encoding human Granulocyte-Colony Stimulating Factor (G-CSF) may stimulate the cellular proliferation of a transfection incompetent cell in co-culture environment. The co-culture includes a highly transfectable cell type such as a human keratinocyte and a transfection incompetent cell type such as a white blood cell (WBC). The modified mRNA encoding G-CSF may be transfected into the highly transfectable cell allowing for the production and secretion of G-CSF protein into the extracellular environment where G-CSF acts in a paracrine-like manner to stimulate the white blood cell expressing the G-CSF receptor to proliferate. The expanded WBC population may be used to treat immune-compromised patients or partially reconstitute the WBC population of an immunosuppressed patient and thus reduce the risk of opportunistic infections.
  • In another example, a highly transfectable cell such as a fibroblast are transfected with certain growth factors to support and simulate the growth, maintenance, or differentiation of poorly transfectable embryonic stem cells or induced pluripotent stem cells.
  • Example 7 5′-Guanosine Capping on Modified Nucleic Acids (modified mRNAs) A. Materials and Methods
  • The cloning, gene synthesis and vector sequencing was performed by DNA2.0 Inc. (Menlo Park, Calif.). The ORF was restriction digested using XbaI and used for cDNA synthesis using tailed-or tail-less-PCR. The tailed-PCR cDNA product was used as the template for the modified mRNA synthesis reaction using 25 mM each modified nucleotide mix (all modified nucleotides were custom synthesized or purchased from TriLink Biotech, San Diego, Calif. except pyrrolo-C triphosphate purchased from Glen Research, Sterling Va.; unmodified nucleotides were purchased from Epicenter Biotechnologies, Madison, Wis.) and CellScript MEGASCRIPT™ (Epicenter Biotechnologies, Madison, Wis.) complete mRNA synthesis kit. The in vitro transcription reaction was run for 4 hours at 37° C. Modified mRNAs incorporating adenosine analogs were poly (A) tailed using yeast Poly (A) Polymerase (Affymetrix, Santa Clara, Calif.). PCR reaction used HiFi PCR 2× MASTER MIX™ (Kapa Biosystems, Woburn, Mass.). Modified mRNAs were post-transcriptionally capped using recombinant Vaccinia Virus Capping Enzyme (New England BioLabs, Ipswich, Mass.) and a recombinant 2′-o-methyltransferase (Epicenter Biotechnologies, Madison, Wis.) to generate the 5′-guanosine Cap 1 structure. Cap 2 structure and Cap 2 structures may be generated using additional 2′-o-methyltransferases. The In vitro transcribed mRNA product was run on an agarose gel and visualized. Modified mRNA was purified with Ambion/Applied Biosystems (Austin, Tex.) MEGAClear RNA™ purification kit. PCR used PURELINK™ PCR purification kit (Invitrogen, Carlsbad, Calif.). The product was quantified on NANODROP™ UV Absorbance (ThermoFisher, Waltham, Mass.). Quality, UV absorbance quality and visualization of the product was performed on an 1.2% agarose gel. The product was resuspended in TE buffer.
  • B. 5′ Capping Modified Nucleic Acid (mRNA) Structure
  • 5′-capping of modified mRNA may be completed concomitantly during the in vitro-transcription reaction using the following chemical RNA cap analogs to generate the 5′-guanosine cap structure according to manufacturer protocols: 3′-O-Me-m7G(5′)ppp(5′)G (the ARCA cap); G(5′)ppp(5′)A; G(5′)ppp(5′)G; m7G(5′)ppp(5′)A; m7G(5′)ppp(5′)G (New England BioLabs, Ipswich, Mass.). 5′-capping of modified mRNA may be completed post-transcriptionally using a Vaccinia Virus Capping Enzyme to generate the “Cap 0” structure: m7G(5′)ppp(5′)G (New England BioLabs, Ipswich, Mass.). Cap 1 structure may be generated using both Vaccinia Virus Capping Enzyme and a 2′-O methyl-transferase to generate: m7G(5′)ppp(5′)G-2′-O-methyl. Cap 2 structure may be generated from the Cap 1 structure followed by the 2′-o-methylation of the 5′-antepenultimate nucleotide using a 2′-O methyl-transferase. Cap 3 structure may be generated from the Cap 2 structure followed by the 2′-o-methylation of the 5′-preantepenultimate nucleotide using a 2′-O methyl-transferase. Enzymes are preferably derived from a recombinant source.
  • When transfected into mammalian cells, the modified mRNAs have a stability of 12-18 hours or more than 18 hours, e.g., 24, 36, 48, 60, 72 or greater than 72 hours.
  • Example 8 Synthesis of N4-Methyl Cytidine (Compound 1) and N4-Methyl CTP (NTP of Said Compound)
  • Figure US20130123481A1-20130516-C00163
    Figure US20130123481A1-20130516-C00164
  • Uridine was silylated to provide a trisilylated compound, which was purified by column, activated with re-distilled POCl3/triazole under anhydrous condition, and then followed by nucleophilic substitution with 40% methylamine aqueous solution. N4-Methyl-2′,3′,5′-tri-O-TBDMS-cytidine was thus obtained after chromatographic purification. The resultant product was deprotected with TBAF and then purified with an ethanol-ethyl acetate (3:1) solvent system to obtain compound 1. The final product was characterized by NMR (in DMSO); MS: 258 (M+H)+, 280 (M+Na)+, and 296 (M+K)+; and HPLC: purity, 99.35% (FIGS. 1A-1D). HPLC, purity 98% (FIG. 2).
  • Example 9 Synthesis of 2′-OMe-N,N-di-Me-Cytidine (Compound 2) and 2′-OMe-N,N-Di-Me-CTP (NTP of Said Compound)
  • Figure US20130123481A1-20130516-C00165
    Figure US20130123481A1-20130516-C00166
  • 2′-O-Methyluridine was silylated to give the di-silylated compound. Purified 2′-O-methyl-3′,5′-di-O-TBDMS uridine was activated with re-distilled POCl3 and imidazole under anhydrous condition, followed by the nucleophilic substitution with dimethylamine hydrochloride under triethylamine environment to trap HCl. Intermediate compound N4,N4,2′-tri-O-methyl-3′,5′-bis-O-TBDMS uridine was purified by flash chromatography and obtained as a white foam. The resultant compound was de-protected with TBAF and then purified to provide ˜400 mg final product compound 2 as white foam. ES MS: m/z 308 (M+Na)+, 386 (M+H)+; HPLC: purity, 99.49% (FIGS. 3A-3C).
  • To synthesize the corresponding NTP, 70 mg of nucleoside compound 2 provided 23 mg of 2′-OMe-N,N-di-Me-CTP after purification via ion-exchange and reverse phase columns. HPLC: purity, 95% (FIG. 4).
  • Example 10 Synthesis of 5-Methoxycarbonylmethoxy Uridine (Compound 3) and 5-Methoxycarbonylmethoxy-UTP (NTP of Said Compound)
  • Figure US20130123481A1-20130516-C00167
  • Uridine 3-a in water was treated with excess amount of bromine and then flushed with air to remove bromine. The reaction mixture was treated with pyridine at a controlled speed and temperature. During the reaction, unstable bromo-intermediate 3-b gradually converted to di-hydroxyl intermediate 3-c, which presumably dehydrated to the stable 5-hydroxyuridine 3-d. Then, the 5-hydroxyuridine was protected with a 2′,3′-isopropylidene group to provide compound 3-g. Reaction with compound 3-f provided compound 3.
  • 60-70 mg of the nucleoside provided >21 mg of the desired triphosphate after two HPLC column purification and two lyophilization steps. HPLC: purity, 98% (FIG. 5).
  • Example 11 Synthesis of 3-Methyl Pseudouridine (Compound 4) and 3-Methyl Pseudo-UTP (NTP of Said Compound)
  • Figure US20130123481A1-20130516-C00168
    Figure US20130123481A1-20130516-C00169
  • Pseudouridine 4-a was reacted with Ac2O to provide acetyl-protected pseudouridine 4-b. Then, N1 was selectively protected with POM to provide compound 4-c. Methylation of N3, followed by deprotected, provided compound 4 (˜400 mg). Molecular formula: C10H14N2O6, molecular weight: 258.23 g/mol; appearance: white solid; storage conditions: store at 25° C.; HPLC: purity, 98.51%; 1H NMR (DMSO-d6): δ 11.17 (d, 1H, J=3.0 Hz), 7.56 (d, 1H, J=3.6 Hz), 4.91 (d, 1H, J=3.6 Hz), 4.79 (t, 1H, J=4.2 Hz), 4.70 (d, 1H, J=4.2 Hz), 4.49 (d, 1H, J=3.0 Hz), 3.82-3.88 (m, 2H), 3.66-3.67 (m, 1H), 3.57-3.61 (m, 1H), 3.40-3.47 (m, 1H), 3.09 (s, 3H); MS: 281 (M+Na)) (FIGS. 6A and 6B).
  • Alternative routes could be applied to obtain compound 4. For example, pseudouridine could be reacted with an O-protecting group (e.g., as described herein, such as TMS) and reacted with an N-protecting group (e.g., as described herein, such as acetyl at N1). Then, N3 of the nucleobase could be reacted with an alkylating agent (e.g., dimethylamine/dimethoxymethyl) to provide compound 4 having N- and O-protecting groups. Finally, the resultant compound would be deprotected (e.g., under basic conditions, such as NH3/MeOH) to provide compound 4.
  • Example 12 Synthesis of N—Ac, 5—Ac—OCH2-Cytidine (Compound 5)
  • Figure US20130123481A1-20130516-C00170
    Figure US20130123481A1-20130516-C00171
  • Uridine 5-a was protected to obtain isopropylidene compound 5-b, which was reacted with (CHCO)n. Acetic acid with catalyst amount of TFA was employed to obtain the desired selectively acylated compound 5-f (30% yield). Further tritylation of the 5′-OH group resulted in the desired orthogonally protected compound 5-g.
  • Compound 5-g was treated with POCl3 and triazole to provide compound 5-h together with de-acylated compound 5-i. Acetylation of these two compounds provided di-acylated, fully protected compound 5-j. Deprotection of compound 5-j with acetic acid under heating condition resulted in three products, one of which was compound 5.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Alternative routes could be applied to obtain compound 5, such as by beginning with cytidine as the starting material. In such methods, the 5-position could be reacted with a halogen or a halogenation agent (e.g., any described herein, such as I2/meta-chloroperoxybenzoic acid), which can be displaced with an alkylating agent. Further, such methods could include the use of one or more N- or O-protecting groups (e.g., any described herein, such as silylation or acetylation) to protect the amino group of cytidine and/or hydroxyl groups of the sugar moiety.
  • Example 13 Synthesis of 5-TBDMS-OCH2-cytidine (Compound 6)
  • Figure US20130123481A1-20130516-C00172
    Figure US20130123481A1-20130516-C00173
  • A 5-hydroxyuracil compound ′-b was glycosylated to obtain compound 6′-d (28% yield), which was silylated to provide compound 6′-e. Activation of the protected uridine provided the desired compound 6 after further amination and deprotection (800 mg of the final compound). Molecular formula: C16H29N3O6Si; molecular weight: 387.50 g/mol; appearance: white solid; storage conditions: store at 25° C.; HPLC: purity, 97.57%; 1H NMR (CDCl3): d 7.81 (s, 1H), 7.40 (bs, 1H), 6.49 (bs, 1H), 5.79 (d, 1H, J=2.4 Hz), 5.3-5.32 (m, 1H), 5.00-5.07 (m, 2H), 4.30-4.45 (m, 2H), 3.90-3.94 (m, 2H), 3.80-3.83 (m, 1H), 3.50-3.70 (m, 2H), 0.87 (s, 9H), 0.05 (S, 6H); MS: 388 (M+H)+, 410 (M+Na)+) (FIGS. 7A-7C).
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 14 Synthesis of 5-trifluoromethyl cytidine (Compound 7)
  • Figure US20130123481A1-20130516-C00174
  • Compound 7-A was glycosylated to provide compound 7-B, which was treated with 2,4,6-triisopropylbenzene sulfonyl chloride (TPSCl) to activate the carbonyl group and to promote reductive amination. Deprotection provided compound 7. Alternative activating agents could be used instead of TPSCl, such as 2,4,6-trimethylbenzene sulfonyl chloride.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 15 Synthesis of 5-trifluoromethyl uridine (Compound 8)
  • Figure US20130123481A1-20130516-C00175
  • 5-Trifluoromethyluracil 8-A was glycosylated with tetra-O-acetyl ribose, and the desired triprotected 5-trifluoromethyluridine 8-B was obtained in good yield. Further deprotection gave desired compound 8, which was characterized with NMR, MS and HPLC results. MS: 313 (M+H)+, 335 (M+Na)+; HPLC: purity, 98.87%, ((FIGS. 8A-8C).
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 16 Synthesis of 5-(methoxycarbonyl)methyl uridine (Compound 9)
  • Figure US20130123481A1-20130516-C00176
    Figure US20130123481A1-20130516-C00177
  • Uridine 9-a was protected to provide compound 9-b (98% yield). This compound was brominated with excess bromine in the presence of acetic anhydride and acetic acid. The 5-bromo analog 9-c was obtained (60% yield) and further benzoylated to provide desired compound 9-d (64% yield). 5-Bromo compound 9-d was condensed with dimethyl malonate under basic condition to give the arylated malonate and the fully protected diester 9-e (50% yield). After de-carboxylation and deprotection, compound 9 was obtained verified by NMR (FIG. 9).
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 17 Synthesis of 5-(methoxycarbonyl)methyl-2′-O-methyl uridine (2-OMe-MCM5U) (Compound 10)
  • Figure US20130123481A1-20130516-C00178
    Figure US20130123481A1-20130516-C00179
  • Similar strategy to the synthesis of compound 9 above, 2′-O-methyluridine 10-a was acylated and brominated to obtain compound 10-c. Further benzoylation provided 5-bromo analog 10-d, which was condensed with dimethyl malonate provide the desired product 10-e (45% yield). Decarboxylation and deprotection provided compound 10.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 18 Synthesis of 5-trifluoroacetyl-aminomethyl-2-thiouridine (Compound 11)
  • Figure US20130123481A1-20130516-C00180
    Figure US20130123481A1-20130516-C00181
  • Glycosylation of 2-thiouracil 11-a provided compound 11-c, which can be deprotected with any useful deprotection reagent. In particular, LiOH provided desired product 11-d (80-90% yield). Isopropylidene protection provided compound 11-e (90% yield). Further 5-hydroxylmethylation provided compound 11-f. Chlorination, azidation, and further reduction provided methylamine compound 11-i, which was acetylated to provided compound 11.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 19 Synthesis of 5-methylaminomethyl-2-uridine (Compound 12)
  • Figure US20130123481A1-20130516-C00182
    Figure US20130123481A1-20130516-C00183
  • Compound 12 can be obtained by any useful method (e.g., see schemes (i) and (ii) above). For example, protected uracil can be glycosylated and subsequently aminated to provide compound 12. Additional protecting, deprotecting, and activating steps can be conducted as needed. To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 20 Synthesis of 5-TFA-methylaminomethyl-2-uridine (Compound 13)
  • Figure US20130123481A1-20130516-C00184
  • Uridine 13-a was protected with isopropylidene to provide compound 13-b and then 5-hydroxymethylated to provide compound 13-c. Chlorination and subsequent amination provided compound 13-e, which can be protected to provided 13-f. Subsequent deprotection provided compound 13.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 21 Synthesis of 5-carboxymethylaminomethyl uridine (Compound 14)
  • Figure US20130123481A1-20130516-C00185
    Figure US20130123481A1-20130516-C00186
  • Uridine 14-a was protected with isopropylidene to provide compound 14-b and then 5-aminoalkylated with the Mannich reaction to provide compound 14-c. Methylation provided quaternary amine 14-d. Subsequent amination and deprotection steps can be used to provide compound 14. To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 22 Alternative synthesis of 5-methylaminomethyl-2-uridine (Compound 12) and 5-carboxymethylaminomethyl-2-uridine (Compound 14)
  • Figure US20130123481A1-20130516-C00187
  • In addition to those strategies provided above for compounds 12 and 14, the following strategy can also be implemented. 5-Methyluridine A can be silylated to provide compound B. After radical monobromination, the resultant intermediate bromide C can be used for the preparation of compound 12 and compound 14 analogs. Subsequent alkylamination of bromide compound C could provide compounds D and E, which can be deprotected to provide compounds 14 and 12, respectively. To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 23 Synthesis of Dimethyl-Pseudouridine (Compound 15) and Dimethyl-Pseudo-UTP (NTP of Said Compound)
  • Figure US20130123481A1-20130516-C00188
  • Nucleosides can be phosphorylated by any useful method. For example, as shown above, nucleosides can be reacted with phosphorus oxychloride and subsequently treated with a monophosphate intermediate with bis(tributylammonium)pyrophosphate (TBAPP) to give the triphosphate.
  • Example 24 Synthesis of 2′-C-methyl adenosine (compound 16) and 2′-C-methyl ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00189
  • About 5 g of compound 16-2 was prepared from 5 g of compound 16-1 via a Dess-Martin periodane reaction. Compound 16-2 was reacted with MeMgI/TiCl4/−78° C. to provide compound 16-3, and crude compound 16-3 (6 g) was directly reacted with benzylchloride to prepare compound 16-4. Reaction with the nucleobase and deprotection provided compound 16 (0.56 g).
  • Example 25 Synthesis of 2′-C-methyl-cytidine isomers (compound 17 and compound 18) and 2′-C-methyl UTP (NTP of said compounds)
  • Figure US20130123481A1-20130516-C00190
    Figure US20130123481A1-20130516-C00191
    Figure US20130123481A1-20130516-C00192
  • About 17.4 g of compound 17-3 was prepared from 20 g of compound 17-1. Then, 2′-oxidation and alkylation with MeMgI provided 300 mg of compound 17-5a and 80 mg of compound 17-5b. About 9 g of compound 17-5a (about 90% pure) and 2.1 g of compound 17-5b (pure) were prepared from 17.4 g of compound 17-3 in 2 batches. N- and O-deprotection provided compounds 17 and 18.
  • Example 26 Synthesis of 2′-C-methyl guanosine (compound 19) and 2′-C-methyl GTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00193
  • 2′-Oxidation of protected ribose 19-1 and subsequent alkylation with MeMgCl provided compound 19-3. The resultant compound was further protected to provided compound 19-4, and 1.56 g of compound 19-5a was prepared from 3.1 g of compound 19-4. Subsequent oidation and deprotection provided compound 19 (about 90% pure, 50 mg).
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 27 Synthesis of 2′-C-methyl uridine (compound 20) and 2′-C-methyl UTP (NTP of said Compound)
  • Figure US20130123481A1-20130516-C00194
  • 2′-Oxidation of protected ribose 20-1 and subsequent alkylation with MeMgCl provided compound 20-3. The resultant compound was further protected to provide compound 20-4. Reaction with uracil and deprotection provided pure compound 20 (50 mg).
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 28 Synthesis of (S)-2′-C-methyl adenosine (compound 21) and (S)-2′-C-methyl ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00195
  • Compound 21-1 (5 g) was protected to form compound 21-2a, and chromium oxidation provided compound 21-3a. Alkylation via route [i](5 eq. MeMgI in ether at −50° C.) provided compound 21-4. Optionally, yield could be improved via route [ii] by protecting the amino group to provide compound 21-3b and then alkylating at the 2′-C position to provide compound 21-4-a. Compound 21-3a was alkylated to provide crude compound 21-4 (3 g, 20% of compound 3a in this crude product), where the product can be optionally purified. Deprotection of compound 21-4 afforded compound 21 (50% yield).
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 29 Synthesis of (S)-2′-C-methyl guanosine (compound 22) and (S)-2′-methyl GTP (NTP of said Compound)
  • Figure US20130123481A1-20130516-C00196
    Figure US20130123481A1-20130516-C00197
  • About 30 g of compound 22-1 was silylated to provide compound 22-2 in three steps. Further protection provided compound 22-3, and Dess-Martin periodane oxidation provided compound 22-4 (1.6 g) in two batches. 2′-C alkylation (5 eq. MeMgI in ether, −50° C. to RT) provided compound 22-5, and further deprotection steps provided compound 22.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 30 Synthesis of (S)-2′-C-methyl uridine (compound 23) and of (S)-2′-C-methyl UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00198
  • Uridine 23-1 (2.0 g) was protected with TIPDSCl2 (1,3-dichloro-1,1,3,3-tetraisopropyldisiloxane) to provide compound 23-2. Oxidation provided compound 23-3, and 2′-C alkylation provided compound 23-4, which can be optionally purified with Prep-HPLC prior to the next step. Then, deprotection provided desired compound 23.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 31 Synthesis of 4′-C-methyl adenosine (compound 24) and 4′-C-methyl ATP (NTP of said Compound)
  • Figure US20130123481A1-20130516-C00199
    Figure US20130123481A1-20130516-C00200
  • 1,2:5,6-Di-O-isopropylidene-α-D-glucofuranose 24-1 was converted via sequential oxidation, reduction, and protection steps to provide compound 24-4. The first oxidation step to provide compound 24-2 can be implemented with any useful reagents, such as 0.75 eq. pyridinium dichromate (PDC) with 1 eq. Ac2O or 1.2 eq. of Dess-Martin periodane. Subsequent deprotection, formylation, and reduction provided compound 24-7, which was followed with protection and deoxygenation steps to provide compound 24-10. About 0.4 g of compound 24-14 was prepared from 1 g of compound 24-10 via sequential protection and deprotection steps. Addition of N6-benzoyladenine and subsequent deprotection provided compound 24.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 32 Synthesis of 4′-C-methyl cytidine (compound 25) and 4′-C-methyl CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00201
    Figure US20130123481A1-20130516-C00202
  • Similar to the strategy provided above for compound 24, compound 25-14 was produced with compound 25-1. Addition of cytidine and subsequent deprotection provided compound 25.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 33 Synthesis of 4′-C-methyl guanosine (compound 26) and 4′-C-methyl GTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00203
    Figure US20130123481A1-20130516-C00204
  • Similar to the strategy provided above for compound 24, compound 26-14 was produced with compound 26-1. Addition of 2-amino-6-chloropurine, subsequent oxidation, and then deprotection provided compound 26.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 34 Synthesis of 4′-C-methyl uridine (compound 27) and 4′-C-methyl UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00205
    Figure US20130123481A1-20130516-C00206
  • Similar to the strategy provided above for compound 24, compound 27-14 was produced with compound 27-1. Addition of uracil and subsequent deprotection provided compound 27.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 35 Synthesis of 2′-O,4′-C-methylene adenosine (compound 28) and 2′-O,4′-C-methylene ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00207
    Figure US20130123481A1-20130516-C00208
  • Similar to the strategy provided above for compound 24, compound 28-7 was produced with compound 28-1. Subsequent mesylation, deprotection, and acetylation provided compound 28-10, which was followed by addition of N6-benzoyladenine and subsequent internal cyclization. Various protection and deprotection steps provided compound 28.
  • Example 36 Synthesis of 5-methyl-2′-O,4′-C-methylene cytidine (compound 29) and 5-methyl-2′-O,4′-C-methylene CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00209
    Figure US20130123481A1-20130516-C00210
  • Aldofuranose compound 29-1 was reacted via various protection steps, and then 5-methyluracil was added to provide compound 29-5. Subsequent internal cyclization, deprotection, protection, and amination steps provided compound 29.
  • Example 37 Synthesis of 2′-O,4′-C-methylene guanosine (compound 30) and 2′-O,4′-C-methylene GTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00211
    Figure US20130123481A1-20130516-C00212
  • Similar to the strategy provided above for compound 29, aldofuranose compound 30-1 was reacted via various protection steps, and then 2-amino-6-chloropurine was added to provide compound 30-5. Subsequent internal cyclization, amination, and deprotection steps provided compound 30.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 38 Synthesis of 2′-O,4′-C-methylene uridine (compound 31) and 2′-O,4′-C-methylene UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00213
    Figure US20130123481A1-20130516-C00214
  • Similar to the strategy provided above for compound 24, compound 31-7 was produced with compound 31-1. Subsequent mesylation, deprotection, and acetylation provided compound 30-10. Addition of uracil and subsequent internal cyclization provided compound 31-12, and various protection and deprotection steps provided compound 31. A subsequent triphosphate reaction (e.g., as described herein) provided the NTP of compound 31, which can be optionally purified (e.g., with HPLC).
  • Example 39 Synthesis of 2′-chloro adenosine (compound 32) and 2′-chloro ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00215
  • Arabinoadenosine 32-1 was protected via steps 1 and 2 and then chlorinated to provide compound 32-4. Subsequent deprotection provided compound 32, and the triphosphate reaction provided the NTP of compound 32.
  • Example 40 Synthesis of 2′-iodo adenosine (compound 33) and 2′-iodo ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00216
  • Arabinoadenosine 33-1 was protected via steps 1 and 2 and then iodinated to provide compound 33-4. Subsequent deprotection provided compound 33, and the triphosphate reaction in DMF provided the NTP of compound 33.
  • Example 41 Synthesis of 2′-bromo cytidine (compound 34) and 2′-bromo CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00217
  • Arabinocytidine 34-1 was protected under various conditions and then brominated to provide compound 34-4. Optionally, the reaction can provide compound 34-4 via compound 34-3a under any useful protection reactions, such as (i) 1.5 eq. Et3N, 1 eq. DMAP, 1.2 eq. TfCl, in DCM (10 mL); (ii) 3 eq. DMAP, 1.2 eq. TfCl in DCM (15 mL); or (iii) 15 eq. DMAP, 1.5 eq. Tf2O, in DCM (15 mL) at −10° C. to 0° C. for 2 hour. In particular, 55 mg of compound 34-3a was obtained from reaction condition (iii). Subsequent deprotection provided compound 34, and the triphosphate reaction in DMF provided the NTP of compound 34. Crude product 34 could be optionally purified prior to phosphorylation.
  • Example 42 Synthesis of 2′-chloro guanosine (compound 35) and 2′-chloro GTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00218
    Figure US20130123481A1-20130516-C00219
  • Guanosine 35-1 was protected under various conditions and then acetylated to provide compound 35-4. The reaction from compound 35-2 to compound 35-3 was conducted with 2 eq. DMAP, 2 eq. Et3N, 3 eq. Tf2O in 1,2-dichloroethane (10 mL) at 40° C. for 4 hours. About 55 mg of compound 35-3 was obtained after the purification.
  • Desired compound 35 can be obtained by any useful method. For example, as shown above, compound 35-4 can be treated with subsequent protection, chlorination, and deprotection steps to provide compound 35. To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 43 Synthesis of 2′-iodo uridine (compound 36) and 2′-iodo UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00220
  • O2,2′-Cyclouridine 36-1 was protected to provide compound 36-2. Subsequent iodination, optionally mediated with selenium, provided compound 36. A triphosphate reaction was conducted to provide the NTP of compound 36. Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 44 Synthesis of 2′-O,4′-C-methylene adenosine (compound 37) and 2′-O,4′-C-methylene ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00221
    Figure US20130123481A1-20130516-C00222
    Figure US20130123481A1-20130516-C00223
  • Similar to the strategy provided above for compound 24, compound 37-7 was produced with compound 37-1. Subsequent mesylation, deprotection, and acetylation provided compound 37-10. Addition of uracil and subsequent internal cyclization provided compound 37-12. Various protection and deprotection steps provided compound 37.
  • To obtain the corresponding NTP, a triphosphate reaction can be conducted (e.g., any described herein). Optionally, the NTP can be purified (e.g., using a Sephadex DEAE-A25 column), lyophilized, or evaporated (e.g., from EtOH).
  • Example 45 Synthesis of cyclopentene diol cytidine (compound 38) and cyclopentene diol CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00224
    Figure US20130123481A1-20130516-C00225
    Figure US20130123481A1-20130516-C00226
  • D-ribose was protected and then allylated to provide compound 38-4, which was subsequently cyclized and reduced to provide compound 38-7. Olefin metathesis and subsequent oxidation provided compound 38-9, and further reduction reactions and addition of N-benzoyluracil provided compound 38-14. Additional deprotection and protection reactions provided compound 38, and triphosphate reaction (e.g., with any useful reaction condition, such as those described herein or in U.S. Pat. No. 7,893,227, incorporated herein by reference) provided the NTP of compound 38.
  • Example 46 Synthesis of 2′-methyl uridine (compound 39) and 2′-methyl UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00227
    Figure US20130123481A1-20130516-C00228
  • Uridine 39-1 was protected and then oxidized with 2 eq. of Dess-Martin periodane to provide compound 39-3. Subsequent Wittig reaction, hydrogenation, and deprotection steps provided compound 39.
  • Example 47 Synthesis of 2′-methyl cytidine (compound 40) and 2′-methyl CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00229
    Figure US20130123481A1-20130516-C00230
  • Cytidine 40-1 was protected and then oxidized to provide compound 40-3. Subsequent Wittig reaction, hydrogenation, and deprotection steps provided compound 40.
  • Example 48 Synthesis of N-acetyl cytidine (compound 41) and N-acetyl CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00231
  • A solution of N-acetyl-cytidine (compound 41) (103.0 mg, 0.36 mmol) was added to proton sponge (115.72 mg, 0.54 mmol, 1.50 equiv) in 1.0 mL trimethylphosphate (TMP) and 1.0 mL of anhydrous tetrahydrofuran (THF). The solution was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (67.2 ul, 0.72 mmol, 2.0 eqiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (1.28 g, 2.34 mmol, 6.5 eqiv.) and tributylamine (350.0 ul, 1.45 mmol, 4.0 equiv.) in 2.5 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 24.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 16.81-17.80 min). Fractions containing the desired compound were pooled and lyophilized to produce the NTP of compound 41. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 49 Synthesis of 5-methoxy uridine (compound 42) and 5-methoxy UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00232
  • A solution of 5-methoxy uridine (compound 42) (69.0 mg, 0.25 mmol, plus heat to make it soluble) was added to proton sponge (80.36 mg, 0.375 mmol, 1.50 equiv.) in 0.7 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (46.7 ul, 0.50 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (894.60 mg, 1.63 mmol, 6.50 equiv.) and tributylamine (243.0 ul, 1.00 mmol, 4.0 equiv.) in 2.0 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 17.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 16.57-17.51 min). Fractions containing the desired compound were pooled and lyophilized to produce the NTP of compound 42. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 50 Synthesis of 5-formyl cytidine (compound 43) and 5-formyl CTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00233
  • A solution of 5-formyl cytidine (compound 43)) (48.4 mg, 0.18 mmol, plus heat to make it soluble) was added to proton sponge (57.86 mg, 0.27 mmol, 1.50 equiv.) in 0.7 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (33.6 ul, 0.36 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (642.0 mg, 1.17 mmol, 6.50 equiv.) and tributylamine (175.0 ul, 0.72 mmol, 4.0 equiv.) in 1.7 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 12.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 17.04-17.87 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 43. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 51 Synthesis of 3-methyl uridine (compound 44) and 3-methyl UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00234
  • A solution of 3-methyl uridine (compound 44) (45.80 mg, 0.18 mmol) was added to proton sponge (57.86 mg, 0.27 mmol, 1.50 equiv.) in 0.5 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (33.6 ul, 0.36 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (652.0 mg, 1.19 mmol, 6.60 equiv.) and tributylamine (175.0 ul, 0.72 mmol, 4.0 equiv.) in 1.3 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 12.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 18.52-19.57 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 44. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 52 Synthesis of N1-methyl pseudouridine (compound 45) and N1-methyl pseudoUTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00235
  • A solution of N1-methyl pseudouridine (compound 45) (96.6 mg, 0.374 mmol, plus heat to make it soluble) was added to proton sponge (120.0 mg, 0.56 mmol, 1.50 equiv.) in 0.8 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (70.0 ul, 0.75 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (1.36 g, 2.47 mmol, 6.60 equiv.) and tributylamine (362.0 ul, 1.5 mmol, 4.0 equiv.) in 2.5 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 17.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 15.91-17.01 min). Fractions containing the desired compound were pooled and lyophilized was subjected to a triphosphorylation reaction to provide the NTP of compound 45. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 53 Synthesis of 5-methoxycarbonylethenyl uridine (compound 46) and 5-methoxycarbonylethenyl UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00236
  • A solution of 5-methoxycarbonylethenyl uridine (compound 46) (102.0 mg, 0.31 mmol) was added to proton sponge (99.65 mg, 0.46 mmol, 1.50 equiv.) in 0.8 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (57.8 ul, 0.62 mmol, 2.0 equiv) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (1.12 g, 2.05 mol, 6.60 equiv.) and tributylamine (300.0 ul, 1.24 mmol, 4.0 equiv.) in 2.5 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 20.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 21.56-23.21 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 46. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 54 Synthesis of 5-aminopropenyl uridine (compound 47) and 5-aminopropenyl UTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00237
  • 5-Aminopropenyl uridine 47 was protected and a solution of protected compound 47 (86.0 mg, 0.22 mmol) was added to proton sponge (70.7 mg, 0.33 mmol, 1.50 equiv.) in 0.7 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (41.1 ul, 0.44 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (784.6 mg, 1.43 mmol, 6.50 equiv.) and tributylamine (213.0 ul, 0.88 mmol, 4.0 equiv.) in 1.6 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 15.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. 18.0 ml of concentrated ammonium hydroxide was added to the reaction mixture to remove the trifluoroacetyl group. It was then stored stirring overnight. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 16.14-17.02 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 47. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 55 Synthesis of N-PEG adenosine (compound 48) and N-PEG ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00238
  • N-PEG adenosine 48 was protected and a solution of the protected compound 48 (100.0 mg, 0.15 mmol) was added to proton sponge (49.3 mg, 0.23 mmol, 1.50 equiv.) in 0.65 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (28.0 ul, 0.3 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (537.7 mg, 0.98 mmol, 6.50 equiv.) and tributylamine (146.0 ul, 0.6 mmol, 4.0 equiv.) in 1.2 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 10.0 ml of 0.2M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. 18.0 ml of concentrated ammonium hydroxide was added to the reaction mixture to remove the trifluoroacetyl group. It was then stored stirring overnight. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 24.5-25.5 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 48. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 56 Synthesis of N-methyl adenosine (compound 49) and N-methyl ATP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00239
  • A solution of N-methyl adenosine (compound 49) (70.0 mg, 0.25 mmol) was added to proton sponge (79.29 mg, 0.37 mmol, 1.50 equiv.) in 0.7 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (46.66 ul, 0.50 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (888.85 mg, 1.62 mmol, 6.50 equiv.) and tributylamine (241.0 ul, 1.0 mmol, 4.0 equiv.) in 1.3 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 16.0 ml of 0.2 M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 19.62-20.14 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 49. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 57 Synthesis of N,N-dimethyl guanosine (compound 50) and N,N-dimethyl GTP (NTP of said compound)
  • Figure US20130123481A1-20130516-C00240
  • A solution of N,N-dimethyl guanosine (compound 50) (65.8 mg, 0.21 mmol) was added to proton sponge (68.58 mg, 0.32 mmol, 1.50 equiv) in 0.7 mL trimethylphosphate (TMP) and was stirred for 10 minutes at 0° C. Phosphorous oxychloride (POCl3) (39.20 ul, 0.42 mmol, 2.0 equiv.) was added dropwise to the solution before being kept stirring for 2 hours under N2 atmosphere. After 2 hours the solution was reacted with a mixture of bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) (751.67 mg, 1.37 mmol, 6.50 equiv.) and tributylamine (204.0 ul, 0.84 mmol, 4.0 equiv.) in 1.5 ml of dimethylformamide. After approximately 15 minutes, the reaction was quenched with 14.0 ml of 0.2 M triethylammonium bicarbonate (TEAB) and the clear solution was stirred at room temperature for an hour. The reaction mixture was lyophilized overnight and the crude reaction mixture was purified by HPLC (Shimadzu, Kyoto Japan, Phenomenex C18 preparative column, 250×21.20 mm, 10.0 micron; gradient: 100% A for 3.0 min, then 1% B/min, A=100 mM TEAB buffer, B=ACN; flow rate: 10.0 mL/min; retention time: 19.27-19.95 min). Fractions containing the desired compound were pooled and lyophilized to provide the NTP of compound 50. The triphosphorylation reactions were carried out in a two-neck flask flame-dried under N2 atmosphere. Nucleosides and the protein sponge were dried over P2O5 under vacuum overnight prior to use. The formation of monophosphates was monitored by LCMS.
  • Example 58 General methods for triphosphate synthesis of NTPS
  • Figure US20130123481A1-20130516-C00241
  • The nucleoside i can be phosphorylated by any useful method to provide a triphosphate compound 11. For example, the nucleoside can be added to proton sponge and trimethylphosphate (TMP) and cooled (e.g., to −40° C.). Phosphorous oxychloride (POCl3) can be added dropwise before reacting with bistributylammonium pyrophosphate (TBAPP or (n-Bu3NH)2H2P2O7) and tributylamine. The reaction can then be quickly quenched with triethylammonium bicarbonate (TEAB). Exemplary conditions are provided in U.S. Pat. No. 7,893,227, which is incorporated herein by reference.
  • After the phosphorylation reaction, the reaction mixture can be optionally lyophilized, purified (e.g., by ion-exchange chromatography and/or HPLC), or converted to a sodium salt (e.g., by dissolving in MeOH and adding sodium perchlorate in acetone).
  • Example 59 PCR for cDNA Production
  • PCR procedures for the preparation of cDNA are performed using 2×KAPA HIFI™ HotStart ReadyMix by Kapa Biosystems (Woburn, Mass.). This system includes 2×KAPA ReadyMix 12.5 μl; Forward Primer (10 uM) 0.75 μl; Reverse Primer (10 uM) 0.75 μl; Template cDNA 100 ng; and dH2O diluted to 25.0 μl. The reaction conditions are at 95° C. for 5 min. and 25 cycles of 98° C. for 20 sec, then 58° C. for 15 sec, then 72° C. for 45 sec, then 72° C. for 5 min. then 4° C. to termination.
  • The reverse primer of the instant invention incorporates a poly-T120 for a poly-A120 in the mRNA. Other reverse primers with longer or shorter poly-T tracts can be used to adjust the length of the poly-A tail in the mRNA.
  • The reaction is cleaned up using Invitrogen's PURELINK™ PCR Micro Kit (Carlsbad, Calif.) per manufacturer's instructions (up to 5 μg). Larger reactions will require a cleanup using a product with a larger capacity. Following the cleanup, the cDNA is quantified using the NanoDrop and analyzed by agarose gel electrophoresis to confirm the cDNA is the expected size. The cDNA is then submitted for sequencing analysis before proceeding to the in vitro transcription reaction.
  • Example 60 In vitro Transcription (IVT)
  • The in vitro transcription reaction generates mRNA containing modified nucleotides or modified RNA. The input nucleotide triphosphate (NTP) mix is made in-house using natural and un-natural NTPs.
  • A typical in vitro transcription reaction includes the following:
  • Template cDNA 1.0 μg
    10x transcription buffer (400 mM Tris-HCl pH 2.0 μl
    8.0, 190 mM MgCl2, 50 mM DTT, 10 mM
    Spermidine)
    Custom NTPs (25 mM each 7.2 μl
    RNase Inhibitor 20 U
    T7 RNA polymerase 3000 U
    dH
    20 up to 20.0 μl
      • Incubation at 370 C for 3 hr-5 hrs.
  • The crude IVT mix may be stored at 4° C. overnight for cleanup the next day. 1 U of RNase-free DNase is then used to digest the original template. After 15 minutes of incubation at 37° C., the mRNA is purified using Ambion's MEGACLEAR™ Kit (Austin, Tex.) following the manufacturer's instructions. This kit can purify up to 500 μg of RNA. Following the cleanup, the RNA is quantified using the NanoDrop and analyzed by agarose gel electrophoresis to confirm the RNA is the proper size and that no degradation of the RNA has occurred.
  • The T7 RNA polymerase may be selected from, T7 RNA polymerase, T3 RNA polymerase and mutant polymerases such as, but not limited to, the novel polymerases able to incorporate modified NTPs as well as those polymerases described by Liu (Esvelt et al. (Nature (2011) 472 (7344):499-503 and U.S. Publication No. 20110177495) which recognize alternate promoters, Ellington (Chelliserrykattil and Ellington, Nature Biotechnology (2004) 22 (9):1155-1160) describing a T7 RNA polymerase variant to transcribe 2′-O-methyl RNA and Sousa (Padilla and Sousa, Nucleic Acids Research (2002) 30(24): e128) describing a T7 RNA polymerase double mutant; herein incorporated by reference in their entireties.
  • Example 61 Enzymatic Capping of mRNA
  • Capping of the mRNA is performed as follows where the mixture includes: IVT RNA 60 μg-180 μg and dH2O up to 72 μl. The mixture is incubated at 65° C. for 5 minutes to denature RNA, and then is transferred immediately to ice.
  • The protocol then involves the mixing of 10× Capping Buffer (0.5 M Tris-HCl (pH 8.0), 60 mM KCl, 12.5 mM MgCl2) (10.0 μl); 20 mM GTP (5.0 μl); 20 mM S-Adenosyl Methionine (2.5 μl); RNase Inhibitor (100 U); 2′-O-Methyltransferase (400 U); Vaccinia capping enzyme (Guanylyl transferase) (40 U); dH2O (Up to 28 μl); and incubation at 37° C. for 30 minutes for 60 μg RNA or up to 2 hours for 180 μg of RNA.
  • The mRNA is then purified using Ambion's MEGACLEAR™ Kit (Austin, Tex.) following the manufacturer's instructions. Following the cleanup, the RNA is quantified using the NANODROP™ (ThermoFisher, Waltham, Mass.) and analyzed by agarose gel electrophoresis to confirm the RNA is the proper size and that no degradation of the RNA has occurred. The RNA product may also be sequenced by running a reverse-transcription-PCR to generate the cDNA for sequencing.
  • Example 62 PolyA Tailing Reaction
  • Without a poly-T in the cDNA, a poly-A tailing reaction must be performed before cleaning the final product. This is done by mixing Capped IVT RNA (100 μl); RNase Inhibitor (20 U); 10× Tailing Buffer (0.5 M Tris-HCl (pH 8.0), 2.5 M NaCl, 100 mM MgCl2)(12.0 μl); 20 mM ATP (6.0 μl); Poly-A Polymerase (20 U); dH2O up to 123.5 μl and incubation at 37° C. for 30 min. If the poly-A tail is already in the transcript, then the tailing reaction may be skipped and proceed directly to cleanup with Ambion's MEGACLEAR™ kit (Austin, Tex.) (up to 500 μg). Poly-A Polymerase is preferably a recombinant enzyme expressed in yeast.
  • For studies performed and described herein, the poly-A tail is encoded in the IVT template to comprise 160 nucleotides in length. However, it should be understood that the processivity or integrity of the poly-A tailing reaction may not always result in exactly 160 nucleotides. Hence poly-A tails of approximately 160 nucleotides, e.g, about 150-165, 155, 156, 157, 158, 159, 160, 161, 162, 163, 164 or 165 are within the scope of the invention.
  • Example 63 Method of Screening for Protein Expression A. Electrospray Ionization
  • A biological sample which may contain proteins encoded by modified RNA administered to the subject is prepared and analyzed according to the manufacturer protocol for electrospray ionization (ESI) using 1, 2, 3 or 4 mass analyzers. A biologic sample may also be analyzed using a tandem ESI mass spectrometry system.
  • Patterns of protein fragments, or whole proteins, are compared to known controls for a given protein and identity is determined by comparison.
  • B. Matrix-Assisted Laser Desorption/Ionization
  • A biological sample which may contain proteins encoded by modified RNA administered to the subject is prepared and analyzed according to the manufacturer protocol for matrix-assisted laser desorption/ionization (MALDI).
  • Patterns of protein fragments, or whole proteins, are compared to known controls for a given protein and identity is determined by comparison.
  • C. Liquid Chromatography-Mass Spectrometry-Mass Spectrometry
  • A biological sample, which may contain proteins encoded by modified RNA, may be treated with a trypsin enzyme to digest the proteins contained within. The resulting peptides are analyzed by liquid chromatography-mass spectrometry-mass spectrometry (LC/MS/MS). The peptides are fragmented in the mass spectrometer to yield diagnostic patterns that can be matched to protein sequence databases via computer algorithms. The digested sample may be diluted to achieve 1 ng or less starting material for a given protein. Biological samples containing a simple buffer background (e.g. water or volatile salts) are amenable to direct in-solution digest; more complex backgrounds (e.g. detergent, non-volatile salts, glycerol) require an additional clean-up step to facilitate the sample analysis.
  • Patterns of protein fragments, or whole proteins, are compared to known controls for a given protein and identity is determined by comparison.
  • Example 64 Cytokine Study: PBMC A. PBMC Isolation and Culture
  • 50 mL of human blood from two donors was received from Research Blood Components (lots KP30928 and KP30931) in sodium heparin tubes. For each donor, the blood was pooled and diluted to 70 mL with DPBS (SAFC Bioscience 59331C, lot 071M8408) and split evenly between two 50 mL conical tubes. 10 mL of Ficoll Paque (GE Healthcare 17-5442-03, lot 10074400) was gently dispensed below the blood layer. The tubes were centrifuged at 2000 rpm for 30 minutes with low acceleration and braking. The tubes were removed and the buffy coat PBMC layers were gently transferred to a fresh 50 mL conical and washed with DPBS. The tubes were centrifuged at 1450 rpm for 10 minutes.
  • The supernatant was aspirated and the PBMC pellets were resuspended and washed in 50 mL of DPBS. The tubes were centrifuged at 1250 rpm for 10 minutes. This wash step was repeated, and the PBMC pellets were resuspended in 19 mL of Optimem I (Gibco 11058, lot 1072088) and counted. The cell suspensions were adjusted to a concentration of 3.0×10̂6 cells/mL live cells.
  • These cells were then plated on five 96 well tissue culture treated round bottom plates (Costar 3799) per donor at 50 uL per well. Within 30 minutes, transfection mixtures were added to each well at a volume of 50 uL per well. After 4 hours post transfection, the media was supplemented with 10 uL of Fetal Bovine Serum (Gibco 10082, lot 1012368)
  • B. Transfection Preparation
  • Modified mRNA encoding human G-CSF (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) (containing either (1) natural NTPs, (2) 100% substitution with 5-methyl cytidine and pseudouridine, or (3) 100% substitution with 5-methyl cytidine and N1-methyl pseudouridine; mRNA encoding luciferase (IVT cDNA sequence shown in SEQ ID NO: 2; mRNA sequence shown in SEQ ID NO: 3, polyA tail of approximately 160 nucleotides not shown in sequence, 5′ cap, Cap 1, fully modified with 5-methylcytosine at each cytosine and pseudouridine replacement at each uridine site) (containing either (1) natural NTPs or (2) 100% substitution with 5-methyl cytidine and pseudouridine) and TLR agonist R848 (Invivogen tlrl-r848) were diluted to 38.4 ng/uL in a final volume of 2500 uL Optimem I.
  • Separately, 110 uL of Lipofectamine 2000 (Invitrogen 11668-027, lot 1070962) was diluted with 6.76 mL Optimem I. In a 96 well plate nine aliquots of 135 uL of each mRNA, positive control (R-848) or negative control (Optimem I) was added to 135 uL of the diluted Lipofectamine 2000. The plate containing the material to be transfected was incubated for 20 minutes. The transfection mixtures were then transferred to each of the human PBMC plates at 50 uL per well. The plates were then incubated at 37° C. At 2, 4, 8, 20, and 44 hours each plate was removed from the incubator, and the supernatants were frozen.
  • After the last plate was removed, the supernatants were assayed using a human G-CSF ELISA kit (Invitrogen KHC2032) and human IFN-alpha ELISA kit (Thermo Scientific 41105-2). Each condition was done in duplicate.
  • C. Protein and Innate Immune Response Analysis
  • The ability of unmodified and modified mRNA to produce the encoded protein was assessed (G-CSF production) over time as was the ability of the mRNA to trigger innate immune recognition as measured by interferon-alpha production. Use of in vitro PBMC cultures is an accepted way to measure the immunostimulatory potential of oligonucleotides (Robbins et al., Oligonucleotides 2009 19:89-102).
  • Results were interpolated against the standard curve of each ELISA plate using a four parameter logistic curve fit. Shown in Tables 4 and 5 are the average from 3 separate PBMC donors of the G-CSF, interferon-alpha (IFN-alpha) and tumor necrosis factor alpha (TNF-alpha) production over time as measured by specific ELISA.
  • In the G-CSF ELISA, background signal from the Lipofectamine 2000 (LF2000) untreated condition was subtracted at each time point. The data demonstrated specific production of human G-CSF protein by human peripheral blood mononuclear is seen with G-CSF mRNA containing natural NTPs, 100% substitution with 5-methyl cytidine and pseudouridine, or 100% substitution with 5-methyl cytidine and N1-methyl pseudouridine. Production of G-CSF was significantly increased through the use of 5-methyl cytidine and N1-methyl pseudouridine modified mRNA relative to 5-methyl cytidine and pseudouridine modified mRNA.
  • With regards to innate immune recognition, while both modified mRNA chemistries largely prevented IFN-alpha and TNF-alpha production relative to positive controls (R848, p(I)p(C)), significant differences did exist between the chemistries. 5-methyl cytidine and pseudouridine modified mRNA resulted in low but detectable levels of IFN-alpha and TNF-alpha production, while 5-methyl cytidine and N1-methyl pseudouridine modified mRNA resulted in no detectable IFN-alpha and TNF-alpha production.
  • Consequently, it has been determined that, in addition to the need to review more than one cytokine marker of the activation of the innate immune response, it has surprisingly been found that combinations of modifications provide differing levels of cellular response (protein production and immune activation). The modification, N1-methyl pseudouridine, in this study has been shown to convey added protection over the standard combination of 5-methylcytidine/pseudouridine explored by others resulting in twice as much protein and almost 150 fold reduction in immune activation (TNF-alpha).
  • Given that PBMC contain a large array of innate immune RNA recognition sensors and are also capable of protein translation, it offers a useful system to test the interdependency of these two pathways. It is known that mRNA translation can be negatively affected by activation of such innate immune pathways (Kariko et al. Immunity (2005) 23:165-175; Warren et al. Cell Stem Cell (2010) 7:618-630). Using PBMC as an in vitro assay system it is possible to establish a correlation between translation (in this case G-CSF protein production) and cytokine production (in this case exemplified by IFN-alpha and TNF-alpha protein production). Better protein production is correlated with lower induction of innate immune activation pathway, and new chemistries can be judged favorably based on this ratio (Table 6).
  • In this study, the PC Ratio for the two chemical modifications, pseudouridine and N1-methyl pseudouridine, both with 5-methy cytosine was 4742/141=34 as compared to 9944/1=9944 for the cytokine IFN-alpha. For the cytokine, TNF-alpha, the two chemistries had PC Ratios of 153 and 1243, respectively suggesting that for either cytokine, the N1-methylpseudouridine is the superior modification. In Tables 4 and 5, “NT” means not tested.
  • TABLE 4
    G-CSF
    G-CSF: 3 Donor Average (pg/ml)
    G-CSF 4742
    5-methyl cytosine/pseudouridine
    G-CSF 9944
    5-methylcytosine/N1-methylpseudouridine
    Luciferase 18
    LF2000 16
  • TABLE 5
    IFN-alpha and TNF-alpha
    IFN-alpha: 3 Donor TNF-alpha: 3 Donor
    Average (pg/ml) Average (pg/ml)
    G-CSF 141 31
    5-methyl cytosine/
    pseudouridine
    G-CSF 1 8
    5-methylcytosine/
    N1-methylpseudouridine
    P(I)P(C) 1104 NT
    R-848 NT 1477
    LF2000 17 25
  • TABLE 6
    G-CSF to Cytokine Ratios
    G-CSF/IFN-alpha (ratio) G-CSF/TNF-alpha (ratio)
    5-methyl- 5-methyl-
    5-methyl cytosine/ 5-methyl cytosine/
    cytosine/ N1-methyl- cytosine/ N1-methyl-
    pseudo- pseudo- pseudo- pseudo-
    uridine uridine uridine uridine
    PC Ratio 34 9944 153 1243
  • Example 65 Chemical Modification Ranges of Modified mRNA
  • Modified nucleosides such as, but not limited to, the chemical modifications 5-methylcytosine and pseudouridine have been shown to lower the innate immune response and increase expression of RNA in mammalian cells. Surprisingly and not previously known, the effects manifested by these chemical modifications can be titrated when the amount of chemical modification of a particular nucleotide is less than 100%. Previously, it was believed that the benefit of chemical modification could be derived using less than complete replacement of a modified nucleoside and published reports suggest no loss of benefit until the level of substitution with a modified nucleoside is less than 50% (Kariko et al., Immunity (2005) 23:165-175).
  • However, it has now been shown that the benefits of chemical modification are directly correlated with the degree of chemical modification and must be considered in view of more than a single measure of immune response. Such benefits include enhanced protein production or mRNA translation and reduced or avoidance of stimulating the innate immune response as measured by cytokine profiles and metrics of immune response triggers.
  • Enhanced mRNA translation and reduced or lack of innate immune stimulation are seen with 100% substitution with a modified nucleoside. Lesser percentages of substitution result in less mRNA translation and more innate immune stimulation, with unmodified mRNA showing the lowest translation and the highest innate immune stimulation.
  • In Vitro PBMC Studies: Percent modification
  • 480 ng of G-CSF mRNA modified with 5-methylcytosine (5mC) and pseudouridine (pseudoU) or unmodified G-CSF mRNA was transfected with 0.4 uL of Lipofectamine 2000 into peripheral blood mononuclear cells (PBMC) from three normal blood donors (D1, D2, and D3). The G-CSF mRNA (SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) was completely modified with 5mC and pseudo (100% modification), not modified with 5mC and pseudo (0% modification) or was partially modified with 5mC and pseudoU so the mRNA would contain 75% modification, 50% modification or 25% modification. A control sample of Luciferase (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1; fully modified 5meC and pseudoU) was also analyzed for G-CSF expression. For TNF-alpha and IFN-alpha control samples of Lipofectamine-2000, LPS, R-848, Luciferase (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1; fully modified 5mC and pseudo), and P(I)P(C) were also analyzed. The supernatant was harvested and run by ELISA 22 hours after transfection to determine the protein expression. The expression of G-CSF is shown in Table 7 and the expression of IFN-alpha and TNF-alpha is shown in Table 8. The expression of IFN-alpha and TNF-alpha may be a secondary effect from the transfection of the G-CSF mRNA. Tables 7, 8 and FIG. 10 show that the amount of chemical modification of G-CSF, interferon alpha (IFN-alpha) and tumor necrosis factor-alpha (TNF-alpha) is titratable when the mRNA is not fully modified and the titratable trend is not the same for each target.
  • As mentioned above, using PBMC as an in vitro assay system it is possible to establish a correlation between translation (in this case G-CSF protein production) and cytokine production (in this case exemplified by IFN-alpha protein production). Better protein production is correlated with lower induction of innate immune activation pathway, and the percentage modification of a chemistry can be judged favorably based on this ratio (Table 9). As calculated from Tables 7 and 8 and shown in Table 9, full modification with 5-methylcytidine and pseudouridine shows a much better ratio of protein/cytokine production than without any modification (natural G-CSF mRNA) (100-fold for IFN-alpha and 27-fold for TNF-alpha). Partial modification shows a linear relationship with increasingly less modification resulting in a lower protein/cytokine ratio.
  • TABLE 1
    G-CSF Expression
    G-CSF Expression (pg/ml)
    D1 D2 D3
    100% modification  1968.9 2595.6 2835.7
    75% modification 566.7 631.4 659.5
    50% modification 188.9 187.2 191.9
    25% modification 139.3 126.9 102.0
     0% modification 194.8 182.0 183.3
    Luciferase 90.2 0.0 22.1
  • TABLE 8
    IFN-alpha and TNF-alpha Expression
    IFN-alpha TNF-alpha
    Expression (pg/ml) Expression (pg/ml)
    D1 D2 D3 D1 D2 D3
    100% modification 336.5 78.0 46.4 115.0 15.0 11.1
    75% modification 339.6 107.6 160.9 107.4 21.7 11.8
    50% modification 478.9 261.1 389.7 49.6 24.1 10.4
    25% modification 564.3 400.4 670.7 85.6 26.6 19.8
    0% modification 1421.6 810.5 1260.5 154.6 96.8 45.9
    LPS 0.0 0.6 0.0 0.0 12.6 4.3
    R-848 0.5 3.0 14.1 655.2 989.9 420.4
    P(I)P(C) 130.8 297.1 585.2 765.8 2362.7 1874.4
    Lipid only 1952.2 866.6 855.8 248.5 82.0 60.7
  • TABLE 9
    PC Ratio and Effect of Percentage of Modification
    Average Average Average G-CSF/IFN- G-CSF/TNF-
    % G-CSF IFN-a TNF-a alpha alpha
    Modification (pg/ml) (pg/ml) (pg/ml) (PC ratio) (PC ratio)
    100 2466 153 47 16 52
    75 619 202 47 3.1 13
    50 189 376 28 0.5 6.8
    25 122 545 44 0.2 2.8
    0 186 1164 99 0.16 1.9
  • Example 66 Modified RNA transfected in PBMC
  • 500 ng of G-CSF mRNA modified with 5-methylcytosine (5mC) and pseudouridine (pseudoU) or unmodified G-CSF mRNA was transfected with 0.4 uL of Lipofectamine 2000 into peripheral blood mononuclear cells (PBMC) from three normal blood donors (D1, D2, and D3). The G-CSF mRNA (SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) was completely modified with 5mC and pseudo (100% modification), not modified with 5mC and pseudo (0% modification) or was partially modified with 5mC and pseudoU so the mRNA would contain 50% modification, 25% modification, 10% modification, %5 modification, 1% modification or 0.1% modification. A control sample of mCherry (mRNA sequence shown in SEQ ID NO: 6; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1; fully modified 5meC and pseudouridine) and G-CSF fully modified with 5-methylcytosine and pseudouridine (Control G-CSF) was also analyzed for G-CSF expression. For tumor necrosis factor-alpha (TNF-alpha) and interferon-alpha (IFN-alpha) control samples of Lipofectamine-2000, LPS, R-848, Luciferase (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1; fully modified 5mC and pseudo), and P(I)P(C) were also analyzed. The supernatant was harvested 6 hours and 18 hours after transfection and run by ELISA to determine the protein expression. The expression of G-CSF, IFN-alpha, and TNF-alpha for Donor 1 is shown in Table 10, Donor 2 is shown in Table 11 and Donor 3 is shown in Table 12.
  • Full 100% modification with 5-methylcytidine and pseudouridine resulted in the most protein translation (G-CSF) and the least amount of cytokine produced across all three human PBMC donors. Decreasing amounts of modification results in more cytokine production (IFN-alpha and TNF-alpha), thus further highlighting the importance of fully modification to reduce cytokines and to improve protein translation (as evidenced here by G-CSF production).
  • TABLE 10
    Donor 1
    IFN-alpha TNF-alpha
    G-CSF (pg/mL) (pg/mL) (pg/mL)
    6 18 6 18 6 18
    hours hours hours hours hours hours
    100% Mod 1815 2224 1 13 0 0
    75% Mod 591 614 0 89 0 0
    50% Mod 172 147 0 193 0 0
    25% Mod 111 92 2 219 0 0
    10% Mod 138 138 7 536 18 0
    1% Mod 199 214 9 660 18 3
    0.1% Mod 222 208 10 597 0 6
    0% Mod 273 299 10 501 10 0
    Control G-CSF 957 1274 3 123 18633 1620
    mCherry 0 0 0 10 0 0
    Untreated N/A N/A 0 0 1 1
  • TABLE 11
    Donor 2
    IFN-alpha TNF-alpha
    G-CSF (pg/mL) (pg/mL) (pg/mL)
    6 18 6 18 6 18
    hours hours hours hours hours hours
    100% Mod 2184 2432 0 7 0 11
    75% Mod 935 958 3 130 0 0
    50% Mod 192 253 2 625 7 23
    25% Mod 153 158 7 464 6 6
    10% Mod 203 223 25 700 22 39
    1% Mod 288 275 27 962 51 66
    0.1% Mod 318 288 33 635 28 5
    0% Mod 389 413 26 748 1 253
    Control G-CSF 1461 1634 1 59 481 814
    mCherry 0 7 0 1 0 0
    Untreated N/A N/A 1 0 0 0
  • TABLE 12
    Donor 3
    IFN-alpha TNF-alpha
    G-CSF (pg/mL) (pg/mL) (pg/mL)
    6 18 6 18 6 18
    hours hours hours hours hours hours
    100% Mod 6086 7549 7 658 11 11
    75% Mod 2479 2378 23 752 4 35
    50% Mod 667 774 24 896 22 18
    25% Mod 480 541 57 1557 43 115
    10% Mod 838 956 159 2755 144 123
    1% Mod 1108 1197 235 3415 88 270
    0.1% Mod 1338 1177 191 2873 37 363
    0% Mod 1463 1666 215 3793 74 429
    Control G-CSF 3272 3603 16 1557 731 9066
    mCherry 0 0 2 645 0 0
    Untreated N/A N/A 1 1 0 8
  • Example 67 Microames Reverse Mutation Screen of Modifications Background and Methods
  • The microames screen is a version of the full Ames preincubation assay. It detects both frameshift and base-pair substitution mutations using four Salmonella tester strains (TA97a, TA98, TA100 and TA1535) and one Escherichia coli strain (WP2 uvrA pKM101). Strains TA97a and TA98 detect frameshift mutations, and TA100, TA1535 and WP2 uvrA pKM101 detect base-pair substitution mutations. This scaled-down Ames test uses minimal compound, is conducted with and without metabolic activation (S9 fraction), and uses multiwell plates. This teste is a microbial assay to detect the mutagenic potential of test compounds.
  • The microAmes screen for 5-Methylcytidine, Pseudouridine or N′-methylpseudouridine test article was tested in duplicate with strains TA97a, TA98, TA100, TA1535 and WP2 uvrA pKM101 in the presence and absence of a metabolic activation system (AROCLOR™ 1254 induced rat liver S9 microsomal fraction) at 0.25, 2.5, 12.5, 25, 75, and 250 ug/well. Positive control compounds were used at 4 different concentrations to ensure the assay system was sensitive to known mutagenic compounds. DMSO was used as the vehicle control. Positive and vehicle controls yielded the expected results, demonstrating that the microAmes screen is sufficiently sensitive to detect mutagens.
  • Results
  • For 5-methylcytosine, precipitates were not observed with any tester strain either with or without metabolic activation. Cytotoxicity (reduction in the background lawn and/or number of revertants) was not observed in any strain either with or without metabolic activation. There was no increase in the number of revertant colonies as compared with the vehicle control in any strain with or without metabolic activation. Therefore, 5-Methylcytidine was not mutagenic up to 250 ug/well in strains TA97a, TA98, TA100, TA1535 and WP2 uvrA pKM101 with or without metabolic activation under the conditions of the microAmes screen.
  • Precipitates were not observed with any tester strain either with or without metabolic activation for pseudouridine. Cytotoxicity (reduction in the number of revertants) was observed with strain TA100 without metabolic activation. Cytotoxicity (reduction in the background lawn and/or number of revertants) was not observed in any other strain either with or without metabolic activation. There was no increase in the number of revertant colonies as compared with the vehicle control in any strain with or without metabolic activation. Therefore, pseudouridine was not mutagenic up to 75 ug/well in strain TA100 without metabolic activation and up to 250 μg/well in strains TA97a, TA98, TA1535 and WP2 uvrA pKM101 with or without metabolic activation and strain TA100 without metabolic activation under the conditions of this microAmes screen.
  • For the modification, N1-methylpseudouridine precipitates were not observed with any tester strain either with or without metabolic activation. Cytotoxicity (reduction in the background lawn and/or number of revertants) was not observed in any strain either with or without metabolic activation. There was no increase in the number of revertant colonies as compared with the vehicle control in any strain with or without metabolic activation. N1-methylpseudouridine was not mutagenic up to 250 μg/well in strains TA97a, TA98, TA100, TA1535 and WP2 uvrA pKM101 with or without metabolic activation under the conditions of this microAmes screen. N1-methylpseudouridine was found less mutagenic than pseudouridine.
  • The comparison in this microAMES test of 5 methyl cytidine, pseudouridine, and N1-methylpseudouridine reveal them to be generally non-mutagenic. Of particular note, however, was the difference between pseudouridine and N1-methylpseudouridine, where pseudouridine did show a cytotoxic response in one bacterial strain where N1-methylpseudouridine did not. These microAMES tests are routinely used as part of the pre-clinical assessment of compound safety and highlight an important difference between N1-methylpseudouridine and pseudouridine.
  • Example 68 Toxicity of Nucleoside Triphosphates (NTPs)
  • The cytotoxicity of natural and modified nucleoside triphosphates (NTPs) alone or in combination with other bases, was analyzed in human embryonic kidney 293 (HEK293) cells in the absence of transfection reagent. HEK293 cells were seeded on 96-well plates at a density of 30,000 cells per well having 0.75 ul of RNAiMAX™ (Invitrogen, Carlsbad, Calif.) per well at a total well volume of 100 ul. 10 ul of the NTPs outlined in Table 12 were combined with 10 ul of lipid dilution and incubated for 30 minutes to form a complex before 80 ul of the HEK293 cell suspension was added to the NTP complex.
  • Natural and modified NTPs were transfected at a concentration of 2.1 nM, 21 nM, 210 nM, 2.1 um, 21 uM, 210 um or 2.1 mM. NTPs in combination were transfected at a total concentration of NTPs of 8.4 nM, 84 nM, 840 nM, 8.4 uM, 84 uM, 840 uM and 8.4 mM. As a control modified G-CSF mRNA (SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1; fully modified 5-methylcytosine and pseudouridine) was transfected in HEK293 cells at a concentration of 8.4 nM. The cytotoxicity of the NTPs and the modified G-CSF mRNA was assayed at 4, 24, 48 and 72 hours post addition to the HEK293 cells using a CYTO TOX-GLO™ assay from Promega (Madison, Wis.) following the manufacturer protocol except pippeting was used for lysing the cells instead of shaking the plates.
  • Table 13 and 14 show the percent of viable cells for each of the NTPs, NTP combinations and controls tested. There was no toxicity seen with the individual NTPs as compared to the untreated cells. These data demonstrate that introduction of individual NTPs, including 5-methylcytidine, pseudouridine, and N1-methylpseudouridine, into mammalian cells is not toxic at doses 1,000,000 times an effective dose when introduced as a modified mRNA.
  • TABLE 13
    Cytotoxicity of Individual NTPs
    Individual NTP Cytotoxicity
    Dose
    Time 2.1 mM 210 uM 21 uM 2.1 uM 210 nM 21 nM 2.1 nM
    Adenine  4 hr 90.03 85.97 91.20 90.23 90.36 93.21 93.48
    24 hr 88.42 87.31 86.86 86.81 86.94 87.19 86.44
    48 hr 93.71 90.55 89.94 89.80 89.17 91.13 92.12
    72 hr 97.49 94.81 93.83 94.58 92.22 93.88 95.74
    Cytosine  4 hr 90.51 89.88 91.41 90.49 88.95 93.11 93.34
    24 hr 86.92 86.33 85.72 86.70 86.12 86.16 85.78
    48 hr 94.23 87.81 87.28 87.73 85.36 88.95 88.99
    72 hr 97.15 92.34 92.22 88.93 88.22 91.80 94.22
    Guanine  4 hr 90.96 90.14 91.36 90.60 90.00 92.84 93.33
    24 hr 86.37 85.86 85.93 86.13 86.35 85.50 85.41
    48 hr 93.83 87.05 88.18 87.89 85.31 87.92 89.57
    72 hr 97.04 91.41 92.39 92.30 92.19 92.55 93.72
    Uracil  4 hr 90.97 89.60 91.95 90.90 91.05 92.90 93.15
    24 hr 87.68 86.48 85.89 86.75 86.52 87.23 87.63
    48 hr 94.39 88.98 89.11 89.44 88.33 88.89 91.28
    72 hr 96.82 93.45 93.63 94.60 94.50 94.53 95.51
    Pseudouridine  4 hr 92.09 92.37 91.35 92.02 92.84 91.96 92.26
    24 hr 88.38 86.68 86.05 86.75 85.91 87.59 87.31
    48 hr 88.62 87.79 87.73 87.66 87.82 89.03 91.99
    72 hr 96.87 89.82 94.23 93.54 92.37 94.26 94.25
    5-methyl  4 hr 92.01 91.54 91.16 91.31 92.31 91.40 92.23
    cytosine 24 hr 87.97 85.76 84.72 85.14 84.71 86.37 86.35
    48 hr 87.29 85.94 85.74 86.18 86.44 87.10 88.18
    72 hr 96.08 88.10 92.26 90.92 89.97 92.10 91.93
    N1-methyl  4 hr 92.45 91.43 91.48 90.41 92.15 91.44 91.89
    pseudouridine 24 hr 88.92 86.48 85.17 85.72 85.89 86.85 87.79
    48 hr 89.84 86.02 87.52 85.85 87.38 86.72 87.81
    72 hr 96.80 93.03 93.83 92.25 92.40 92.84 92.98
    Untreated  4 hr 92.77
    24 hr 87.52
    48 hr 92.95
    72 hr 96.97
  • TABLE 14
    Cytotoxicity of NTPs in Combination
    NTP Combination Cytotoxicity
    Dose
    Time 8.4 mM 840 uM 84 uM 8.4 uM 840 nM 84 nM 8.4 nM
    Pseudouridine/5-  4 hr 92.27 92.04 91.47 90.86 90.87 91.10 91.50
    methylcytosine/ 24 hr 88.51 86.90 86.43 88.15 88.46 86.28 87.51
    Adenine/Guanine 48 hr 88.30 87.36 88.58 88.13 87.39 88.72 90.55
    72 hr 96.53 94.42 94.31 94.53 94.38 94.36 93.65
    N1-methyl  4 hr 92.31 91.71 91.36 91.15 91.30 90.86 91.38
    pseudouridine/5- 24 hr 88.19 87.07 86.46 87.70 88.13 85.30 87.21
    methylcytosine/ 48 hr 87.17 86.53 87.51 85.85 84.69 87.73 86.79
    Adenine/Guanine 72 hr 96.40 94.88 94.40 93.65 94.82 92.72 93.10
    G-CSF  4 hr na na na na na na 92.63
    modified 24 hr na na na na na na 87.53
    mRNA 48 hr na na na na na na 91.70
    72 hr na na na na na na 96.36
  • Example 69 Innate Immune Response Study in BJ Fibroblasts
  • Human primary foreskin fibroblasts (BJ fibroblasts) were obtained from American Type Culture Collection (ATCC) (catalog #CRL-2522) and grown in Eagle's Minimum Essential Medium (ATCC, catalog #30-2003) supplemented with 10% fetal bovine serum at 37° C., under 5% CO2. BJ fibroblasts were seeded on a 24-well plate at a density of 300,000 cells per well in 0.5 ml of culture medium. 250 ng of modified G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) fully modified with 5-methylcytosine and pseudouridine (Gen1) or fully modified with 5-methylcytosine and N1-methylpseudouridine (Gen2) having Cap0, Cap1 or no cap was transfected using Lipofectamine 2000 (Invitrogen, catalog #11668-019), following manufacturer's protocol. Control samples of poly I:C (PIC), Lipofectamine 2000 (Lipo), natural luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) and natural G-CSF mRNA were also transfected. The cells were harvested after 18 hours, the total RNA was isolated and DNASE® treated using the RNeasy micro kit (catalog #74004) following the manufacturer's protocol. 100 ng of total RNA was used for cDNA synthesis using High Capacity cDNA Reverse Transcription kit (catalog #4368814) following the manufacturer's protocol. The cDNA was then analyzed for the expression of innate immune response genes by quantitative real time PCR using SybrGreen in a Biorad CFX 384 instrument following manufacturer's protocol. Table 15 shows the expression level of innate immune response transcripts relative to house-keeping gene HPRT (hypoxanthine phosphoribosytransferase) and is expressed as fold-induction relative to HPRT. In the table, the panel of standard metrics includes: RIG-I is retinoic acid inducible gene 1, IL6 is interleukin-6, OAS-1 is oligoadenylate synthetase 1, IFNb is interferon-beta, AIM2 is absent in melanoma-2, IFIT-1 is interferon-induced protein with tetratricopeptide repeats 1, PKR is protein kinase R, TNFa is tumor necrosis factor alpha and IFNa is interferon alpha.
  • TABLE 15
    Innate Immune Response Transcript Levels
    Formulation RIG-I IL6 OAS-1 IFNb AIM2 IFIT-1 PKR TNFa IFNa
    Natural 71.5 20.6 20.778 11.404 0.251 151.218 16.001 0.526 0.067
    Luciferase
    Natural G-CSF 73.3 47.1 19.359 13.615 0.264 142.011 11.667 1.185 0.153
    PIC 30.0 2.8 8.628 1.523 0.100 71.914 10.326 0.264 0.063
    G-CSF Gen1-UC 0.81 0.22 0.080 0.009 0.008 2.220 1.592 0.090 0.027
    G-CSF Gen1-Cap0 0.54 0.26 0.042 0.005 0.008 1.314 1.568 0.088 0.038
    G-CSF Gen1-Cap1 0.58 0.30 0.035 0.007 0.006 1.510 1.371 0.090 0.040
    G-CSF Gen2-UC 0.21 0.20 0.002 0.007 0.007 0.603 0.969 0.129 0.005
    G-CSF Gen2-Cap0 0.23 0.21 0.002 0.0014 0.007 0.648 1.547 0.121 0.035
    G-CSF Gen2-Cap1 0.27 0.26 0.011 0.004 0.005 0.678 1.557 0.099 0.037
    Lipo 0.27 0.53 0.001 0 0.007 0.954 1.536 0.158 0.064
  • Example 70 In Vivo Detection of Innate Immune Response
  • In an effort to distringuish the importance of different chemical modification of mRNA on in vivo protein production and cytokine response in vivo, female BALB/C mice (n=5) are injected intramuscularly with G-CSF mRNA (GCSF mRNA unmod) (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence;) with a 5′ cap of Cap1, G-CSF mRNA fully modified with 5-methylcytosine and pseudouridine (GCSF mRNA 5 mc/pU), G-CSF mRNA fully modified with 5-methylcytosine and N1-methylpseudouridine with (GCSF mRNA 5 mc/N1pU) or without a 5′ cap (GCSF mRNA 5 mc/N1 pU no cap) or a control of either R848 or 5% sucrose as described in Table 16.
  • TABLE 16
    Dosing Chart
    Formulation Route Dose (ug/mouse) Dose (ul)
    GCSF mRNA unmod I.M. 200 50
    GCSF mRNA 5 mc/pU I.M. 200 50
    GCSF mRNA I.M. 200 50
    5 mc/N1pU
    GCSF mRNA I.M. 200 50
    5 mc/N1pU no cap
    R848 I.M. 75 50
    5% sucrose I.M. 50
    Untreated I.M.
  • Blood is collected at 8 hours after dosing. Using ELISA the protein levels of G-CSF, TNF-alpha and IFN-alpha is determined by ELISA. 8 hours after dosing, muscle is collected from the injection site and quantitative real time polymerase chain reaction (QPCR) is used to determine the mRNA levels of RIG-I, PKR, AIM-2, IFIT-1, OAS-2, MDA-5, IFN-beta, TNF-alpha, IL-6, G-CSF, CD45 in the muscle.
  • Example 71 In Vivo Detection of Innate Immune Response Study
  • Female BALB/C mice (n=5) were injected intramuscularly with G-CSF mRNA (GCSF mRNA unmod) (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence;) with a 5′ cap of Cap1, G-CSF mRNA fully modified with 5-methylcytosine and pseudouridine (GCSF mRNA 5 mc/pU), G-CSF mRNA fully modified with 5-methylcytosine and N1-methylpseudouridine with (GCSF mRNA 5 mc/N1pU) or without a 5′ cap (GCSF mRNA 5 mc/N1 pU no cap) or a control of either R848 or 5% sucrose as described in Table 17. Blood is collected at 8 hours after dosing and using ELISA the protein levels of G-CSF and interferon-alpha (IFN-alpha) is determined by ELISA and are shown in Table 17.
  • As shown in Table 17, unmodified, 5 mc/pU, and 5 mc/N1pU modified G-CSF mRNA resulted in human G-CSF expression in mouse serum. The uncapped 5mC/N1pU modified G-CSF mRNA showed no human G-CSF expression in serum, highlighting the importance of having a 5′ cap structure for protein translation.
  • As expected, no human G-CSF protein was expressed in the R848, 5% sucrose only, and untreated groups. Importantly, significant differences were seen in cytokine production as measured by mouse IFN-alpha in the serum. As expected, unmodified G-CSF mRNA demonstrated a robust cytokine response in vivo (greater than the R848 positive control). The 5 mc/pU modified G-CSF mRNA did show a low but detectable cytokine response in vivo, while the 5 mc/N1pU modified mRNA showed no detectable IFN-alpha in the serum (and same as vehicle or untreated animals).
  • Also, the response of 5 mc/N1pU modified mRNA was the same regardless of whether it was capped or not. These in vivo results reinforce the conclusion that 1) that unmodified mRNA produce a robust innate immune response, 2) that this is reduced, but not abolished, through 100% incorporation of 5 mc/pU modification, and 3) that incorporation of 5 mc/N1pU modifications results in no detectable cytokine response.
  • Lastly, given that these injections are in 5% sucrose (which has no effect by itself), these result should accurately reflect the immunostimulatory potential of these modifications.
  • From the data it is evident that N1pU modified molecules produce more protein while concomitantly having little or no effect on IFN-alpha expression. It is also evident that capping is required for protein production for this chemical modification. The Protein: Cytokine Ratio of 748 as compared to the PC Ratio for the unmodified mRNA (PC=9) means that this chemical modification is far superior as related to the effects or biological implications associated with IFN-alpha.
  • TABLE 17
    Human G-CSF and Mouse IFN-alpha in serum
    Dose G-CSF IFN-alpha
    (ug/ Dose protein expression PC
    Formulation Route mouse) (ul) (pg/ml) (pg/ml) Ratio
    GCSF mRNA I.M. 200 50 605.6 67.01 9
    unmod
    GCSF mRNA I.M. 200 50 356.5 8.87 40
    5 mc/pU
    GCSF mRNA I.M. 200 50 748.1 0 748
    5 mc/N1pU
    GCSF mRNA I.M. 200 50 6.5 0 6.5
    5 mc/N1pU
    no cap
    R848 I.M.  75 50 3.4 40.97 .08
    5% sucrose I.M. 50 0 1.49 0
    Untreated I.M. 0 0 0
  • Example 72 In Vivo Delivery Using Lipoplexes A. Human G-CSF Modified RNA
  • A formulation containing 100 μg of one of two versions of modified human G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) (G-CSF fully modified with 5-methylcytosine and pseudouridine (G-CSF) or G-CSF fully modified with 5-methylcytosine and N1-methyl-pseudouridine (G-CSF-N1) lipoplexed with 30% by volume of RNAIMAX™ and delivered in 150 uL intramuscularly (I.M.) and in 225 uL intravenously (I.V.) to C57/BL6 mice.
  • Three control groups were administered either 100 μg of modified luciferase mRNA (IVT cDNA sequence shown in SEQ ID NO: 2; mRNA sequence shown in SEQ ID NO: 3, polyA tail of approximately 160 nucleotides not shown in sequence, 5′ cap, Cap 1, fully modified with 5-methylcytosine at each cytosine and pseudouridine replacement at each uridine site) intramuscularly (Luc-unsp I.M.) or 150 μg of modified luciferase mRNA intravenously (Luc-unsp I.V.) or 150 uL of the formulation buffer intramuscularly (Buffer I.M.). 6 hours after administration of a formulation, serum was collected to measure the amount of human G-CSF protein in the mouse serum by human G-CSF ELISA and the results are shown in Table 18.
  • These results demonstrate that both 5-methylcytosine/pseudouridine and 5-methylcytosine/N1-methylpseudouridine modified human G-CSF mRNA can result in specific human G-CSF protein expression in serum when delivered via I.V. or I.M. route of administration in a lipoplex formulation.
  • TABLE 18
    Human G-CSF in Serum (I.M. and I.V. Injection Route)
    Formulation Route G-CSF (pg/ml)
    G-CSF I.M. 85.6
    G-CSF-N1 I.M. 40.1
    G-CSF I.V. 31.0
    G-CSF-N1 I.V. 6.1
    Luc-unsp I.M. 0.0
    Luc-unsp I.V. 0.0
    Buffer I.M. 0.0
  • B. Human G-CSF Modified RNA Comparison
  • A formulation containing 100 μg of either modified human G-CSF mRNA lipoplexed with 30% by volume of RNAIMAX™ with a 5-methylcytosine (5 mc) and a pseudouridine (ψ) modification (G-CSF-Gen1-Lipoplex), modified human G-CSF mRNA with a 5 mc and ψ modification in saline (G-CSF-Gen1-Saline), modified human G-CSF mRNA with a N1-5-methylcytosine (N-1-5 mc) and a ψ modification lipoplexed with 30% by volume of RNAIMAX™ (G-CSF-Gen2-Lipoplex), modified human G-CSF mRNA with a N1-5 mc and ψ modification in saline (G-CSF-Gen2-Saline), modified luciferase with a 5 mc and ψ modification lipoplexed with 30% by volume of RNAIMAX™ (Luc-Lipoplex), or luciferase mRNA fully modified with 5 mc and ψ modifications in saline (Luc-Saline) was delivered intramuscularly (I.M.) or subcutaneously (S.C.) and a control group for each method of administration was giving a dose of 80 uL of the formulation buffer (F. Buffer) to C57/BL6 mice. 13 hours post injection serum and tissue from the site of injection were collected from each mouse and analyzed by G-CSF ELISA to compare human G-CSF protein levels. The results of the human G-CSF protein in mouse serum from the intramuscular administration and the subcutaneous administration results are shown in Table 19.
  • These results demonstrate that 5-methylcytosine/pseudouridine and 5-methylcytosine/N1-methylpseudouridine modified human G-CSF mRNA can result in specific human G-CSF protein expression in serum when delivered via I.M. or S.C. route of administration whether in a saline formulation or in a lipoplex formulation. As shown in Table 19, 5-methylcytosine/N1-methylpseudouridine modified human G-CSF mRNA generally demonstrates increased human G-CSF protein production relative to 5-methylcytosine/pseudouridine modified human G-CSF mRNA.
  • TABLE 19
    Human G-CSF Protein in Mouse Serum
    G-CSF (pg/ml)
    Formulation I.M. Injection Route S.C. Injection Route
    G-CSF-Gen1-Lipoplex 13.988 42.855
    GCSF-Gen1-saline 9.375 4.614
    GCSF-Gen2-lipoplex 75.572 32.107
    GCSF-Gen2-saline 20.190 45.024
    Luc lipoplex 0 3.754
    Luc saline 0.0748 0
    F. Buffer 4.977 2.156
  • Example 73 Multi-Site Administration: Intramuscular and Subcutaneous
  • Human G-CSF modified mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) modified as either Gen1 or Gen2 (5-methylcytosine (5 mc) and a pseudouridine (ψ) modification, G-CSF-Gen1; or N1-5-methylcytosine (N-1-5 mc) and a ψ modification, G-CSF-Gen2) and formulated in saline were delivered to mice via intramuscular (IM) or subcutaneous (SC) injection. Injection of four doses or 2×50 ug (two sites) daily for three days (24 hrs interval) was performed. The fourth dose was administered 6 hrs before blood collection and CBC analysis. Controls included Luciferase (cDNA sequence for IVT shown in SEQ ID NO: 2; mRNA sequence shown in SEQ ID NO: 3, polyA tail of approximately 160 nucleotides not shown in sequence, 5′ cap, Cap 1, fully modified with 5-methylcytosine at each cytosine and pseudouridine replacement at each uridine site) or the formulation buffer (F.Buffer). The mice were bled at 72 hours after the first mRNA injection (6 hours after the last mRNA dose) to determine the effect of mRNA-encoded human G-CSF on the neutrophil count. The dosing regimen is shown in Table 20 as are the resulting neutrophil counts (thousands/uL). In Table 20, an asterisks (*) indicate statistical significance at p<0.05.
  • For intramuscular administration, the data reveal a four fold increase in neutrophil count above control at day 3 for the Gen1 G-CSF mRNA and a two fold increase for the Gen2 G-CSF mRNA. For subcutaneous administration, the data reveal a two fold increase in neutrophil count above control at day 3 for the Gen2 G-CSF mRNA.
  • These data demonstrate that both 5-methylcytidine/pseudouridine and 5-methylcytidine/N1-methylpseudouridine-modified mRNA can be biologically active, as evidenced by specific increases in blood neutrophil counts.
  • TABLE 20
    Dosing Regimen
    Dose Vol. Dosing Neutrophil
    Gr. Treatment Route N = Dose (μg/mouse) (μl/mouse) Vehicle Thous/uL
    1 G-CSF (Gen1) I.M 5 2 × 50 ug (four doses) 50 F. buffer  840*
    2 G-CSF (Gen1) S.C 5 2 × 50 ug (four doses) 50 F. buffer 430
    3 G-CSF (Gen2) I.M 5 2 × 50 ug (four doses) 50 F. buffer  746*
    4 G-CSF (Gen2) S.C 5 2 × 50 ug (four doses) 50 F. buffer 683
    5 Luc (Gen1) I.M. 5 2 × 50 ug (four doses) 50 F. buffer 201
    6 Luc (Gen1) S.C. 5 2 × 50 ug (four doses) 50 F. buffer 307
    7 Luc (Gen2) I.M 5 2 × 50 ug (four doses) 50 F. buffer 336
    8 Luc (Gen2) S.C 5 2 × 50 ug (four doses) 50 F. buffer 357
    9 F. Buffer I.M 4 0 (four doses) 50 F. buffer 245
    10 F. Buffer S.C. 4 0 (four doses) 50 F. buffer 509
    11 Untreated 4 312
  • Example 74 Intravenous Administration
  • Human G-CSF modified mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) modified with 5-methylcytosine (5 mc) and a pseudouridine (ψ) modification (Gen1); or having no modifications and formulated in 10% lipoplex (RNAIMAX™) were delivered to mice at a dose of 50 ug RNA and in a volume of 100 ul via intravenous (IV) injection at days 0, 2 and 4. Neutrophils were measured at days 1, 5 and 8. Controls included non-specific mammalian RNA or the formulation buffer alone (F.Buffer). The mice were bled at days 1, 5 and 8 to determine the effect of mRNA-encoded human G-CSF to increase neutrophil count. The dosing regimen is shown in Table 21 as are the resulting neutrophil counts (thousands/uL; K/uL).
  • For intravenous administration, the data reveal a four to five fold increase in neutrophil count above control at day 5 with G-CSF modified mRNA but not with unmodified G-CSF mRNA or non-specific controls. Blood count returned to baseline four days after the final injection. No other changes in leukocyte populations were observed.
  • In Table 21, an asterisk (*) indicates statistical significance at p<0.001 compared to buffer.
  • These data demonstrate that lipoplex-formulated 5-methylcytidine/pseudouridine-modified mRNA can be biologically active, when delivered through an I.V. route of administration as evidenced by specific increases in blood neutrophil counts. No other cell subsets were significantly altered. Unmodified G-CSF mRNA similarly administered showed no pharmacologic effect on neutrophil counts.
  • TABLE 21
    Dosing Regimen
    Dose
    Vol. Dosing Neutrophil
    Gr. Treatment N (μl/mouse) Vehicle K/uL
    1 G-CSF (Gen1) Day 1 5 100 10% lipoplex 2.91
    2 G-CSF (Gen1) Day 5 5 100 10% lipoplex 5.32*
    3 G-CSF (Gen1) Day 8 5 100 10% lipoplex 2.06
    4 G-CSF (no 5 100 10% lipoplex 1.88
    modification) Day 1
    5 G-CSF (no 5 100 10% lipoplex 1.95
    modification) Day 5
    6 G-CSF (no 5 100 10% lipoplex 2.09
    modification) Day 8
    7 RNA control Day 1 5 100 10% lipoplex 2.90
    8 RNA control Day 5 5 100 10% lipoplex 1.68
    9 RNA control Day 8 4 100 10% lipoplex 1.72
    10 F. Buffer Day 1 4 100 10% lipoplex 2.51
    11 F. Buffer Day 5 4 100 10% lipoplex 1.31
    12 F. Buffer Day 8 4 100 10% lipoplex 1.92
  • Example 75 Routes of Administration
  • Studies were performed to investigate split dosing using different routes of administration. Studies utilizing multiple subcutaneous or intramuscular injection sites at one time point were designed and performed to investigate ways to increase modified mRNA drug exposure and improve protein production. In addition to detection of the expressed protein product, an assessment of the physiological function of proteins was also determined through analyzing samples from the animal tested.
  • Surprisingly, it has been determined that split dosing of modified mRNA produces greater protein production and phenotypic responses than those produced by single unit dosing or multi-dosing schemes.
  • The design of a split dose experiment involved using human erythropoietin (EPO) modified mRNA (mRNA sequence shown in SEQ ID NO: 5; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) or luciferase modified mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) administered in buffer alone or formulated with 30% lipoplex (RNAIMAX™). The dosing vehicle (buffer) consisted of 150 mM NaCl, 2 mM CaCl2, 2 mM Na+-phosphate (1.4 mM monobasic sodium phosphate; 0.6 mM dibasic sodium phosphate), and 0.5 mM EDTA, pH 6.5. The pH was adjusted using sodium hydroxide and the final solution was filter sterilized. The mRNA was modified with 5-methylC (5meC) at each cytosine and pseudouridine replacement at each uridine site.
  • 4 mice per group were dosed intramuscularly (I.M.), intravenously (I.V.) or subcutaneously (S.C.) by the dosing chart outlined in Table 22. Serum was collected 13 hours post injection from all mice, tissue was collected from the site of injection from the intramuscular and subcutaneous group and the spleen, liver and kidneys were collected from the intravenous group. The results from the intramuscular group and the subcutaneous group results are shown in Table 23.
  • TABLE 22
    Dosing Chart
    Total Dosing
    Group Treatment Route Dose of modified mRNA Dose Vehicle
    1 Lipoplex-human EPO I.M. 4 × 100 ug + 30% Lipoplex 4 × 70 ul Lipoplex
    modified mRNA
    2 Lipoplex-human EPO I.M. 4 × 100 ug 4 × 70 ul Buffer
    modified mRNA
    3 Lipoplex-human EPO S.C. 4 × 100 ug + 30% Lipoplex 4 × 70 ul Lipoplex
    modified mRNA
    4 Lipoplex-human EPO S.C. 4 × 100 ug 4 × 70 ul Buffer
    modified mRNA
    5 Lipoplex-human EPO I.V. 200 ug + 30% Lipoplex 140 ul Lipoplex
    modified mRNA
    6 Lipoplexed-Luciferase I.M. 100 ug + 30% Lipoplex 4 × 70 ul Lipoplex
    modified mRNA
    7 Lipoplexed-Luciferase I.M. 100 ug 4 × 70 ul Buffer
    modified mRNA
    8 Lipoplexed-Luciferase S.C. 100 ug + 30% Lipoplex 4 × 70 ul Lipoplex
    modified mRNA
    9 Lipoplexed-Luciferase S.C. 100 ug 4 × 70 ul Buffer
    modified mRNA
    10 Lipoplexed-human EPO I.V. 200 ug + 30% Lipoplex 140 ul Lipoplex
    modified mRNA
    11 Formulation Buffer I.M. 4x multi dosing 4 × 70 ul Buffer
  • TABLE 23
    Human EPO Protein in Mouse Serum (I.M. Injection Route)
    EPO (pg/ml)
    Formulation I.M. Injection Route S.C. Injection Route
    Epo-Lipoplex 67.1 2.2
    Luc-Lipoplex 0 0
    Epo-Saline 100.9 11.4
    Luc-Saline 0 0
    Formulation Buffer 0 0
  • Example 76 In Vivo Delivery Using Varying Lipid Ratios
  • Modified mRNA was delivered to C57/BL6 mice to evaluate varying lipid ratios and the resulting protein expression. Formulations of 100 μg modified human EPO mRNA (mRNA sequence shown in SEQ ID NO: 5; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1; fully modified with 5-methylcytosine and pseudouridine) lipoplexed with 10%, 30% or 50% RNAIMAX™, 100 μg modified luciferase mRNA (IVT cDNA sequence shown in SEQ ID NO: 2; mRNA sequence shown in SEQ ID NO: 3, polyA tail of approximately 160 nucleotides not shown in sequence, 5′ cap, Cap 1, fully modified with 5-methylcytosine at each cytosine and pseudouridine replacement at each uridine site) lipoplexed with 10%, 30% or 50% RNAIMAX™ or a formulation buffer were administered intramuscularly to mice in a single 70 μl dose. Serum was collected 13 hours post injection to undergo a human EPO ELISA to determine the human EPO protein level in each mouse. The results of the human EPO ELISA, shown in Table 24, show that modified human EPO expressed in the muscle is secreted into the serum for each of the different percentage of RNAIMAX™.
  • TABLE 24
    Human EPO Protein in Mouse Serum (IM Injection Route)
    Formulation EPO (pg/ml)
    Epo + 10% RNAiMAX 11.4
    Luc + 10% RNAiMAX 0
    Epo + 30% RNAiMAX 27.1
    Luc + 30% RNAiMAX 0
    Epo + 50% RNAiMAX 19.7
    Luc + 50% RNAiMAX 0
    F. Buffer 0
  • Example 77 In Vivo Delivery of Modified RNA in Rats
  • Protein production of modified mRNA was evaluated by delivering modified G-CSF mRNA or modified Factor IX mRNA to female Sprague Dawley rats (n=6). Rats were injected with 400 ug in 100 ul of G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) fully modified with 5-methylcytosine and pseudouridine (G-CSF Gen1), G-CSF mRNA fully modified with 5-methylcytosine and N1-methylpseudouridine (G-CSF Gen2) or Factor IX mRNA (mRNA sequence shown in SEQ ID NO: 6; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) fully modified with 5-methylcytosine and pseudouridine (Factor IX Gen1) reconstituted from the lyophilized form in 5% sucrose. Blood was collected 8 hours after injection and the G-CSF protein level in serum was measured by ELISA. Table 25 shows the G-CSF protein levels in serum after 8 hours.
  • These results demonstrate that both G-CSF Gen 1 and G-CSF Gen 2 modified mRNA can produce human G-CSF protein in a rat following a single intramuscular injection, and that human G-CSF protein production is improved when using Gen 2 chemistry over Gen 1 chemistry.
  • TABLE 25
    G-CSF Protein in Rat Serum (I.M. Injection Route)
    Formulation G-CSF protein (pg/ml)
    G-CSF Gen1 19.37
    G-CSF Gen2 64.72
    Factor IX Gen 1 2.25
  • Example 78 Chemical Modification: In Vitro Studies A. In Vitro Screening in PBMC
  • 500 ng of G-CSF (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) mRNA fully modified with the chemical modification outlined Tables 26 and 27 was transfected with 0.4 uL Lipofectamine 2000 into peripheral blood mononuclear cells (PBMC) from three normal blood donors. Control samples of LPS, R848, P(I)P(C) and mCherry (mRNA sequence shown in SEQ ID NO: 4; polyA tail of approximately 160 nucleotides not shown in sequence, 5′ cap, Cap 1; fully modified with 5-methylcytosine and pseudouridine) were also analyzed. The supernatant was harvested and stored frozen until analyzed by ELISA to determine the G-CSF protein expression, and the induction of the cytokines interferon-alpha (IFN-α) and tumor necrosis factor alpha (TNF-α). The protein expression of G-CSF is shown in Table 26, the expression of IFN-α and TNF-α is shown in Table 27.
  • The data in Table 26 demonstrates that many, but not all, chemical modifications can be used to productively produce human G-CSF in PBMC. Of note, 100% N1-methylpseudouridine substitution demonstrates the highest level of human G-CSF production (almost 10-fold higher than pseudouridine itself). When N1-methylpseudouridine is used in combination with 5-methylcytidine a high level of human G-CSF protein is also produced (this is also higher than when pseudouridine is used in combination with 5 methylcytidine).
  • Given the inverse relationship between protein production and cytokine production in PBMC, a similar trend is also seen in Table 27, where 100% substitution with N1-methylpseudouridine results no cytokine induction (similar to transfection only controls) and pseudouridine shows detectable cytokine induction which is above background.
  • Other modifications such as N6-methyladenosine and α-thiocytidine appear to increase cytokine stimulation.
  • TABLE 26
    Chemical Modifications and G-CSF Protein Expression
    G-CSF Protein Expression (pg/ml)
    Donor Donor Donor
    Chemical Modifications 1 2 3
    Pseudouridine 2477 1,909 1,498
    5-methyluridine 318 359 345
    N1-methylpseudouridine 21,495 16,550 12,441
    2-thiouridine 932 1,000 600
    4-thiouridine 5 391 218
    5-methoxyuridine 2,964 1,832 1,800
    5-methylcytosine and pseudouridine 2,632 1,955 1,373
    (1st set)
    5-methylcytosine and N1-methyl- 10,232 7,245 6,214
    pseudouridine (1st set)
    2′Fluoroguanosine 59 186 177
    2′Fluorouridine 118 209 191
    5-methylcytosine and pseudouridine 1,682 1,382 1,036
    (2nd set)
    5-methylcytosine and N1-methyl- 9,564 8,509 7,141
    pseudouridine (2nd set)
    5-bromouridine 314 482 291
    5-(2-carbomethoxyvinyl)uridine 77 286 177
    5-[3(1-E-propenylamino)uridine 541 491 550
    α-thiocytidine 105 264 245
    5-methylcytosine and pseudouridine 1,595 1,432 955
    (3rd set)
    N1-methyladenosine 182 177 191
    N6-methyladenosine 100 168 200
    5-methylcytidine 291 277 359
    N4-acetylcytidine 50 136 36
    5-formylcytidine 18 205 23
    5-methylcytosine and pseudouridine 264 350 182
    (4th set)
    5-methylcytosine and N1-methyl- 9,505 6,927 5,405
    pseudouridine (4th set)
    LPS 1,209 786 636
    mCherry 5 168 164
    R848 709 732 636
    P(I)P(C) 5 186 182
  • TABLE 27
    Chemical Modifications and Cytokine Expression
    IFN-α Expression (pg/ml) TNF-α Expression (pg/ml)
    Chemical Modifications Donor 1 Donor 2 Donor 3 Donor 1 Donor 2 Donor 3
    Pseudouridine 120 77 171 36 81 126
    5-methyluridine 245 135 334 94 100 157
    N1-methylpseudouridine 26 75 138 101 106 134
    2-thiouridine 100 108 154 133 133 141
    4-thiouridine 463 258 659 169 126 254
    5-methoxyuridine 0 64 133 39 74 111
    5-methylcytosine and 88 94 148 64 89 121
    pseudouridine (1st set)
    5-methylcytosine and N1- 0 60 136 54 79 126
    methylpseudouridine (1st
    set)
    2′Fluoroguanosine 107 97 194 91 94 141
    2′Fluorouridine 158 103 178 164 121 156
    5-methylcytosine and 133 92 167 99 111 150
    pseudouridine (2nd set)
    5-methylcytosine and N1- 0 66 140 54 97 149
    methylpseudouridine (2nd
    set)
    5-bromouridine 95 86 181 87 106 157
    5-(2- 0 61 130 40 81 116
    carbomethoxyvinyl)uridine
    5-[3(1-E- 0 58 132 71 90 119
    propenylamino)uridine
    α-thiocytidine 1,138 565 695 300 273 277
    5-methylcytosine and 88 75 150 84 89 130
    pseudouridine (3rd set)
    N1-methyladenosine 322 255 377 256 157 294
    N6-methyladenosine 1,935 1,065 1,492 1,080 630 857
    5-methylcytidine 643 359 529 176 136 193
    N4-acetylcytidine 789 593 431 263 67 207
    5-formylcytidine 180 93 88 136 30 40
    5-methylcytosine and 131 28 18 53 24 29
    pseudouridine (4th set)
    5-methylcytosine and N1- 0 0 0 36 14 13
    methylpseudouridine (4th
    set)
    LPS 0 67 146 7,004 3,974 4,020
    mCherry 100 75 143 67 100 133
    R848 674 619 562 11,179 8,546 9,907
    P(I)P(C) 470 117 362 249 177 197
  • B. In vitro Screening in HeLa Cells
  • The day before transfection, 20,000 HeLa cells (ATCC no. CCL-2; Manassas, Va.) were harvested by treatment with Trypsin-EDTA solution (LifeTechnologies, Grand Island, N.Y.) and seeded in a total volume of 100 ul EMEM medium (supplemented with 10% FCS and 1× Glutamax) per well in a 96-well cell culture plate (Corning, Manassas, Va.). The cells were grown at 37oG in 5% CO2 atmosphere overnight. Next day, 83 ng of Luciferase modified RNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) with the chemical modification described in Table 28, were diluted in 10 ul final volume of OPTI-MEM (LifeTechnologies, Grand Island, N.Y.). Lipofectamine 2000 (LifeTechnologies, Grand Island, N.Y.) was used as transfection reagent and 0.2 ul were diluted in 10 ul final volume of OPTI-MEM. After 5 minutes of incubation at room temperature, both solutions were combined and incubated an additional 15 minute at room temperature. Then the 20 ul combined solution was added to the 100 ul cell culture medium containing the HeLa cells and incubated at room temperature.
  • After 18 to 22 hours of incubation cells expressing luciferase were lysed with 100 ul of Passive Lysis Buffer (Promega, Madison, Wis.) according to manufacturer instructions. Aliquots of the lysates were transferred to white opaque polystyrene 96-well plates (Corning, Manassas, Va.) and combined with 100 ul complete luciferase assay solution (Promega, Madison, Wis.). The lysate volumes were adjusted or diluted until no more than 2 mio relative light units (RLU) per well were detected for the strongest signal producing samples and the RLUs for each chemistry tested are shown in Table 28. The plate reader was a BioTek Synergy H1 (BioTek, Winooski, Vt.). The background signal of the plates without reagent was about 200 relative light units per well.
  • These results demonstrate that many, but not all, chemical modifications can be used to productively produce human G-CSF in HeLa cells. Of note, 100% N1-methylpseudouridine substitution demonstrates the highest level of human G-CSF production.
  • TABLE 28
    Relative Light Units of Luciferase
    Chemical Modification RLU
    N6-methyladenosine (m6a) 534
    5-methylcytidine (m5c) 138,428
    N4-acetylcytidine (ac4c) 235,412
    5-formylcytidine (f5c) 436
    5-methylcytosine/pseudouridine, test A1 48,659
    5-methylcytosine/N1-methylpseudouridine, test A1 190,924
    Pseudouridine 655,632
    1-methylpseudouridine (m1u) 1,517,998
    2-thiouridine (s2u) 3387
    5-methoxyuridine (mo5u) 253,719
    5-methylcytosine/pseudouridine, test B1 317,744
    5-methylcytosine/N1-methylpseudouridine, test B1 265,871
    5-Bromo-uridine 43,276
    5 (2 carbovinyl) uridine 531
    5 (3-1E propenyl Amino) uridine 446
    5-methylcytosine/pseudouridine, test A2 295,824
    5-methylcytosine/N1-methylpseudouridine, test A2 233,921
    5-methyluridine 50,932
    α-Thio-cytidine 26,358
    5-methylcytosine/pseudouridine, test B2 481,477
    5-methylcytosine/N1-methylpseudouridine, test B2 271,989
    5-methylcytosine/pseudouridine, test A3 438,831
    5-methylcytosine/N1-methylpseudouridine, test A3 277,499
    Unmodified Luciferase 234,802
  • C. In Vitro Screening in Rabbit Reticulocyte Lysates
  • Luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) was modified with the chemical modification listed in Table 29 and were diluted in sterile nuclease-free water to a final amount of 250 ng in 10 ul. The diluted luciferase was added to 40 ul of freshly prepared Rabbit Reticulocyte Lysate and the in vitro translation reaction was done in a standard 1.5 mL polypropylene reaction tube (Thermo Fisher Scientific, Waltham, Mass.) at 30° C. in a dry heating block. The translation assay was done with the Rabbit Reticulocyte Lysate (nuclease-treated) kit (Promega, Madison, Wis.) according to the manufacturer's instructions. The reaction buffer was supplemented with a one-to-one blend of provided amino acid stock solutions devoid of either Leucine or Methionine resulting in a reaction mix containing sufficient amounts of both amino acids to allow effective in vitro translation.
  • After 60 minutes of incubation, the reaction was stopped by placing the reaction tubes on ice. Aliquots of the in vitro translation reaction containing luciferase modified RNA were transferred to white opaque polystyrene 96-well plates (Corning, Manassas, Va.) and combined with 100 ul complete luciferase assay solution (Promega, Madison, Wis.). The volumes of the in vitro translation reactions were adjusted or diluted until no more than 2 mio relative light units (RLUs) per well were detected for the strongest signal producing samples and the RLUs for each chemistry tested are shown in Table 29. The plate reader was a BioTek Synergy H1 (BioTek, Winooski, Vt.). The background signal of the plates without reagent was about 200 relative light units per well.
  • These cell-free translation results very nicely correlate with the protein production results in HeLa, with the same modifications generally working or not working in both systems. One notable exception is 5-formylcytidine modified luciferase mRNA which worked in the cell-free translation system, but not in the HeLa cell-based transfection system. A similar difference between the two assays was also seen with 5-formylcytidine modified G-CSF mRNA.
  • TABLE 29
    Relative Light Units of Luciferase
    Chemical Modification RLU
    N6-methyladenosine (m6a) 398
    5-methylcytidine (m5c) 152,989
    N4-acetylcytidine (ac4c) 60,879
    5-formylcytidine (f5c) 55,208
    5-methylcytosine/pseudouridine, test A1 349,398
    5-methylcytosine/N1-methylpseudouridine, test A1 205,465
    Pseudouridine 587,795
    1-methylpseudouridine (m1u) 589,758
    2-thiouridine (s2u) 708
    5-methoxyuridine (mo5u) 288,647
    5-methylcytosine/pseudouridine, test B1 454,662
    5-methylcytosine/N1-methylpseudouridine, test B1 223,732
    5-Bromo-uridine 221,879
    5 (2 carbovinyl) uridine 225
    5 (3-1E propenyl Amino) uridine 211
    5-methylcytosine/pseudouridine, test A2 558,779
    5-methylcytosine/N1-methylpseudouridine, test A2 333,082
    5-methyluridine 214,680
    α-Thio-cytidine 123,878
    5-methylcytosine/pseudouridine, test B2 487,805
    5-methylcytosine/N1-methylpseudouridine, test B2 154,096
    5-methylcytosine/pseudouridine, test A3 413,535
    5-methylcytosine/N1-methylpseudouridine, test A3 292,954
    Unmodified Luciferase 225,986
  • Example 79 Chemical Modification: In Vivo Studies A. In Vivo Screening of G-CSF Modified mRNA
  • Balb-C mice (n=4) are intramuscularly injected in each leg with modified G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1), fully modified with the chemical modifications outlined in Table 30, is formulated in 1×PBS. A control of luciferase modified mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1; fully modified with pseudouridine and 5-methylcytosine) and a control of PBS are also tested. After 8 hours serum is collected to determine G-CSF protein levels cytokine levels by ELISA.
  • TABLE 30
    G-CSF
    mRNA Chemical Modifications
    G-CSF Pseudouridine
    G-CSF 5-methyluridine
    G-CSF 2-thiouridine
    G-CSF 4-thiouridine
    G-CSF 5-methoxyuridine
    G-CSF 2′-fluorouridine
    G-CSF 5-bromouridine
    G-CSF 5-[3(1-E-propenylamino)uridine)
    G-CSF alpha-thio-cytidine
    G-CSF 5-methylcytidine
    G-CSF N4-acetylcytidine
    G-CSF Pseudouridine and 5-methylcytosine
    G-CSF N1-methylpseudouridine and 5-methylcytosine
    Luciferase Pseudouridine and 5-methylcytosine
    PBS None
  • B. In Vivo Screening of Luciferase Modified mRNA
  • Balb-C mice (n=4) were subcutaneously injected with 200 ul containing 42 to 103 ug of modified luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1), fully modified with the chemical modifications outlined in Table 31, was formulated in 1×PBS. A control of PBS was also tested. The dosages of the modified luciferase mRNA is also outlined in Table 31. 8 hours after dosing the mice were imaged to determine luciferase expression. Twenty minutes prior to imaging, mice were injected intraperitoneally with a D-luciferin solution at 150 mg/kg. Animals were then anesthetized and images were acquired with an IVIS Lumina II imaging system (Perkin Elmer). Bioluminescence was measured as total flux (photons/second) of the entire mouse.
  • As demonstrated in Table 31, all luciferase mRNA modified chemistries demonstrated in vivo activity, with the exception of 2′-fluorouridine. In addition 1-methylpseudouridine modified mRNA demonstrated very high expression of luciferase (5-fold greater expression than pseudouridine containing mRNA).
  • TABLE 31
    Luciferase Screening
    Dose Dose Luciferase
    Chemical (ug) of volume expression
    mRNA Modifications mRNA (ml) (photon/second)
    Luciferase 5-methylcytidine 83 0.72 1.94E+07
    Luciferase N4-acetylcytidine 76 0.72 1.11E07 
    Luciferase Pseudouridine 95 1.20 1.36E+07
    Luciferase 1-methylpseudouridine 103 0.72 7.40E+07
    Luciferase 5-methoxyuridine 95 1.22 3.32+07 
    Luciferase 5-methyluridine 94 0.86 7.42E+06
    Luciferase 5-bromouridine 89 1.49 3.75E+07
    Luciferase 2′-fluoroguanosine 42 0.72 5.88E+05
    Luciferase 2′-fluorocytidine 47 0.72 4.21E+05
    Luciferase 2′-flurorouridine 59 0.72 3.47E+05
    PBS None 0.72 3.16E+05
  • Example 80 In Vivo Screening of Combination Luciferase Modified mRNA
  • Balb-C mice (n=4) were subcutaneously injected with 200 ul of 100 ug of modified luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1), fully modified with the chemical modifications outlined in Table 32, was formulated in 1×PBS. A control of PBS was also tested. The dosages of the modified luciferase mRNA is also outlined in Table 29. 8 hours after dosing the mice were imaged to determine luciferase expression. Twenty minutes prior to imaging, mice were injected intraperitoneally with a D-luciferin solution at 150 mg/kg. Animals were then anesthetized and images were acquired with an IVIS Lumina II imaging system (Perkin Elmer). Bioluminescence was measured as total flux (photons/second) of the entire mouse.
  • As demonstrated in Table 32, all luciferase mRNA modified chemistries (in combination) demonstrated in vivo activity. In addition the presence of N1-methylpseudouridine in the modified mRNA (with N4-acetylcytidine or 5 methylcytidine) demonstrated higher expression than when the same combinations where tested using with pseudouridine. Taken together, these data demonstrate that N1-methylpseudouridine containing luciferase mRNA results in improved protein expression in vivo whether used alone (Table 31) or when used in combination with other modified nulceotides (Table 32).
  • TABLE 32
    Luciferase Screening Combinations
    Luciferase
    expression
    mRNA Chemical Modifications (photon/second)
    Luciferase N4-acetylcytidine/pseudouridine 4.18E+06
    Luciferase N4-acetylcytidine/N1-methyl- 2.88E+07
    pseudouridine
    Luciferase 5-methylcytidine/5-methoxyuridine 3.48E+07
    Luciferase 5-methylcytidine/5-methyluridine 1.44E+07
    Luciferase 5-methylcytidine/where 50% of the 2.39E+06
    uridine is replaced with 2-thiouridine
    Luciferase 5-methylcytidine/pseudouridine 2.36E+07
    Luciferase 5-methylcytidine/N1-methyl- 4.15E+07
    pseudouridine
    PBS None 3.59E+05
  • Example 81 Stability of Modified RNA A. Storage of Modified RNA
  • Stability experiments were conducted to obtain a better understanding of storage conditions to retain the integrity of modified RNA. Unmodified G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1), G-CSF mRNA fully modified with 5-methylcytosine and pseudouridine and G-CSF mRNA fully modified with 5-methylcytosine and pseudouridine lipoplexed with 0.75% by volume of RNAIMAX™ was stored at 50° C., 40° C., 37° C., 25° C., 4° C. or −20° C. After the mRNA had been stored for 0 hours, 2 hours, 6 hours, 24 hours, 48 hours, 5 days and 14 days, the mRNA was analyzed by gel electrophoresis using a Bio-Rad EXPERION™ system. The modified, unmodified and lipoplexed G-CSF mRNA was also stored in RNASTABLE® (Biomatrica, Inc. San Diego, Calif.) at 40° C. or water at −80° C. or 40° C. for 35 days before being analyzed by gel electrophoresis.
  • All mRNA samples without stabilizer were stable after 2 weeks after storage at 4° C. or −20° C. Modified G-CSF mRNA, with or without lipoplex, was more stable than unmodified G-CSF when stored at 25° C. (stable out to 5 days versus 48 hours), 37° C. (stable out to 24 hours versus 6 hours) and 50° C. (stable out to 6 hours versus 2 hours). Unmodified G-CSF mRNA, modified G-CSF mRNA with or without lipoplex tolerated 12 freeze/thaw cycles.
  • mRNA samples stored in stabilizer at 40° C. showed similar stability to the mRNA samples stored in water at −80° C. after 35 days whereas the mRNA stored in water at 40° C. showed heavy degradation after 18 days.
  • Example 82 Cell Viability in BJ Fibroblasts
  • Human primary foreskin fibroblasts (BJ fibroblasts) were obtained from American Type Culture Collection (ATCC) (catalog #CRL-2522) and grown in Eagle's Minimum Essential Medium (ATCC, cat#30-2003) supplemented with 10% fetal bovine serum at 37° C., under 5% CO2. BJ fibroblasts were seeded on a 24-well plate at a density of 130,000 cells per well in 0.5 ml of culture medium. 250 ng of modified G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) fully modified with 5-methylcytosine and pseudouridine (Gen1) or fully modified with 5-methylcytosine and N1-methylpseudouridine (Gen2) was transfected using Lipofectamine 2000 (Invitrogen, cat#11668-019), following manufacturer's protocol. Control samples of Lipofectamine 2000 (LF2000) and unmodified G-CSF mRNA were also transfected. The modified mRNA or control samples were transfected daily for 4 days. The viability of the cells after transfection was evaluated 6 hours and 24 hours after the first transfection (Ti, 6 hours or T1, 24 hours), and 24 hours after the second (T2, 24 hours) and fourth transfection (T4, 24 hours).
  • To determine cell viability, the culture medium was completely removed and the cells were washed once with 600 ul of sterile PBS without Ca2+/Mg2+ (Gibco/Life Technologies, Manassas, Va.) in order to rinse-off loosely attached cells. PBS was removed and discarded. The cleaned fibroblasts in each well were treated with 220 ul of a diluted CELL TITER GLO® (Promega, catalog #G7570) stock solution (the CELL TITER GLO® stock solution was further diluted 1:1 with an equal amount of sterile PBS). A sterile pipet tip was used to scratch the cells off the plate and accelerate the lysis process.
  • For two time intervals, T1, 24 hours and T2, 24 hours, an alternative protocol was applied. Cells were washed with PBS, as described above, and subsequently trypsinized with Trypsin/EDTA solution (Gibco/Life Technologies, Manassas, Va.). Cells were detached and collected in 500 ul of medium containing trypsin inhibitor. Cells were harvested by centrifugation at 1200 rcf for 5 minutes. The cell pellet was resuspended in 500 ul PBS. This cell suspension was kept on ice, and 100 ul of this was combined with 100 ul of undiluted Cell Titer Glo solution.
  • All of the CELL TITER GLO® lysates were then incubated at room temperature for 20 minutes. 20 ul of the lysates were transferred to a white opaque polystyrene 96-well plate (Corning, Manassas, Va.) and combined with 100 ul diluted CELL TITER GLO® solution. The plate reader used was from BioTek Synergy H1 (BioTek, Winooski, Vt.) and the absolute values were normalized to signal of the untreated BJ Fibroblasts to 100% cell vitality. The percent viability for the BJ fibroblasts are shown in Table 33.
  • Importantly, all of these experiments are conducted in the absence of any interferon or other cytokine inhibitors and thus represent an accurate measure of the cytotoxicity of the different mRNA.
  • These results demonstrate that repeated transfection of BJ fibroblasts with unmodified mRNA results in loss of cell viability that is apparent as early as 24 hrs after the first transfection (Ti, 24 hours) and continues to be apparent and more pronounced at subsequent time points.
  • There is also a loss of viability with repeated transfection of 5-methylcytidine and pseudouridine modified mRNA that is apparent 24 hours after the fourth daily transfection (T4, 24 hours). No loss of cell viability over the course of this experiment is seen using 5-methylcytidine and N1-methylpseudouridine modified mRNA. These results demonstrate that 5-methylcytidine and N1-methylpseudouridine containing mRNA have improved cell viability when analyzed under repeated transfection. The ability to repeatedly administer modified mRNA is important in most therapeutic applications, and as such the ability to do so without cytotoxicity is also important. While not wishing to be bound by theory, it is believed that response genes following a single transfection may lead to a decrease in protein production, cytokine induction, and eventually loss of cell viability. These results are consistent with N1-methylpseudouridine-containing mRNA showing an improved profile in this respect relative to both unmodified mRNA and pseudouridine-modified mRNA.
  • TABLE 33
    Percent Viability
    T1, 6 hours T1, 24 hours T2, 24 hours T4, 24 hours
    Gen 1 G-CSF 81 108 91 65
    Gen 2 G-CSF 99 102 128 87
    Unmodified G-CSF 101 72 74 42
    LF2000 99 80 114 106
    Untreated 100 100 100 100
  • Example 83 Innate Immune Response in BJ Fibroblasts
  • Human primary foreskin fibroblasts (BJ fibroblasts) are obtained from American Type Culture Collection (ATCC) (catalog #CRL-2522) and grown in Eagle's Minimum Essential Medium (ATCC, cat#30-2003) supplemented with 10% fetal bovine serum at 37° C., under 5% CO2. BJ fibroblasts are seeded on a 24-well plate at a density of 130,000 cells per well in 0.5 ml of culture medium. 250 ng of modified G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) fully modified with 5-methylcytosine and pseudouridine (Gen1) or fully modified with 5-methylcytosine and N1-methylpseudouridine (Gen2) is transfected using Lipofectamine 2000 (Invitrogen, cat#11668-019), following manufacturer's protocol. Control samples of Lipofectamine 2000 and unmodified G-CSF mRNA (natural G-CSF) are also transfected. The cells are transfected for five consecutive days. The transfection complexes are removed four hours after each round of transfection.
  • The culture supernatant is assayed for secreted GCSF (R&D Systems, catalog #DCS50), tumor necrosis factor-alpha (TNF-alpha) and interferon alpha (IFN-alpha) by ELISA every day after transfection following manufacturer's protocols. The cells are analyzed for viability using CELL TITER GLO® (Promega, catalog #G7570) 6 hrs and 18 hrs after the first round of transfection and every alternate day following that. At the same time from the harvested cells, total RNA is isolated and treated with DNASE® using the RNAEASY micro kit (catalog #74004) following the manufacturer's protocol. 100 ng of total RNA is used for cDNA synthesis using the High Capacity cDNA Reverse Transcription kit (Applied Biosystems, cat #4368814) following the manufacturer's protocol. The cDNA is then analyzed for the expression of innate immune response genes by quantitative real time PCR using SybrGreen in a Biorad CFX 384 instrument following the manufacturer's protocol.
  • Example 84 In Vitro Transcription with Wild-Type T7 Polymerase
  • Luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) and G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) were fully modified with different chemistries and chemistry combinations listed in Tables 34-37 using wild-type T7 polymerase as previously described.
  • The yield of the translation reactions was determined by spectrophometric measurement (OD260) and the yield for Luciferase is shown in Table 34 and G-CSF is shown in Table 36.
  • The luciferase and G-CSF modified mRNA were also subjected to an enzymatic capping reaction and each modified mRNA capping reaction was evaluated for yield by spectrophometic measurement (OD260) and correct size assessed using bioanalyzer. The yield from the capping reaction for luciferase is shown in Table 35 and G-CSF is shown in Table 37.
  • TABLE 34
    In vitro transcription chemistry for Luciferase
    Yield
    Chemical Modification (mg)
    N6-methyladenosine 0.99
    5-methylcytidine 1.29
    N4-acetylcytidine 1.0
    5-formylcytidine 0.55
    Pseudouridine 2.0
    N1-methylpseudouridine 1.43
    2-thiouridine 1.56
    5-methoxyuridine 2.35
    5-methyluridine 1.01
    α-Thio-cytidine 0.83
    5-Br-uridine (5Bru) 1.96
    5 (2 carbomethoxyvinyl) uridine 0.89
    5 (3-1E propenyl Amino) uridine 2.01
    N4-acetylcytidine/pseudouridine 1.34
    N4-acetylcytidine/N1-methylpseudouridine 1.26
    5-methylcytidine/5-methoxyuridine 1.38
    5-methylcytidine/5-bromouridine 0.12
    5-methylcytidine/5-methyluridine 2.97
    5-methylcytidine/half of the uridines are modified 1.59
    with 2-thiouridine
    5-methylcytidine/2-thiouridine 0.90
    5-methylcytidine/pseudouridine 1.83
    5-methylcytidine/N1 methyl pseudouridine 1.33
  • TABLE 35
    Capping chemistry and yield for Luciferase modified mRNA
    Yield
    Chemical Modification (mg)
    5-methylcytidine 1.02
    N4-acetylcytidine 0.93
    5-formylcytidine 0.55
    Pseudouridine 2.07
    N1-methylpseudouridine 1.27
    2-thiouridine 1.44
    5-methoxyuridine 2
    5-methyluridine 0.8
    α-Thio-cytidine 0.74
    5-Br-uridine (5Bru) 1.29
    5 (2 carbomethoxyvinyl) uridine 0.54
    5 (3-1E propenyl Amino) uridine 1.39
    N4-acetylcytidine/pseudouridine 0.99
    N4-acetylcytidine/N1-methylpseudouridine 1.08
    5-methylcytidine/5-methoxyuridine 1.13
    5-methylcytidine/5-methyluridine 1.08
    5-methylcytidine/half of the uridines are modified 1.2
    with 2-thiouridine
    5-methylcytidine/2-thiouridine 1.27
    5-methylcytidine/pseudouridine 1.19
    5-methylcytidine/N1 methyl pseudouridine 1.04
  • TABLE 36
    In vitro transcription chemistry and yield for G-CSF modified mRNA
    Yield
    Chemical Modification (mg)
    N6-methyladenosine 1.57
    5-methylcytidine 2.05
    N4-acetylcytidine 3.13
    5-formylcytidine 1.41
    Pseudouridine 4.1
    N1-methylpseudouridine 3.24
    2-thiouridine 3.46
    5-methoxyuridine 2.57
    5-methyluridine 4.27
    4-thiouridine 1.45
    2′-F-uridine 0.96
    α-Thio-cytidine 2.29
    2′-F-guanosine 0.6
    N-1-methyladenosine 0.63
    5-Br-uridine (5Bru) 1.08
    5 (2 carbomethoxyvinyl) uridine 1.8
    5 (3-1E propenyl Amino) uridine 2.09
    N4-acetylcytidine/pseudouridine 1.72
    N4-acetylcytidine/N1-methylpseudouridine 1.37
    5-methylcytidine/5-methoxyuridine 1.85
    5-methylcytidine/5-methyluridine 1.56
    5-methylcytidine/half of the uridines are modified 1.84
    with 2-thiouridine
    5-methylcytidine/2-thiouridine 2.53
    5-methylcytidine/pseudouridine 0.63
    N4-acetylcytidine/2-thiouridine 1.3
    N4-acetylcytidine/5-bromouridine 1.37
    5-methylcytidine/N1 methyl pseudouridine 1.25
    N4-acetylcytidine/pseudouridine 2.24
  • TABLE 37
    Capping chemistry and yield for G-CSF modified mRNA
    Chemical Modification Yield (mg)
    N6-methyladenosine 1.04
    5-methylcytidine 1.08
    N4-acetylcytidine 2.73
    5-formylcytidine 0.95
    Pseudouridine 3.88
    N1-methylpseudouridine 2.58
    2-thiouridine 2.57
    5-methoxyuridine 2.05
    5-methyluridine 3.56
    4-thiouridine 0.91
    2′-F-uridine 0.54
    α-Thio-cytidine 1.79
    2′-F-guanosine 0.14
    5-Br-uridine (5Bru) 0.79
    5 (2 carbomethoxyvinyl) uridine 1.28
    5 (3-1E propenyl Amino) uridine 1.78
    N4-acetylcytidine/pseudouridine 0.29
    N4-acetylcytidine/N1-methylpseudouridine 0.33
    5-methylcytidine/5-methoxyuridine 0.91
    5-methylcytidine/5-methyluridine 0.61
    5-methylcytidine/half of the uridines are modified 1.24
    with 2-thiouridine
    5-methylcytidine/pseudouridine 1.08
    N4-acetylcytidine/2-thiouridine 1.34
    N4-acetylcytidine/5-bromouridine 1.22
    5-methylcytidine/N1 methyl pseudouridine 1.56
  • Example 85 In Vitro Transcription with Mutant T7 Polymerase
  • Luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) and G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) were fully modified with different chemistries and chemistry combinations listed in Tables 38-41 using a mutant T7 polymerase (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.).
  • The yield of the translation reactions was determined by spectrophometric measurement (OD260) and the yield for Luciferase is shown in Table 38 and G-CSF is shown in Table 40.
  • The luciferase and G-CSF modified mRNA were also subjected to an enzymatic capping reaction and each modified mRNA capping reaction was evaluated for yield by spectrophometic measurement (OD260) and correct size assessed using bioanalyzer. The yield from the capping reaction for luciferase is shown in Table 39 and G-CSF is shown in Table 41.
  • TABLE 38
    In vitro transcription chemistry and yield for Luciferase modified mRNA
    Chemical Modification Yield (ug)
    2′Fluorocytosine 71.4
    2′Fluorouridine 57.5
    5-methylcytosine/pseudouridine, test A 26.4
    5-methylcytosine/N1-methylpseudouridine, test A 73.3
    N1-acetylcytidine/2-fluorouridine 202.2 
    5-methylcytidine/2-fluorouridine 131.9 
    2-fluorocytosine/pseudouridine 119.3 
    2-fluorocytosine/N1-methylpseudouridine 107.0 
    2-fluorocytosine/2-thiouridine 34.7
    2-fluorocytosine/5-bromouridine 81.0
    2-fluorocytosine/2-fluorouridine 80.4
    2-fluoroguanine/5-methylcytosine 61.2
    2-fluoroguanine/5-methylcytosine/pseudouridine 65.0
    2-fluoroguanine/5-methylcytidine/N1-methylpseudouridine 41.2
    2-fluoroguanine/pseudouridine 79.1
    2-fluoroguanine/N1-methylpseudouridine 74.6
    5-methylcytidine/pseudouridine, test B 91.8
    5-methylcytidine/N1-methylpseudouridine, test B 72.4
    2′fluoroadenosine 190.98 
  • TABLE 39
    Capping chemistry and yield for Luciferase modified mRNA
    Chemical Modification Yield (ug)
    2′Fluorocytosine 19.2
    2′Fluorouridine 16.7
    5-methylcytosine/pseudouridine, test A 7.0
    5-methylcytosine/N1-methylpseudouridine, test A 21.5
    N1-acetylcytidine/2-fluorouridine 47.5
    5-methylcytidine/2-fluorouridine 53.2
    2-fluorocytosine/pseudouridine 58.4
    2- fluorocytosine/N1-methylpseudouridine 26.2
    2-fluorocytosine/2-thiouridine 12.9
    2-fluorocytosine/5-bromouridine 26.5
    2-fluorocytosine/2-fluorouridine 35.7
    2-fluoroguanine/5-methylcytosine 24.7
    2-fluoroguanine/5-methylcytosine/pseudouridine 32.3
    2-fluoroguanine/5-methylcytidine/N1-methylpseudouridine 31.3
    2-fluoroguanine/pseudouridine 20.9
    2- fluoroguanine/N1-methylpseudouridine 29.8
    5-methylcytidine/pseudouridine, test B 58.2
    5-methylcytidine/N1-methylpseudouridine, test B 44.4
  • TABLE 40
    In vitro transcription chemistry and yield for G-CSF modified mRNA
    Chemical Modification Yield (ug)
    2′Fluorocytosine 56.5
    2′Fluorouridine 79.4
    5-methylcytosine/pseudouridine, test A 21.2
    5-methylcytosine/N1-methylpseudouridine, test A 77.1
    N1-acetylcytidine/2-fluorouridine 168.6
    5-methylcytidine/2-fluorouridine 134.7
    2-fluorocytosine/pseudouridine 97.8
    2-fluorocytosine/N1-methylpseudouridine 103.1
    2-fluorocytosine/2-thiouridine 58.8
    2-fluorocytosine/5-bromouridine 88.8
    2-fluorocytosine/2-fluorouridine 93.9
    2-fluoroguanine/5-methylcytosine 97.3
    2-fluoroguanine/5-methylcytosine/pseudouridine 96.0
    2-fluoroguanine/5-methylcytidine/N1-methylpseudouridine 82.0
    2-fluoroguanine/pseudouridine 68.0
    2-fluoroguanine/N1-methylpseudouridine 59.3
    5-methylcytidine/pseudouridine, test B 58.7
    5-methylcytidine/N1-methylpseudouridine, test B 78.0
  • TABLE 41
    Capping chemistry and yield for G-CSF modified mRNA
    Chemical Modification Yield (ug)
    2′Fluorocytosine 16.9
    2′Fluorouridine 17.0
    5-methylcytosine/pseudouridine, test A 10.6
    5-methylcytosine/N1-methylpseudouridine, test A 22.7
    N1-acetylcytidine/2-fluorouridine 19.9
    5-methylcytidine/2-fluorouridine 21.3
    2-fluorocytosine/pseudouridine 65.2
    2-fluorocytosine/N1-methylpseudouridine 58.9
    2-fluorocytosine/2-thiouridine 41.2
    2-fluorocytosine/5-bromouridine 35.8
    2-fluorocytosine/2-fluorouridine 36.7
    2-fluoroguanine/5-methylcytosine 36.6
    2-fluoroguanine/5-methylcytosine/pseudouridine 37.3
    2-fluoroguanine/5-methylcytidine/N1-methylpseudouridine 30.7
    2-fluoroguanine/pseudouridine 29.0
    2-fluoroguanine/N1-methylpseudouridine 22.7
    5-methylcytidine/pseudouridine, test B 60.4
    5-methylcytidine/N1-methylpseudouridine, test B 33.0
  • Example 86 2′O-methyl and 2′Fluoro Compounds
  • Luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) were produced as fully modified versions with the chemistries in Table 42 and transcribed using mutant T7 polymerase (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.). 2′ fluoro-containing mRNA were made using Durascribe T7, however, 2′Omethyl-containing mRNA could not be transcribed using Durascribe T7.
  • Incorporation of 2′Omethyl modified mRNA might possibly be accomplished using other mutant T7 polymerases (Nat. Biotechnol. (2004) 22:1155-1160; Nucleic Acids Res. (2002) 30:e138). Alternatively, 2′OMe modifications could be introduced post-transcriptionally using enzymatic means.
  • Introduction of modifications on the 2′ group of the sugar has many potential advantages. 2′OMe substitutions, like 2′ fluoro substitutions are known to protect against nucleases and also have been shown to abolish innate immune recognition when incorporated into other nucleic acids such as siRNA and anti-sense (incorporated in its entirety, Crooke, ed. Antisense Drug Technology, 2nd edition; Boca Raton: CRC press).
  • The 2′Fluoro-modified mRNA were then transfected into HeLa cells to assess protein production in a cell context and the same mRNA were also assessed in a cell-free rabbit reticulocyte system. A control of unmodified luciferase (natural luciferase) was used for both transcription experiments, a control of untreated and mock transfected (Lipofectamine 2000 alone) were also analyzed for the HeLa transfection and a control of no RNA was analyzed for the rabbit reticulysates.
  • For the HeLa transfection experiments, the day before transfection, 20,000 HeLa cells (ATCC no. CCL-2; Manassas, Va.) were harvested by treatment with Trypsin-EDTA solution (LifeTechnologies, Grand Island, N.Y.) and seeded in a total volume of 100 ul EMEM medium (supplemented with 10% FCS and 1× Glutamax) per well in a 96-well cell culture plate (Corning, Manassas, Va.). The cells were grown at 37oG in 5% CO2 atmosphere overnight. Next day, 83 ng of the 2′fluoro-containing luciferase modified RNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) with the chemical modification described in Table 42, were diluted in 10 ul final volume of OPTI-MEM (LifeTechnologies, Grand Island, N.Y.). Lipofectamine 2000 (LifeTechnologies, Grand Island, N.Y.) was used as transfection reagent and 0.2 ul were diluted in 10 ul final volume of OPTI-MEM. After minutes of incubation at room temperature, both solutions were combined and incubated an additional 15 minute at room temperature. Then the 20 ul combined solution was added to the 100 ul cell culture medium containing the HeLa cells and incubated at room temperature. After 18 to 22 hours of incubation cells expressing luciferase were lysed with 100 ul of Passive Lysis Buffer (Promega, Madison, Wis.) according to manufacturer instructions. Aliquots of the lysates were transferred to white opaque polystyrene 96-well plates (Corning, Manassas, Va.) and combined with 100 ul complete luciferase assay solution (Promega, Madison, Wis.). The lysate volumes were adjusted or diluted until no more than 2 mio relative light units (RLU) per well were detected for the strongest signal producing samples and the RLUs for each chemistry tested are shown in Table 42. The plate reader was a BioTek Synergy H1 (BioTek, Winooski, Vt.). The background signal of the plates without reagent was about 200 relative light units per well.
  • For the rabbit reticulocyte lysate assay, 2′-fluoro-containing luciferase mRNA were diluted in sterile nuclease-free water to a final amount of 250 ng in 10 ul and added to 40 ul of freshly prepared Rabbit Reticulocyte Lysate and the in vitro translation reaction was done in a standard 1.5 mL polypropylene reaction tube (Thermo Fisher Scientific, Waltham, Mass.) at 30° C. in a dry heating block. The translation assay was done with the Rabbit Reticulocyte Lysate (nuclease-treated) kit (Promega, Madison, Wis.) according to the manufacturer's instructions. The reaction buffer was supplemented with a one-to-one blend of provided amino acid stock solutions devoid of either Leucine or Methionine resulting in a reaction mix containing sufficient amounts of both amino acids to allow effective in vitro translation. After 60 minutes of incubation, the reaction was stopped by placing the reaction tubes on ice.
  • Aliquots of the in vitro translation reaction containing luciferase modified RNA were transferred to white opaque polystyrene 96-well plates (Corning, Manassas, Va.) and combined with 100 ul complete luciferase assay solution (Promega, Madison, Wis.). The volumes of the in vitro translation reactions were adjusted or diluted until no more than 2 mio relative light units (RLUs) per well were detected for the strongest signal producing samples and the RLUs for each chemistry tested are shown in Table 43. The plate reader was a BioTek Synergy H1 (BioTek, Winooski, Vt.). The background signal of the plates without reagent was about 160 relative light units per well.
  • As can be seen in Table 42 and 43, multiple 2′Fluoro-containing compounds are active in vitro and produce luciferase protein.
  • TABLE 42
    HeLa Cells
    Chemical Concentration
    Modification (ug/ml) Volume (ul) Yield (ug) RLU
    2′Fluoroadenosine 381.96 500 190.98 388.5
    2′Fluorocytosine 654.56 500 327.28 2420
    2′Fluoroguanine  541,795 500 270.90 11,705.5
    2′Flurorouridine 944.005 500 472.00 6767.5
    Natural luciferase N/A N/A N/A 133,853.5
    Mock N/A N/A N/A 340
    Untreated N/A N/A N/A 238
  • TABLE 43
    Rabbit Reticulysates
    Chemical Modification RLU
    2′Fluoroadenosine 162
    2′Fluorocytosine 208
    2′Fluoroguanine 371,509
    2′Flurorouridine 258
    Natural luciferase 2,159,968
    No RNA 156
  • Example 87 Luciferase in HeLa Cells Using a Combination of Modifications
  • To evaluate using of 2′fluoro-modified mRNA in combination with other modification a series of mRNA were transcribed using either wild-type T7 polymerase (non-fluoro-containing compounds) or using mutant T7 polymerases (fluyoro-containing compounds) as described in Example 86. All modified mRNA were tested by in vitro transfection in HeLa cells.
  • The day before transfection, 20,000 HeLa cells (ATCC no. CCL-2; Manassas, Va.) were harvested by treatment with Trypsin-EDTA solution (LifeTechnologies, Grand Island, N.Y.) and seeded in a total volume of 100 ul EMEM medium (supplemented with 10% FCS and 1× Glutamax) per well in a 96-well cell culture plate (Corning, Manassas, Va.). The cells were grown at 37oG in 5% CO2 atmosphere overnight. Next day, 83 ng of Luciferase modified RNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) with the chemical modification described in Table 44, were diluted in 10 ul final volume of OPTI-MEM (LifeTechnologies, Grand Island, N.Y.). Lipofectamine 2000 (LifeTechnologies, Grand Island, N.Y.) was used as transfection reagent and 0.2 ul were diluted in 10 ul final volume of OPTI-MEM. After 5 minutes of incubation at room temperature, both solutions were combined and incubated an additional 15 minute at room temperature. Then the 20 ul combined solution was added to the 100 ul cell culture medium containing the HeLa cells and incubated at room temperature.
  • After 18 to 22 hours of incubation cells expressing luciferase were lysed with 100 ul of Passive Lysis Buffer (Promega, Madison, Wis.) according to manufacturer instructions. Aliquots of the lysates were transferred to white opaque polystyrene 96-well plates (Corning, Manassas, Va.) and combined with 100 ul complete luciferase assay solution (Promega, Madison, Wis.). The lysate volumes were adjusted or diluted until no more than 2 mio relative light units (RLU) per well were detected for the strongest signal producing samples and the RLUs for each chemistry tested are shown in Table 44. The plate reader was a BioTek Synergy H1 (BioTek, Winooski, Vt.). The background signal of the plates without reagent was about 200 relative light units per well.
  • As evidenced in Table 44, most combinations of modifications resulted in mRNA which produced functional luciferase protein, including all the non-fluoro containing compounds and many of the combinations containing 2′fluoro modifications.
  • TABLE 44
    Luciferase
    Chemical Modification RLU
    N4-acetylcytidine/pseudouridine 113,796
    N4-acetylcytidine/N1-methylpseudouridine 316,326
    5-methylcytidine/5-methoxyuridine 24,948
    5-methylcytidine/5-methyluridine 43,675
    5-methylcytidine/half of the uridines modified with 41,601
    50% 2-thiouridine
    5-methylcytidine/2-thiouridine 1,102
    5-methylcytidine/pseudouridine 51,035
    5-methylcytidine/N1 methyl pseudouridine 152,151
    N4-acetylcytidine/2′Fluorouridine triphosphate 288
    5-methylcytidine/2′Fluorouridine triphosphate 269
    2′Fluorocytosine triphosphate/pseudouridine 260
    2′Fluorocytosine triphosphate/N1-methylpseudouridine 412
    2′Fluorocytosine triphosphate/2-thiouridine 427
    2′Fluorocytosine triphosphate/5-bromouridine 253
    2′Fluorocytosine triphosphate/2′Fluorouridine triphosphate 184
    2′Fluoroguanine triphosphate/5-methylcytidine 321
    2′Fluoroguanine triphosphate/5-methylcytidine/Pseudouridine 207
    2′Fluoroguanine/5-methylcytidine/N1 methylpsuedouridine 235
    2′Fluoroguanine/pseudouridine 218
    2′Fluoroguanine/N1-methylpsuedouridine 247
    5-methylcytidine/pseudouridine, test A 13,833
    5-methylcytidine/N-methylpseudouridine, test A 598
    2′Fluorocytosine triphosphate 201
    2′Fluorouridine triphosphate 305
    5-methylcytidine/pseudouridine, test B 115,401
    5-methylcytidine/N-methylpseudouridine, test B 21,034
    Natural luciferase 30,801
    Untreated 344
    Mock 262
  • Example 88 G-CSF In Vitro Transcription
  • To assess the activity of all our different chemical modifications in the context of a second open reading frame, we replicated experiments previously conducted using luciferase mRNA, with human G-CSF mRNA. G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) were fully modified with the chemistries in Tables 45 and 46 using wild-type T7 polymerase (for all non-fluoro-containing compounds) or mutant T7 polymerase (for all fluoro-containing compounds). The mutant T7 polymerase was obtained commercially (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.).
  • The modified RNA in Tables 45 and 46 were transfected in vitro in HeLa cells or added to rabbit reticulysates (250 ng of modified mRNA) as indicated. A control of untreated, mock transfected (transfection reagent alone), G-CSF fully modified with 5-methylcytosine and N1-methylpseudouridine or luciferase control (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) fully modified with 5-methylcytosine and N1-methylpseudouridine were also analyzed. The expression of G-CSF protein was determined by ELISA and the values are shown in Tables 45 and 46. In Table 45, “NT” means not tested.
  • As shown in Table 45, many, but not all, chemical modifications resulted in human G-CSF protein production. These results from cell-based and cell-free translation systems correlate very nicely with the same modifications generally working or not working in both systems. One notable exception is 5-formylcytidine modified G-CSF mRNA which worked in the cell-free translation system, but not in the HeLa cell-based transfection system. A similar difference between the two assays was also seen with 5-formylcytidine modified luciferase mRNA.
  • As demonstrated in Table 46, many, but not all, G-CSF mRNA modified chemistries (when used in combination) demonstrated in vivo activity. In addition the presence of N1-methylpseudouridine in the modified mRNA (with N4-acetylcytidine or 5 methylcytidine) demonstrated higher expression than when the same combinations where tested using with pseudouridine. Taken together, these data demonstrate that N1-methylpseudouridine containing G-CSF mRNA results in improved protein expression in vitro.
  • TABLE 45
    G-CSF Expression
    G-CSF
    protein
    G-CSF (pg/ml)
    protein Rabbit
    (pg/ml) reticulysates
    Chemical Modification HeLa cells cells
    Pseudouridine 1,150,909 147,875
    5-methyluridine 347,045 147,250
    2-thiouridine 417,273 18,375
    N1-methylpseudouridine NT 230,000
    4-thiouridine 107,273 52,375
    5-methoxyuridine 1,715,909 201,750
    5-methylcytosine/pseudouridine, Test A 609,545 119,750
    5-methylcytosine/N1-methylpseudouridine, 1,534,318 110,500
    Test A
    2′-Fluoro-guanosine 11,818 0
    2′-Fluoro-uridine 60,455 0
    5-methylcytosine/pseudouridine, Test B 358,182 57,875
    5-methylcytosine/N1-methylpseudouridine, 1,568,636 76,750
    Test B
    5-Bromo-uridine 186,591 72,000
    5-(2carbomethoxyvinyl) uridine 1,364 0
    5-[3(1-E-propenylamino) uridine 27,955 32,625
    α-thio-cytidine 120,455 42,625
    5-methylcytosine/pseudouridine, Test C 882,500 49,250
    N1-methyl-adenosine 4,773 0
    N6-methyl-adenosine 1,591 0
    5-methyl-cytidine 646,591 79,375
    N4-acetylcytidine 39,545 8,000
    5-formyl-cytidine 0 24,000
    5-methylcytosine/pseudouridine, Test D 87,045 47,750
    5-methylcytosine/N1-methylpseudouridine, 1,168,864 97,125
    Test D
    Mock 909 682
    Untreated 0 0
    5-methylcytosine/N1-methylpseudouridine, 1,106,591 NT
    Control
    Luciferase control NT 0
  • TABLE 46
    Combination Chemistries in HeLa cells
    G-CSF protein
    (pg/ml)
    Chemical Modification HeLa cells
    N4-acetylcytidine/pseudouridine 537,273
    N4-acetylcytidine/N1-methylpseudouridine 1,091,818
    5-methylcytidine/5-methoxyuridine 516,136
    5-methylcytidine/5-bromouridine 48,864
    5-methylcytidine/5-methyluridine 207,500
    5-methylcytidine/2-thiouridine 33,409
    N4-acetylcytidine/5-bromouridine 211,591
    N4-acetylcytidine/2-thiouridine 46,136
    5-methylcytosine/pseudouridine 301,364
    5-methylcytosine/N1-methylpseudouridine 1,017,727
    N4-acetylcytidine/2′Fluorouridine triphosphate 62,273
    5-methylcytidine/2′Fluorouridine triphosphate 49,318
    2′Fluorocytosine triphosphate/pseudouridine 7,955
    2′Fluorocytosine triphosphate/N1- 1,364
    methylpseudouridine
    2′Fluorocytosine triphosphate/2-thiouridine 0
    2′Fluorocytosine triphosphate/5-bromouridine 1,818
    2′Fluorocytosine triphosphate/2′Fluorouridine 909
    triphosphate
    2′Fluoroguanine triphosphate/5-methylcytidine 0
    2′Fluoroguanine triphosphate/5-methylcytidine/ 0
    pseudouridine
    2′Fluoroguanine triphosphat/5-methylcytidine/N1 1,818
    methylpseudouridine
    2′Fluoroguanine triphosphate/pseudouridine 1,136
    2′Fluoroguanine triphosphate/2′Fluorocytosine 0
    triphosphate/N1-methylpseudouridine
    5-methylcytidine/pseudouridine 617,727
    5-methylcytidine/N1-methylpseudouridine 747,045
    5-methylcytidine/pseudouridine 475,455
    5-methylcytidine/N1-methylpseudouridine 689,091
    5-methylcytosine/N1-methylpseudouridine, Control 1 848,409
    5-methylcytosine/N1-methylpseudouridine, Control 2 581,818
    Mock 682
    Untreated 0
    Luciferase 2′Fluorocytosine triphosphate 0
    Luciferase 2′Fluorouridine triphosphate 0
  • Example 89 Screening of Chemistries
  • The tables listed in below (Tables 47-49) summarize much of the in vitro and in vitro screening data with the different compounds presented in the previous examples. A good correlation exists between cell-based and cell-free translation assays. The same chemistry substitutions generally show good concordance whether tested in the context of luciferase or G-CSF mRNA. Lastly, N1-methylpseudouridine containing mRNA show a very high level of protein expression with little to no detectable cytokine stimulation in vitro and in vivo, and is superior to mRNA containing pseudouridine both in vitro and in vivo.
  • Luciferase mRNA (mRNA sequence shown in SEQ ID NO: 3; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap1) and G-CSF mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) were modified with naturally and non-naturally occurring chemistries described in Tables 47 and 48 or combination chemistries described in Table 48 and tested using methods described herein.
  • In Tables 47 and 48, “*” refers to in vitro transcription reaction using a mutant T7 polymerase (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.); “**” refers to the second result in vitro transcription reaction using a mutant T7 polymerase (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.); “***” refers to production seen in cell free translations (rabbit reticulocyte lysates); the protein production of HeLa is judged by “+,” “+/−” and “−”; when referring to G-CSF PBMC “++++” means greater than 6,000 pg/ml G-CSF, “+++” means greater than 3,000 pg/ml G-CSF, “++” means greater than 1,500 pg/ml G-CSF, “+” means greater than 300 pg/ml G-CSF, “+/−” means 150-300 pg/ml G-CSF and the background was about 110 pg/ml; when referring to cytokine PBMC “++++” means greater than 1,000 pg/ml interferon-alpha (IFN-alpha), “+++” means greater than 600 pg/ml IFN-alpha, “++” means greater than 300 pg/ml IFN-alpha, “+” means greater than 100 pg/ml IFN-alpha, “−” means less than 100 pg/ml and the background was about 70 pg/ml; and “NT” means not tested. In Table 48, the protein production was evaluated using a mutant T7 polymerase (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.).
  • TABLE 47
    Naturally Occurring
    Protein Protein Protein Cytokines In Vivo In Vivo
    Common Name IVT IVT (Luc; (G-CSF; (G-CSF; (G-CSF; Protein Protein
    (symbol) (Luc) (G-CSF) HeLa) HeLa) PBMC) PBMC) (Luc) (G-CSF)
    1-methyladenosine Fail Pass NT +/− ++ NT NT
    (m1A)
    N6-methyladenosine Pass Pass +/− ++++ NT NT
    (m6A)
    2′-O- Fail* Not Done NT NT NT NT NT NT
    methyladenosine
    (Am)
    5-methylcytidine Pass Pass + + + ++ + NT
    (m5C)
    2′-O-methylcytidine Fail* Not Done NT NT NT NT NT NT
    (Cm)
    2-thiocytidine (s2C) Fail Fail NT NT NT NT NT NT
    N4-acetylcytidine Pass Pass + + +/− +++ + NT
    (ac4C)
    5-formylcytidine Pass Pass −*** −*** + NT NT
    (f5C)
    2′-O- Fail* Not Done NT NT NT NT NT NT
    methylguanosine
    (Gm)
    inosine (I) Fail Fail NT NT NT NT NT NT
    pseudouridine (Y) Pass Pass + + ++ + + NT
    5-methyluridine Pass Pass + + +/− + NT NT
    (m5U)
    2′-O-methyluridine Fail* Not Done NT NT NT NT NT NT
    (Um)
    1- Pass Pass + Not Done ++++ + NT
    methylpseudouridine
    (m1Y)
    2-thiouridine (s2U) Pass Pass + + + NT NT
    4-thiouridine (s4U) Fail Pass + +/− ++ NT NT
    5-methoxyuridine Pass Pass + + ++ + NT
    (mo5U)
    3-methyluridine Fail Fail NT NT NT NT NT NT
    (m3U)
  • TABLE 48
    Non-Naturally Occurring
    Protein Protein Protein Cytokines In Vivo In Vivo
    IVT IVT (Luc; (G-CSF; (G-CSF; (G-CSF; Protein Protein
    Common Name (Luc) (G-CSF) HeLa) HeLa) PBMC) PBMC) (Luc) (G-CSF)
    2′-F-ara-guanosine Fail Fail NT NT NT NT NT NT
    2′-F-ara-adenosine Fail Fail NT NT NT NT NT NT
    2′-F-ara-cytidine Fail Fail NT NT NT NT NT NT
    2′-F-ara-uridine Fail Fail NT NT NT NT NT NT
    2′-F-guanosine Fail/Pass** Pass/Fail** +** +/− + + NT
    2′-F-adenosine Fail/Pass** Fail/Fail** −** NT NT NT NT NT
    2′-F-cytidine Fail/Pass** Fail/Pass** +** NT NT NT + NT
    2′-F-uridine Fail/Pass** Pass/Pass** +** + +/− + NT
    2′-OH-ara-guanosine Fail Fail NT NT NT NT NT NT
    2′-OH-ara-adenosine Not Done Not Done NT NT NT NT NT NT
    2′-OH-ara-cytidine Fail Fail NT NT NT NT NT NT
    2′-OH-ara-uridine Fail Fail NT NT NT NT NT NT
    5-Br-Uridine Pass Pass + + + + +
    5-(2- Pass Pass +/−
    carbomethoxyvinyl)
    Uridine
    5-[3-(1-E- Pass Pass + +
    Propenylamino)
    Uridine (aka Chem 5)
    N6-(19-Amino- Fail Fail NT NT NT NT NT NT
    pentaoxanonadecyl)
    A
    2-Dimethylamino Fail Fail NT NT NT NT NT NT
    guanosine
    6-Aza-cytidine Fail Fail NT NT NT NT NT NT
    a-Thio-cytidine Pass Pass + + +/− +++ NT NT
    Pseudo-isocytidine NT NT NT NT NT NT NT NT
    5-Iodo-uridine NT NT NT NT NT NT NT NT
    a-Thio-uridine NT NT NT NT NT NT NT NT
    6-Aza-uridine NT NT NT NT NT NT NT NT
    Deoxy-thymidine NT NT NT NT NT NT NT NT
    a-Thio guanosine NT NT NT NT NT NT NT NT
    8-Oxo-guanosine NT NT NT NT NT NT NT NT
    O6-Methyl- NT NT NT NT NT NT NT NT
    guanosine
    7-Deaza-guanosine NT NT NT NT NT NT NT NT
    6-Chloro-purine NT NT NT NT NT NT NT NT
    a-Thio-adenosine NT NT NT NT NT NT NT NT
    7-Deaza-adenosine NT NT NT NT NT NT NT NT
    5-iodo-cytidine NT NT NT NT NT NT NT NT
  • In Table 49, the protein production of HeLa is judged by “+,” “+/−” and “−”; when referring to G-CSF PBMC “++++” means greater than 6,000 pg/ml G-CSF, “+++” means greater than 3,000 pg/ml G-CSF, “++” means greater than 1,500 pg/ml G-CSF, “+” means greater than 300 pg/ml G-CSF, “+/−” means 150-300 pg/ml G-CSF and the background was about 110 pg/ml; when referring to cytokine PBMC “++++” means greater than 1,000 pg/ml interferon-alpha (IFN-alpha), “+++” means greater than 600 pg/ml IFN-alpha, “++” means greater than 300 pg/ml IFN-alpha, “+” means greater than 100 pg/ml IFN-alpha, “−” means less than 100 pg/ml and the background was about 70 pg/ml; “WT” refers to the wild type T7 polymerase, “MT” refers to mutant T7 polymerase (Durascribe® T7 Transcription kit (Cat. No. DS010925) (Epicentre®, Madison, Wis.) and “NT” means not tested.
  • TABLE 49
    Combination Chemistry
    Protein Protein Protein Cytokines In Vivo
    Cytidine Uridine IVT IVT (Luc; (G-CSF; (G-CSF; (G-CSF; Protein
    analog analog Purine Luc (G-CSF) HeLa) HeLa) PBMC) PBMC) (Luc)
    N4- pseudouridine A, G Pass Pass + + NT NT +
    acetylcytidine WT WT
    N4- N1- A, G Pass Pass + + NT NT +
    acetylcytidine methylpseu- WT WT
    douridine
    5- 5- A, G Pass Pass + + NT NT +
    methylcytidine methoxyuridine WT WT
    5- 5- A, G Pass Pass Not + NT NT
    methylcytidine bromouridine WT WT Done
    5- 5- A, G Pass Pass + + NT NT +
    methylcytidine methyluridine WT WT
    5- 50% 2- A, G Pass Pass + NT NT NT +
    methylcytidine thiouridine; WT WT
    50% uridine
    5- 100% 2- A, G Pass Pass + NT NT
    methylcytidine thiouridine WT WT
    5- pseudouridine A, G Pass Pass + + ++ + +
    methylcytidine WT WT
    5- N1- A, G Pass Pass + + ++++ +
    methylcytidine methylpseu- WT WT
    douridine
    N4- 2-thiouridine A, G Not Pass Not + NT NT NT
    acetylcytidine Done WT Done
    N4- 5- A, G Not Pass Not + NT NT NT
    acetylcytidine bromouridine Done WT Done
    N4- 2 A, G Pass Pass + NT NT NT
    acetylcytidine Fluorouridine
    triphosphate
    5- 2 A, G Pass Pass + NT NT NT
    methylcytidine Fluorouridine
    triphosphate
    2 pseudouridine A, G Pass Pass + NT NT NT
    Fluorocytosine
    triphosphate
    2 N1- A, G Pass Pass +/− NT NT NT
    Fluorocytosine methylpseu-
    triphosphate douridine
    2 2-thiouridine A, G Pass Pass NT NT NT
    Fluorocytosine
    triphosphate
    2 5- A, G Pass Pass +/− NT NT NT
    Fluorocytosine bromouridine
    triphosphate
    2 2 A, G Pass Pass +/− NT NT NT
    Fluorocytosine Fluorouridine
    triphosphate triphosphate
    5- uridine A, 2 Pass Pass NT NT NT
    methylcytidine Fluoro
    GTP
    5- pseudouridine A, 2 Pass Pass NT NT NT
    methylcytidine Fluoro
    GTP
    5- N1- A, 2 Pass Pass +/− NT NT NT
    methylcytidine methylpseu- Fluoro
    douridine GTP
    2 pseudouridine A, 2 Pass Pass +/− NT NT NT
    Fluorocytosine Fluoro
    triphosphate GTP
    2 N1- A, 2 Pass Pass NT NT NT
    Fluorocytosine methylpseu- Fluoro
    triphosphate douridine GTP
  • Example 90 2′Fluoro Chemistries in PBMC
  • The ability of G-CSF modified mRNA (mRNA sequence shown in SEQ ID NO: 1; polyA tail of approximately 160 nucleotides not shown in sequence; 5′ cap, Cap 1) to trigger innate an immune response was determined by measuring interferon-alpha (IFN-alpha) and tumor necrosis factor-alpha (TNF-alpha) production. Use of in vitro PBMC cultures is an accepted way to measure the immunostimulatory potential of oligonucleotides (Robbins et al., Oligonucleotides 2009 19:89-102) and transfection methods are described herein. Shown in Table 50 are the average from 2 or 3 separate PBMC donors of the interferon-alpha (IFN-alpha) and tumor necrosis factor alpha (TNF-alpha) production over time as measured by specific ELISA. Controls of R848, P(I)P(C), LPS and Lipofectamine 2000 (L2000) were also analyzed.
  • With regards to innate immune recognition, while both modified mRNA chemistries largely prevented IFN-alpha and TNF-alpha production relative to positive controls (R848, P(I)P(C)), 2′fluoro compounds reduce IFN-alpha and TNF-alpha production even lower than other combinations and N4-acetylcytidine combinations raised the cytokine profile.
  • TABLE 50
    IFN-alpha and TNF-alpha
    IFN-alpha: TNF-alpha:
    3 Donor 2 Donor
    Average Average
    (pg/ml) (pg/ml)
    L2000 1 361
    P(I)P(C) 482 544
    R848 45 8,235
    LPS 0 6,889
    N4-acetylcytidine/pseudouridine 694 528
    N4-acetylcytidine/N1- 307 283
    methylpseudouridine
    5-methylcytidine/5-methoxyuridine 0 411
    5-methylcytidine/5-bromouridine 0 270
    5-methylcytidine/5-methyluridine 456 428
    5-methylcytidine/2-thiouridine 274 277
    N4-acetylcytidine/2-thiouridine 0 285
    N4-acetylcytidine/5-bromouridine 44 403
    5-methylcytidine/pseudouridine 73 332
    5-methylcytidine/N1- 31 280
    methylpseudouridine
    N4-acetylcytidine/2′fluorouridine 35 32
    triphosphate
    5-methylcytodine/2′fluorouridine 24 0
    triphosphate
    2′fluorocytidine triphosphate/N1- 0 11
    methylpseudouridine
    2′fluorocytidine triphosphate/2- 0 0
    thiouridine
    2′fluorocytidine/triphosphate5- 12 2
    bromouridine
    2′fluorocytidine triphosphate/ 11 0
    2′fluorouridine triphosphate
    2′fluorocytidine triphosphate/5- 14 23
    methylcytidine
    2′fluorocytidine triphosphate/5- 6 21
    methylcytidine/pseudouridine
    2′fluorocytidine triphosphate/5- 3 15
    methylcytidine/N1-
    methylpseudouridine
    2′fluorocytidine triphosphate/ 0 4
    pseudouridine
    2′fluorocytidine triphosphate/N1- 6 20
    methylpseudouridine
    5-methylcytidine/pseudouridine 82 18
    5-methylcytidien/N1- 35 3
    methylpseudouridine
  • Other Embodiments
  • It is to be understood that while the present disclosure has been described in conjunction with the detailed description thereof, the foregoing description is intended to illustrate and not limit the scope of the present disclosure, which is defined by the scope of the appended claims. Other aspects, advantages, and modifications are within the scope of the following claims.

Claims (14)

What is claimed is:
1. An isolated mRNA encoding a polypeptide of interest, said isolated mRNA comprising at least a first and a second modified nucleoside; wherein said first modified nucleoside is N1-methylpseudouridine and said second modified nucleoside is neither pseudouridine or 5-methylcytosine.
2. The isolated mRNA of claim 1, wherein a second modified nucleoside is selected from the group consisting of a modified purine nucleoside and a modified pyrimidine nucleoside.
3. The isolated mRNA of claim 2, wherein the second modified nucleoside is a modified purine nucleoside and the modified purine nucleoside is selected from the group consisting of adenosine and guanosine.
4. The isolated mRNA of claim 3, wherein the modified purine nucleoside comprises at least one modification selected from the group consisting of a base modification and a sugar modification.
5. The isolated mRNA of claim 4, wherein the at least one modification is on the sugar.
6. The isolated mRNA of claim 2, wherein the modified pyrimidine nucleoside is selected from the group consisting of cytidine and uridine.
7. The isolated mRNA of claim 6, wherein the modified pyrimidine nucleoside comprises at least one modification selected from the group consisting of a base modification and a sugar modification.
8. The isolated mRNA of claim 7, wherein the at least one modification is on the sugar.
9. The isolated mRNA of claim 2 further comprising a third modified nucleoside.
10. The isolated mRNA of claim 9, wherein the third modified nucleoside is selected from the group consisting of a modified purine nucleoside and a modified pyrimidine nucleoside.
11. The isolated mRNA of claim 10, wherein the third modified nucleoside is purine and the modified purine nucleoside comprises at least one modification selected from the group consisting of a base modification and a sugar modification.
12. The isolated mRNA of claim 11, wherein the at least one modification is on the sugar.
13. The isolated mRNA of claim 10, wherein the third modified nucleoside is pyrimidine and the modified pyrimidine nucleoside comprises at least one modification selected from the group consisting of a base modification and a sugar modification.
14. The isolated mRNA of claim 13, wherein the at least one modification is on the sugar.
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Cited By (54)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014007620A2 (en) 2012-07-03 2014-01-09 Prosensa Technologies B.V. Oligonucleotide for the treatment of muscular dystrophy patients
US8822663B2 (en) 2010-08-06 2014-09-02 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
WO2015038892A1 (en) * 2013-09-13 2015-03-19 Moderna Therapeutics, Inc. Polynucleotide compositions containing amino acids
WO2015095351A1 (en) 2013-12-19 2015-06-25 Novartis Ag LEPTIN mRNA COMPOSITIONS AND FORMULATIONS
US9095552B2 (en) 2012-04-02 2015-08-04 Moderna Therapeutics, Inc. Modified polynucleotides encoding copper metabolism (MURR1) domain containing 1
US9107886B2 (en) 2012-04-02 2015-08-18 Moderna Therapeutics, Inc. Modified polynucleotides encoding basic helix-loop-helix family member E41
US9186372B2 (en) 2011-12-16 2015-11-17 Moderna Therapeutics, Inc. Split dose administration
US9283287B2 (en) 2012-04-02 2016-03-15 Moderna Therapeutics, Inc. Modified polynucleotides for the production of nuclear proteins
US9376669B2 (en) 2012-11-01 2016-06-28 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US9422577B2 (en) 2011-12-05 2016-08-23 Factor Bioscience Inc. Methods and products for transfecting cells
US9512456B2 (en) 2012-08-14 2016-12-06 Modernatx, Inc. Enzymes and polymerases for the synthesis of RNA
US9533047B2 (en) 2011-03-31 2017-01-03 Modernatx, Inc. Delivery and formulation of engineered nucleic acids
US9572897B2 (en) 2012-04-02 2017-02-21 Modernatx, Inc. Modified polynucleotides for the production of cytoplasmic and cytoskeletal proteins
US9597380B2 (en) 2012-11-26 2017-03-21 Modernatx, Inc. Terminally modified RNA
WO2017098468A1 (en) 2015-12-09 2017-06-15 Novartis Ag Label-free analysis of rna capping efficiency using rnase h, probes and liquid chromatography/mass spectrometry
US9701965B2 (en) 2010-10-01 2017-07-11 Modernatx, Inc. Engineered nucleic acids and methods of use thereof
US9770489B2 (en) 2014-01-31 2017-09-26 Factor Bioscience Inc. Methods and products for nucleic acid production and delivery
US10023626B2 (en) 2013-09-30 2018-07-17 Modernatx, Inc. Polynucleotides encoding immune modulating polypeptides
WO2018160592A1 (en) * 2017-02-28 2018-09-07 Arcturus Therapeutics, Inc. Translatable molecules and synthesis thereof
US10077439B2 (en) 2013-03-15 2018-09-18 Modernatx, Inc. Removal of DNA fragments in mRNA production process
US20180296662A1 (en) * 2015-10-22 2018-10-18 Modernatx, Inc. Sexually transmitted disease vaccines
US10106800B2 (en) 2005-09-28 2018-10-23 Biontech Ag Modification of RNA, producing an increased transcript stability and translation efficiency
US10137206B2 (en) 2016-08-17 2018-11-27 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10138507B2 (en) 2013-03-15 2018-11-27 Modernatx, Inc. Manufacturing methods for production of RNA transcripts
US10155031B2 (en) 2012-11-28 2018-12-18 Biontech Rna Pharmaceuticals Gmbh Individualized vaccines for cancer
US10258698B2 (en) 2013-03-14 2019-04-16 Modernatx, Inc. Formulation and delivery of modified nucleoside, nucleotide, and nucleic acid compositions
WO2019087113A1 (en) 2017-11-01 2019-05-09 Novartis Ag Synthetic rnas and methods of use
US10286086B2 (en) 2014-06-19 2019-05-14 Modernatx, Inc. Alternative nucleic acid molecules and uses thereof
US10385088B2 (en) 2013-10-02 2019-08-20 Modernatx, Inc. Polynucleotide molecules and uses thereof
US10407683B2 (en) 2014-07-16 2019-09-10 Modernatx, Inc. Circular polynucleotides
US20190275170A1 (en) * 2016-05-18 2019-09-12 Modernatx, Inc. Polynucleotides encoding jagged1 for the treatment of alagille syndrome
US10485884B2 (en) 2012-03-26 2019-11-26 Biontech Rna Pharmaceuticals Gmbh RNA formulation for immunotherapy
US10501404B1 (en) 2019-07-30 2019-12-10 Factor Bioscience Inc. Cationic lipids and transfection methods
US10590161B2 (en) 2013-03-15 2020-03-17 Modernatx, Inc. Ion exchange purification of mRNA
US10723754B2 (en) 2012-10-22 2020-07-28 Idenix Pharmaceuticals Llc 2′,4′-bridged nucleosides for HCV infection
US10738355B2 (en) 2011-05-24 2020-08-11 Tron-Translationale Onkologie An Der Universitätsmedizin Der Johannes Gutenberg-Universität Mainz Ggmbh Individualized vaccines for cancer
US10815463B2 (en) 2014-11-02 2020-10-27 Arcturus Therapeutics, Inc. Messenger UNA molecules and uses thereof
US10849920B2 (en) 2015-10-05 2020-12-01 Modernatx, Inc. Methods for therapeutic administration of messenger ribonucleic acid drugs
EP3744835A1 (en) 2012-05-29 2020-12-02 The General Hospital Corporation Dna modifying fusion proteins and methods of use thereof
US20210163938A1 (en) * 2018-04-16 2021-06-03 Georgia Tech Research Corporation MRNA Driven Expression of RNA Editors for Treatment of Pathologies
US11027025B2 (en) 2013-07-11 2021-06-08 Modernatx, Inc. Compositions comprising synthetic polynucleotides encoding CRISPR related proteins and synthetic sgRNAs and methods of use
US11156617B2 (en) 2015-02-12 2021-10-26 BioNTech RNA Pharmaceuticals GbmH Predicting T cell epitopes useful for vaccination
US11173120B2 (en) 2014-09-25 2021-11-16 Biontech Rna Pharmaceuticals Gmbh Stable formulations of lipids and liposomes
US11222711B2 (en) 2013-05-10 2022-01-11 BioNTech SE Predicting immunogenicity of T cell epitopes
US11241505B2 (en) 2015-02-13 2022-02-08 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
WO2022051677A1 (en) * 2020-09-04 2022-03-10 Verve Therapeutics, Inc. Compositions and methods for capping rnas
US11298426B2 (en) 2003-10-14 2022-04-12 BioNTech SE Recombinant vaccines and use thereof
US11377470B2 (en) 2013-03-15 2022-07-05 Modernatx, Inc. Ribonucleic acid purification
WO2022180213A1 (en) 2021-02-26 2022-09-01 Ethris Gmbh Formulations for aerosol formation and aerosols for the delivery of nucleic acid
US11434486B2 (en) 2015-09-17 2022-09-06 Modernatx, Inc. Polynucleotides containing a morpholino linker
US11492628B2 (en) 2015-10-07 2022-11-08 BioNTech SE 3′-UTR sequences for stabilization of RNA
US11603399B2 (en) 2013-03-13 2023-03-14 Modernatx, Inc. Long-lived polynucleotide molecules
EP4327829A1 (en) 2022-08-26 2024-02-28 Ethris GmbH Stabilization of lipid or lipidoid nanoparticle suspensions
WO2024042236A1 (en) 2022-08-26 2024-02-29 Ethris Gmbh Stable lipid or lipidoid nanoparticle suspensions

Families Citing this family (216)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE10229872A1 (en) 2002-07-03 2004-01-29 Curevac Gmbh Immune stimulation through chemically modified RNA
MX2013000164A (en) 2010-07-06 2013-03-05 Novartis Ag Liposomes with lipids having an advantageous pka- value for rna delivery.
PT3243526T (en) 2010-07-06 2020-03-04 Glaxosmithkline Biologicals Sa Delivery of rna to trigger multiple immune pathways
HUE029284T2 (en) 2010-07-06 2017-02-28 Glaxosmithkline Biologicals Sa Immunisation of large mammals with low doses of rna
MX2013002336A (en) 2010-08-31 2013-03-18 Novartis Ag Pegylated liposomes for delivery of immunogen-encoding rna.
BR112013008700B8 (en) 2010-10-11 2022-10-04 Novartis Ag SELF-REPLICATING RNA MOLECULE, ALPHAVIRUS REPLICON PARTICLE, COMPOSITION, RECOMBINANT DNA MOLECULE, USE OF SELF-REPLICATING RNA MOLECULE
KR102128248B1 (en) 2011-06-08 2020-07-01 샤이어 휴먼 지네틱 테라피즈 인크. Lipid nanoparticle compositions and methods for mrna delivery
EP3332802A1 (en) 2011-07-06 2018-06-13 GlaxoSmithKline Biologicals SA Immunogenic combination compositions and uses thereof
US9464124B2 (en) 2011-09-12 2016-10-11 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
CN103974724B (en) 2011-10-03 2019-08-30 现代泰克斯公司 Nucleosides, nucleotide and nucleic acid of modification and application thereof
US10501513B2 (en) 2012-04-02 2019-12-10 Modernatx, Inc. Modified polynucleotides for the production of oncology-related proteins and peptides
EP2931319B1 (en) * 2012-12-13 2019-08-21 ModernaTX, Inc. Modified nucleic acid molecules and uses thereof
WO2014113089A2 (en) 2013-01-17 2014-07-24 Moderna Therapeutics, Inc. Signal-sensor polynucleotides for the alteration of cellular phenotypes
SG11201507474QA (en) 2013-03-14 2015-10-29 Shire Human Genetic Therapies RIBONUCLEIC ACIDs WITH 4'-THIO-MODIFIED NUCLEOTIDES AND RELATED METHODS
BR112015022868B1 (en) 2013-03-14 2023-05-16 Ethris Gmbh CFTR MRNA COMPOSITIONS AND RELATED USES AND METHODS
DK2970456T3 (en) 2013-03-14 2021-07-05 Translate Bio Inc METHODS AND COMPOSITIONS FOR DELIVERING MRNA-CODED ANTIBODIES
ES2795249T3 (en) 2013-03-15 2020-11-23 Translate Bio Inc Synergistic enhancement of nucleic acid delivery through mixed formulations
US8980864B2 (en) 2013-03-15 2015-03-17 Moderna Therapeutics, Inc. Compositions and methods of altering cholesterol levels
CA2910575C (en) 2013-05-03 2023-10-24 Selecta Biosciences, Inc. Tolerogenic synthetic nanocarriers and therapeutic macromolecules for reduced or enhanced pharmacodynamic effects
EA201592273A1 (en) 2013-06-04 2016-09-30 Селекта Байосайенсиз, Инк. REPEATED INTRODUCTION OF NON-IMMUNOSUPRESSIVE ANTIGENSPECIFIC IMMUNOTHERAPY
CN103254253B (en) * 2013-06-06 2015-11-18 济南卡博唐生物科技有限公司 A kind of method preparing diacetone-D-allose
EP3013964B1 (en) 2013-06-28 2020-05-06 ethris GmbH Compositions for introducing rna into cells
WO2015034925A1 (en) 2013-09-03 2015-03-12 Moderna Therapeutics, Inc. Circular polynucleotides
EP3041934A1 (en) 2013-09-03 2016-07-13 Moderna Therapeutics, Inc. Chimeric polynucleotides
CN103467509A (en) * 2013-09-27 2013-12-25 成都爱博协诺化学技术有限公司 Antitumor drug intermediate synthesis method
US20160264614A1 (en) * 2013-10-02 2016-09-15 Moderna Therapeutics, Inc. Polynucleotide molecules and uses thereof
EA201690675A1 (en) 2013-10-03 2016-08-31 Модерна Терапьютикс, Инк. POLYNUCLEOTES ENCODING THE RECEPTOR OF LOW DENSITY LIPOPROTEINS
ES2806575T3 (en) 2013-11-01 2021-02-18 Curevac Ag Modified RNA with decreased immunostimulatory properties
EP3062798B1 (en) 2013-11-01 2020-05-06 CureVac AG Modified rna with decreased immunostimulatory properties
US10202601B2 (en) 2013-11-22 2019-02-12 Mina Therapeutics Limited C/EBPα short activating RNA compositions and methods of use
EP3053585A1 (en) * 2013-12-13 2016-08-10 Moderna Therapeutics, Inc. Alternative nucleic acid molecules and uses thereof
EP3110954A1 (en) 2014-02-26 2017-01-04 Ethris GmbH Compositions for gastrointestinal administration of rna
CN103784422B (en) * 2014-02-28 2016-03-02 重庆医科大学附属第二医院 A kind of year rtPA nanoparticle and preparation method thereof
CA3177878A1 (en) 2014-04-23 2015-10-29 Modernatx, Inc. Nucleic acid vaccines
MX2016016170A (en) 2014-06-10 2017-03-28 Curevac Ag Methods and means for enhancing rna production.
WO2015200465A1 (en) * 2014-06-24 2015-12-30 Shire Human Genetic Therapies, Inc. Stereochemically enriched compositions for delivery of nucleic acids
WO2016011226A1 (en) 2014-07-16 2016-01-21 Moderna Therapeutics, Inc. Chimeric polynucleotides
WO2016014846A1 (en) 2014-07-23 2016-01-28 Moderna Therapeutics, Inc. Modified polynucleotides for the production of intrabodies
CN104211740B (en) * 2014-08-20 2016-10-26 济南尚博生物科技有限公司 A kind of N4the preparation method of-benzoyl-D-cytidine
EP4324473A2 (en) 2014-11-10 2024-02-21 ModernaTX, Inc. Multiparametric nucleic acid optimization
EP3461904A1 (en) 2014-11-10 2019-04-03 ModernaTX, Inc. Alternative nucleic acid molecules containing reduced uracil content and uses thereof
EP3034539A1 (en) 2014-12-19 2016-06-22 Ethris GmbH Compositions for introducing nucleic acid into cells
EP3289077B1 (en) 2015-04-30 2020-04-15 CureVac AG Method for in vitro transcription using an immobilized restriction enzyme
MX2017014538A (en) 2015-05-15 2018-03-02 Curevac Ag Prime-boost regimens involving administration of at least one mrna construct.
EP4098743A1 (en) 2015-05-29 2022-12-07 CureVac AG Method for adding cap structures to rna using immobilized enzymes
PL4108769T3 (en) 2015-05-29 2024-02-05 CureVac Manufacturing GmbH A method for producing and purifying rna, comprising at least one step of tangential flow filtration
PT4155409T (en) 2015-08-10 2024-02-26 Curevac Mfg Gmbh Method of increasing the replication of a circular dna molecule
LT3352584T (en) 2015-09-21 2021-08-10 Trilink Biotechnologies, Llc Compositions and methods for synthesizing 5'-capped rnas
US11866754B2 (en) 2015-10-16 2024-01-09 Modernatx, Inc. Trinucleotide mRNA cap analogs
DK3362461T3 (en) 2015-10-16 2022-05-09 Modernatx Inc MRNA-CAP ANALOGS WITH MODIFIED PHOSPHAT BINDING
WO2017066791A1 (en) * 2015-10-16 2017-04-20 Modernatx, Inc. Sugar substituted mrna cap analogs
EP3718565B1 (en) 2015-10-22 2022-04-27 ModernaTX, Inc. Respiratory virus vaccines
HRP20220525T1 (en) 2015-12-23 2022-05-27 Modernatx, Inc. Methods of using ox40 ligand encoding polynucleotides
WO2017109161A1 (en) 2015-12-23 2017-06-29 Curevac Ag Method of rna in vitro transcription using a buffer containing a dicarboxylic acid or tricarboxylic acid or a salt thereof
MA43587A (en) 2016-01-10 2018-11-14 Modernatx Inc THERAPEUTIC RNA CODING FOR ANTI-CTLA-4 ANTIBODIES
EP3417069A1 (en) 2016-02-15 2018-12-26 CureVac AG Method for analyzing by-products of rna in vitro transcription
WO2017149139A1 (en) 2016-03-03 2017-09-08 Curevac Ag Rna analysis by total hydrolysis
EP3433361A1 (en) 2016-03-24 2019-01-30 CureVac AG Immobilized inorganic pyrophosphatase (ppase)
AU2017242794B2 (en) * 2016-03-31 2022-12-15 Ethris Gmbh Novel minimal UTR sequences
EP3440206B1 (en) 2016-04-08 2020-10-28 Translate Bio, Inc. Multimeric coding nucleic acid and uses thereof
EP3443001A4 (en) 2016-04-11 2020-04-29 Obsidian Therapeutics, Inc. Regulated biocircuit systems
WO2017180917A2 (en) 2016-04-13 2017-10-19 Modernatx, Inc. Lipid compositions and their uses for intratumoral polynucleotide delivery
WO2017201332A1 (en) 2016-05-18 2017-11-23 Modernatx, Inc. Polynucleotides encoding acyl-coa dehydrogenase, very long-chain for the treatment of very long-chain acyl-coa dehydrogenase deficiency
EP3458104A1 (en) 2016-05-18 2019-03-27 Modernatx, Inc. Polynucleotides encoding porphobilinogen deaminase for the treatment of acute intermittent porphyria
CA3024470A1 (en) 2016-05-18 2017-11-23 Modernatx, Inc. Polynucleotides encoding interleukin-12 (il12) and uses thereof
IL263079B1 (en) 2016-05-18 2024-01-01 Modernatx Inc Polynucleotides encoding relaxin
CA3024625A1 (en) 2016-05-18 2017-11-23 Modernatx, Inc. Polynucleotides encoding citrin for the treatment of citrullinemia type 2
EP3458105B1 (en) 2016-05-18 2024-01-17 Modernatx, Inc. Polynucleotides encoding galactose-1-phosphate uridylyltransferase for the treatment of galactosemia type 1
JP7114485B2 (en) 2016-05-18 2022-08-08 モデルナティエックス インコーポレイテッド Polynucleotides encoding α-galactosidase A for the treatment of Fabry disease
EP4137509A1 (en) 2016-05-18 2023-02-22 ModernaTX, Inc. Combinations of mrnas encoding immune modulating polypeptides and uses thereof
KR101892086B1 (en) 2016-05-19 2018-08-27 주식회사 삼양사 Oxime ester derivative compounds, photopolymerization initiator, and photosensitive composition containing the same
AU2017283479B2 (en) 2016-06-13 2023-08-17 Translate Bio, Inc. Messenger RNA therapy for the treatment of ornithine transcarbamylase deficiency
WO2018009838A1 (en) 2016-07-07 2018-01-11 Rubius Therapeutics, Inc. Compositions and methods related to therapeutic cell systems expressing exogenous rna
CA3030701A1 (en) 2016-07-11 2018-01-18 Translate Bio Ma, Inc. Nucleic acid conjugates and uses thereof
US11279923B2 (en) 2016-11-28 2022-03-22 Curevac Ag Method for purifying RNA
US10093706B2 (en) 2017-01-30 2018-10-09 Indiana University Research And Technology Corporation Dominant positive hnRNP-E1 polypeptide compositions and methods
WO2018141371A1 (en) 2017-01-31 2018-08-09 Curevac Ag Purification and/or formulation of rna
MA47438A (en) * 2017-02-01 2019-12-11 Modernatx Inc SECONDARY POLYNUCLEOTIDE STRUCTURE
KR20180090135A (en) 2017-02-02 2018-08-10 주식회사 삼양사 Oxime ester biphenyl compounds, photopolymerization initiator, and photosensitive composition containing the same
JP2020508056A (en) 2017-02-22 2020-03-19 クリスパー・セラピューティクス・アクチェンゲゼルシャフトCRISPR Therapeutics AG Compositions and methods for gene editing
EP3585417B1 (en) 2017-02-27 2023-02-22 Translate Bio, Inc. Method of making a codon-optimized cftr mrna
BR112019017743A2 (en) 2017-02-28 2020-04-07 Sanofi Sa therapeutic rna
JP2020515258A (en) 2017-03-31 2020-05-28 アジェノビア コーポレーション Antiviral therapeutic agent
CA3063531A1 (en) 2017-05-16 2018-11-22 Translate Bio, Inc. Treatment of cystic fibrosis by delivery of codon-optimized mrna encoding cftr
WO2018213731A1 (en) 2017-05-18 2018-11-22 Modernatx, Inc. Polynucleotides encoding tethered interleukin-12 (il12) polypeptides and uses thereof
MX2019014412A (en) 2017-05-31 2020-02-10 Ultragenyx Pharmaceutical Inc Therapeutics for glycogen storage disease type iii.
US20200131498A1 (en) 2017-06-14 2020-04-30 Modernatx, Inc. Polynucleotides encoding methylmalonyl-coa mutase
US20200268666A1 (en) 2017-06-14 2020-08-27 Modernatx, Inc. Polynucleotides encoding coagulation factor viii
US10034951B1 (en) 2017-06-21 2018-07-31 New England Biolabs, Inc. Use of thermostable RNA polymerases to produce RNAs having reduced immunogenicity
GB201714430D0 (en) * 2017-09-07 2017-10-25 Micol Romain Compositions and processes for targeted delivery and expression and modulation of therapeutic components in tissue
WO2019048645A1 (en) 2017-09-08 2019-03-14 Mina Therapeutics Limited Stabilized cebpa sarna compositions and methods of use
WO2019048631A1 (en) 2017-09-08 2019-03-14 Mina Therapeutics Limited Hnf4a sarna compositions and methods of use
EP3714048A1 (en) 2017-11-22 2020-09-30 Modernatx, Inc. Polynucleotides encoding ornithine transcarbamylase for the treatment of urea cycle disorders
MA50802A (en) 2017-11-22 2020-09-30 Modernatx Inc POLYNUCLEOTIDES CODING FOR ALPHA AND BETA SUB-UNITS OF PROPIONYL-COA CARBOXYLASE FOR THE TREATMENT OF PROPIONIC ACIDEMIA
US11939601B2 (en) 2017-11-22 2024-03-26 Modernatx, Inc. Polynucleotides encoding phenylalanine hydroxylase for the treatment of phenylketonuria
KR101991903B1 (en) 2017-12-07 2019-10-01 주식회사 삼양사 Carbazole oxime ester derivative compounds and, photopolymerization initiator and photosensitive composition containing the same
EP3724355A1 (en) 2017-12-15 2020-10-21 Novartis AG Polya tail length analysis of rna by mass spectrometry
CA3084061A1 (en) 2017-12-20 2019-06-27 Translate Bio, Inc. Improved composition and methods for treatment of ornithine transcarbamylase deficiency
MA51523A (en) 2018-01-05 2020-11-11 Modernatx Inc POLYNUCLEOTIDES CODING ANTI-BODY ANTI-CHIKUNGUNYA VIRUS
CA3094262A1 (en) 2018-04-11 2019-10-17 Enterome S.A. Antigenic peptides for prevention and treatment of cancer
EP4242307A3 (en) 2018-04-12 2023-12-27 MiNA Therapeutics Limited Sirt1-sarna compositions and methods of use
JP2021522228A (en) 2018-04-25 2021-08-30 エスリス ゲーエムベーハーethris GmbH Lipid-based formulations for RNA delivery
EP3806888B1 (en) 2018-06-12 2024-01-31 Obsidian Therapeutics, Inc. Pde5 derived regulatory constructs and methods of use in immunotherapy
JP2021529518A (en) 2018-06-28 2021-11-04 クリスパー セラピューティクス アーゲー Compositions and Methods for Genome Editing by Insertion of Donor polynucleotide
US20220184185A1 (en) 2018-07-25 2022-06-16 Modernatx, Inc. Mrna based enzyme replacement therapy combined with a pharmacological chaperone for the treatment of lysosomal storage disorders
CN113164556A (en) 2018-08-30 2021-07-23 特纳亚治疗股份有限公司 Cardiac cell reprogramming with cardiac myoprotein and ASCL1
MA53545A (en) 2018-09-02 2021-07-14 Modernatx Inc POLYNUCLEOTIDES ENCODED FOR VERY LONG CHAIN ACYL-COA DEHYDROGENASE FOR THE TREATMENT OF VERY LONG CHAIN ACYL-COA DEHYDROGENASE DEFICIENCY
MA53609A (en) 2018-09-13 2021-07-21 Modernatx Inc POLYNUCLEOTIDES ENCODED GLUCOSE-6-PHOSPHATASE FOR THE TREATMENT OF GLYCOGENOSIS
MA53608A (en) 2018-09-13 2021-07-21 Modernatx Inc POLYNUCLEOTIDES ENCODED FOR THE E1-ALPHA, E1-BETA AND E2 SUBUNITS OF THE BRANCHED-CHAIN ALPHA-KETOACID DEHYDROGENASE COMPLEX FOR THE TREATMENT OF LEUCINOSIS
JP2022500444A (en) 2018-09-14 2022-01-04 モダーナティエックス・インコーポレイテッドModernaTX, Inc. A polynucleotide encoding polypeptide A1, a family of uridine diphosphate glycosyltransferases for the treatment of Crigler-Najer syndrome
US20220152225A1 (en) 2018-09-27 2022-05-19 Modernatx, Inc. Polynucleotides encoding arginase 1 for the treatment of arginase deficiency
US11072808B2 (en) 2018-10-04 2021-07-27 New England Biolabs, Inc. Methods and compositions for increasing capping efficiency of transcribed RNA
AU2019355177A1 (en) 2018-10-04 2021-05-06 New England Biolabs, Inc. Methods and compositions for increasing capping efficiency of transcribed RNA
EP3870600A1 (en) 2018-10-24 2021-09-01 Obsidian Therapeutics, Inc. Er tunable protein regulation
US11685906B2 (en) 2018-12-06 2023-06-27 Arcturus Therapeutics, Inc. Compositions and methods for treating ornithine transcarbamylase deficiency
KR102228630B1 (en) 2018-12-28 2021-03-16 주식회사 삼양사 Carbazole multi β-oxime ester derivative compounds and, photopolymerization initiator and photoresist composition containing the same
GB2580963B (en) * 2019-02-01 2021-03-31 Hemispherian As Cancer therapies
KR20210149251A (en) 2019-03-08 2021-12-08 옵시디안 테라퓨틱스, 인크. Human carbonic anhydrase 2 compositions and methods for tunable modulation
CN113661242A (en) * 2019-03-25 2021-11-16 旗舰创业创新第六有限责任公司 Compositions comprising modified cyclic polyribonucleotides and uses thereof
EP3953473A1 (en) 2019-04-12 2022-02-16 MiNA Therapeutics Limited Sirt1-sarna compositions and methods of use
WO2020227642A1 (en) 2019-05-08 2020-11-12 Modernatx, Inc. Compositions for skin and wounds and methods of use thereof
WO2020252404A1 (en) 2019-06-12 2020-12-17 Obsidian Therapeutics, Inc. Ca2 compositions and methods for tunable regulation
JP2022537670A (en) 2019-06-12 2022-08-29 オブシディアン セラピューティクス, インコーポレイテッド CA2 composition and tunable control methods
EP3997226A1 (en) 2019-07-11 2022-05-18 Tenaya Therapeutics, Inc. Cardiac cell reprogramming with micrornas and other factors
CN112390838A (en) * 2019-08-14 2021-02-23 斯微(上海)生物科技有限公司 Modified nucleoside and synthetic method thereof
EP4017539A1 (en) 2019-08-19 2022-06-29 MiNA Therapeutics Limited Oligonucleotide conjugate compositions and methods of use
US20220282233A1 (en) 2019-08-22 2022-09-08 New England Biolabs, Inc. Cleavage of Single Stranded DNA Having a Modified Nucleotide
WO2021041267A1 (en) 2019-08-23 2021-03-04 New England Biolabs, Inc. Enzymatic rna capping method
US20230092895A1 (en) 2019-08-30 2023-03-23 Obsidian Therapeutics, Inc. Tandem cd19 car-based compositions and methods for immunotherapy
US20220348937A1 (en) 2019-09-06 2022-11-03 Obsidian Therapeutics, Inc. Compositions and methods for dhfr tunable protein regulation
US20210079347A1 (en) 2019-09-06 2021-03-18 Crispr Therapeutics Ag Genetically engineered t cells having improved persistence in culture
TW202128704A (en) * 2019-10-18 2021-08-01 日商第一三共股份有限公司 Method for producing bicyclic phosphoramidite
CN114746112A (en) 2019-11-15 2022-07-12 恩特罗姆公司 Antigenic peptides for the prevention and treatment of B-cell malignancies
EP4093751A1 (en) 2020-01-22 2022-11-30 Outpace Bio, Inc. Chimeric polypeptides
US11576966B2 (en) 2020-02-04 2023-02-14 CureVac SE Coronavirus vaccine
CN115552022A (en) 2020-03-02 2022-12-30 特纳亚治疗股份有限公司 MicroRNA-controlled gene vector expressed by cardiac muscle cells
WO2021202788A2 (en) * 2020-04-03 2021-10-07 Ionis Pharmaceuticals, Inc. Modified oligomeric compounds and uses thereof
WO2021213924A1 (en) 2020-04-22 2021-10-28 BioNTech SE Coronavirus vaccine
WO2021247507A1 (en) 2020-06-01 2021-12-09 Modernatx, Inc. Phenylalanine hydroxylase variants and uses thereof
KR20230074515A (en) 2020-09-23 2023-05-30 크리스퍼 테라퓨틱스 아게 Genetically engineered T cells with disrupted legase-1 and/or TGFBRII with improved functionality and persistence
EP4203997A1 (en) 2020-10-26 2023-07-05 Pécsi Tudományegyetem Vaccine platform
US20240000920A1 (en) 2020-11-12 2024-01-04 Intervet Inc. Recombinant vectors encoding chimeric coronavirus spike proteins and use thereof
IL302625A (en) 2020-11-13 2023-07-01 Modernatx Inc Polynucleotides encoding cystic fibrosis transmembrane conductance regulator for the treatment of cystic fibrosis
WO2022106860A1 (en) 2020-11-20 2022-05-27 Pécsi Tudományegyetem Recombinant peptides for use in therapy
AU2021405281A1 (en) 2020-12-22 2023-07-06 CureVac SE Rna vaccine against sars-cov-2 variants
US20220193134A1 (en) 2020-12-23 2022-06-23 Crispr Therapeutics Ag Co-use of lenalidomide with car-t cells
CN112725346A (en) * 2021-01-22 2021-04-30 青岛大学 Modified mRNA sequence for increasing uric acid excretion and application thereof
US11028379B1 (en) 2021-01-27 2021-06-08 New England Biolabs, Inc. FCE mRNA capping enzyme compositions, methods and kits
WO2022164428A1 (en) 2021-01-27 2022-08-04 New England Biolabs, Inc. Faustovirus capping enzyme, mrna capping enzyme compositions, methods and kits
JP2024510415A (en) 2021-03-01 2024-03-07 スキロム ゲゼルシャフト ミット ベシュレンクテル ハフツング Humanized antibody against iRhom2
US20220288122A1 (en) 2021-03-09 2022-09-15 Crispr Therapeutics Ag Genetically engineered t cells with ptpn2 knockout have improved functionality and anti-tumor activity
WO2022204369A1 (en) 2021-03-24 2022-09-29 Modernatx, Inc. Polynucleotides encoding methylmalonyl-coa mutase for the treatment of methylmalonic acidemia
WO2022204380A1 (en) 2021-03-24 2022-09-29 Modernatx, Inc. Lipid nanoparticles containing polynucleotides encoding propionyl-coa carboxylase alpha and beta subunits and uses thereof
WO2022204370A1 (en) 2021-03-24 2022-09-29 Modernatx, Inc. Lipid nanoparticles and polynucleotides encoding ornithine transcarbamylase for the treatment of ornithine transcarbamylase deficiency
WO2022204371A1 (en) 2021-03-24 2022-09-29 Modernatx, Inc. Lipid nanoparticles containing polynucleotides encoding glucose-6-phosphatase and uses thereof
WO2022204390A1 (en) 2021-03-24 2022-09-29 Modernatx, Inc. Lipid nanoparticles containing polynucleotides encoding phenylalanine hydroxylase and uses thereof
AU2022246144A1 (en) 2021-03-26 2023-09-21 Mina Therapeutics Limited Tmem173 sarna compositions and methods of use
CN112979721B (en) * 2021-03-29 2023-05-09 江苏集萃分子工程研究院有限公司 Preparation method of high-purity antineoplastic medicine troflucytidine
CA3213771A1 (en) 2021-03-29 2022-10-06 Scirhom Gmbh Methods of treatment using protein binders to irhom2 epitopes
US20220323607A1 (en) 2021-04-09 2022-10-13 Selecta Biosciences, Inc. Synthetic nanocarriers comprising an immunosuppressant in combination with high affinity il-2 receptor agonists to enhance immune tolerance
WO2022214664A1 (en) 2021-04-09 2022-10-13 Philogen S.P.A. Improved interferon-gamma mutant
WO2022251644A1 (en) 2021-05-28 2022-12-01 Lyell Immunopharma, Inc. Nr4a3-deficient immune cells and uses thereof
AU2022286947A1 (en) 2021-06-02 2023-12-14 Lyell Immunopharma, Inc. NR4A-deficient cells expressing c-Jun and uses thereof
CN113372432A (en) * 2021-06-15 2021-09-10 深圳市臻质医疗科技有限公司 Method for inducing and/or enhancing cartilage injury repair based on chemically modified mRNA coding protein factor
WO2022271776A1 (en) 2021-06-22 2022-12-29 Modernatx, Inc. Polynucleotides encoding uridine diphosphate glycosyltransferase 1 family, polypeptide a1 for the treatment of crigler-najjar syndrome
WO2023007373A1 (en) 2021-07-26 2023-02-02 Crispr Therapeutics Ag Methods for manufacturing genetically engineered car-t cells
CN113651865A (en) * 2021-08-19 2021-11-16 上海兆维科技发展有限公司 Method for removing tetrabutylammonium fluoride
CA3230031A1 (en) 2021-09-03 2023-03-09 Patrick Baumhof Novel lipid nanoparticles for delivery of nucleic acids
US20230128917A1 (en) 2021-09-14 2023-04-27 Crispr Therapeutics Ag Genetically engineered immune cells having a disrupted cd83 gene
WO2023056044A1 (en) 2021-10-01 2023-04-06 Modernatx, Inc. Polynucleotides encoding relaxin for the treatment of fibrosis and/or cardiovascular disease
WO2023069498A1 (en) 2021-10-22 2023-04-27 Senda Biosciences, Inc. Mrna vaccine composition
WO2023073228A1 (en) 2021-10-29 2023-05-04 CureVac SE Improved circular rna for expressing therapeutic proteins
WO2023077170A1 (en) 2021-11-01 2023-05-04 Modernatx, Inc. Polynucleotides encoding integrin beta-6 and methods of use thereof
WO2023084399A1 (en) 2021-11-09 2023-05-19 Crispr Therapeutics Ag Genetically engineered immune cells expressing masked chimeric antigen receptors specific to protein tyrosine kinase 7
WO2023096858A1 (en) 2021-11-23 2023-06-01 Senda Biosciences, Inc. A bacteria-derived lipid composition and use thereof
WO2023099884A1 (en) 2021-12-01 2023-06-08 Mina Therapeutics Limited Pax6 sarna compositions and methods of use
WO2023107999A2 (en) 2021-12-08 2023-06-15 Modernatx, Inc. Herpes simplex virus mrna vaccines
WO2023111913A1 (en) 2021-12-15 2023-06-22 Crispr Therapeutics Ag Engineered anti-liv1 cell with regnase-1 and/or tgfbrii disruption
WO2023122080A1 (en) 2021-12-20 2023-06-29 Senda Biosciences, Inc. Compositions comprising mrna and lipid reconstructed plant messenger packs
US20230346836A1 (en) 2021-12-22 2023-11-02 Crispr Therapeutics Ag Genetically engineered t cells with disrupted casitas b-lineage lymphoma proto-oncogene-b (cblb) and uses thereof
WO2023122331A2 (en) * 2021-12-23 2023-06-29 Optimeos Life Sciences, Inc. Nanoparticles and methods of production for the encapsulation of nucleic acids
US20230263906A1 (en) 2022-01-10 2023-08-24 Selecta Biosciences, Inc. High affinity il-2 receptor agonists and synthetic nanocarrier dose sparing
WO2023144330A1 (en) 2022-01-28 2023-08-03 CureVac SE Nucleic acid encoded transcription factor inhibitors
WO2023159197A1 (en) 2022-02-18 2023-08-24 Modernatx, Inc. Mrnas encoding checkpoint cancer vaccines and uses thereof
WO2023166425A1 (en) 2022-03-01 2023-09-07 Crispr Therapeutics Ag Methods and compositions for treating angiopoietin-like 3 (angptl3) related conditions
WO2023170435A1 (en) 2022-03-07 2023-09-14 Mina Therapeutics Limited Il10 sarna compositions and methods of use
US20230322884A1 (en) 2022-03-09 2023-10-12 Selecta Biosciences, Inc. Immunosuppressant in combination with high affinity il-2 receptor agonists and related dosing
WO2023173098A1 (en) 2022-03-11 2023-09-14 New England Biolabs, Inc. Immobilized enzyme compositions and methods
TW202403046A (en) 2022-03-21 2024-01-16 瑞士商Crispr治療公司 Methods and compositions for treating lipoprotein-related diseases
US20230303713A1 (en) 2022-03-23 2023-09-28 Crispr Therapeutics Ag Anti-cd19 car-t cells with multiple gene edits and therapeutic uses thereof
WO2023180967A1 (en) 2022-03-23 2023-09-28 Crispr Therapeutics Ag Anti-cd83 car-t cells with regnase-1 and/or tgfbrii disruption
WO2023183568A1 (en) 2022-03-25 2023-09-28 Selecta Biosciences, Inc. Synthetic nanocarriers comprising an immunosuppressant in combination with high affinity il-2 receptor agonists and anti-igm agents
WO2023183909A2 (en) 2022-03-25 2023-09-28 Modernatx, Inc. Polynucleotides encoding fanconi anemia, complementation group proteins for the treatment of fanconi anemia
CN114736260A (en) * 2022-03-29 2022-07-12 上海吉量医药工程有限公司 Preparation method of nucleotide triphosphate
WO2023185812A1 (en) * 2022-03-29 2023-10-05 上海吉量医药工程有限公司 Method for preparing acetylated cytosine triphosphate and intermediate thereof
WO2023187127A1 (en) 2022-03-31 2023-10-05 Enterome S.A. Antigenic peptides for prevention and treatment of cancer
WO2023196399A1 (en) 2022-04-06 2023-10-12 Modernatx, Inc. Lipid nanoparticles and polynucleotides encoding argininosuccinate lyase for the treatment of argininosuccinic aciduria
WO2023196950A1 (en) 2022-04-07 2023-10-12 New England Biolabs, Inc. Methods of higher fidelity rna synthesis
WO2023196566A1 (en) 2022-04-08 2023-10-12 Selecta Biosciences, Inc. High affinity il-2 receptor agonists and immunosuppressants to enhance immune tolerance
WO2023223183A1 (en) 2022-05-16 2023-11-23 Crispr Therapeutics Ag Picornaviral vectors for gene editing
WO2023225665A1 (en) 2022-05-19 2023-11-23 Lyell Immunopharma, Inc. Polynucleotides targeting nr4a3 and uses thereof
WO2023227608A1 (en) 2022-05-25 2023-11-30 Glaxosmithkline Biologicals Sa Nucleic acid based vaccine encoding an escherichia coli fimh antigenic polypeptide
US20240041757A1 (en) 2022-06-17 2024-02-08 Crispr Therapeutics Ag LIPID NANOPARTICLES (LNPs)-BASED OCULAR DELIVERY
WO2023248110A1 (en) 2022-06-20 2023-12-28 Crispr Therapeutics Ag Base editing proteins and uses thereof
WO2023248145A1 (en) 2022-06-21 2023-12-28 Crispr Therapeutics Ag Compositions and methods for treating human immunodeficiency virus
WO2023248147A1 (en) 2022-06-21 2023-12-28 Crispr Therapeutics Ag Methods and compositions for in vivo editing of stem cells
WO2024002985A1 (en) 2022-06-26 2024-01-04 BioNTech SE Coronavirus vaccine
WO2024003786A1 (en) 2022-06-29 2024-01-04 Crispr Therapeutics Ag Chimeric antigen receptor targeting gpc-3 and immune cells expressing such for therapeutic uses
WO2024023246A1 (en) 2022-07-28 2024-02-01 Philogen S.P.A. Antibody binding to pd1
WO2024023802A2 (en) 2022-07-29 2024-02-01 Crispr Therapeutics Ag Genetically engineered immune cells having disrupted transporter associated with antigen processing-2 (tap-2) gene
WO2024023804A2 (en) 2022-07-29 2024-02-01 Crispr Therapeutics Ag Genetically engineered immune cells having disrupted transporter associated with antigen processing binding protein (tapbp) gene
WO2024023801A2 (en) 2022-07-29 2024-02-01 Crispr Therapeutics Ag Genetically engineered immune cells having disrupted transporter associated with antigen processing-1 (tap-1) gene
WO2024033362A1 (en) 2022-08-08 2024-02-15 Atb Therapeutics Humanized antibodies against cd79b
WO2024050483A1 (en) 2022-08-31 2024-03-07 Modernatx, Inc. Variant strain-based coronavirus vaccines and uses thereof
WO2024062388A2 (en) 2022-09-20 2024-03-28 Crispr Therapeutics Ag Genetically engineered immune cells expressing chimeric antigen receptor targeting cd20
CN116284189B (en) * 2023-05-16 2023-08-08 深圳赛陆医疗科技有限公司 Method for synthesizing MANT-GTPγS

Family Cites Families (1117)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2008526A (en) 1932-11-03 1935-07-16 Wappler Frederick Charles Method and means for treating living tissue
US3467096A (en) 1966-04-12 1969-09-16 Ferrell S Horn Multiple hypodermic syringe arrangement
BE757653A (en) 1969-10-21 1971-04-16 Ugine Kuhlmann NEW DRUGS DERIVED FROM NUCLEIC ACIDS AND METHODS FOR THEIR PREPARATION
BE786542A (en) 1971-07-22 1973-01-22 Dow Corning SUCTION DEVICE ALLOWING TO OBTAIN CELL SAMPLES
US3906092A (en) 1971-11-26 1975-09-16 Merck & Co Inc Stimulation of antibody response
US4270537A (en) 1979-11-19 1981-06-02 Romaine Richard A Automatic hypodermic syringe
US4399216A (en) 1980-02-25 1983-08-16 The Trustees Of Columbia University Processes for inserting DNA into eucaryotic cells and for producing proteinaceous materials
US4500707A (en) 1980-02-29 1985-02-19 University Patents, Inc. Nucleosides useful in the preparation of polynucleotides
US5132418A (en) 1980-02-29 1992-07-21 University Patents, Inc. Process for preparing polynucleotides
US4458066A (en) 1980-02-29 1984-07-03 University Patents, Inc. Process for preparing polynucleotides
US4411657A (en) 1980-05-19 1983-10-25 Anibal Galindo Hypodermic needle
US4415732A (en) 1981-03-27 1983-11-15 University Patents, Inc. Phosphoramidite compounds and processes
US4668777A (en) 1981-03-27 1987-05-26 University Patents, Inc. Phosphoramidite nucleoside compounds
US4973679A (en) 1981-03-27 1990-11-27 University Patents, Inc. Process for oligonucleo tide synthesis using phosphormidite intermediates
US4373071A (en) 1981-04-30 1983-02-08 City Of Hope Research Institute Solid-phase synthesis of polynucleotides
US4401796A (en) 1981-04-30 1983-08-30 City Of Hope Research Institute Solid-phase synthesis of polynucleotides
US4474569A (en) 1982-06-28 1984-10-02 Denver Surgical Developments, Inc. Antenatal shunt
US4588585A (en) 1982-10-19 1986-05-13 Cetus Corporation Human recombinant cysteine depleted interferon-β muteins
US4737462A (en) 1982-10-19 1988-04-12 Cetus Corporation Structural genes, plasmids and transformed cells for producing cysteine depleted muteins of interferon-β
US4816567A (en) 1983-04-08 1989-03-28 Genentech, Inc. Recombinant immunoglobin preparations
US4579849A (en) 1984-04-06 1986-04-01 Merck & Co., Inc. N-alkylguanine acyclonucleosides as antiviral agents
US4957735A (en) 1984-06-12 1990-09-18 The University Of Tennessee Research Corporation Target-sensitive immunoliposomes- preparation and characterization
US4959314A (en) 1984-11-09 1990-09-25 Cetus Corporation Cysteine-depleted muteins of biologically active proteins
US5036006A (en) 1984-11-13 1991-07-30 Cornell Research Foundation, Inc. Method for transporting substances into living cells and tissues and apparatus therefor
US5116943A (en) 1985-01-18 1992-05-26 Cetus Corporation Oxidation-resistant muteins of Il-2 and other protein
CA1288073C (en) 1985-03-07 1991-08-27 Paul G. Ahlquist Rna transformation vector
US4596556A (en) 1985-03-25 1986-06-24 Bioject, Inc. Hypodermic injection apparatus
EP0204401A1 (en) 1985-04-09 1986-12-10 Biogen, Inc. Method of improving the yield of polypeptides produced in a host cell by stabilizing mRNA
US5017691A (en) 1986-07-03 1991-05-21 Schering Corporation Mammalian interleukin-4
US5153319A (en) 1986-03-31 1992-10-06 University Patents, Inc. Process for preparing polynucleotides
US4879111A (en) 1986-04-17 1989-11-07 Cetus Corporation Treatment of infections with lymphokines
CA1283827C (en) 1986-12-18 1991-05-07 Giorgio Cirelli Appliance for injection of liquid formulations
GB8704027D0 (en) 1987-02-20 1987-03-25 Owen Mumford Ltd Syringe needle combination
US4790824A (en) 1987-06-19 1988-12-13 Bioject, Inc. Non-invasive hypodermic injection device
US4941880A (en) 1987-06-19 1990-07-17 Bioject, Inc. Pre-filled ampule and non-invasive hypodermic injection device assembly
US4940460A (en) 1987-06-19 1990-07-10 Bioject, Inc. Patient-fillable and non-invasive hypodermic injection device assembly
WO1989001050A1 (en) 1987-07-31 1989-02-09 The Board Of Trustees Of The Leland Stanford Junior University Selective amplification of target polynucleotide sequences
US6090591A (en) 1987-07-31 2000-07-18 The Board Of Trustees Of The Leland Stanford Junior University Selective amplification of target polynucleotide sequences
WO1989006700A1 (en) 1988-01-21 1989-07-27 Genentech, Inc. Amplification and detection of nucleic acid sequences
CA1340807C (en) 1988-02-24 1999-11-02 Lawrence T. Malek Nucleic acid amplification process
JP2650159B2 (en) 1988-02-24 1997-09-03 アクゾ・ノベル・エヌ・ベー Nucleic acid amplification method
DE68923027D1 (en) 1988-03-04 1995-07-20 Cancer Res Campaign Tech Antigens.
US5339163A (en) 1988-03-16 1994-08-16 Canon Kabushiki Kaisha Automatic exposure control device using plural image plane detection areas
AU631545B2 (en) 1988-04-15 1992-12-03 Protein Design Labs, Inc. Il-2 receptor-specific chimeric antibodies
US5168038A (en) 1988-06-17 1992-12-01 The Board Of Trustees Of The Leland Stanford Junior University In situ transcription in cells and tissues
US5021335A (en) 1988-06-17 1991-06-04 The Board Of Trustees Of The Leland Stanford Junior University In situ transcription in cells and tissues
US5130238A (en) 1988-06-24 1992-07-14 Cangene Corporation Enhanced nucleic acid amplification process
US5759802A (en) 1988-10-26 1998-06-02 Tonen Corporation Production of human serum alubumin A
FR2638359A1 (en) 1988-11-03 1990-05-04 Tino Dalto SYRINGE GUIDE WITH ADJUSTMENT OF DEPTH DEPTH OF NEEDLE IN SKIN
US5047524A (en) 1988-12-21 1991-09-10 Applied Biosystems, Inc. Automated system for polynucleotide synthesis and purification
US5262530A (en) 1988-12-21 1993-11-16 Applied Biosystems, Inc. Automated system for polynucleotide synthesis and purification
US5530101A (en) 1988-12-28 1996-06-25 Protein Design Labs, Inc. Humanized immunoglobulins
US6867195B1 (en) 1989-03-21 2005-03-15 Vical Incorporated Lipid-mediated polynucleotide administration to reduce likelihood of subject's becoming infected
DE69032284T2 (en) 1989-03-21 1998-10-08 Vical Inc EXPRESSION OF EXOGENOUS POLYNUCLEOTIDE SEQUENCES IN VERTEBLE
US6673776B1 (en) 1989-03-21 2004-01-06 Vical Incorporated Expression of exogenous polynucleotide sequences in a vertebrate, mammal, fish, bird or human
US5693622A (en) 1989-03-21 1997-12-02 Vical Incorporated Expression of exogenous polynucleotide sequences cardiac muscle of a mammal
US5703055A (en) 1989-03-21 1997-12-30 Wisconsin Alumni Research Foundation Generation of antibodies through lipid mediated DNA delivery
US6214804B1 (en) 1989-03-21 2001-04-10 Vical Incorporated Induction of a protective immune response in a mammal by injecting a DNA sequence
US5012818A (en) 1989-05-04 1991-05-07 Joishy Suresh K Two in one bone marrow surgical needle
IE66597B1 (en) 1989-05-10 1996-01-24 Akzo Nv Method for the synthesis of ribonucleic acid (RNA)
US5240855A (en) 1989-05-12 1993-08-31 Pioneer Hi-Bred International, Inc. Particle gun
US5332671A (en) 1989-05-12 1994-07-26 Genetech, Inc. Production of vascular endothelial cell growth factor and DNA encoding same
CA2020958C (en) 1989-07-11 2005-01-11 Daniel L. Kacian Nucleic acid sequence amplification methods
US5545522A (en) 1989-09-22 1996-08-13 Van Gelder; Russell N. Process for amplifying a target polynucleotide sequence using a single primer-promoter complex
US5208020A (en) 1989-10-25 1993-05-04 Immunogen Inc. Cytotoxic agents comprising maytansinoids and their therapeutic use
NO904633L (en) 1989-11-09 1991-05-10 Molecular Diagnostics Inc AMPLIFICATION OF NUCLEIC ACIDS BY TRANSCRIPABLE HAIRNEL PROBE.
US5215899A (en) 1989-11-09 1993-06-01 Miles Inc. Nucleic acid amplification employing ligatable hairpin probe and transcription
US5312335A (en) 1989-11-09 1994-05-17 Bioject Inc. Needleless hypodermic injection device
US5064413A (en) 1989-11-09 1991-11-12 Bioject, Inc. Needleless hypodermic injection device
US5633076A (en) 1989-12-01 1997-05-27 Pharming Bv Method of producing a transgenic bovine or transgenic bovine embryo
US5697901A (en) 1989-12-14 1997-12-16 Elof Eriksson Gene delivery by microneedle injection
US5194370A (en) 1990-05-16 1993-03-16 Life Technologies, Inc. Promoter ligation activated transcription amplification of nucleic acid sequences
CA2087256A1 (en) 1990-07-25 1992-01-26 Jerry L. Ruth Circular extension for generating multiple nucleic acid complements
US5190521A (en) 1990-08-22 1993-03-02 Tecnol Medical Products, Inc. Apparatus and method for raising a skin wheal and anesthetizing skin
US6140496A (en) 1990-10-09 2000-10-31 Benner; Steven Albert Precursors for deoxyribonucleotides containing non-standard nucleosides
US5527288A (en) 1990-12-13 1996-06-18 Elan Medical Technologies Limited Intradermal drug delivery device and method for intradermal delivery of drugs
US6100024A (en) 1991-02-08 2000-08-08 Promega Corporation Methods and compositions for nucleic acid detection by target extension and probe amplification
ES2156859T5 (en) 1991-03-18 2008-03-16 New York University SPECIFIC MONOCLONAL AND CHEMICAL ANTIBODIES FOR THE HUMAN TUMOR NECROSIS FACTOR.
US5426180A (en) 1991-03-27 1995-06-20 Research Corporation Technologies, Inc. Methods of making single-stranded circular oligonucleotides
RU2139351C1 (en) 1991-04-25 1999-10-10 Чугаи Сейяку Кабусики Кайся H- and l-chains of monoclonal antibody pm-1 (monat) to human il-6r receptor and their v-region, modified monat, its h- and l-chains and their v-regions, cdr-sequence, dna-sequence
US5169766A (en) 1991-06-14 1992-12-08 Life Technologies, Inc. Amplification of nucleic acid molecules
US5199441A (en) 1991-08-20 1993-04-06 Hogle Hugh H Fine needle aspiration biopsy apparatus and method
GB9118204D0 (en) 1991-08-23 1991-10-09 Weston Terence E Needle-less injector
SE9102652D0 (en) 1991-09-13 1991-09-13 Kabi Pharmacia Ab INJECTION NEEDLE ARRANGEMENT
US5298422A (en) 1991-11-06 1994-03-29 Baylor College Of Medicine Myogenic vector systems
US5824307A (en) 1991-12-23 1998-10-20 Medimmune, Inc. Human-murine chimeric antibodies against respiratory syncytial virus
JPH07503372A (en) 1992-01-23 1995-04-13 バイカル・インコーポレイテッド In vitro gene transfer
US5328483A (en) 1992-02-27 1994-07-12 Jacoby Richard M Intradermal injection device with medication and needle guard
JP3368603B2 (en) 1992-02-28 2003-01-20 オリンパス光学工業株式会社 Gene therapy treatment device
ES2149768T3 (en) 1992-03-25 2000-11-16 Immunogen Inc CONJUGATES OF BINDING AGENTS OF CELLS DERIVED FROM CC-1065.
US6174666B1 (en) 1992-03-27 2001-01-16 The United States Of America As Represented By The Department Of Health And Human Services Method of eliminating inhibitory/instability regions from mRNA
US6132419A (en) 1992-05-22 2000-10-17 Genetronics, Inc. Electroporetic gene and drug therapy
US5514545A (en) 1992-06-11 1996-05-07 Trustees Of The University Of Pennsylvania Method for characterizing single cells based on RNA amplification for diagnostics and therapeutics
US6670178B1 (en) 1992-07-10 2003-12-30 Transkaryotic Therapies, Inc. In Vivo production and delivery of insulinotropin for gene therapy
US5383851A (en) 1992-07-24 1995-01-24 Bioject Inc. Needleless hypodermic injection device
ATE152180T1 (en) 1992-07-31 1997-05-15 Behringwerke Ag METHOD FOR INTRODUCING DEFINED SEQUENCES AT THE 3' END OF POLYNUCLEOTIDES
US5273525A (en) 1992-08-13 1993-12-28 Btx Inc. Injection and electroporation apparatus for drug and gene delivery
US5569189A (en) 1992-09-28 1996-10-29 Equidyne Systems, Inc. hypodermic jet injector
US5334144A (en) 1992-10-30 1994-08-02 Becton, Dickinson And Company Single use disposable needleless injector
WO1994009838A1 (en) 1992-11-04 1994-05-11 Denver Biomaterials, Inc. Apparatus for removal of pleural effusion fluid
DE122004000036I1 (en) 1992-11-13 2005-07-07 Biogen Idec Inc Therapeutic use of chimeric and labeled antibodies to human B lymphocyte limited differentiation antigen for the treatment of B-cell lymphoma.
US5736137A (en) 1992-11-13 1998-04-07 Idec Pharmaceuticals Corporation Therapeutic application of chimeric and radiolabeled antibodies to human B lymphocyte restricted differentiation antigen for treatment of B cell lymphoma
SG44845A1 (en) 1993-01-12 1997-12-19 Biogen Inc Recombitant anti-vla4 antibody molecules
FR2703253B1 (en) 1993-03-30 1995-06-23 Centre Nat Rech Scient APPLICATOR OF ELECTRIC PULSES FOR TREATING BIOLOGICAL TISSUES.
US7135312B2 (en) 1993-04-15 2006-11-14 University Of Rochester Circular DNA vectors for synthesis of RNA and DNA
US5773244A (en) 1993-05-19 1998-06-30 Regents Of The University Of California Methods of making circular RNA
US5851829A (en) 1993-07-16 1998-12-22 Dana-Farber Cancer Institute Method of intracellular binding of target molecules
US5672491A (en) 1993-09-20 1997-09-30 The Leland Stanford Junior University Recombinant production of novel polyketides
US6432711B1 (en) 1993-11-03 2002-08-13 Diacrin, Inc. Embryonic stem cells capable of differentiating into desired cell lines
US6096503A (en) 1993-11-12 2000-08-01 The Scripps Research Institute Method for simultaneous identification of differentially expresses mRNAs and measurement of relative concentrations
US7435802B2 (en) 1994-01-25 2008-10-14 Elan Pharaceuticals, Inc. Humanized anti-VLA4 immunoglobulins
US5840299A (en) 1994-01-25 1998-11-24 Athena Neurosciences, Inc. Humanized antibodies against leukocyte adhesion molecule VLA-4
ATE272113T1 (en) 1994-02-16 2004-08-15 Crucell Holland Bv MELANOMA-ASSOCIATED ANTIGENS, EPITOPES THEREOF AND VACCINES AGAINST MELANOMA
WO1995024176A1 (en) 1994-03-07 1995-09-14 Bioject, Inc. Ampule filling device
IL112820A0 (en) 1994-03-07 1995-05-26 Merck & Co Inc Coordinate in vivo gene expression
US5466220A (en) 1994-03-08 1995-11-14 Bioject, Inc. Drug vial mixing and transfer device
US5965720A (en) 1994-03-18 1999-10-12 Lynx Therapeutics, Inc. Oligonucleotide N3'→P5' phosphoramidates
WO1995026204A1 (en) 1994-03-25 1995-10-05 Isis Pharmaceuticals, Inc. Immune stimulation by phosphorothioate oligonucleotide analogs
US5457041A (en) 1994-03-25 1995-10-10 Science Applications International Corporation Needle array and method of introducing biological substances into living cells using the needle array
US6074642A (en) 1994-05-02 2000-06-13 Alexion Pharmaceuticals, Inc. Use of antibodies specific to human complement component C5 for the treatment of glomerulonephritis
RU2201963C2 (en) 1994-05-18 2003-04-10 Плант Тек Биотехнологи Гмбх Форшунг Унд Энтвиклунг DNA SEQUENCE (VARIANTS, RECOMBINANT DNA, PROTEIN, METHOD OF PROTEIN PREPARING, METHOD OF MICROORGANISM PREPARING, METHOD OF FUNGUS CELL PREPARING, METHOD OF PREPARING LINEAR α-1,4-GLUCANES AND/OR FRUCTOSE AND METHOD OF PREPARING LINEAR α-1,4-GLUCANES AND/OR FRUCTOSE IN VITRO
JPH10501136A (en) 1994-06-02 1998-02-03 カイロン コーポレイション Nucleic acid immunization using a virus-based infection / transfection system
GB9412230D0 (en) 1994-06-17 1994-08-10 Celltech Ltd Interleukin-5 specific recombiant antibodies
US6239116B1 (en) 1994-07-15 2001-05-29 University Of Iowa Research Foundation Immunostimulatory nucleic acid molecules
WO1996004925A1 (en) 1994-08-12 1996-02-22 Immunomedics, Inc. Immunoconjugates and humanized antibodies specific for b-cell lymphoma and leukemia cells
US5641665A (en) 1994-11-28 1997-06-24 Vical Incorporated Plasmids suitable for IL-2 expression
US5665545A (en) 1994-11-28 1997-09-09 Akzo Nobel N.V. Terminal repeat amplification method
US5588960A (en) 1994-12-01 1996-12-31 Vidamed, Inc. Transurethral needle delivery device with cystoscope and method for treatment of urinary incontinence
US5807718A (en) 1994-12-02 1998-09-15 The Scripps Research Institute Enzymatic DNA molecules
ES2294786T3 (en) 1995-01-06 2008-04-01 Plant Research International B.V. DNA SEQUENCES THAT CODIFY ENZYMES THAT SYNTHEIZE CARBOHYDRATE POLYMERS AND METHOD TO PRODUCE TRANSGENIC PLANTS.
US5599302A (en) 1995-01-09 1997-02-04 Medi-Ject Corporation Medical injection system and method, gas spring thereof and launching device using gas spring
US5795587A (en) 1995-01-23 1998-08-18 University Of Pittsburgh Stable lipid-comprising drug delivery complexes and methods for their production
US5824497A (en) 1995-02-10 1998-10-20 Mcmaster University High efficiency translation of mRNA molecules
EP0727187B1 (en) 1995-02-15 2003-08-06 Joseph Eldor Multiple hole spinal needle
US5707807A (en) 1995-03-28 1998-01-13 Research Development Corporation Of Japan Molecular indexing for expressed gene analysis
US5869230A (en) 1995-03-30 1999-02-09 Beth Israel Hospital Association Gene transfer into the kidney
US5986054A (en) 1995-04-28 1999-11-16 The Hospital For Sick Children, Hsc Research And Development Limited Partnership Genetic sequences and proteins related to alzheimer's disease
FR2733762B1 (en) 1995-05-02 1997-08-01 Genset Sa METHOD FOR THE SPECIFIC COUPLING OF THE HAIR OF THE 5 'END OF A RNAM FRAGMENT AND PREPARATION OF RNAM AND COMPLETE DNA
US5700642A (en) 1995-05-22 1997-12-23 Sri International Oligonucleotide sizing using immobilized cleavable primers
US5730723A (en) 1995-10-10 1998-03-24 Visionary Medical Products Corporation, Inc. Gas pressured needle-less injection device and method
US6111095A (en) 1995-06-07 2000-08-29 Merck & Co., Inc. Capped synthetic RNA, analogs, and aptamers
US6051429A (en) 1995-06-07 2000-04-18 Life Technologies, Inc. Peptide-enhanced cationic lipid transfections
US5889136A (en) 1995-06-09 1999-03-30 The Regents Of The University Of Colorado Orthoester protecting groups in RNA synthesis
US5766903A (en) 1995-08-23 1998-06-16 University Technology Corporation Circular RNA and uses thereof
US6265389B1 (en) 1995-08-31 2001-07-24 Alkermes Controlled Therapeutics, Inc. Microencapsulation and sustained release of oligonucleotides
AU7073096A (en) 1995-09-19 1997-04-09 University Of Massachusetts Inhibited biological degradation of oligodeoxynucleotides
US5830879A (en) 1995-10-02 1998-11-03 St. Elizabeth's Medical Center Of Boston, Inc. Treatment of vascular injury using vascular endothelial growth factor
US6265387B1 (en) 1995-10-11 2001-07-24 Mirus, Inc. Process of delivering naked DNA into a hepatocyte via bile duct
US6132988A (en) 1995-10-27 2000-10-17 Takeda Chemical Industries, Ltd. DNA encoding a neuronal cell-specific receptor protein
CU22584A1 (en) 1995-11-17 1999-11-03 Centro Inmunologia Molecular PHARMACEUTICAL COMPOSITIONS CONTAINING A MONOCLONAL ANTIBODY THAT RECOGNIZES THE CD6 HUMAN LEUKOCYTARY DIFFERENTIATION ANTIGEN AND ITS USES FOR THE DIAGNOSIS AND TREATMENT OF PSORIASIS
US6090382A (en) 1996-02-09 2000-07-18 Basf Aktiengesellschaft Human antibodies that bind human TNFα
US5962271A (en) 1996-01-03 1999-10-05 Cloutech Laboratories, Inc. Methods and compositions for generating full-length cDNA having arbitrary nucleotide sequence at the 3'-end
US5893397A (en) 1996-01-12 1999-04-13 Bioject Inc. Medication vial/syringe liquid-transfer apparatus
US6395292B2 (en) 1996-02-02 2002-05-28 Alza Corporation Sustained delivery of an active agent using an implantable system
US6261584B1 (en) 1996-02-02 2001-07-17 Alza Corporation Sustained delivery of an active agent using an implantable system
WO1997030064A1 (en) 1996-02-16 1997-08-21 Stichting Rega Vzw Hexitol containing oligonucleotides and their use in antisense strategies
US6534312B1 (en) 1996-02-22 2003-03-18 Merck & Co., Inc. Vaccines comprising synthetic genes
US6090391A (en) 1996-02-23 2000-07-18 Aviron Recombinant tryptophan mutants of influenza
SE9601245D0 (en) 1996-03-29 1996-03-29 Pharmacia Ab Chimeric superantigens and their use
US6300487B1 (en) 1996-03-19 2001-10-09 Cell Therapuetics, Inc. Mammalian lysophosphatidic acid acyltransferase
TW517061B (en) 1996-03-29 2003-01-11 Pharmacia & Amp Upjohn Ab Modified/chimeric superantigens and their use
GB9607549D0 (en) 1996-04-11 1996-06-12 Weston Medical Ltd Spring-powered dispensing device
US5712127A (en) 1996-04-29 1998-01-27 Genescape Inc. Subtractive amplification
US5853719A (en) 1996-04-30 1998-12-29 Duke University Methods for treating cancers and pathogen infections using antigen-presenting cells loaded with RNA
ES2331441T3 (en) 1996-06-05 2010-01-04 Novartis Vaccines And Diagnostics, Inc. DNA CODING DP-75 AND A PROCESS FOR USE.
US7329741B2 (en) 1996-06-05 2008-02-12 Chiron Corporation Polynucleotides that hybridize to DP-75 and their use
CA2258568A1 (en) 1996-06-21 1997-12-24 Merck & Co., Inc. Vaccines comprising synthetic genes
JP2002515786A (en) 1996-06-28 2002-05-28 ソントラ メディカル,エル.ピー. Ultrasound enhancement of transdermal delivery
US5939262A (en) 1996-07-03 1999-08-17 Ambion, Inc. Ribonuclease resistant RNA preparation and utilization
US5677124A (en) 1996-07-03 1997-10-14 Ambion, Inc. Ribonuclease resistant viral RNA standards
US7288266B2 (en) 1996-08-19 2007-10-30 United States Of America As Represented By The Secretary, Department Of Health And Human Services Liposome complexes for increased systemic delivery
US5849546A (en) 1996-09-13 1998-12-15 Epicentre Technologies Corporation Methods for using mutant RNA polymerases with reduced discrimination between non-canonical and canonical nucleoside triphosphates
US6114148C1 (en) 1996-09-20 2012-05-01 Gen Hospital Corp High level expression of proteins
DK0932678T4 (en) 1996-09-24 2010-07-12 Genentech Inc A family of genes encoding apoptosis-related peptides, peptides encoded therein, and methods for their use
US6214966B1 (en) 1996-09-26 2001-04-10 Shearwater Corporation Soluble, degradable poly(ethylene glycol) derivatives for controllable release of bound molecules into solution
US6610661B1 (en) 1996-10-11 2003-08-26 The Regents Of The University Of California Immunostimulatory polynucleotide/immunomodulatory molecule conjugates
EP0839912A1 (en) 1996-10-30 1998-05-06 Instituut Voor Dierhouderij En Diergezondheid (Id-Dlo) Infectious clones of RNA viruses and vaccines and diagnostic assays derived thereof
GB9623051D0 (en) 1996-11-06 1997-01-08 Schacht Etienne H Delivery of DNA to target cells in biological systems
US5980887A (en) 1996-11-08 1999-11-09 St. Elizabeth's Medical Center Of Boston Methods for enhancing angiogenesis with endothelial progenitor cells
US5759179A (en) 1996-12-31 1998-06-02 Johnson & Johnson Medical, Inc. Needle and valve assembly for use with a catheter
CN1238366C (en) 1997-01-21 2006-01-25 综合医院公司 Selection of proteins using RNA-protein fusions
EP0855184A1 (en) 1997-01-23 1998-07-29 Grayson B. Dr. Lipford Pharmaceutical composition comprising a polynucleotide and an antigen especially for vaccination
US6251665B1 (en) 1997-02-07 2001-06-26 Cem Cezayirli Directed maturation of stem cells and production of programmable antigen presenting dentritic cells therefrom
US6696291B2 (en) 1997-02-07 2004-02-24 Merck & Co., Inc. Synthetic HIV gag genes
US6228640B1 (en) 1997-02-07 2001-05-08 Cem Cezayirli Programmable antigen presenting cell of CD34 lineage
EP0969862B1 (en) 1997-02-07 2006-10-18 Merck & Co., Inc. Synthetic hiv gag genes
US6406705B1 (en) 1997-03-10 2002-06-18 University Of Iowa Research Foundation Use of nucleic acids containing unmethylated CpG dinucleotide as an adjuvant
US6306393B1 (en) 1997-03-24 2001-10-23 Immunomedics, Inc. Immunotherapy of B-cell malignancies using anti-CD22 antibodies
US6261281B1 (en) 1997-04-03 2001-07-17 Electrofect As Method for genetic immunization and introduction of molecules into skeletal muscle and immune cells
US5914269A (en) 1997-04-04 1999-06-22 Isis Pharmaceuticals, Inc. Oligonucleotide inhibition of epidermal growth factor receptor expression
AU6972798A (en) 1997-04-18 1998-11-13 University Of Medicine And Dentistry Of New Jersey Inhibition of hiv-1 replication by a tat rna-binding domain peptide analog
US5958688A (en) 1997-04-28 1999-09-28 The Trustees Of The University Of Pennsylvania Characterization of mRNA patterns in neurites and single cells for medical diagnosis and therapeutics
US6235883B1 (en) 1997-05-05 2001-05-22 Abgenix, Inc. Human monoclonal antibodies to epidermal growth factor receptor
US5989911A (en) 1997-05-09 1999-11-23 University Of Massachusetts Site-specific synthesis of pseudouridine in RNA
US5993412A (en) 1997-05-19 1999-11-30 Bioject, Inc. Injection apparatus
US6124091A (en) 1997-05-30 2000-09-26 Research Corporation Technologies, Inc. Cell growth-controlling oligonucleotides
US6589940B1 (en) 1997-06-06 2003-07-08 Dynavax Technologies Corporation Immunostimulatory oligonucleotides, compositions thereof and methods of use thereof
ATE432348T1 (en) 1997-06-06 2009-06-15 Univ California INHIBITORS OF IMMUNO-STIMULATIVE DNA SEQUENCE ACTIVITY
EP1012331B1 (en) 1997-07-01 2006-03-29 Isis Pharmaceuticals, Inc. Compositions and methods for the delivery of oligonucleotides via the alimentary canal
US5994511A (en) 1997-07-02 1999-11-30 Genentech, Inc. Anti-IgE antibodies and methods of improving polypeptides
NZ502745A (en) 1997-07-21 2003-02-28 Pharmacia & Upjohn Ab Use of superantigen conjugates for the directed cytolysis of target cells
AU8763898A (en) 1997-07-31 1999-02-22 St. Elizabeth's Medical Center Of Boston, Inc. Method for the treatment of grafts
WO1999013896A1 (en) 1997-09-18 1999-03-25 The Trustees Of The University Of Pennsylvania Attenuated vif dna immunization cassettes for genetic vaccines
EP2292771A3 (en) 1997-09-19 2011-07-27 Life Technologies Corporation Sense mRNA therapy
US6004573A (en) 1997-10-03 1999-12-21 Macromed, Inc. Biodegradable low molecular weight triblock poly(lactide-co-glycolide) polyethylene glycol copolymers having reverse thermal gelation properties
JP2001519162A (en) 1997-10-07 2001-10-23 ユニバーシティ・オブ・メリーランド・バイオテクノロジー・インスティチュート Method for introducing and expressing RNA in animal cells
BR9812945A (en) 1997-10-20 2000-08-08 Genzyme Transgenics Corp Modified nucleic acid sequences and processes to increase mRNA levels and expression of cellular systems
US6019747A (en) 1997-10-21 2000-02-01 I-Flow Corporation Spring-actuated infusion syringe
JP2001520889A (en) 1997-10-24 2001-11-06 バレンティス,インコーポレイティド Methods for preparing polynucleotide transfection complexes
ATE550042T1 (en) 1997-11-20 2012-04-15 Vical Inc TREATMENT OF CANCER USING CYTOKINE-EXPRESSING POLYNUCLEOTIDES AND COMPOSITIONS THEREOF
US7655777B2 (en) 1997-11-24 2010-02-02 Monsanto Technology Llc Nucleic acid molecules associated with the tocopherol pathway
US6517869B1 (en) 1997-12-12 2003-02-11 Expression Genetics, Inc. Positively charged poly(alpha-(omega-aminoalkyl)lycolic acid) for the delivery of a bioactive agent via tissue and cellular uptake
AR014940A1 (en) 1997-12-12 2001-04-11 Expression Genetics Inc A CARRIER FOR THE RELEASE OF A BIOACTIVE AGENT, A BIODEGRADABLE POLYESTER POLYMER, COPOLIMEROS AND PHARMACEUTICAL COMPOSITIONS THAT CONNECT THEM.
WO1999033982A2 (en) 1997-12-23 1999-07-08 Chiron Corporation Human genes and gene expression products i
US6383811B2 (en) 1997-12-30 2002-05-07 Mirus Corporation Polyampholytes for delivering polyions to a cell
ATE443528T1 (en) 1998-01-05 2009-10-15 Univ Washington INCREASED TRANSPORT USING MEMBRANE-DESTRUCTIVE SUBSTANCES
IT1298087B1 (en) 1998-01-08 1999-12-20 Fiderm S R L DEVICE FOR CHECKING THE PENETRATION DEPTH OF A NEEDLE, IN PARTICULAR APPLICABLE TO A SYRINGE FOR INJECTIONS
WO1999034857A1 (en) 1998-01-08 1999-07-15 Sontra Medical, Inc. Sonophoretic enhanced transdermal transport
US8287483B2 (en) 1998-01-08 2012-10-16 Echo Therapeutics, Inc. Method and apparatus for enhancement of transdermal transport
US6365346B1 (en) 1998-02-18 2002-04-02 Dade Behring Inc. Quantitative determination of nucleic acid amplification products
US5955310A (en) 1998-02-26 1999-09-21 Novo Nordisk Biotech, Inc. Methods for producing a polypeptide in a bacillus cell
US6432925B1 (en) 1998-04-16 2002-08-13 John Wayne Cancer Institute RNA cancer vaccine and methods for its use
US6429301B1 (en) 1998-04-17 2002-08-06 Whitehead Institute For Biomedical Research Use of a ribozyme to join nucleic acids and peptides
GB9808327D0 (en) 1998-04-20 1998-06-17 Chiron Spa Antidiotypic compounds
US6395253B2 (en) 1998-04-23 2002-05-28 The Regents Of The University Of Michigan Microspheres containing condensed polyanionic bioactive agents and methods for their production
EP1816197B1 (en) 1998-04-23 2009-09-16 Takara Bio Inc. Method for synthesizing DNA
US20020064517A1 (en) 1998-04-30 2002-05-30 Stewart A. Cederholm-Williams Fibrin sealant as a transfection/transformation vehicle for gene therapy
US20090208418A1 (en) 2005-04-29 2009-08-20 Innexus Biotechnology Internaltional Ltd. Superantibody synthesis and use in detection, prevention and treatment of disease
EP1083882B1 (en) 1998-05-20 2008-10-15 Expression Genetics, Inc. Poly-l-lysine grafted with lactose or galactose-polyethylene glycol as polymeric gene carrier
US6503231B1 (en) 1998-06-10 2003-01-07 Georgia Tech Research Corporation Microneedle device for transport of molecules across tissue
US7091192B1 (en) 1998-07-01 2006-08-15 California Institute Of Technology Linear cyclodextrin copolymers
WO2000002950A1 (en) 1998-07-13 2000-01-20 Expression Genetics, Inc. Polyester analogue of poly-l-lysine as a soluble, biodegradable gene delivery carrier
CA2337652C (en) 1998-07-13 2013-03-26 Genetronics, Inc. Skin and muscle-targeted gene therapy by pulsed electrical field
US6222030B1 (en) 1998-08-03 2001-04-24 Agilent Technologies, Inc. Solid phase synthesis of oligonucleotides using carbonate protecting groups and alpha-effect nucleophile deprotection
NZ528199A (en) 1998-08-11 2005-06-24 Idec Pharma Corp Combination therapies for B-cell lyphomas comprising administration of anti-CD20 antibody
GB9817662D0 (en) 1998-08-13 1998-10-07 Crocker Peter J Substance delivery
US6924365B1 (en) 1998-09-29 2005-08-02 Transkaryotic Therapies, Inc. Optimized messenger RNA
US20090148906A1 (en) 1998-09-29 2009-06-11 Shire Human Genetic Therapies, Inc. A Delaware Corporation Optimized messenger rna
WO2000026226A1 (en) 1998-11-03 2000-05-11 Yale University Multidomain polynucleotide molecular sensors
AU761844C (en) 1998-11-09 2004-09-23 F. Hoffmann-La Roche Ag Treatment of hematologic malignancies associated with circulating tumor cells using chimeric anti-CD20 antibody
ES2338287T3 (en) 1998-11-09 2010-05-05 Biogen Idec Inc. TREATMENT OF ANTI-CD20 PATIENTS ANTIBODIES RECEIVING TRANSPLANTS OF OSEA MEDULA GRAFT OR MOTHER PERIPHERAL BLOOD CELLS.
WO2000027340A2 (en) 1998-11-12 2000-05-18 The Children's Medical Center Corporation USE OF t-RNA AND FRAGMENTS FOR INHIBITING ANGIOGENESIS AND COMPOSITIONS THEREOF
US6210931B1 (en) 1998-11-30 2001-04-03 The United States Of America As Represented By The Secretary Of Agriculture Ribozyme-mediated synthesis of circular RNA
US20040171980A1 (en) 1998-12-18 2004-09-02 Sontra Medical, Inc. Method and apparatus for enhancement of transdermal transport
JP2002533134A (en) 1998-12-23 2002-10-08 ヒューマン ジノーム サイエンシーズ, インコーポレイテッド Peptidoglycan recognition protein
AU2685200A (en) 1999-02-22 2000-09-14 European Molecular Biology Laboratory Translation system
US6255476B1 (en) 1999-02-22 2001-07-03 Pe Corporation (Ny) Methods and compositions for synthesis of labelled oligonucleotides and analogs on solid-supports
US7629311B2 (en) 1999-02-24 2009-12-08 Edward Lewis Tobinick Methods to facilitate transmission of large molecules across the blood-brain, blood-eye, and blood-nerve barriers
WO2000050006A2 (en) 1999-02-26 2000-08-31 Chiron Corporation Microemulsions with adsorbed macromoelecules and microparticles
CA2369119A1 (en) 1999-03-29 2000-05-25 Statens Serum Institut Nucleotide construct with optimised codons for an hiv genetic vaccine based on a primary, early hiv isolate and synthetic envelope
CA2369293C (en) 1999-04-09 2010-06-08 Dynal Particles As Process for the preparation of monodisperse polymer particles
KR20020011985A (en) 1999-05-07 2002-02-09 파르마솔 게엠베하 Lipid particles on the basis of mixtures of liquid and solid lipids and method for producing same
EP1642596A3 (en) 1999-05-07 2006-04-12 Genentech, Inc. Treatment of autoimmune diseases with antagonists which bind to B cell surface markers
US6346382B1 (en) 1999-06-01 2002-02-12 Vanderbilt University Human carbamyl phosphate synthetase I polymorphism and diagnostic methods related thereto
AU4332399A (en) 1999-06-04 2000-12-28 Cheng-Ming Chuong Rna polymerase chain reaction
US6611707B1 (en) 1999-06-04 2003-08-26 Georgia Tech Research Corporation Microneedle drug delivery device
US6743211B1 (en) 1999-11-23 2004-06-01 Georgia Tech Research Corporation Devices and methods for enhanced microneedle penetration of biological barriers
US6303573B1 (en) 1999-06-07 2001-10-16 The Burnham Institute Heart homing peptides and methods of using same
AU776268B2 (en) 1999-06-08 2004-09-02 Aventis Pasteur Immunostimulant oligonucleotide
AU782160B2 (en) 1999-06-09 2005-07-07 Immunomedics Inc. Immunotherapy of autoimmune disorders using antibodies which target B-cells
US6949245B1 (en) 1999-06-25 2005-09-27 Genentech, Inc. Humanized anti-ErbB2 antibodies and treatment with anti-ErbB2 antibodies
EP1196426A4 (en) 1999-06-30 2003-09-03 Advanced Cell Tech Inc Cytoplasmic transfer to de-differentiate recipient cells
US6514948B1 (en) 1999-07-02 2003-02-04 The Regents Of The University Of California Method for enhancing an immune response
AU783681B2 (en) 1999-07-09 2005-11-24 Wyeth Methods and compositions for preventing the formation of aberrant RNA during transcription of a plasmid sequence
US8557244B1 (en) 1999-08-11 2013-10-15 Biogen Idec Inc. Treatment of aggressive non-Hodgkins lymphoma with anti-CD20 antibody
CA2589418A1 (en) 1999-08-24 2001-03-01 Medarex, Inc. Human ctla-4 antibodies and their uses
US20050112141A1 (en) 2000-08-30 2005-05-26 Terman David S. Compositions and methods for treatment of neoplastic disease
US20040106567A1 (en) 1999-09-07 2004-06-03 Hagstrom James E. Intravascular delivery of non-viral nucleic acid
ATE492644T1 (en) 1999-09-09 2011-01-15 Curevac Gmbh TRANSFER OF MRNA USING POLYCATIONIC COMPOUNDS
AU7398200A (en) 1999-09-17 2001-04-24 Aventis Pasteur Limited Chlamydia antigens and corresponding dna fragments and uses thereof
US6623457B1 (en) 1999-09-22 2003-09-23 Becton, Dickinson And Company Method and apparatus for the transdermal administration of a substance
WO2002064799A2 (en) 1999-09-28 2002-08-22 Transkaryotic Therapies, Inc. Optimized messenger rna
IL148922A0 (en) 1999-10-06 2002-09-12 Quark Biotech Inc Method for enrichment of natural antisense messenger rna
US7060291B1 (en) 1999-11-24 2006-06-13 Transave, Inc. Modular targeted liposomal delivery system
US6613026B1 (en) 1999-12-08 2003-09-02 Scimed Life Systems, Inc. Lateral needle-less injection apparatus and method
US6277974B1 (en) 1999-12-14 2001-08-21 Cogent Neuroscience, Inc. Compositions and methods for diagnosing and treating conditions, disorders, or diseases involving cell death
US6245929B1 (en) 1999-12-20 2001-06-12 General Electric Company Catalyst composition and method for producing diaryl carbonates, using bisphosphines
ATE280188T1 (en) 1999-12-22 2004-11-15 Basell Poliolefine Spa ALPHA-OLEFIN CONTAINING POLYMERIZATION CATALYST SYSTEM CONTAINING AN AROMATIC SILANE
WO2001051092A2 (en) 2000-01-07 2001-07-19 University Of Washington Enhanced transport of agents using membrane disruptive agents
EP1276901A2 (en) 2000-01-13 2003-01-22 Amsterdam Support Diagnostics B.V. A universal nucleic acid amplification system for nucleic acids in a sample
CA2395811A1 (en) 2000-01-31 2001-08-02 Human Genome Sciences, Inc. Nucleic acids, proteins, and antibodies
US6552006B2 (en) 2000-01-31 2003-04-22 The Regents Of The University Of California Immunomodulatory polynucleotides in treatment of an infection by an intracellular pathogen
AU2001238595A1 (en) 2000-02-22 2001-09-03 Shearwater Corporation N-maleimidyl polymer derivatives
SI1481992T1 (en) 2000-02-24 2017-01-31 Washington University St. Louis Humanized antibodies that sequester amyloid beta peptide
ATE511400T1 (en) 2000-03-03 2011-06-15 Genetronics Inc NUCLEIC ACID FORMULATIONS FOR GENE ADMINISTRATION
MXPA02009626A (en) 2000-03-31 2003-05-14 Idec Pharma Corp Combined use of anti cytokine antibodies or antagonists and anti cd20 for the treatment of b cell lymphoma.
WO2001075166A2 (en) 2000-03-31 2001-10-11 Genentech, Inc. Compositions and methods for detecting and quantifying gene expression
US6565572B2 (en) 2000-04-10 2003-05-20 Sdgi Holdings, Inc. Fenestrated surgical screw and method
EP1274720A4 (en) 2000-04-12 2004-08-18 Human Genome Sciences Inc Albumin fusion proteins
US6368801B1 (en) 2000-04-12 2002-04-09 Molecular Staging, Inc. Detection and amplification of RNA using target-mediated ligation of DNA by RNA ligase
US20010046496A1 (en) 2000-04-14 2001-11-29 Brettman Lee R. Method of administering an antibody
US6375972B1 (en) 2000-04-26 2002-04-23 Control Delivery Systems, Inc. Sustained release drug delivery devices, methods of use, and methods of manufacturing thereof
US20040229271A1 (en) 2000-05-19 2004-11-18 Williams Richard B. Compositions and methods for the identification and selection of nucleic acids and polypeptides
WO2001092523A2 (en) 2000-05-30 2001-12-06 Curagen Corporation Human polynucleotides and polypeptides encoded thereby
AU2001275294A1 (en) 2000-06-07 2001-12-17 Biosynexus Incorporated. Immunostimulatory RNA/DNA hybrid molecules
JP2004513616A (en) 2000-06-23 2004-05-13 ワイス・ホールディングズ・コーポレイション Modified morbillivirus protein
US20040005667A1 (en) 2000-07-03 2004-01-08 Giuloi Ratti Immunisation against chlamydia pneumoniae
US6440096B1 (en) 2000-07-14 2002-08-27 Becton, Dickinson And Co. Microdevice and method of manufacturing a microdevice
KR100874552B1 (en) 2000-07-21 2008-12-16 글락소 그룹 리미티드 Codon-Optimized Papilloma Virus Sequences
US6902734B2 (en) 2000-08-07 2005-06-07 Centocor, Inc. Anti-IL-12 antibodies and compositions thereof
US6696038B1 (en) 2000-09-14 2004-02-24 Expression Genetics, Inc. Cationic lipopolymer as biocompatible gene delivery agent
US20040142474A1 (en) 2000-09-14 2004-07-22 Expression Genetics, Inc. Novel cationic lipopolymer as a biocompatible gene delivery agent
WO2002024873A1 (en) 2000-09-20 2002-03-28 Christopher Ralph Franks Stem cell therapy
CA2425152A1 (en) 2000-10-04 2002-04-11 The Trustees Of The University Of Pennsylvania Highly expressible genes
US6998115B2 (en) 2000-10-10 2006-02-14 Massachusetts Institute Of Technology Biodegradable poly(β-amino esters) and uses thereof
US7202226B2 (en) 2000-10-23 2007-04-10 Detroit R & D Augmentation of wound healing by elF-4E mRNA and EGF mRNA
US20030077604A1 (en) 2000-10-27 2003-04-24 Yongming Sun Compositions and methods relating to breast specific genes and proteins
US20020132788A1 (en) 2000-11-06 2002-09-19 David Lewis Inhibition of gene expression by delivery of small interfering RNA to post-embryonic animal cells in vivo
WO2002040545A2 (en) 2000-11-17 2002-05-23 The Government Of The United States, As Represented By The Secretary Of The Department Of Health And Human Services Reduction of the nonspecific animal toxicity of immunotoxins by mutating the framework regions of the fv to lower the isoelectric point
CA2430379A1 (en) 2000-12-07 2002-06-13 Chiron Corporation Endogenous retroviruses up-regulated in prostate cancer
US20020130430A1 (en) 2000-12-29 2002-09-19 Castor Trevor Percival Methods for making polymer microspheres/nanospheres and encapsulating therapeutic proteins and other products
US7708915B2 (en) 2004-05-06 2010-05-04 Castor Trevor P Polymer microspheres/nanospheres and encapsulating therapeutic proteins therein
EP1224943A1 (en) 2001-01-19 2002-07-24 Crucell Holland B.V. Fibronectin as a tumor marker detected by phage antibodies
NZ555567A (en) 2001-01-19 2008-07-31 Vironovative Bv A virus causing respiratory tract illness in susceptible mammals
US20040110191A1 (en) 2001-01-31 2004-06-10 Winkler Matthew M. Comparative analysis of nucleic acids using population tagging
WO2002065093A2 (en) 2001-02-14 2002-08-22 Baylor College Of Medicine Methods and compositions of amplifying rna
US6652886B2 (en) 2001-02-16 2003-11-25 Expression Genetics Biodegradable cationic copolymers of poly (alkylenimine) and poly (ethylene glycol) for the delivery of bioactive agents
DE10109897A1 (en) 2001-02-21 2002-11-07 Novosom Ag Optional cationic liposomes and their use
US7232425B2 (en) 2001-03-02 2007-06-19 Sorenson Development, Inc. Apparatus and method for specific interstitial or subcutaneous diffusion and dispersion of medication
NZ528000A (en) 2001-03-09 2005-09-30 Gene Stream Pty Ltd A construct comprising in operable linkage a polynucleotide that encodes a polypeptide with a half-life of less than three hours
JP2002262882A (en) 2001-03-12 2002-09-17 Nisshinbo Ind Inc Method for amplifying rna
FR2822164B1 (en) 2001-03-19 2004-06-18 Centre Nat Rech Scient POLYPEPTIDES DERIVED FROM POLYMERASE RNAS, AND USES THEREOF
US6520949B2 (en) 2001-04-02 2003-02-18 Martin St. Germain Method and apparatus for administering fluid to animals subcutaneously
DE10119005A1 (en) 2001-04-18 2002-10-24 Roche Diagnostics Gmbh Process for protein expression starting from stabilized linear short DNA in cell-free in vitro transcription / translation systems with exonuclease-containing lysates or in a cellular system containing exonucleases
US20030171253A1 (en) 2001-04-19 2003-09-11 Averil Ma Methods and compositions relating to modulation of A20
KR100845057B1 (en) 2001-04-23 2008-07-09 아막사 아게 Buffer solution for electroporation and a method comprising the use of the same
US7560424B2 (en) 2001-04-30 2009-07-14 Zystor Therapeutics, Inc. Targeted therapeutic proteins
US6777187B2 (en) 2001-05-02 2004-08-17 Rubicon Genomics, Inc. Genome walking by selective amplification of nick-translate DNA library and amplification from complex mixtures of templates
WO2002090225A2 (en) 2001-05-08 2002-11-14 Magnatech International, L.P. Electronic length control wire pay-off system and method
US20050137155A1 (en) 2001-05-18 2005-06-23 Sirna Therapeutics, Inc. RNA interference mediated treatment of Parkinson disease using short interfering nucleic acid (siNA)
US8137911B2 (en) 2001-05-22 2012-03-20 Cellscript, Inc. Preparation and use of single-stranded transcription substrates for synthesis of transcription products corresponding to target sequences
CA2449054C (en) 2001-05-30 2011-01-04 The Scripps Research Institute Integrin targeting liposome for nucleic acid delivery
EP2305699B1 (en) 2001-06-05 2014-08-13 CureVac GmbH Stabilised mRNA with increased G/C content which is optimised for translation in its coded areas for the vaccination against sleeping sickness, leishmaniosis and toxoplasmosis
EP1402035A2 (en) 2001-06-18 2004-03-31 Novartis AG G-protein coupled receptors and dna sequences thereof
US7785610B2 (en) 2001-06-21 2010-08-31 Dynavax Technologies Corporation Chimeric immunomodulatory compounds and methods of using the same—III
US7547551B2 (en) 2001-06-21 2009-06-16 University Of Antwerp. Transfection of eukaryontic cells with linear polynucleotides by electroporation
EP1404716A2 (en) 2001-06-26 2004-04-07 Novartis AG Novel g protein-coupled receptors and dna sequences thereof
SE0102327D0 (en) 2001-06-28 2001-06-28 Active Biotech Ab A novel engineered superantigen for human therapy
WO2003029401A2 (en) 2001-07-13 2003-04-10 Advanced Research And Technology Institute Peptidoglycan recognition protein encoding nucleic acids and methods of use thereof
US6586524B2 (en) 2001-07-19 2003-07-01 Expression Genetics, Inc. Cellular targeting poly(ethylene glycol)-grafted polymeric gene carrier
US7169750B2 (en) 2001-07-31 2007-01-30 Anormed, Inc. Methods to mobilize progenitor/stem cells
DE60237696D1 (en) 2001-08-01 2010-10-28 Univ Utah AT N-TERMINUS TRUNCATED ISOFORMS OF CYCLIC PHOSPHODIESTERASES PDE3A
EP1423519A2 (en) 2001-08-27 2004-06-02 Novartis AG G-protein coupled receptor and dna sequences thereof
US20040142325A1 (en) 2001-09-14 2004-07-22 Liat Mintz Methods and systems for annotating biomolecular sequences
AR045702A1 (en) 2001-10-03 2005-11-09 Chiron Corp COMPOSITIONS OF ASSISTANTS.
DE10148886A1 (en) 2001-10-04 2003-04-30 Avontec Gmbh Inhibition of STAT-1
US7276489B2 (en) 2002-10-24 2007-10-02 Idera Pharmaceuticals, Inc. Modulation of immunostimulatory properties of oligonucleotide-based compounds by optimal presentation of 5′ ends
EP1452593B1 (en) 2001-11-14 2009-04-08 Toyo Boseki Kabushiki Kaisha Dna synthesis promoters, dna polymerase-associated factors and utilization thereof
AU2002361642A1 (en) 2001-11-16 2003-06-10 The University Of Tennessee Research Corporation Recombinant antibody fusion proteins and methods for detection of apoptotic cells
JP2005510251A (en) 2001-11-29 2005-04-21 ノバルティス アクチエンゲゼルシャフト Evaluation method and prognostication method of sarcoidosis
CA2409775C (en) 2001-12-03 2010-07-13 F. Hoffmann-La Roche Ag Reversibly modified thermostable enzymes for dna synthesis and amplification in vitro
US20060275747A1 (en) 2001-12-07 2006-12-07 Hardy Stephen F Endogenous retrovirus up-regulated in prostate cancer
AU2002351332A1 (en) 2001-12-07 2003-06-23 Chiron Corporation Endogenous retrovirus polypeptides linked to oncogenic transformation
DE60235413D1 (en) 2001-12-07 2010-04-01 Novartis Vaccines & Diagnostic IN PROSTATE CANCER HIGHLY REGULATED ENDOGENIC RETROVIRUS
US20050107589A1 (en) 2001-12-17 2005-05-19 Gung-Wei Chirn Novel g-protein coupled receptors and dna sequences thereof
DE10162480A1 (en) 2001-12-19 2003-08-07 Ingmar Hoerr The application of mRNA for use as a therapeutic agent against tumor diseases
ES2349235T3 (en) 2001-12-21 2010-12-29 Alcon, Inc. USE OF SYNTHETIC INORGANIC NANOPARTICLES AS VEHICLES FOR OPHTHALMIC DRUGS.
AU2003235707A1 (en) 2002-01-18 2003-07-30 Curevac Gmbh Immunogenic preparations and vaccines on the basis of mrna
CA2474709A1 (en) 2002-02-04 2003-08-14 Biomira, Inc. Immunostimulatory, covalently lipidated oligonucleotides
US6870034B2 (en) 2002-02-05 2005-03-22 Genentech, Inc. Protein purification
FR2835749B1 (en) 2002-02-08 2006-04-14 Inst Nat Sante Rech Med PHARMACEUTICAL COMPOSITION IMPROVING IN VIVO GENE TRANSFER
DE10207178A1 (en) 2002-02-19 2003-09-04 Novosom Ag Components for the production of amphoteric liposomes
AR038568A1 (en) 2002-02-20 2005-01-19 Hoffmann La Roche ANTI-A BETA ANTIBODIES AND ITS USE
US7354742B2 (en) 2002-02-22 2008-04-08 Ortho-Mcneil Pharmaceutical, Inc. Method for generating amplified RNA
SG165155A1 (en) 2002-02-26 2010-10-28 Maxygen Inc Novel flavivirus antigens
PT1487856E (en) 2002-03-04 2010-09-29 Imclone Llc Human antibodies specific to kdr and uses thereof
JP4679822B2 (en) 2002-03-13 2011-05-11 ノバルティス アーゲー Pharmaceutical fine particles
US7074596B2 (en) 2002-03-25 2006-07-11 Board Of Supervisors Of Louisiana State University And Agricultural And Mechanical College Synthesis and use of anti-reverse mRNA cap analogues
US8153141B2 (en) 2002-04-04 2012-04-10 Coley Pharmaceutical Gmbh Immunostimulatory G, U-containing oligoribonucleotides
US7399583B2 (en) 2002-04-17 2008-07-15 Novartis Ag Method for the identification of inhibitors of the binding of ARE-containing mRNA and a HuR protein
GB0209539D0 (en) 2002-04-26 2002-06-05 Avecia Ltd Monomer Polymer and process
EP1361277A1 (en) 2002-04-30 2003-11-12 Centre National De La Recherche Scientifique (Cnrs) Optimization of transgene expression in mammalian cells
CN100482277C (en) 2002-05-02 2009-04-29 惠氏控股公司 Calicheamicin derivative-carrier conjugates
US20040018525A1 (en) 2002-05-21 2004-01-29 Bayer Aktiengesellschaft Methods and compositions for the prediction, diagnosis, prognosis, prevention and treatment of malignant neoplasma
US7374930B2 (en) 2002-05-21 2008-05-20 Expression Genetics, Inc. GLP-1 gene delivery for the treatment of type 2 diabetes
DE10224200C1 (en) 2002-05-31 2003-08-21 Artus Ges Fuer Molekularbiolog Replicating RNA, useful, after reverse transcription, for analysis on microarrays, comprises conversion to cDNA then reverse transcription of this to form antisense sequences
AU2003237367A1 (en) 2002-06-03 2003-12-19 Chiron Corporation Use of nrg4, or inhibitors thereof, in the treatment of colon and pancreatic cancer
ES2354607T3 (en) 2002-06-28 2011-03-16 Protiva Biotherapeutics Inc. PROCEDURE AND APPLIANCE TO PRODUCE LIPOSOMES.
BR0312395A (en) 2002-07-01 2007-06-19 Kenneth S Warren Inst Inc recombinant mutein protective tissue cytokine, mammalian cell responsive recombinant tissue protective cytokine, isolated nucleic acid molecule, vector, expression vector, genetically engineered cell, cell, pharmaceutical composition, method for protecting, maintaining or enhancing the viability of a cell, tissue or organ isolated from a mammalian body, use of a recombinant tissue protective cytokine, method for facilitating the transcytosis of a molecule through an endothelial cell barrier in a mammal, and composition for transporting a molecule through of transcytosis through an endothelial cell barrier
DE10229872A1 (en) 2002-07-03 2004-01-29 Curevac Gmbh Immune stimulation through chemically modified RNA
GB0215509D0 (en) 2002-07-04 2002-08-14 Novartis Ag Marker genes
DE60336736D1 (en) 2002-07-16 2011-05-26 VGX Pharmaceuticals LLC CODON-OPTIMIZED SYNTHETIC PLASMIDE
US7927791B2 (en) 2002-07-24 2011-04-19 Ptc Therapeutics, Inc. Methods for identifying small molecules that modulate premature translation termination and nonsense mediated mRNA decay
EP1393745A1 (en) 2002-07-29 2004-03-03 Hybridon, Inc. Modulation of immunostimulatory properties of oligonucleotide-based compounds by optimal presentation of 5'ends
EP1386925A1 (en) 2002-07-31 2004-02-04 Girindus AG Method for preparing oligonucleotides
US6653468B1 (en) 2002-07-31 2003-11-25 Isis Pharmaceuticals, Inc. Universal support media for synthesis of oligomeric compounds
EP1873180B1 (en) 2002-08-14 2014-05-07 Novartis AG Ophthalmic device made from a radiation-curable prepolymer
EP2277551B1 (en) 2002-09-06 2013-05-08 Cerulean Pharma Inc. Cyclodextrin-based polymers for delivering the therapeutic agents covalently bound thereto
WO2004022629A2 (en) 2002-09-09 2004-03-18 Nektar Therapeutics Al, Corporation Method for preparing water-soluble polymer derivatives bearing a terminal carboxylic acid
US7534872B2 (en) 2002-09-27 2009-05-19 Syngen, Inc. Compositions and methods for the use of FMOC derivatives in DNA/RNA synthesis
CA3029035C (en) 2002-10-17 2023-03-07 Genmab A/S Human monoclonal antibodies against cd20
WO2004038018A1 (en) 2002-10-22 2004-05-06 Eisai Co., Ltd. Gene expressed specifically in dopamine-producing neuron precursor cells after termination of division
ATE411400T1 (en) 2002-11-21 2008-10-15 Epict Technologies METHOD FOR USING RIBOPRIMERS FOR STRAND DISPLACEMENT REPLICATION OF TARGET SEQUENCES
US7491234B2 (en) 2002-12-03 2009-02-17 Boston Scientific Scimed, Inc. Medical devices for delivery of therapeutic agents
BRPI0316779B8 (en) 2002-12-16 2023-02-28 Genentech Inc HUMAN ANTI-CD20 ANTIBODY OR ANTIGEN-BINDING FRAGMENT THEREOF, ITS USES, COMPOSITION, MANUFACTURED ARTICLE AND LIQUID FORMULATION
JP2006516099A (en) 2002-12-23 2006-06-22 ダイナバックス テクノロジーズ コーポレイション Branched immunomodulatory compounds and methods of using the compounds
US7169892B2 (en) 2003-01-10 2007-01-30 Astellas Pharma Inc. Lipid-peptide-polymer conjugates for long blood circulation and tumor specific drug delivery systems
WO2004067728A2 (en) 2003-01-17 2004-08-12 Ptc Therapeutics Methods and systems for the identification of rna regulatory sequences and compounds that modulate their function
US8426194B2 (en) 2003-01-21 2013-04-23 Ptc Therapeutics, Inc. Methods and agents for screening for compounds capable of modulating VEGF expression
US9068234B2 (en) 2003-01-21 2015-06-30 Ptc Therapeutics, Inc. Methods and agents for screening for compounds capable of modulating gene expression
US8460864B2 (en) 2003-01-21 2013-06-11 Ptc Therapeutics, Inc. Methods for identifying compounds that modulate untranslated region-dependent gene expression and methods of using same
US20040147027A1 (en) 2003-01-28 2004-07-29 Troy Carol M. Complex for facilitating delivery of dsRNA into a cell and uses thereof
EP3417875B1 (en) 2003-02-10 2020-06-17 Biogen MA Inc. Immunoglobulin formulation and method of preparation thereof
US20040167090A1 (en) 2003-02-21 2004-08-26 Monahan Sean D. Covalent modification of RNA for in vitro and in vivo delivery
CA2450289A1 (en) 2003-03-20 2005-05-19 Imclone Systems Incorporated Method of producing an antibody to epidermal growth factor receptor
US7320961B2 (en) 2003-03-24 2008-01-22 Abbott Laboratories Method for treating a disease, disorder or adverse effect caused by an elevated serum concentration of an UGT1A1 substrate
AU2004225520A1 (en) 2003-03-25 2004-10-14 Stratagene DNA polymerase fusions and uses thereof
US20040242502A1 (en) 2003-04-08 2004-12-02 Galenica Pharmaceuticals, Inc. Semi-synthetic saponin analogs with carrier and immune stimulatory activities for DNA and RNA vaccines
ZA200507805B (en) 2003-04-09 2006-12-27 Genentech Inc Therapy of autoimmune disease in a patient with an inadequate response to a TNF-alpha inhibitor
EP2314327B2 (en) 2003-05-05 2017-09-20 Ben-Gurion University Of The Negev Research And Development Authority Injectable cross-linked polymeric preparations and uses thereof
US7348004B2 (en) 2003-05-06 2008-03-25 Syntonix Pharmaceuticals, Inc. Immunoglobulin chimeric monomer-dimer hybrids
TWI353991B (en) 2003-05-06 2011-12-11 Syntonix Pharmaceuticals Inc Immunoglobulin chimeric monomer-dimer hybrids
HUE026384T2 (en) 2003-05-06 2016-06-28 Biogen Hemophilia Inc Clotting factor chimeric proteins for treatment of a hemostatic disorder
US9567591B2 (en) 2003-05-15 2017-02-14 Mello Biotechnology, Inc. Generation of human embryonic stem-like cells using intronic RNA
GB0313132D0 (en) 2003-06-06 2003-07-09 Ich Productions Ltd Peptide ligands
EP1636385A4 (en) 2003-06-24 2010-06-02 Mirus Bio Corp Inhibition of gene function by delivery of polynucleotide-based gene expression inhibitors to mammalian cells in vivo
GB0316089D0 (en) 2003-07-09 2003-08-13 Xo Bioscience Ltd Differentiation method
US8592197B2 (en) 2003-07-11 2013-11-26 Novavax, Inc. Functional influenza virus-like particles (VLPs)
US7575572B2 (en) 2003-07-15 2009-08-18 Spinal Generations, Llc Method and device for delivering medicine to bone
US20050013870A1 (en) 2003-07-17 2005-01-20 Toby Freyman Decellularized extracellular matrix of conditioned body tissues and uses thereof
TW201319088A (en) 2003-07-18 2013-05-16 Amgen Inc Specific binding agents to hepatocyte growth factor
DE10335833A1 (en) 2003-08-05 2005-03-03 Curevac Gmbh Transfection of blood cells with mRNA for immune stimulation and gene therapy
US8668926B1 (en) 2003-09-15 2014-03-11 Shaker A. Mousa Nanoparticle and polymer formulations for thyroid hormone analogs, antagonists, and formulations thereof
US7135010B2 (en) 2003-09-30 2006-11-14 Damage Control Surgical Technologies, Inc. Method and apparatus for rapid deployment chest drainage
JP2007507460A (en) 2003-10-06 2007-03-29 ノバルティス アクチエンゲゼルシャフト Use of genetic polymorphisms associated with therapeutic efficacy in inflammatory diseases
DE10347710B4 (en) 2003-10-14 2006-03-30 Johannes-Gutenberg-Universität Mainz Recombinant vaccines and their use
US20050130201A1 (en) 2003-10-14 2005-06-16 Dharmacon, Inc. Splint-assisted enzymatic synthesis of polyribounucleotides
ME01775B (en) 2003-11-05 2011-02-28 Glycart Biotechnology Ag Cd20 antibodies with increased fc receptor binding affinity and effector function
WO2005047536A2 (en) 2003-11-13 2005-05-26 Novartis Ag Detection of genomic amplification and deletion in cancer
US20070054278A1 (en) 2003-11-18 2007-03-08 Applera Corporation Polymorphisms in nucleic acid molecules encoding human enzyme proteins, methods of detection and uses thereof
US7699852B2 (en) 2003-11-19 2010-04-20 Zimmer Spine, Inc. Fenestrated bone tap and method
US20050153333A1 (en) 2003-12-02 2005-07-14 Sooknanan Roy R. Selective terminal tagging of nucleic acids
CA2548822C (en) 2003-12-08 2015-08-11 Gel-Del Technologies, Inc. Mucoadhesive drug delivery devices and methods of making and using thereof
US7674884B2 (en) 2003-12-10 2010-03-09 Novimmune S.A. Neutralizing antibodies and methods of use thereof
US8372966B2 (en) 2003-12-19 2013-02-12 University Of Cincinnati Oligonucleotide decoys and methods of use
KR20130041373A (en) 2003-12-23 2013-04-24 제넨테크, 인크. Novel anti-il 13 antibodies and uses thereof
US8957034B2 (en) 2004-01-28 2015-02-17 Johns Hopkins University Drugs and gene carrier particles that rapidly move through mucous barriers
ATE440949T1 (en) 2004-01-30 2009-09-15 Maxygen Holdings Ltd CONTROLLED READING OF STOPCODONS
US7309487B2 (en) 2004-02-09 2007-12-18 George Inana Methods and compositions for detecting and treating retinal diseases
EP1716179A2 (en) 2004-02-12 2006-11-02 Morphotek, Inc. Monoclonal antibodies that specifically bind to folate receptor alpha
US20070265220A1 (en) 2004-03-15 2007-11-15 City Of Hope Methods and compositions for the specific inhibition of gene expression by double-stranded RNA
EP3736295A1 (en) 2004-03-24 2020-11-11 Chugai Seiyaku Kabushiki Kaisha Subtypes of humanized antibody against interleukin-6 receptor
WO2005098433A2 (en) 2004-04-01 2005-10-20 Novartis Ag Diagnostic assays for alzheimer’s disease
WO2005103081A2 (en) 2004-04-20 2005-11-03 Genmab A/S Human monoclonal antibodies against cd20
ES2246694B1 (en) 2004-04-29 2007-05-01 Instituto Cientifico Y Tecnologico De Navarra, S.A. PEGILATED NANOPARTICLES.
US20080119645A1 (en) 2004-05-05 2008-05-22 Isis Pharmaceuticals, Inc. Amidites and Methods of Rna Synthesis
ATE409025T1 (en) 2004-05-12 2008-10-15 Baxter Int NUCLEIC ACID MICROBEDS, THEIR PRODUCTION AND DELIVERY
WO2005117557A2 (en) 2004-06-01 2005-12-15 San Diego State University Foundation Expression system
CA2569645C (en) 2004-06-07 2014-10-28 Protiva Biotherapeutics, Inc. Cationic lipids and methods of use
WO2005121348A1 (en) 2004-06-07 2005-12-22 Protiva Biotherapeutics, Inc. Lipid encapsulated interfering rna
CA3075158A1 (en) 2004-06-11 2005-12-29 Trustees Of Tufts College Silk-based drug delivery system
WO2006046978A2 (en) 2004-06-28 2006-05-04 Argos Therapeutics, Inc. Cationic peptide-mediated transformation
WO2006005058A2 (en) 2004-06-30 2006-01-12 Nektar Therapeutics Al, Corporation Polymer-factor ix moiety conjugates
DE102004035227A1 (en) 2004-07-21 2006-02-16 Curevac Gmbh mRNA mixture for vaccination against tumor diseases
CA2574088C (en) 2004-07-21 2013-09-17 Alnylam Pharmaceuticals, Inc. Oligonucleotides comprising a modified or non-natural nucleobase
US7603349B1 (en) 2004-07-29 2009-10-13 Yahoo! Inc. User interfaces for search systems using in-line contextual queries
GB0417487D0 (en) 2004-08-05 2004-09-08 Novartis Ag Organic compound
SE0402025D0 (en) 2004-08-13 2004-08-13 Active Biotech Ab Treatment of hyperproliferative disease with superantigens in combination with another anticancer agent
US7291208B2 (en) 2004-08-13 2007-11-06 Gore Enterprise Holdings, Inc. Grooved active and passive adsorbent filters
CA2478458A1 (en) 2004-08-20 2006-02-20 Michael Panzara Treatment of pediatric multiple sclerosis
WO2006021894A2 (en) 2004-08-26 2006-03-02 Engeneic Gene Therapy Pty Limited Delivering functional nucleic acids to mammalian cells via bacterially derived, intact minicells
DE102004042546A1 (en) 2004-09-02 2006-03-09 Curevac Gmbh Combination therapy for immune stimulation
US7501486B2 (en) 2004-09-07 2009-03-10 Burnham Institute For Medical Research Peptides that selectively home to heart vasculature and related conjugates and methods
US8663599B1 (en) 2004-10-05 2014-03-04 Gp Medical, Inc. Pharmaceutical composition of nanoparticles
US20080075698A1 (en) 2004-10-12 2008-03-27 Tissue Targeting Japan Inc. Brain-Localizing Bone Marrow Progenitor cells
US9051342B2 (en) 2004-10-13 2015-06-09 Ptc Therapeutics, Inc. Pyrazole or triazole compounds and their use for the manufacture of a medicament for treating somatic mutation related diseases
US8057821B2 (en) 2004-11-03 2011-11-15 Egen, Inc. Biodegradable cross-linked cationic multi-block copolymers for gene delivery and methods of making thereof
US20080261905A1 (en) 2004-11-08 2008-10-23 K.U. Leuven Research And Development Modified Nucleosides for Rna Interference
CA2588607A1 (en) 2004-11-23 2006-06-01 Ptc Therapeutics, Inc. Carbazole, carboline and indole derivatives useful in the inhibition of vegf production
US7838657B2 (en) * 2004-12-03 2010-11-23 University Of Massachusetts Spinal muscular atrophy (SMA) treatment via targeting of SMN2 splice site inhibitory sequences
US7964571B2 (en) 2004-12-09 2011-06-21 Egen, Inc. Combination of immuno gene therapy and chemotherapy for treatment of cancer and hyperproliferative diseases
EP1856179B1 (en) 2004-12-10 2013-05-15 Kala Pharmaceuticals, Inc. Functionalized poly (ether-anhydride) block copolymers
WO2006071903A2 (en) 2004-12-28 2006-07-06 Ptc Therapeutics, Inc. Cell based methods and systems for the identification of rna regulatory sequences and compounds that modulate their functions
US8535702B2 (en) 2005-02-01 2013-09-17 Boston Scientific Scimed, Inc. Medical devices having porous polymeric regions for controlled drug delivery and regulated biocompatibility
US20100221186A1 (en) 2005-03-11 2010-09-02 Hueseyin Firat Biomarkers for cardiovascular side-effects induced by cox-2 inhibitory compounds
US8415325B2 (en) 2005-03-31 2013-04-09 University Of Delaware Cell-mediated delivery and targeted erosion of noncovalently crosslinked hydrogels
JP2008535494A (en) 2005-04-07 2008-09-04 サグレシュ ディスカバリー, インコーポレイテッド Cancer-related gene (PRLR)
WO2006110599A2 (en) 2005-04-07 2006-10-19 Novartis Vaccines And Diagnostics Inc. Cacna1e in cancer diagnosis, detection and treatment
EP1885403B1 (en) 2005-04-12 2013-05-08 Nektar Therapeutics Poly(ethyleneglycol) conjugates of Lysostaphin
US20060241076A1 (en) 2005-04-26 2006-10-26 Coley Pharmaceutical Gmbh Modified oligoribonucleotide analogs with enhanced immunostimulatory activity
EP1896582A4 (en) 2005-05-09 2009-04-08 Ono Pharmaceutical Co Human monoclonal antibodies to programmed death 1(pd-1) and methods for treating cancer using anti-pd-1 antibodies alone or in combination with other immunotherapeutics
US20070072175A1 (en) 2005-05-13 2007-03-29 Biogen Idec Ma Inc. Nucleotide array containing polynucleotide probes complementary to, or fragments of, cynomolgus monkey genes and the use thereof
US20060265771A1 (en) 2005-05-17 2006-11-23 Lewis David L Monitoring microrna expression and function
DE102005023170A1 (en) 2005-05-19 2006-11-23 Curevac Gmbh Optimized formulation for mRNA
WO2006133148A2 (en) 2005-06-03 2006-12-14 Genentech, Inc. Method of producing antibodies with modified fucosylation level
US7550264B2 (en) 2005-06-10 2009-06-23 Datascope Investment Corporation Methods and kits for sense RNA synthesis
WO2006138572A2 (en) 2005-06-16 2006-12-28 Nektar Therapeutics Al, Corporation Conjugates having a degradable linkage and polymeric reagents useful in preparing such conjugates
JP5570721B2 (en) 2005-06-17 2014-08-13 ザ ユニバーシティ オブ ノース カロライナ アット チャペル ヒル Nanoparticle manufacturing method, system, and material
US8202835B2 (en) 2005-06-17 2012-06-19 Yitzchak Hillman Disease treatment via antimicrobial peptides or their inhibitors
US8101385B2 (en) 2005-06-30 2012-01-24 Archemix Corp. Materials and methods for the generation of transcripts comprising modified nucleotides
MX2007016561A (en) 2005-06-30 2008-03-10 Archemix Corp Materials and methods for the generation of fully 2'-modified nucleic acid transcripts.
US20080220471A1 (en) 2005-07-27 2008-09-11 Genentech, Inc. Vectors and Methods Using Same
HUE043492T2 (en) 2005-08-23 2019-08-28 Univ Pennsylvania Rna containing modified nucleosides and methods of use thereof
US9012219B2 (en) * 2005-08-23 2015-04-21 The Trustees Of The University Of Pennsylvania RNA preparations comprising purified modified RNA for reprogramming cells
US20070048741A1 (en) 2005-08-24 2007-03-01 Getts Robert C Methods and kits for sense RNA synthesis
NZ598367A (en) 2005-09-01 2013-10-25 Novartis Vaccines & Diagnostic Multiple vaccination including serogroup C meningococcus
WO2007028047A2 (en) 2005-09-01 2007-03-08 Celgene Corporation Immunological uses of immunodulatory compounds for vaccine and anti-infections disease therapy
US8420605B2 (en) 2005-09-07 2013-04-16 The University Of Strathclyde Hydrogel compositions
US20120021042A1 (en) 2005-09-15 2012-01-26 Steffen Panzner Efficient Method For Loading Amphoteric Liposomes With Nucleic Acid Active Substances
DE102005046490A1 (en) 2005-09-28 2007-03-29 Johannes-Gutenberg-Universität Mainz New nucleic acid molecule comprising promoter, a transcriptable nucleic acid sequence, a first and second nucleic acid sequence for producing modified RNA with transcriptional stability and translational efficiency
US20070087437A1 (en) 2005-10-14 2007-04-19 Jifan Hu Methods for rejuvenating cells in vitro and in vivo
US20070105124A1 (en) 2005-11-08 2007-05-10 Getts Robert C Methods and kits for nucleic acid amplification
EP1960538A2 (en) 2005-11-18 2008-08-27 Bioline Limited A method for enhancing enzymatic dna polymerase reactions
SG10201600950TA (en) 2005-11-28 2016-03-30 Genmab As Recombinant monovalent antibodies and methods for production thereof
ATE551349T1 (en) 2005-11-30 2012-04-15 Epict Technologies Corp METHOD USING REVERSIBLY BLOCKED LABELING OLIGONUCLEOTIDES
TWI389709B (en) 2005-12-01 2013-03-21 Novartis Ag Transdermal therapeutic system
US8603457B2 (en) 2005-12-02 2013-12-10 University Of Rochester Nonsense suppression and genetic codon alteration by targeted modification
WO2008051245A2 (en) 2005-12-02 2008-05-02 Novartis Ag Nanoparticles for use in immunogenic compositions
EP1969000A2 (en) 2005-12-06 2008-09-17 Centre National de la Recherche Scientifique Cell penetrating peptides for intracellular delivery of molecules
US7579318B2 (en) 2005-12-06 2009-08-25 Centre De La Recherche De La Scientifique Cell penetrating peptides for intracellular delivery of molecules
US8158360B2 (en) 2005-12-08 2012-04-17 Novartis Ag Effects of inhibitors of FGFR3 on gene transcription
CN103113463B (en) 2005-12-13 2015-02-18 国立大学法人京都大学 Nuclear reprogramming factor
EP1968643A2 (en) 2005-12-16 2008-09-17 Diatos Cell penetrating peptide conjugates for delivering of nucleic acids into a cell
US8178660B2 (en) 2006-01-13 2012-05-15 The Trustees Of The University Of Pennsylvania Vaccines and immunotherapeutics using codon optimized IL-15 and methods for using the same
US20070178103A1 (en) 2006-01-30 2007-08-02 Fey Georg H CD19-specific immunotoxin and treatment method
US8476234B2 (en) 2006-02-03 2013-07-02 Prolor Biotech Inc. Long-acting coagulation factors and methods of producing same
US9458444B2 (en) 2006-02-03 2016-10-04 Opko Biologics Ltd. Long-acting coagulation factors and methods of producing same
US8946155B2 (en) 2006-02-03 2015-02-03 Opko Biologics Ltd. Long-acting polypeptides and methods of producing and administering same
DE102006007433A1 (en) 2006-02-17 2007-08-23 Curevac Gmbh Immunostimulant adjuvant useful in vaccines against cancer or infectious diseases comprises a lipid-modified nucleic acid
US20100168034A1 (en) 2006-02-20 2010-07-01 Ewha University-Industry Collaboration Foundation Peptide having cell membrane penetrating activity
MX2008010841A (en) 2006-02-21 2008-10-27 Nektar Therapeutics Al Corp Segmented degradable polymers and conjugates made therefrom.
WO2007100699A2 (en) 2006-02-24 2007-09-07 Novartis Ag Microparticles containing biodegradable polymer and cationic polysaccharide for use in immunogenic compositions
WO2007100789A2 (en) 2006-02-24 2007-09-07 Wyeth Gpat3 encodes a mammalian, microsomal acyl-coa:glycerol 3-phosphate acyltransferase
US7910152B2 (en) 2006-02-28 2011-03-22 Advanced Cardiovascular Systems, Inc. Poly(ester amide)-based drug delivery systems with controlled release rate and morphology
PL2676967T3 (en) 2006-02-28 2019-12-31 Biogen Ma Inc. Methods of treating inflammatory and autoimmune diseases with natalizumab
GB0605217D0 (en) 2006-03-15 2006-04-26 Novartis Ag Method and compositions for assessing acute rejection
WO2007109244A2 (en) 2006-03-21 2007-09-27 Morehouse School Of Medicine Novel nanoparticles for delivery of active agents
CA2648099C (en) 2006-03-31 2012-05-29 The Brigham And Women's Hospital, Inc System for targeted delivery of therapeutic agents
EP2007358A4 (en) 2006-04-04 2012-01-25 Stc Unm Swellable particles for drug delivery
EP1852127A1 (en) 2006-05-02 2007-11-07 Charité - Universitätsmedizin Berlin Use of a B-cell-depleting antibody for treatment of polyoma virus infections
WO2007133807A2 (en) 2006-05-15 2007-11-22 Massachusetts Institute Of Technology Polymers for functional particles
EA020805B1 (en) 2006-05-24 2015-01-30 Мерк Сероно С.А. Use of combination of cladribine and beta interferon for treating multiple sclerosis
EP2492684B1 (en) 2006-06-02 2016-12-28 President and Fellows of Harvard College Protein surface remodeling
US9506056B2 (en) 2006-06-08 2016-11-29 Northwestern University Nucleic acid functionalized nanoparticles for therapeutic applications
CA2656620C (en) 2006-07-04 2018-03-13 Genmab A/S Cd20 binding molecules for the treatment of copd
US20100015232A1 (en) 2006-07-07 2010-01-21 Aarhus Universitet Nanoparticles for nucleic acid delivery
TWI441835B (en) 2006-07-12 2014-06-21 Novartis Ag Novel polymers
MX2009000622A (en) 2006-07-20 2009-01-29 Novartis Ag Amigo-2 inhibitors for treating, diagnosing or detecting cancer.
EP2054036B1 (en) 2006-07-24 2019-12-18 Singh-Broemer and Company, Inc. Solid nanoparticle formulation of water insoluble pharmaceutical substances with reduced ostwald ripening
CA2659301A1 (en) 2006-07-28 2008-02-07 Applera Corporation Dinucleotide mrna cap analogs
AU2007280690C1 (en) 2006-07-31 2012-08-23 Curevac Gmbh Nucleic acid of formula (I): GIXmGn, or (II): CIXmCn, in particular as an immune-stimulating agent/adjuvant
DE102006035618A1 (en) 2006-07-31 2008-02-07 Curevac Gmbh New nucleic acid useful as immuno-stimulating adjuvant for manufacture of a composition for treatment of cancer diseases e.g. colon carcinomas and infectious diseases e.g. influenza and malaria
AR062271A1 (en) 2006-08-07 2008-10-29 Genzyme Corp USE OF AN EFFECTIVE AMOUNT OF AT LEAST A CXCR4 INHIBITOR, AT LEAST A CXCR2 AND G-CSF AGONIST TO MOBILIZE PROGENITOR CELLS AND / OR MOTHER CELLS
US8658211B2 (en) 2006-08-18 2014-02-25 Arrowhead Madison Inc. Polyconjugates for in vivo delivery of polynucleotides
US20080076701A1 (en) 2006-08-18 2008-03-27 Nastech Pharmaceutical Company Inc. Dicer substrate rna peptide conjugates and methods for rna therapeutics
JP5775260B2 (en) 2006-09-06 2015-09-09 シー3 ジアン インコーポレイテッド Selectively targeted antimicrobial peptides and uses thereof
AU2007293662B2 (en) 2006-09-07 2012-10-04 Crucell Holland B.V. Human binding molecules capable of neutralizing influenza virus H5N1 and uses thereof
CA2663003C (en) 2006-09-08 2018-02-13 Justin Hanes Compositions and methods for enhancing transport through mucus
US8454948B2 (en) 2006-09-14 2013-06-04 Medgenics Medical Israel Ltd. Long lasting drug formulations
GB0619182D0 (en) 2006-09-29 2006-11-08 Leuven K U Res & Dev Oligonucleotide arrays
KR101129509B1 (en) 2006-10-03 2012-04-13 알닐람 파마슈티칼스 인코포레이티드 Lipid containing formulations
AU2007333528B2 (en) 2006-10-05 2013-10-17 The Johns Hopkins University Water-dispersible oral, parenteral, and topical formulations for poorly water soluble drugs using smart polymeric nanoparticles
DE102006051516A1 (en) 2006-10-31 2008-05-08 Curevac Gmbh (Base) modified RNA to increase the expression of a protein
US8414927B2 (en) 2006-11-03 2013-04-09 Boston Scientific Scimed, Inc. Cross-linked polymer particles
US7999087B2 (en) 2006-11-15 2011-08-16 Agilent Technologies, Inc. 2′-silyl containing thiocarbonate protecting groups for RNA synthesis
US8242258B2 (en) 2006-12-03 2012-08-14 Agilent Technologies, Inc. Protecting groups for RNA synthesis
US7893227B2 (en) 2006-12-05 2011-02-22 Lasergen, Inc. 3′-OH unblocked nucleotides and nucleosides base modified with non-cleavable, terminating groups and methods for their use in DNA sequencing
US8399007B2 (en) 2006-12-05 2013-03-19 Landec Corporation Method for formulating a controlled-release pharmaceutical formulation
US20110045022A1 (en) 2006-12-06 2011-02-24 Theodore Tsai Vaccines including antigen from four strains of influenza virus
US9034348B2 (en) 2006-12-11 2015-05-19 Chi2Gel Ltd. Injectable chitosan mixtures forming hydrogels
KR101831534B1 (en) 2006-12-18 2018-02-22 악셀레론 파마 인코포레이티드 Activin-actrii antagonists and uses for increasing red blood cell levels
ES2447516T3 (en) 2006-12-21 2014-03-12 Stryker Corporation Sustained release formulations comprising BMP-7 crystals
DK2104739T3 (en) 2006-12-21 2013-10-07 Novozymes Inc Modified messenger RNA stabilization sequences for expression of genes in bacterial cells
DE102006061015A1 (en) 2006-12-22 2008-06-26 Curevac Gmbh Process for the purification of RNA on a preparative scale by HPLC
EP2207891B1 (en) 2006-12-22 2012-07-25 Archemix LLC Materials and methods for the generation of transcripts comprising modified nucleotides
US8338166B2 (en) 2007-01-04 2012-12-25 Lawrence Livermore National Security, Llc Sorting, amplification, detection, and identification of nucleic acid subsequences in a complex mixture
DE102007001370A1 (en) 2007-01-09 2008-07-10 Curevac Gmbh RNA-encoded antibodies
WO2008091799A2 (en) 2007-01-22 2008-07-31 The Trustees Of Columbia University In The City Of New York Cell-based methods for identifying inhibitors of parkinson's disease-associated lrrk2 mutants
EP2896630B1 (en) 2007-01-30 2020-12-23 Epivax, Inc. Regulatory t cell epitopes, compositions and uses thereof
TW201940502A (en) 2007-02-02 2019-10-16 美商艾瑟勒朗法瑪公司 Variants derived from ActRIIB and uses therefor
US8859229B2 (en) 2007-02-02 2014-10-14 Yale University Transient transfection with RNA
WO2008096370A2 (en) 2007-02-05 2008-08-14 Natco Pharma Limited An efficient and novel purification method of recombinant hg-csf
US8333799B2 (en) 2007-02-12 2012-12-18 C. R. Bard, Inc. Highly flexible stent and method of manufacture
US8242087B2 (en) 2007-02-27 2012-08-14 K.U.Leuven Research & Development Phosphate modified nucleosides useful as substrates for polymerases and as antiviral agents
EP1964922A1 (en) 2007-03-02 2008-09-03 Boehringer Ingelheim Pharma GmbH &amp; Co. KG Improvement of protein production
SI2126093T1 (en) 2007-03-02 2013-01-31 Boehringer Ingelheim Pharma Gmbh & Co. Kg Improvement of protein production
US7943168B2 (en) 2007-03-05 2011-05-17 Washington University Nanoparticle delivery systems comprising a hydrophobic core and a lipid/surfactant layer comprising a membrane-lytic peptide
WO2008115504A2 (en) 2007-03-20 2008-09-25 Millennium Pharmaceuticals, Inc. Nucleic acids encoding humanized immunoglobulin that binds a4b7 integrin
US8386027B2 (en) 2007-04-27 2013-02-26 Echo Therapeutics, Inc. Skin permeation device for analyte sensing or transdermal drug delivery
EP2606906A1 (en) 2007-04-30 2013-06-26 GlaxoSmithKline LLC Methods for administering anti-IL-5 antibodies
US8703204B2 (en) 2007-05-03 2014-04-22 Bend Research, Inc. Nanoparticles comprising a cholesteryl ester transfer protein inhibitor and anon-ionizable polymer
JP5475643B2 (en) 2007-05-04 2014-04-16 マリーナ バイオテック,インコーポレイテッド Amino acid lipids and uses thereof
US7682789B2 (en) 2007-05-04 2010-03-23 Ventana Medical Systems, Inc. Method for quantifying biomolecules conjugated to a nanoparticle
US8728491B2 (en) 2007-05-07 2014-05-20 Alba Therapeutics Corporation Transcutaneous delivery of therapeutic agents
JP5296328B2 (en) 2007-05-09 2013-09-25 独立行政法人理化学研究所 Single-stranded circular RNA and method for producing the same
PL2476689T3 (en) 2007-05-10 2016-04-29 Agilent Technologies Inc Thiocarbon-protecting groups for RNA synthesis
PL2068927T3 (en) 2007-05-14 2016-06-30 Medimmune Llc Methods of reducing eosinophil levels
WO2008144365A2 (en) 2007-05-17 2008-11-27 Novartis Ag Method for making dry powder compositions containing ds-rna based on supercritical fluid technology
KR20100017169A (en) 2007-05-22 2010-02-16 노파르티스 아게 Methods of treating, diagnosing and detecting fgf21-associated disorders
CN101802172A (en) 2007-05-30 2010-08-11 通用医疗公司 methods of generating pluripotent cells from somatic cells
EP2167523B1 (en) 2007-06-19 2014-07-23 Board of Supervisors of Louisiana State University and Agricultural and Mechanical College Synthesis and use of anti-reverse phosphorothioate analogs of the messenger rna cap
EP2173872B1 (en) 2007-06-29 2014-04-02 CellScript, Inc. Copy dna and sense rna
WO2009015071A1 (en) 2007-07-23 2009-01-29 Dharmacon, Inc. Screening of micro-rna cluster inhibitor pools
US20090042825A1 (en) 2007-08-06 2009-02-12 Majed Matar Composition, method of preparation & application of concentrated formulations of condensed nucleic acids with a cationic lipopolymer
US9144546B2 (en) 2007-08-06 2015-09-29 Clsn Laboratories, Inc. Nucleic acid-lipopolymer compositions
AU2008290545A1 (en) 2007-08-23 2009-02-26 Novartis Ag Methods for detecting oligonucleotides
US20110243931A1 (en) 2007-09-02 2011-10-06 Thomas Friess Combination therapy with type i and type ii anti-cd20 antibodies
WO2009030254A1 (en) 2007-09-04 2009-03-12 Curevac Gmbh Complexes of rna and cationic peptides for transfection and for immunostimulation
US8506928B2 (en) 2007-09-07 2013-08-13 The Regents Of The University Of California Methods and compounds for targeting tissues
WO2009042892A1 (en) 2007-09-26 2009-04-02 Oregon Health & Science University Cyclic undecapeptides and derivatives as multiple sclerosis therapies
EP3156414B1 (en) 2007-09-26 2019-12-04 Intrexon Corporation Synthetic 5'utrs, expression vectors, and methods for increasing transgene expression
EP2042193A1 (en) 2007-09-28 2009-04-01 Biomay AG RNA Vaccines
SI2644594T1 (en) 2007-09-28 2017-10-30 Pfizer Inc. Cancer Cell Targeting Using Nanoparticles
WO2009046388A1 (en) 2007-10-03 2009-04-09 United States Medical Research & Material Command Cr-2 binding peptide p28 as molecular adjuvant for dna vaccines
WO2009046739A1 (en) 2007-10-09 2009-04-16 Curevac Gmbh Composition for treating prostate cancer (pca)
WO2009046738A1 (en) 2007-10-09 2009-04-16 Curevac Gmbh Composition for treating lung cancer, particularly of non-small lung cancers (nsclc)
EP3424525A1 (en) 2007-10-12 2019-01-09 Massachusetts Institute Of Technology Vaccine nanotechnology
US20090098118A1 (en) 2007-10-15 2009-04-16 Thomas Friess Combination therapy of a type ii anti-cd20 antibody with an anti-bcl-2 active agent
US20110091473A1 (en) 2007-10-22 2011-04-21 Genmab A/S Novel antibody therapies
MX2010004813A (en) 2007-11-01 2010-10-04 Univ Rochester Recombinant factor viii having increased stability.
RU2491095C2 (en) 2007-11-09 2013-08-27 Новартис Аг Using anti-cd40-antibodies
US8470771B2 (en) 2007-11-14 2013-06-25 Institute Of Microbiology, Chinese Academy Of Sciences Method and medicament for inhibiting the infection of influenza virus
CN104650235A (en) 2007-11-30 2015-05-27 葛兰素集团有限公司 Antigen-Binding Constructs
JP5530933B2 (en) 2007-12-10 2014-06-25 アルナイラム ファーマシューティカルズ, インコーポレイテッド Compositions and methods for inhibiting factor VII gene expression
WO2009075886A1 (en) 2007-12-11 2009-06-18 The Scripps Research Institute Compositions and methods related to mrna translational enhancer elements
JP2011506484A (en) 2007-12-13 2011-03-03 アルニラム ファーマシューティカルズ, インコーポレイテッド Methods and compositions for prevention or treatment of RSV infection
EP2072618A1 (en) 2007-12-14 2009-06-24 Johannes Gutenberg-Universität Mainz Use of RNA for reprogramming somatic cells
WO2009086072A2 (en) 2007-12-21 2009-07-09 Genentech, Inc. Therapy of rituximab-refractory rheumatoid arthritis patients
EP2248906A4 (en) 2008-01-23 2012-07-11 Ajinomoto Kk Method of producing l-amino acid
WO2009093384A1 (en) 2008-01-24 2009-07-30 National Institute Of Advanced Industrial Science And Technology Polynucleotide or analogue thereof, and gene expression regulation method using the polynucleotide or the analogue thereof
RU2545701C2 (en) 2008-01-31 2015-04-10 Куревак Гмбх NUCLEIC ACIDS OF FORMULA (I) (NuGlXmGnNv)a AND DERIVATIVES THEREOF AS IMMUNOSTIMULATING AGENTS/ADJUVANTS
EP2250252A2 (en) 2008-02-11 2010-11-17 Cambridge Enterprise Limited Improved reprogramming of mammalian cells, and the cells obtained
EP2240155B1 (en) 2008-02-13 2012-06-06 Intarcia Therapeutics, Inc Devices, formulations, and methods for delivery of multiple beneficial agents
DE102008009920A1 (en) 2008-02-15 2009-08-20 Aj Innuscreen Gmbh Mobile device for nucleic acid isolation
US20120027813A1 (en) 2008-02-22 2012-02-02 Novartis Vaccines And Diagnostics Srl Adjuvanted influenza vaccines for pediatric use
US8506966B2 (en) 2008-02-22 2013-08-13 Novartis Ag Adjuvanted influenza vaccines for pediatric use
WO2009108891A2 (en) 2008-02-29 2009-09-03 Egen, Inc. Modified poloxamers for gene expression and associated methods
US8524233B2 (en) 2008-03-14 2013-09-03 Biocon Limited & Centro de Immunologia Molecular Monoclonal antibody and a method thereof
EP2271699A1 (en) 2008-03-14 2011-01-12 Egen, Inc. Biodegradable cross-linked branched poly (alkylene imines)
KR20100134702A (en) 2008-03-28 2010-12-23 글락소스미스클라인 엘엘씨 Methods of treatment
JP5475753B2 (en) 2008-04-15 2014-04-16 プロチバ バイオセラピューティクス インコーポレイティッド Lipid formulations for nucleic acid delivery
WO2009127230A1 (en) 2008-04-16 2009-10-22 Curevac Gmbh MODIFIED (m)RNA FOR SUPPRESSING OR AVOIDING AN IMMUNOSTIMULATORY RESPONSE AND IMMUNOSUPPRESSIVE COMPOSITION
MX2010011680A (en) 2008-04-25 2011-05-03 Univ Northwestern Nanostructures suitable for sequestering cholesterol.
JP2011523353A (en) 2008-04-28 2011-08-11 プレジデント アンド フェロウズ オブ ハーバード カレッジ Overcharged protein for cell penetration
AU2009241354B2 (en) 2008-04-30 2014-06-12 The Government Of The United States Of America As Represented By The Secretary Of The Department Of Health And Human Services, Centers For Disease Control And Prevention Chimeric West Nile/Dengue viruses
US9394538B2 (en) 2008-05-07 2016-07-19 Shi-Lung Lin Development of universal cancer drugs and vaccines
WO2009137785A2 (en) 2008-05-08 2009-11-12 Replenish Pumps, Llc Drug-delivery pumps and methods of manufacture
US8697098B2 (en) 2011-02-25 2014-04-15 South Dakota State University Polymer conjugated protein micelles
MX2010012238A (en) 2008-05-13 2011-04-11 Univ Washington Diblock copolymers and polynucleotide complexes thereof for delivery into cells.
WO2009141146A1 (en) 2008-05-21 2009-11-26 Gunther Hartmann 5' triphosphate oligonucleotide with blunt end and uses thereof
KR101275950B1 (en) 2008-05-29 2013-06-25 한올바이오파마주식회사 Modified erythropoietin (epo) polypeptides that exhibit increased protease resistance and pharmaceutical compositions thereof
FR2931824B1 (en) 2008-05-29 2014-11-28 Centre Nat Rech Scient PROCESS FOR RNA SYNTHESIS THROUGH CHEMICAL.
US20100086922A1 (en) 2008-05-30 2010-04-08 Millennium Pharmaceuticals, Inc. Assessment of chromosomal alterations to predict clinical outcome of bortezomib treatment
PL215513B1 (en) 2008-06-06 2013-12-31 Univ Warszawski New borane phosphate analogs of dinucleotides, their application, RNA particle, method of obtaining RNA and method of obtaining peptides or protein
TWI451876B (en) 2008-06-13 2014-09-11 Lilly Co Eli Pegylated insulin lispro compounds
CA2728176C (en) 2008-06-16 2017-07-04 Bind Biosciences, Inc. Drug loaded polymeric nanoparticles and methods of making and using same
SI2285350T1 (en) 2008-06-16 2018-03-30 Pfizer Inc. Methods for the preparation of targeting agent functionalized diblock copolymers for use in fabrication of therapeutic nanoparticles
US8613951B2 (en) 2008-06-16 2013-12-24 Bind Therapeutics, Inc. Therapeutic polymeric nanoparticles with mTor inhibitors and methods of making and using same
US20100009424A1 (en) 2008-07-14 2010-01-14 Natasha Forde Sonoporation systems and methods
WO2010009065A2 (en) 2008-07-15 2010-01-21 Novartis Ag Amphipathic peptide compositions
CA2730737A1 (en) 2008-07-15 2010-01-21 Novartis Ag Immunogenic amphipathic peptide compositions
KR101690802B1 (en) * 2008-07-24 2016-12-28 메이지 세이카 파루마 가부시키가이샤 Pyripyropene a biosynthetic gene
AU2009290137A1 (en) 2008-09-03 2010-03-11 Xenome Ltd Libraries of peptide conjugates and methods for making them
CA3073384A1 (en) 2008-09-05 2010-03-11 President And Fellows Of Harvard College Continuous directed evolution of proteins and nucleic acids
WO2010027512A2 (en) 2008-09-06 2010-03-11 Chemgenes Corporation Rna synthesis - phosphoramidites for synthetic rna in the reverse direction, and application in convenient introduction of ligands, chromophores and modifications of synthetic rna at the 3' - end
WO2010027903A2 (en) 2008-09-08 2010-03-11 Fred Hutchinson Cancer Research Center Lung cancer diagnosis
WO2010030763A2 (en) 2008-09-10 2010-03-18 Bind Biosciences, Inc. High throughput fabrication of nanoparticles
TW201014605A (en) 2008-09-16 2010-04-16 Genentech Inc Methods for treating progressive multiple sclerosis
WO2010033906A2 (en) 2008-09-19 2010-03-25 President And Fellows Of Harvard College Efficient induction of pluripotent stem cells using small molecule compounds
WO2010037408A1 (en) 2008-09-30 2010-04-08 Curevac Gmbh Composition comprising a complexed (m)rna and a naked mrna for providing or enhancing an immunostimulatory response in a mammal and uses thereof
WO2010042490A1 (en) 2008-10-06 2010-04-15 Boston Medical Center Corporation A single lentiviral vector system for induced pluripotent (ips) stem cells derivation
EP2743265B1 (en) 2008-10-09 2017-03-15 Arbutus Biopharma Corporation Improved amino lipids and methods for the delivery of nucleic acids
US8535655B2 (en) 2008-10-10 2013-09-17 Polyactiva Pty Ltd. Biodegradable polymer—bioactive moiety conjugates
US8343498B2 (en) 2008-10-12 2013-01-01 Massachusetts Institute Of Technology Adjuvant incorporation in immunonanotherapeutics
WO2010047765A2 (en) 2008-10-20 2010-04-29 Massachussetts Institute Of Technology Nanostructures for drug delivery
US20120015899A1 (en) 2008-10-25 2012-01-19 Plant Bioscience, Limited Modified plant virus particles and uses therefor
WO2010053572A2 (en) 2008-11-07 2010-05-14 Massachusetts Institute Of Technology Aminoalcohol lipidoids and uses thereof
EP3207944B1 (en) 2008-11-10 2020-01-15 Arbutus Biopharma Corporation Novel lipids and compositions for the delivery of therapeutics
US8734853B2 (en) 2008-11-17 2014-05-27 University Of North Texas Health Science Center At Fort Worth HDL particles for delivery of nucleic acids
EP2191840A1 (en) 2008-11-28 2010-06-02 Sanofi-Aventis Antitumor combinations containing antibodies recognizing specifically CD38 and melphalan
AU2009324534B2 (en) 2008-12-10 2015-07-30 Alnylam Pharmaceuticals, Inc. GNAQ targeted dsRNA compositions and methods for inhibiting expression
EP2196476A1 (en) 2008-12-10 2010-06-16 Novartis Ag Antibody formulation
EP2376091A4 (en) 2008-12-12 2012-08-01 Univ California Novel targets for treatment of hypercholesterolemia
US8563041B2 (en) 2008-12-12 2013-10-22 Bind Therapeutics, Inc. Therapeutic particles suitable for parenteral administration and methods of making and using same
JP2012512175A (en) 2008-12-15 2012-05-31 バインド バイオサイエンシズ インコーポレイテッド Long-circulating nanoparticles for sustained release of therapeutic agents
EP2405937A4 (en) 2009-01-16 2012-06-20 Glaxosmithkline Llc Treatment of a cancer using a combination of bendamustine and an anti-cd20 antibody
WO2010084371A1 (en) 2009-01-26 2010-07-29 Mitoprod Novel circular interfering rna molecules
WO2010088537A2 (en) 2009-01-29 2010-08-05 Alnylam Pharmaceuticals, Inc. Improved lipid formulation
WO2010088927A1 (en) 2009-02-09 2010-08-12 Curevac Gmbh Use of pei for the improvement of endosomal release and expression of transfected nucleic acids, complexed with cationic or polycationic compounds
US20140141089A1 (en) 2009-02-11 2014-05-22 Colorado School Of Mines Nanoparticles, Compositions Thereof, and Methods of Use, and Methods of Making the Same
SG174150A1 (en) 2009-02-24 2011-10-28 Scripps Research Inst Reengineering mrna primary structure for enhanced protein production
WO2010102065A1 (en) 2009-03-05 2010-09-10 Bend Research, Inc. Pharmaceutical compositions of dextran polymer derivatives
WO2010141135A2 (en) 2009-03-05 2010-12-09 Trustees Of Boston University Bacteriophages expressing antimicrobial peptides and uses thereof
JP2012520085A (en) 2009-03-13 2012-09-06 エーゲン、インコーポレイテッド Compositions and methods for delivery of bioactive RNA
US8460696B2 (en) 2009-03-20 2013-06-11 Egen, Inc. Polyamine derivatives
US20120095077A1 (en) 2009-03-23 2012-04-19 University Of Utah Research Foundation Methods and compositions related to modified guanine bases for controlling off-target effects in rna interference
JP5622254B2 (en) 2009-03-31 2014-11-12 国立大学法人東京大学 Double-stranded ribonucleic acid polyion complex
SI3281947T1 (en) 2009-04-03 2020-07-31 The University Of Chicago Compositions and methods related to protein a (spa) variants
WO2010120266A1 (en) 2009-04-13 2010-10-21 Inserm, Institut National De La Sante Et De La Recherche Medicale Hpv particles and uses thereof
WO2010121141A1 (en) 2009-04-17 2010-10-21 Biogen Idec Ma Inc. Compositions and methods to treat acute myelogenous leukemia
WO2010123501A1 (en) 2009-04-22 2010-10-28 Massachusetts Institute Of Technology Innate immune suppression enables repeated delivery of long rna molecules
AR076402A1 (en) 2009-04-27 2011-06-08 Novartis Ag COMPOSITIONS AND METHODS TO INCREASE MUSCLE GROWTH
US8715736B2 (en) 2009-04-30 2014-05-06 Florida Agricultural And Mechanical University Nanoparticle formulations for skin delivery
WO2010127159A2 (en) 2009-04-30 2010-11-04 Intezyne Technologies, Incorporated Polymeric micelles for polynucleotide encapsulation
NZ596186A (en) 2009-05-05 2014-03-28 Alnylam Pharmaceuticals Inc Lipid compositions
DE202009007116U1 (en) 2009-05-18 2010-10-14 Amoena Medizin-Orthopädie-Technik GmbH Anti decubitus cushions
US8574835B2 (en) 2009-05-29 2013-11-05 Life Technologies Corporation Scaffolded nucleic acid polymer particles and methods of making and using
EP2440556A1 (en) 2009-06-10 2012-04-18 Vertex Pharmaceuticals Incorporated Inhibitors of phosphatidylinositol 3-kinase
HUE038796T2 (en) 2009-06-10 2018-11-28 Arbutus Biopharma Corp Improved lipid formulation
EA201270019A1 (en) 2009-06-15 2012-06-29 Элнилэм Фармасьютикалз, Инк. BENTROVAL RNA INCLUDED IN LIPID COMPOSITION AND WHICH IS THE PCSK9 GENE
US20110097329A1 (en) 2009-06-26 2011-04-28 Massachusetts Institute Of Technology Compositions and methods for treating cancer and modulating stress granule formation
WO2011000106A1 (en) 2009-07-01 2011-01-06 Protiva Biotherapeutics, Inc. Improved cationic lipids and methods for the delivery of therapeutic agents
ES2613498T3 (en) 2009-07-01 2017-05-24 Protiva Biotherapeutics Inc. New lipid formulations for the delivery of therapeutic agents to solid tumors
EP2451475A2 (en) 2009-07-06 2012-05-16 Novartis AG Self replicating rna molecules and uses thereof
DE102009033507A1 (en) * 2009-07-15 2011-01-20 Niro-Plan Ag Apparatus and method for producing chilled coffee
EP3581197A1 (en) 2009-07-31 2019-12-18 ethris GmbH Rna with a combination of unmodified and modified nucleotides for protein expression
EP2281579A1 (en) 2009-08-05 2011-02-09 BioNTech AG Vaccine composition comprising 5'-Cap modified RNA
US20110053829A1 (en) 2009-09-03 2011-03-03 Curevac Gmbh Disulfide-linked polyethyleneglycol/peptide conjugates for the transfection of nucleic acids
US20110070227A1 (en) 2009-09-18 2011-03-24 Anna-Marie Novotney-Barry Treatment of Autoimmune and Inflammatory Diseases
US8859284B2 (en) 2009-10-22 2014-10-14 The United States Of America, As Represented By The Secretary Of The Navy Delivery of nanoparticles to neurons
US8449916B1 (en) 2009-11-06 2013-05-28 Iowa State University Research Foundation, Inc. Antimicrobial compositions and methods
WO2011060250A1 (en) 2009-11-13 2011-05-19 Bend Research, Inc. Cationic dextran polymer derivatives
WO2011062965A2 (en) 2009-11-18 2011-05-26 University Of Washington Through Its Center For Commercialization Targeting monomers and polymers having targeting blocks
US8530429B2 (en) 2009-11-24 2013-09-10 Arch Cancer Therapeutics, Inc. Brain tumor targeting peptides and methods
AU2010326132B9 (en) 2009-12-01 2014-10-02 Translate Bio, Inc. Delivery of mRNA for the augmentation of proteins and enzymes in human genetic diseases
US20110245756A1 (en) 2009-12-03 2011-10-06 Rishi Arora Devices for material delivery, electroporation, sonoporation, and/or monitoring electrophysiological activity
ES2659888T3 (en) 2009-12-06 2018-03-19 Bioverativ Therapeutics Inc. Chimeric and hybrid polypeptides of Factor VIII-Fc, and methods of use thereof
WO2011071860A2 (en) 2009-12-07 2011-06-16 Alnylam Pharmaceuticals, Inc. Compositions for nucleic acid delivery
CA3170391A1 (en) * 2009-12-07 2011-06-16 The Trustees Of The University Of Pennsylvania Rna preparations comprising purified modified rna for reprogramming cells
US20130189741A1 (en) 2009-12-07 2013-07-25 Cellscript, Inc. Compositions and methods for reprogramming mammalian cells
WO2011069529A1 (en) 2009-12-09 2011-06-16 Curevac Gmbh Mannose-containing solution for lyophilization, transfection and/or injection of nucleic acids
WO2011069528A1 (en) 2009-12-09 2011-06-16 Curevac Gmbh Lyophilization of nucleic acids in lactate-containing solutions
TR201906255T4 (en) 2009-12-11 2019-05-21 Pfizer Stable formulations for lyophilizing therapeutic particles.
EP2515942B1 (en) 2009-12-15 2020-02-12 Pfizer Inc. Therapeutic polymeric nanoparticle compositions with high glass transition temperature or high molecular weight copolymers
JP6175237B2 (en) 2009-12-15 2017-08-02 ファイザー・インク Therapeutic polymer nanoparticles containing corticosteroids and methods of making and using the same
DE102009058769A1 (en) 2009-12-16 2011-06-22 MagForce Nanotechnologies AG, 10589 Temperature-dependent activation of catalytic nucleic acids for controlled drug release
EA201290506A1 (en) 2009-12-16 2013-03-29 Брихэм Энд Уимен'З Хоспитал, Инк. PARTICLES FOR DELIVERY OF A SET OF AGENTS
US20130017223A1 (en) 2009-12-18 2013-01-17 The University Of British Columbia Methods and compositions for delivery of nucleic acids
MX348474B (en) 2009-12-23 2017-06-14 Novartis Ag * Lipids, lipid compositions, and methods of using them.
WO2011088309A1 (en) 2010-01-14 2011-07-21 Regulus Therapeutics Inc. Microrna compositions and methods
SI2539451T1 (en) 2010-02-24 2016-04-29 Arrowhead Research Corporation Compositions for targeted delivery of sirna
WO2011106702A2 (en) 2010-02-25 2011-09-01 The Johns Hopkins University Sustained delivery of therapeutic agents to an eye compartment
WO2011112608A1 (en) 2010-03-08 2011-09-15 University Of Rochester Synthesis of nanoparticles using reducing gases
CA2793373A1 (en) 2010-03-16 2011-09-22 University Of Utah Research Foundation Cleavable modifications to reducible poly (amido ethylenimines)s to enhance nucleotide delivery
WO2011116072A1 (en) 2010-03-16 2011-09-22 Escape Therapeutics, Inc. Hybrid hydrogel scaffold compositions and methods of use
US20110230816A1 (en) 2010-03-18 2011-09-22 Tyco Healthcare Group Lp Gels for Transdermal Delivery
US9149432B2 (en) 2010-03-19 2015-10-06 Massachusetts Institute Of Technology Lipid vesicle compositions and methods of use
WO2011119817A2 (en) 2010-03-24 2011-09-29 United States Endoscopy Group, Inc. Multiple biopsy device
GB201005005D0 (en) 2010-03-25 2010-05-12 Angeletti P Ist Richerche Bio New vaccine
WO2011120053A1 (en) 2010-03-26 2011-09-29 Mersana Therapeutics, Inc. Modified polymers for delivery of polynucleotides, method of manufacture, and methods of use thereof
WO2011119262A1 (en) 2010-03-26 2011-09-29 Cerulean Pharma Inc. Methods and systems for generating nanoparticles
US20110247090A1 (en) 2010-04-02 2011-10-06 Intrexon Corporation Synthetic 5'UTRs, Expression Vectors, and Methods for Increasing Transgene Expression
JP2013523818A (en) 2010-04-05 2013-06-17 ザ・ユニバーシティー・オブ・シカゴ Compositions and methods relating to protein A (SpA) antibodies as enhancers of immune responses
US20130037977A1 (en) 2010-04-08 2013-02-14 Paul A. Burke Preparation of Lipid Nanoparticles
JP5652830B2 (en) 2010-04-09 2015-01-14 国立大学法人 東京大学 MicroRNA-controlled recombinant vaccinia virus and use thereof
CN104922071A (en) 2010-04-09 2015-09-23 帕西拉制药有限公司 Method for formulating large diameter synthetic membrane vesicles
KR101196667B1 (en) 2010-04-15 2012-11-02 포항공과대학교 산학협력단 A DELEVERY SYSTEM OF ANTI-CANCER AGENT USING pH SENSITIVE METAL NANOPARTICLE
LT2558577T (en) 2010-04-16 2019-03-12 Nuevolution A/S Bi-functional complexes and methods for making and using such complexes
EP3072961A1 (en) 2010-04-16 2016-09-28 Children's Medical Center Corporation Sustained polypeptide expression from synthetic, modified rnas and uses thereof
EP2377938A1 (en) 2010-04-16 2011-10-19 Eukarys Capping-prone RNA polymerase enzymes and their applications
US20130260460A1 (en) 2010-04-22 2013-10-03 Isis Pharmaceuticals Inc Conformationally restricted dinucleotide monomers and oligonucleotides
MX2012012567A (en) 2010-04-28 2012-11-21 Kimberly Clark Co Method for increasing permeability of an epithelial barrier.
US20130156845A1 (en) 2010-04-29 2013-06-20 Alnylam Pharmaceuticals, Inc. Lipid formulated single stranded rna
AU2011245372A1 (en) 2010-04-30 2012-11-29 Novartis Ag Predictive markers useful in the treatment of Fragile X Syndrome (FXS)
US9254327B2 (en) 2010-05-10 2016-02-09 Alnylam Pharmaceuticals, Inc. Methods and compositions for delivery of active agents
JP2013527856A (en) 2010-05-12 2013-07-04 プロチバ バイオセラピューティクス インコーポレイティッド Cationic lipids and methods of use
WO2011141704A1 (en) 2010-05-12 2011-11-17 Protiva Biotherapeutics, Inc Novel cyclic cationic lipids and methods of use
EP2387999A1 (en) 2010-05-21 2011-11-23 CureVac GmbH Histidine-containing solution for transfection and/or injection of nucleic acids and uses thereof
JP2013531634A (en) 2010-05-24 2013-08-08 メルク・シャープ・エンド・ドーム・コーポレイション Novel aminoalcohol cationic lipids for oligonucleotide delivery
JP5957646B2 (en) 2010-06-04 2016-07-27 サーナ・セラピューティクス・インコーポレイテッドSirna Therapeutics,Inc. Novel low molecular weight cationic lipids for oligonucleotide delivery
JP5726299B2 (en) 2010-06-14 2015-05-27 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Cell penetrating peptides and uses thereof
US20130236968A1 (en) 2010-06-21 2013-09-12 Alnylam Pharmaceuticals, Inc. Multifunctional copolymers for nucleic acid delivery
EP2585106A1 (en) 2010-06-25 2013-05-01 Novartis AG Combinations of meningococcal factor h binding proteins
WO2012002760A2 (en) 2010-07-01 2012-01-05 포항공과대학교 산학협력단 Method for treating and diagnosing cancer by using cell-derived microvesicles
JP6002128B2 (en) 2010-07-02 2016-10-05 ザ・ユニバーシティ・オブ・シカゴThe University Of Chicago Compositions and methods related to protein A (SpA) variants
NZ606591A (en) 2010-07-06 2015-02-27 Novartis Ag Cationic oil-in-water emulsions
HUE029284T2 (en) 2010-07-06 2017-02-28 Glaxosmithkline Biologicals Sa Immunisation of large mammals with low doses of rna
ES2934240T3 (en) 2010-07-06 2023-02-20 Glaxosmithkline Biologicals Sa Virion-like delivery particles for self-replicating RNA molecules
US9770463B2 (en) 2010-07-06 2017-09-26 Glaxosmithkline Biologicals Sa Delivery of RNA to different cell types
MX2013000164A (en) 2010-07-06 2013-03-05 Novartis Ag Liposomes with lipids having an advantageous pka- value for rna delivery.
US9192661B2 (en) 2010-07-06 2015-11-24 Novartis Ag Delivery of self-replicating RNA using biodegradable polymer particles
PT3243526T (en) 2010-07-06 2020-03-04 Glaxosmithkline Biologicals Sa Delivery of rna to trigger multiple immune pathways
US9611310B2 (en) 2010-07-09 2017-04-04 Bioverativ Therapeutics Inc. Systems for factor VIII processing and methods thereof
SG186856A1 (en) 2010-07-09 2013-02-28 Biogen Idec Hemophilia Inc Factor ix polypeptides and methods of use thereof
WO2012009406A2 (en) 2010-07-13 2012-01-19 University Of Utah Research Foundation Gold particles and methods of making and using the same in cancer treatment
GB201012410D0 (en) 2010-07-23 2010-09-08 Medical Res Council Intracellular immunity
DK2449113T3 (en) 2010-07-30 2016-01-11 Curevac Ag Complex formation of nucleic acids with the disulfide cross-linked cationic components for transfection and immunostimulation
CA2807552A1 (en) 2010-08-06 2012-02-09 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
US9121065B2 (en) 2010-08-09 2015-09-01 The Trustees Of The University Of Pennsylvania Nanoparticle-oligonucleotide hybrid structures and methods of use thereof
WO2012019630A1 (en) 2010-08-13 2012-02-16 Curevac Gmbh Nucleic acid comprising or coding for a histone stem-loop and a poly(a) sequence or a polyadenylation signal for increasing the expression of an encoded protein
AU2011290471B2 (en) 2010-08-20 2015-08-20 Novartis Ag Soluble needle arrays for delivery of influenza vaccines
US20130142868A1 (en) 2010-08-20 2013-06-06 University Of Washington Circumferential Aerosol Device for Delivering Drugs to Olfactory Epithelium and Brain
BR112013003825A2 (en) 2010-08-20 2019-09-24 Cerulean Pharma Inc related conjugates, particles, compositions and methods
PT3556396T (en) 2010-08-31 2022-07-04 Scripps Research Inst Human immunodeficiency virus (hiv)-neutralizing antibodies
EP2611927B1 (en) 2010-08-31 2018-08-01 Sirna Therapeutics, Inc. Novel single chemical entities and methods for delivery of oligonucleotides
MX2013002336A (en) 2010-08-31 2013-03-18 Novartis Ag Pegylated liposomes for delivery of immunogen-encoding rna.
HUE059214T2 (en) 2010-08-31 2022-10-28 Glaxosmithkline Biologicals Sa Small liposomes for delivery of immunogen-encoding rna
JP5908477B2 (en) 2010-08-31 2016-04-26 ノバルティス アーゲー Lipids suitable for liposome delivery of protein-encoding RNA
US9549901B2 (en) 2010-09-03 2017-01-24 The Brigham And Women's Hospital, Inc. Lipid-polymer hybrid particles
US20130236419A1 (en) 2010-09-09 2013-09-12 The University Of Chicago Compositions and methods related to attenuated staphylococcal strains
US9095540B2 (en) 2010-09-09 2015-08-04 The University Of Chicago Methods and compositions involving protective staphylococcal antigens
US10307372B2 (en) 2010-09-10 2019-06-04 The Johns Hopkins University Rapid diffusion of large polymeric nanoparticles in the mammalian brain
US8466122B2 (en) 2010-09-17 2013-06-18 Protiva Biotherapeutics, Inc. Trialkyl cationic lipids and methods of use thereof
US9669097B2 (en) 2010-09-20 2017-06-06 Sirna Therapeutics, Inc. Low molecular weight cationic lipids for oligonucleotide delivery
EP2619307A1 (en) 2010-09-21 2013-07-31 RiboxX GmbH Method for synthesizing rna using dna template
EP2618821A4 (en) 2010-09-24 2014-08-13 Brigham & Womens Hospital Nanostructured gels capable of controlled release of encapsulated agents
WO2012050975A2 (en) 2010-09-29 2012-04-19 The University Of North Carolina At Chapel Hill Novel circular mammalian rna molecules and uses thereof
CA2811430A1 (en) 2010-09-30 2012-04-05 Merck Sharp & Dohme Corp. Low molecular weight cationic lipids for oligonucleotide delivery
EP4108671A1 (en) 2010-10-01 2022-12-28 ModernaTX, Inc. Modified nucleosides, nucleotides, and nucleic acids, and uses thereof
WO2013086505A1 (en) 2011-12-09 2013-06-13 Vanderbilt University Integrated organ-on-chip system and applications of the same
EP3485913A1 (en) 2010-10-21 2019-05-22 Sirna Therapeutics, Inc. Low molecular weight cationic lipids for oligonucleotide delivery
BR112013009649A2 (en) 2010-10-29 2016-07-12 Merck Sharp & Dohme immunogenic composition, methods for eliciting a protective immune response in a human patient and for providing human immune protection against disease, and use of a composition
CA3054532C (en) 2010-11-05 2022-07-12 The Johns Hopkins University Compositions and methods relating to reduced mucoadhesion
CA2811113A1 (en) 2010-11-09 2012-05-18 The Regents Of The University Of California Skin permeating and cell entering (space) peptides and methods of use thereof
CA2817709C (en) 2010-11-12 2021-06-01 The Trustees Of The University Of Pennsylvania Consensus prostate antigens, nucleic acid molecule encoding the same and vaccine and uses comprising the same
US8546550B2 (en) 2010-11-16 2013-10-01 Selecta Biosciences, Inc. Immunostimulatory oligonucleotides
DK2640842T3 (en) 2010-11-17 2018-08-13 Aduro Biotech Inc Methods and compositions for inducing an immune response to EGFRVIII
CA2817891C (en) 2010-11-19 2021-10-12 Idera Pharmaceuticals, Inc. Immune regulatory oligonucleotide (iro) compounds to modulate toll-like receptor based immune response
US8853377B2 (en) 2010-11-30 2014-10-07 Shire Human Genetic Therapies, Inc. mRNA for use in treatment of human genetic diseases
WO2012072096A1 (en) 2010-12-03 2012-06-07 Biontech Ag Method for cellular rna expression
WO2012103985A2 (en) 2010-12-16 2012-08-09 Steve Pascolo Pharmaceutical composition consisting of rna having alkali metal as counter ion and formulated with dications
US8501930B2 (en) 2010-12-17 2013-08-06 Arrowhead Madison Inc. Peptide-based in vivo siRNA delivery system
EP3202903B1 (en) 2010-12-22 2020-02-12 President and Fellows of Harvard College Continuous directed evolution
JP5876073B2 (en) 2010-12-29 2016-03-02 エフ.ホフマン−ラ ロシュ アーゲーF. Hoffmann−La Roche Aktiengesellschaft Small molecule complexes for intracellular delivery of nucleic acids
WO2012089225A1 (en) 2010-12-29 2012-07-05 Curevac Gmbh Combination of vaccination and inhibition of mhc class i restricted antigen presentation
US10364440B2 (en) 2011-01-04 2019-07-30 Brown University Nanotubes as carriers of nucleic acids into cells
WO2012094574A2 (en) 2011-01-06 2012-07-12 The Johns Hopkins University Stabilized polyribonucleotide nanoparticles
WO2012094653A2 (en) 2011-01-07 2012-07-12 Massachusetts Institute Of Technology Compositions and methods for macromolecular drug delivery
DK2663548T3 (en) 2011-01-11 2017-07-24 Alnylam Pharmaceuticals Inc PEGYLED LIPIDS AND THEIR USE FOR PHARMACEUTICAL SUPPLY
WO2012099805A2 (en) 2011-01-19 2012-07-26 Ocean Nanotech, Llc Nanoparticle based immunological stimulation
US20140065172A1 (en) 2011-01-26 2014-03-06 Cenix Bioscience Gmbh Delivery system and conjugates for compound delivery via naturally occurring intracellular transport routes
US10363309B2 (en) 2011-02-04 2019-07-30 Case Western Reserve University Targeted nanoparticle conjugates
WO2012109121A1 (en) 2011-02-07 2012-08-16 Purdue Research Foundation Carbohydrate nanoparticles for prolonged efficacy of antimicrobial peptide
WO2012116715A1 (en) 2011-03-02 2012-09-07 Curevac Gmbh Vaccination in newborns and infants
US20120207840A1 (en) 2011-02-10 2012-08-16 Aura Biosciences, Inc. Virion Derived Protein Nanoparticles For Delivering Diagnostic Or Therapeutic Agents For The Treatment Of Non-Melanoma Skin Cancer
CN103703013A (en) 2011-02-14 2014-04-02 斯威夫特生物科学公司 Polynucleotide primers and probes
WO2012112689A1 (en) 2011-02-15 2012-08-23 The University Of North Carolina At Chapel Hill Nanoparticle, liposomes, polymers, agents and proteins modified with reversible linkers
WO2012112730A2 (en) 2011-02-15 2012-08-23 Merrimack Pharmaceuticals, Inc. Compositions and methods for delivering nucleic acid to a cell
EP2489371A1 (en) 2011-02-18 2012-08-22 Instituto Nacional de Investigacion y Tecnologia Agraria y Alimentaria Carrier peptides for drug delivery
WO2012113413A1 (en) 2011-02-21 2012-08-30 Curevac Gmbh Vaccine composition comprising complexed immunostimulatory nucleic acids and antigens packaged with disulfide-linked polyethyleneglycol/peptide conjugates
US8865881B2 (en) 2011-02-22 2014-10-21 California Institute Of Technology Delivery of proteins using adeno-associated virus (AAV) vectors
US8696637B2 (en) 2011-02-28 2014-04-15 Kimberly-Clark Worldwide Transdermal patch containing microneedles
WO2012116714A1 (en) 2011-03-02 2012-09-07 Curevac Gmbh Vaccination in elderly patients
WO2012117377A1 (en) 2011-03-02 2012-09-07 Novartis Ag Combination vaccines with lower doses of antigen and/or adjuvant
AU2012225497A1 (en) 2011-03-07 2013-10-24 Massachusetts Institute Of Technology Methods for transfecting cells with nucleic acids
WO2012125680A1 (en) 2011-03-16 2012-09-20 Novartis Ag Methods of treating vasculitis using an il-17 binding molecule
WO2012125987A2 (en) 2011-03-17 2012-09-20 Massachusetts Institute Of Technology Delivery system
AU2012229107A1 (en) 2011-03-17 2013-09-19 Novartis Ag FGFR and ligands thereof as biomarkers for breast cancer in HR positive subjects
WO2012129483A1 (en) 2011-03-24 2012-09-27 Novartis Ag Adjuvant nanoemulsions with phospholipids
DK2691443T3 (en) 2011-03-28 2021-05-03 Massachusetts Inst Technology CONJUGIATED LIPOMERS AND USES OF THESE
US20140005070A1 (en) 2011-03-28 2014-01-02 Novartis Ag Markers associated with cyclin-dependent kinase inhibitors
AU2012236099A1 (en) 2011-03-31 2013-10-03 Moderna Therapeutics, Inc. Delivery and formulation of engineered nucleic acids
EP2694660B1 (en) 2011-04-03 2018-08-08 The General Hospital Corporation Efficient protein expression in vivo using modified rna (mod-rna)
WO2012138530A1 (en) 2011-04-04 2012-10-11 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services 2'-o-aminooxymethyl nucleoside derivatives for use in the synthesis and modification of nucleosides, nucleotides and oligonucleotides
WO2012142132A1 (en) 2011-04-11 2012-10-18 Life Technologies Corporation Polymer particles and methods of making and using same
US11135174B2 (en) 2011-04-13 2021-10-05 The Trustees Of The University Of Pennsylvania Coated mesoporous nanoparticles
WO2013158127A1 (en) 2012-04-16 2013-10-24 Molecular Transfer, Inc. Agents for improved delivery of nucleic acids to eukaryotic cells
US20140178894A1 (en) 2011-04-20 2014-06-26 Novartis Forschungsstiftung, Zweigniederlassung Culture medium suitable for the culture of undifferentiated cells
KR101998431B1 (en) 2011-04-26 2019-07-09 몰레큘라 익스프레스 인코포레이티드 Liposomal formulations
AU2012249474A1 (en) 2011-04-28 2013-11-07 Stc.Unm Porous nanoparticle-supported lipid bilayers (protocells) for targeted delivery and methods of using same
EP2702075A4 (en) 2011-04-28 2015-04-22 Jackson H M Found Military Med Neutralizing antibodies to nipah and hendra virus
CN113018452A (en) 2011-04-29 2021-06-25 西莱克塔生物科技公司 Tolerogenic synthetic nanocarriers for antigen-specific deletion of effector T cells
WO2012149246A1 (en) 2011-04-29 2012-11-01 Novartis Ag Methods of treating squamous cell carcinoma related applications
UA116189C2 (en) 2011-05-02 2018-02-26 Мілленніум Фармасьютікалз, Інк. FORMULATION FOR ANTI-α4β7 ANTIBODY
US9816076B2 (en) 2011-05-02 2017-11-14 Wayne State University Protein-induced pluripotent cell technology and uses thereof
US8945588B2 (en) 2011-05-06 2015-02-03 The University Of Chicago Methods and compositions involving protective staphylococcal antigens, such as EBH polypeptides
CN103547350A (en) 2011-05-10 2014-01-29 巴斯夫欧洲公司 Oil-in-water emulsions
US9283279B2 (en) 2011-05-11 2016-03-15 Ramot At Tel-Aviv University Ltd. Targeted polymeric conjugates and uses thereof
DK2706988T3 (en) 2011-05-12 2020-01-20 Yissum Res Dev Co Of Hebrew Univ Jerusalem Ltd LIPOSOMES COMPREHENSIVE POLYMER CONJUGATED LIPIDS AND RELATED USE
CA2835492A1 (en) 2011-05-12 2012-11-15 Helmut Vockner Novel pharmaceutical formulation
LT2707385T (en) 2011-05-13 2017-12-11 Glaxosmithkline Biologicals Sa Pre-fusion rsv f antigens
US8691750B2 (en) 2011-05-17 2014-04-08 Axolabs Gmbh Lipids and compositions for intracellular delivery of biologically active compounds
WO2012158736A1 (en) 2011-05-17 2012-11-22 modeRNA Therapeutics Engineered nucleic acids and methods of use thereof for non-human vertebrates
US8978170B2 (en) 2011-05-20 2015-03-17 Kohler Co. Toilet installation system and method
BR112013029787A2 (en) 2011-05-25 2017-01-17 Novartis Ag lung cancer biomarkers
WO2012166923A2 (en) 2011-05-31 2012-12-06 Bind Biosciences Drug loaded polymeric nanoparticles and methods of making and using same
CN107115314B (en) 2011-06-02 2022-04-29 加利福尼亚大学董事会 Film-encapsulated nanoparticles and methods of use
WO2012166241A1 (en) 2011-06-02 2012-12-06 Novartis Ag Biomarkers for hedgehog inhibitor therapy
EP2717911A1 (en) 2011-06-06 2014-04-16 Novartis Forschungsstiftung, Zweigniederlassung Protein tyrosine phosphatase, non-receptor type 11 (ptpn11) and triple-negative breast cancer
ES2663360T3 (en) 2011-06-08 2018-04-12 Translate Bio, Inc. Cleavable lipids
KR102128248B1 (en) 2011-06-08 2020-07-01 샤이어 휴먼 지네틱 테라피즈 인크. Lipid nanoparticle compositions and methods for mrna delivery
US8636696B2 (en) 2011-06-10 2014-01-28 Kimberly-Clark Worldwide, Inc. Transdermal device containing microneedles
WO2012170607A2 (en) 2011-06-10 2012-12-13 Novartis Ag Use of pcsk9 antagonists
WO2012168491A1 (en) 2011-06-10 2012-12-13 Novartis Ag Pharmaceutical formulations of pcsk9 antagonists
US8916696B2 (en) 2011-06-12 2014-12-23 City Of Hope Aptamer-mRNA conjugates for targeted protein or peptide expression and methods for their use
WO2012172495A1 (en) 2011-06-14 2012-12-20 Novartis Ag Compositions and methods for antibodies targeting tem8
CN103717249B (en) 2011-06-15 2017-03-22 克洛恩泰克制药股份公司 Injection needle and device
US20140193408A1 (en) 2011-06-16 2014-07-10 Novartis Ag Soluble proteins for use as therapeutics
US9580475B2 (en) 2011-06-20 2017-02-28 University of Pittsburgh—of the Commonwealth System of Higher Education Computationally optimized broadly reactive antigens for H1N1 influenza
WO2013003475A1 (en) 2011-06-27 2013-01-03 Cellscript, Inc. Inhibition of innate immune response
KR20230156804A (en) 2011-06-28 2023-11-14 이노비오 파마수티컬즈, 인크. A miniminally invasive dermal electroporation device
HUE040276T2 (en) 2011-07-01 2019-02-28 Novartis Ag Method for treating metabolic disorders
US20150024488A1 (en) 2011-07-04 2015-01-22 Commonwealth Scientific And Industrial Research Organisation Nucleic acid complex
EP2729125B1 (en) 2011-07-06 2017-12-13 GlaxoSmithKline Biologicals SA Oil-in-water emulsions that contain nucleic acids
EP2729124B1 (en) 2011-07-06 2018-10-24 GlaxoSmithKline Biologicals SA Cationic oil-in-water emulsions
EP3508219A1 (en) 2011-07-06 2019-07-10 GlaxoSmithKline Biologicals S.A. Self-replicating rna prime - protein boost vaccines
US20140141070A1 (en) 2011-07-06 2014-05-22 Andrew Geall Liposomes having useful n:p ratio for delivery of rna molecules
EP3332802A1 (en) 2011-07-06 2018-06-13 GlaxoSmithKline Biologicals SA Immunogenic combination compositions and uses thereof
WO2013006824A2 (en) 2011-07-07 2013-01-10 Life Technologies Corporation Polymer particles, nucleic acid polymer particles and methods of making and using the same
WO2013009717A1 (en) 2011-07-10 2013-01-17 Elisabet De Los Pinos Virion derived protein nanoparticles for delivering diagnostic or therapeutic agents for the treatment of skin-related diseases
US9617392B2 (en) 2011-07-10 2017-04-11 President And Fellows Of Harvard College Compositions and methods for self-assembly of polymers with complementary macroscopic and microscopic scale units
US20130012566A1 (en) 2011-07-10 2013-01-10 Aura Biosciences, Inc. Virion Derived Protein Nanoparticles For Delivering Diagnostic Or Therapeutic Agents For The Treatment of Alopecia
WO2013012921A2 (en) 2011-07-20 2013-01-24 University Of Iowa Research Foundation Nucleic acid aptamers
GB2492999A (en) 2011-07-20 2013-01-23 Univ Central Lancashire Neutron detector
EP2734184B1 (en) 2011-07-21 2018-03-28 Croda International Plc Branched polyether-polyamide block copolymers and methods of making and using the same
US9493549B2 (en) 2011-07-25 2016-11-15 The Rockefeller University Antibodies directed toward the HIV-1 GP120 CD4 binding site with increased potency and breadth
ES2687129T3 (en) 2011-07-25 2018-10-23 Glaxosmithkline Biologicals Sa Compositions and methods to evaluate the functional immunogenicity of parvovirus vaccines
EA201490381A1 (en) 2011-07-29 2014-06-30 Селекта Байосайенсиз, Инк. SYNTHETIC NANOSEAGES WHICH STIMULATE THE FORMATION OF HUMORAL IMMUNE RESPONSE AND IMMUNE RESPONSE MEDIATED BY CYTOTOXIC T-LYMPHOCYTES (CTL)
JP6317670B2 (en) 2011-08-15 2018-04-25 ザ・ユニバーシティ・オブ・シカゴThe University Of Chicago Compositions and methods related to antibodies to staphylococcal protein A
JP2014531476A (en) 2011-08-26 2014-11-27 アローヘッド リサーチ コーポレイション Poly (vinyl ester) polymers for in vivo nucleic acid delivery
KR20140067070A (en) 2011-08-31 2014-06-03 말린크로트 엘엘씨 Nanoparticle peg modification with h-phosphonates
SG10201602456WA (en) 2011-08-31 2016-04-28 Novartis Ag Pegylated liposomes for delivery of immunogen-encoding rna
US9126966B2 (en) 2011-08-31 2015-09-08 Protiva Biotherapeutics, Inc. Cationic lipids and methods of use thereof
JP2014525462A (en) 2011-09-01 2014-09-29 アイアールエム・リミテッド・ライアビリティ・カンパニー Compounds and compositions as PDGFR kinase inhibitors
EP3521432A1 (en) 2011-09-02 2019-08-07 Arrowhead Pharmaceuticals, Inc. Organic compositions to treat hsf1-related diseases
EP2755693A4 (en) 2011-09-12 2015-05-20 Moderna Therapeutics Inc Engineered nucleic acids and methods of use thereof
WO2013039857A1 (en) 2011-09-12 2013-03-21 modeRNA Therapeutics Engineered nucleic acids and methods of use thereof
CN103917245B (en) 2011-09-14 2017-06-06 葛兰素史密丝克莱恩生物有限公司 Method for preparing glycoprotein glycoconjugate
WO2013044219A1 (en) 2011-09-22 2013-03-28 Bind Biosciences Methods of treating cancers with therapeutic nanoparticles
WO2013072929A2 (en) 2011-09-23 2013-05-23 Indian Institute Of Technology Nanop article based cosmetic composition
US9458214B2 (en) 2011-09-26 2016-10-04 Novartis Ag Dual function fibroblast growth factor 21 proteins
UY34346A (en) 2011-09-26 2013-04-30 Novartis Ag FUSION PROTEINS TO TREAT METABOLIC DISORDERS
US9701623B2 (en) 2011-09-27 2017-07-11 Alnylam Pharmaceuticals, Inc. Di-aliphatic substituted pegylated lipids
WO2013045505A1 (en) 2011-09-28 2013-04-04 Novartis Ag Biomarkers for raas combination therapy
CN103974724B (en) 2011-10-03 2019-08-30 现代泰克斯公司 Nucleosides, nucleotide and nucleic acid of modification and application thereof
WO2013055971A1 (en) 2011-10-11 2013-04-18 Arizona Board Of Regents For And On Behalf Of Arizona State University Polymers for delivering a substance into a cell
CA2872033A1 (en) 2011-10-11 2013-04-18 Novartis Ag Recombinant self-replicating polycistronic rna molecules
WO2014066811A1 (en) 2012-10-25 2014-05-01 The Johns Hopkins University Bioreducible poly (b-amino ester)s for sirna delivery
EP2766407B1 (en) 2011-10-12 2018-06-27 The Curators Of The University Of Missouri Pentablock polymers
ES2769786T3 (en) 2011-10-14 2020-06-29 Recordati Ag Antibodies and methods for diseases related to the Wnt pathway
EP2765997A4 (en) 2011-10-14 2015-06-24 Stc Unm Porous nanoparticle-supported lipid bilayers (protocells) for targeted delivery including transdermal delivery of cargo and methods thereof
AU2012325997C1 (en) 2011-10-18 2018-07-05 Dicerna Pharmaceuticals, Inc. Amine cationic lipids and uses thereof
CN106421933A (en) 2011-10-18 2017-02-22 米歇尔技术公司 Drug delivery medical device
AU2012324398A1 (en) 2011-10-20 2014-05-01 Seqirus UK Limited Adjuvanted influenza B virus vaccines for pediatric priming
BR112014007485B1 (en) 2011-10-20 2022-05-31 Novartis Ag Methods for predicting therapeutic responsiveness of an individual to treatment with an activator of the alpha 7 nicotinic acetylcholine receptor, and uses of said activator
WO2013059922A1 (en) 2011-10-25 2013-05-02 The University Of British Columbia Limit size lipid nanoparticles and related methods
US20130110043A1 (en) 2011-10-26 2013-05-02 Nanopass Technologies Ltd. Microneedle Intradermal Drug Delivery Device with Auto-Disable Functionality
BR112014009713A2 (en) 2011-10-27 2017-04-18 Kimberly Clark Co transdermal administration of high viscosity bioactive agents
UA119028C2 (en) 2011-10-27 2019-04-25 Массачусеттс Інстітьют Оф Текнолоджі N-terminal functionalized amino acid derivatives capable of forming microspheres encapsulating the drug
SG10201508662SA (en) 2011-10-28 2015-11-27 Presage Biosciences Inc Methods for drug delivery
WO2013062140A1 (en) 2011-10-28 2013-05-02 Kyoto University Method for efficiently inducing differentiation of pluripotent stem cells into hepatic lineage cells
CA2853823C (en) 2011-10-28 2016-12-20 Integritybio Inc. Protein formulations containing amino acids
CN109078182B (en) 2011-10-31 2022-08-12 弗·哈夫曼-拉罗切有限公司 Antibody formulations
JP6143767B2 (en) 2011-10-31 2017-06-07 マリンクロッド エルエルシー Combination liposome composition for cancer treatment
PT2773326T (en) 2011-11-04 2019-04-23 Nitto Denko Corp Single use system for sterilely producing lipid-nucleic acid particles
US9579338B2 (en) 2011-11-04 2017-02-28 Nitto Denko Corporation Method of producing lipid nanoparticles for drug delivery
WO2013066274A1 (en) 2011-11-04 2013-05-10 Agency For Science, Technology And Research Self-assembled composite ultrasmall peptide-polymer hydrogels
WO2013067537A1 (en) 2011-11-04 2013-05-10 Univertiy Of Notre Dame Du Lac Nanoparticle-based drug delivery
EP3290442A1 (en) 2011-11-04 2018-03-07 Novartis AG Low density lipoprotein-related protein 6 (lrp6) half-life extender constructs
US20130116408A1 (en) 2011-11-05 2013-05-09 Aura Biosciences, Inc. Virion Derived Protein Nanoparticles For Delivering Radioisotopes For The Diagnosis And Treatment Of Malignant And Systemic Disease And The Monitoring Of Therapy
US20130115247A1 (en) 2011-11-05 2013-05-09 Aura Biosciences, Inc. Virion Derived Protein Nanoparticles For Delivering Radioisotopes For The Diagnosis And Treatment Of Malignant And Systemic Disease And The Monitoring Of Therapy
US20140287510A1 (en) 2011-11-08 2014-09-25 Novartis Forschungsstiftung, Zweigniederlassung Friedrich Miescher Institute Rod cell-specific promoter
US20140314787A1 (en) 2011-11-08 2014-10-23 Novartis Forschungsstiftung, Zweigniederlassung, Friedrich Miescher Institute Treatment for neurodegenerative diseases
EP2776838A1 (en) 2011-11-08 2014-09-17 Novartis Forschungsstiftung, Zweigniederlassung Friedrich Miescher Institute For Biomedical Research Early diagnostic of neurodegenerative diseases
WO2013070872A1 (en) 2011-11-08 2013-05-16 The Board Of Trustees Of The University Of Arkansas Methods and compositions for x-ray induced release from ph sensitive liposomes
US9581590B2 (en) 2011-11-09 2017-02-28 Board Of Trustees Of Michigan State University Metallic nanoparticle synthesis with carbohydrate capping agent
CN111995664A (en) 2011-11-11 2020-11-27 变异生物技术公司 Compositions and methods for treating cytomegalovirus
WO2013071047A1 (en) 2011-11-11 2013-05-16 Children's Medical Center Corporation Compositions and methods for in vitro transcription of rna
WO2013074696A1 (en) 2011-11-14 2013-05-23 Novartis Ag Immunogenic complexes of polyanionic carbomers and env polypeptides and methods of manufacture and use thereof
BR112014011645A2 (en) 2011-11-15 2017-05-02 Novartis Ag combination of a phosphoinositide 3-kinase inhibitor and a janus 2-signal transducer and transcriptional pathway activator 5
JP6267649B2 (en) 2011-11-18 2018-01-24 リジェネロン・ファーマシューティカルズ・インコーポレイテッド Polymer protein fine particles
BR112014012101A2 (en) 2011-11-21 2019-09-24 Novartis Ag psoriatic arthritis (psa) treatment methods using il-17 antagonists and psa response or non-response alleles
WO2013078199A2 (en) 2011-11-23 2013-05-30 Children's Medical Center Corporation Methods for enhanced in vivo delivery of synthetic, modified rnas
EP2785326A2 (en) 2011-11-29 2014-10-08 The University of North Carolina at Chapel Hill Geometrically engineered particles and methods for modulating macrophage or immune responses
US9364549B2 (en) 2011-11-30 2016-06-14 Andreas Voigt Hydrophobic drug-delivery material, method for manufacturing thereof and methods for delivery of a drug-delivery composition
WO2013082418A1 (en) 2011-11-30 2013-06-06 3M Innovative Properties Company Microneedle device having a peptide therapeutic agent and an amino acid, methods of making and using the same
WO2013082529A1 (en) 2011-12-02 2013-06-06 Yale University Enzymatic synthesis of poly(amine-co-esters) and methods of use thereof for gene delivery
AU2012345726B2 (en) 2011-12-02 2017-04-13 Pegasus Laboratories, Inc. Amphipathic lipid-based sustained release compositions
US20130142781A1 (en) 2011-12-02 2013-06-06 Invivo Therapeutics Corporation Peg based hydrogel for peripheral nerve injury applications and compositions and method of use of synthetic hydrogel sealants
CN103998536B (en) 2011-12-05 2017-09-15 纳诺精密医疗有限公司 The device with titania nanotube film for medicine delivery
KR20210134808A (en) 2011-12-05 2021-11-10 팩터 바이오사이언스 인크. Methods and products for transfecting cells
US8497124B2 (en) 2011-12-05 2013-07-30 Factor Bioscience Inc. Methods and products for reprogramming cells to a less differentiated state
US20140308304A1 (en) 2011-12-07 2014-10-16 Alnylam Pharmaceuticals, Inc. Lipids for the delivery of active agents
AU2012347605B2 (en) 2011-12-07 2017-09-21 Alnylam Pharmaceuticals, Inc. Branched alkyl and cycloalkyl terminated biodegradable lipids for the delivery of active agents
US9061063B2 (en) 2011-12-07 2015-06-23 Alnylam Pharmaceuticals, Inc. Biodegradable lipids for the delivery of active agents
GB201121070D0 (en) 2011-12-07 2012-01-18 Isis Innovation composition for delivery of biotherapeutics
EP2787977A4 (en) 2011-12-09 2015-05-06 Univ California Liposomal drug encapsulation
US10087422B2 (en) 2011-12-09 2018-10-02 President And Fellows Of Harvard College Organ chips and uses thereof
US9725687B2 (en) 2011-12-09 2017-08-08 President And Fellows Of Harvard College Integrated human organ-on-chip microphysiological systems
CA2858884A1 (en) 2011-12-12 2013-06-20 The Trustees Of The University Of Pennsylvania Proteins comprising mrsa pbp2a and fragments thereof, nucleic acids encoding the same, and compositions and their use to prevent and treat mrsa infections
CA2858694A1 (en) 2011-12-12 2013-06-20 Kyowa Hakko Kirin Co., Ltd. Lipid nano particles comprising combination of cationic lipids
JP6182457B2 (en) 2011-12-12 2017-08-16 協和発酵キリン株式会社 Lipid nanoparticles for drug delivery systems containing cationic lipids
SG10201601349XA (en) 2011-12-13 2016-03-30 Engeneic Molecular Delivery Pty Ltd Bacterially derived, intact minicells for delivery of therapeutic agents to brain tumors
EP2604253A1 (en) 2011-12-13 2013-06-19 Otto Glatter Water-in-oil emulsions and methods for their preparation
US20150000936A1 (en) 2011-12-13 2015-01-01 Schlumberger Technology Corporation Energization of an element with a thermally expandable material
WO2013130161A1 (en) 2011-12-14 2013-09-06 modeRNA Therapeutics Methods of responding to a biothreat
WO2013087083A1 (en) 2011-12-15 2013-06-20 Biontech Ag Particles comprising single stranded rna and double stranded rna for immunomodulation
US20140349320A1 (en) 2011-12-15 2014-11-27 The Trustees Of The University Of Pennsylvania Using Adaptive Immunity to Detect Drug Resistance
WO2013090601A2 (en) 2011-12-16 2013-06-20 Massachusetts Institute Of Technology Compact nanoparticles for biological applications
US20130157963A1 (en) 2011-12-16 2013-06-20 Allergan, Inc. Ophthalmic compositions comprising polyvinyl capralactam-polyvinyl acetate-polyethylene glycol graft copolymers
CA2859387A1 (en) 2011-12-16 2013-06-20 Moderna Therapeutics, Inc. Modified nucleoside, nucleotide, and nucleic acid compositions
ES2924032T3 (en) 2011-12-16 2022-10-04 Novartis Ag Passive Powder Aerosolization Apparatus
EP2791169B1 (en) 2011-12-16 2017-07-19 Synthon Biopharmaceuticals B.V. Compounds and methods for treating inflammatory diseases
US9872911B2 (en) 2011-12-16 2018-01-23 Massachusetts Institute Of Technology Alpha-aminoamidine polymers and uses thereof
US9546235B2 (en) 2011-12-19 2017-01-17 The University Of Sydney Peptide-hydrogel composite
US9241829B2 (en) 2011-12-20 2016-01-26 Abbott Medical Optics Inc. Implantable intraocular drug delivery apparatus, system and method
JP2015510495A (en) 2011-12-21 2015-04-09 モデルナ セラピューティクス インコーポレイテッドModerna Therapeutics,Inc. Methods for extending the viability or longevity of an organ or organ graft
WO2013096812A1 (en) 2011-12-23 2013-06-27 Genentech, Inc. Articles of manufacture and methods for co-administration of antibodies
US10814115B2 (en) 2011-12-27 2020-10-27 Massachusetts Institute Of Technology Microneedle devices and uses thereof
JP2015505309A (en) 2011-12-29 2015-02-19 ノバルティス アーゲー Adjuvanted combination of meningococcal factor H binding protein
AU2013207423B2 (en) 2012-01-06 2017-10-12 Gemphire Therapeutics Inc. Methods of reducing risk of cardiovascular disease
SG11201404361UA (en) 2012-01-26 2014-09-26 Life Technologies Corp Methods for increasing the infectivity of viruses
EP2807251B1 (en) 2012-01-26 2018-01-10 Life Technologies Corporation Methods for increasing the infectivity of viruses
EP2623121A1 (en) 2012-01-31 2013-08-07 Bayer Innovation GmbH Pharmaceutical composition comprising a polymeric carrier cargo complex and an antigen
WO2013113325A1 (en) 2012-01-31 2013-08-08 Curevac Gmbh Negatively charged nucleic acid comprising complexes for immunostimulation
WO2013113326A1 (en) 2012-01-31 2013-08-08 Curevac Gmbh Pharmaceutical composition comprising a polymeric carrier cargo complex and at least one protein or peptide antigen
CN104245745B (en) 2012-02-09 2017-03-29 生命技术公司 hydrophilic polymer particle and preparation method thereof
US20140037573A1 (en) 2012-02-22 2014-02-06 Cerulean Pharma Inc. Conjugates, particles, compositions, and related methods
US20130243867A1 (en) 2012-02-23 2013-09-19 University Of South Florida (A Florida Non-Profit Corporation) Micelle compositions and methods for their use
US20130224268A1 (en) 2012-02-27 2013-08-29 Newgen Biopharma Corp. Topical delivery of hormonal and non hormonal nano formulations, methods of making and using the same
US20150037334A1 (en) 2012-03-01 2015-02-05 Amgen Research (Munich) Gmbh Long life polypeptide binding molecules
US20150094259A1 (en) 2012-03-13 2015-04-02 University Of Kwazulu-Natal Transdermal Delivery Devices
US10322089B2 (en) 2012-03-14 2019-06-18 The Board Of Trustees Of The Leland Stanford Junior University Nanoparticles, nanoparticle delivery methods, and systems of delivery
CA2867381C (en) 2012-03-16 2016-09-20 The Johns Hopkins University Controlled release formulations for the delivery of hif-1 inhibitors
SG11201405552VA (en) 2012-03-16 2014-10-30 Merck Patent Gmbh Targeting aminoacid lipids
JP6138904B2 (en) 2012-03-16 2017-05-31 ザ・ジョンズ・ホプキンス・ユニバーシティー Nonlinear multiblock copolymer drug conjugates for delivery of active agents
WO2013142349A1 (en) 2012-03-23 2013-09-26 University Of Chicago Compositions and methods related to staphylococcal sbi
US9610346B2 (en) 2012-03-23 2017-04-04 International Aids Vaccine Initiative Recombinant viral vectors
WO2013143555A1 (en) 2012-03-26 2013-10-03 Biontech Ag Rna formulation for immunotherapy
WO2013148186A1 (en) 2012-03-26 2013-10-03 President And Fellows Of Harvard College Lipid-coated nucleic acid nanostructures of defined shape
BR112014023898A2 (en) 2012-03-27 2017-07-11 Curevac Gmbh artificial nucleic acid molecules comprising 5''utr top
SG10201607962RA (en) 2012-03-27 2016-11-29 Curevac Ag Artificial nucleic acid molecules
AU2013242404B2 (en) 2012-03-27 2018-08-30 CureVac SE Artificial nucleic acid molecules for improved protein or peptide expression
EP2830594B1 (en) 2012-03-27 2018-05-09 Sirna Therapeutics, Inc. DIETHER BASED BIODEGRADABLE CATIONIC LIPIDS FOR siRNA DELIVERY
CA2868030C (en) 2012-03-29 2021-05-25 Shire Human Genetic Therapies, Inc. Lipid-derived neutral nanoparticles
CN104411338A (en) 2012-04-02 2015-03-11 现代治疗公司 Modified polynucleotides for the production of biologics and proteins associated with human disease
US9878056B2 (en) 2012-04-02 2018-01-30 Modernatx, Inc. Modified polynucleotides for the production of cosmetic proteins and peptides
AU2013243951A1 (en) 2012-04-02 2014-10-30 Moderna Therapeutics, Inc. Modified polynucleotides for the production of secreted proteins
US9107904B2 (en) 2012-04-05 2015-08-18 Massachusetts Institute Of Technology Immunostimulatory compositions and methods of use thereof
US20150064115A1 (en) 2012-04-05 2015-03-05 University Of Florida Research Foundation, Inc. Neurophilic nanoparticles
WO2013152351A2 (en) 2012-04-06 2013-10-10 The Trustees Of Columbia University In The City Of New York Fusion polypeptides and methods of use thereof
CN104379127A (en) 2012-04-08 2015-02-25 席拉蔻公司 Reverse thermal hydrogel preparations for use in the treatment of disorders of the urothelium
NZ709953A (en) 2012-04-11 2016-09-30 Intezyne Technologies Inc Block copolymers for stable micelles
EP2836234B1 (en) 2012-04-12 2019-06-12 Yale University Vehicles for controlled delivery of different pharmaceutical agents
WO2013155513A1 (en) 2012-04-13 2013-10-17 President And Fellows Of Harvard College Devices and methods for in vitro aerosol delivery
WO2013154766A1 (en) 2012-04-13 2013-10-17 New York University Microrna control of ldl receptor pathway
BR112014004528A2 (en) 2012-04-18 2019-09-24 Arrowhead Res Corp poly (acrylate) polymers for in vivo nucleic acid delivery
EP3434667B1 (en) 2012-04-19 2020-11-04 Sirna Therapeutics, Inc. Novel diester and triester based low molecular weight, biodegradable cationic lipids for oligonucleotide delivery
US10278927B2 (en) 2012-04-23 2019-05-07 Massachusetts Institute Of Technology Stable layer-by-layer coated particles
KR102118429B1 (en) 2012-04-25 2020-06-03 사노피 Microrna compounds and methods for modulating mir-21 activity
CA2871778C (en) 2012-05-03 2022-09-13 Kala Pharmaceuticals, Inc. Pharmaceutical nanoparticles showing improved mucosal transport
WO2013166498A1 (en) 2012-05-04 2013-11-07 The Johns Hopkins University Lipid-based drug carriers for rapid penetration through mucus linings
WO2013173657A1 (en) 2012-05-16 2013-11-21 Micell Technologies, Inc. Low burst sustained release lipophilic and biologic agent compositions
US9399672B2 (en) 2012-05-17 2016-07-26 The United States Of America, As Represented By The Secretary Department Of Health And Human Services Hepatitis C virus neutralizing antibody
WO2013173693A1 (en) 2012-05-18 2013-11-21 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Nanoparticles with enhanced entry into cancer cells
CA2871477A1 (en) 2012-05-23 2013-11-28 The Ohio State University Lipid nanoparticle compositions for antisense oligonucleotides delivery
ES2719598T3 (en) 2012-05-25 2019-07-11 Curevac Ag Reversible immobilization and / or controlled release of nucleic acids contained in nanoparticles by polymeric coatings (biodegradable)
KR102165138B1 (en) 2012-06-06 2020-10-14 로마 비스타 메디컬, 인코포레이티드. Inflatable medical devices
TR201816986T4 (en) 2012-06-08 2019-01-21 Nitto Denko Corp Lipids for therapeutic agent delivery formulations.
ES2826203T3 (en) 2012-06-08 2021-05-17 Ethris Gmbh Pulmonary supply of messenger RNA
EP2858679B1 (en) 2012-06-08 2021-02-24 Translate Bio, Inc. Pulmonary delivery of mrna to non-lung target cells
EP2863892B1 (en) 2012-06-20 2017-11-08 University Of Waterloo Mucoadhesive nanoparticle delivery system
WO2014014613A2 (en) 2012-06-20 2014-01-23 President And Fellows Of Harvard College Self-assembling peptides, peptide nanostructures and uses thereof
EP2866833B1 (en) 2012-06-27 2019-05-15 Merck Sharp & Dohme Corp. Crystalline anti-human il-23 antibodies
US9956291B2 (en) 2012-07-10 2018-05-01 Shaker A. Mousa Nanoformulation and methods of use of thyroid receptor beta1 agonists for liver targeting
EP2872120B1 (en) 2012-07-16 2017-05-03 Nanoderm Sciences, Inc. Therapeutic nanoparticles with a polymyxin b as targeting agent
EP2687252A1 (en) 2012-07-17 2014-01-22 Sanofi-Aventis Deutschland GmbH Drug delivery device
EP2687251A1 (en) 2012-07-17 2014-01-22 Sanofi-Aventis Deutschland GmbH Drug delivery device
CN112587671A (en) 2012-07-18 2021-04-02 博笛生物科技有限公司 Targeted immunotherapy for cancer
WO2014015334A1 (en) 2012-07-20 2014-01-23 Brown University System and methods for nanostructure protected delivery of treatment agent and selective release thereof
CN104781416B (en) 2012-07-24 2017-07-04 哈佛学院院长及董事 The self-assembly of nucleic acid nano structure
WO2014015422A1 (en) 2012-07-27 2014-01-30 Ontario Institute For Cancer Research Cellulose-based nanoparticles for drug delivery
GB201213624D0 (en) 2012-07-27 2012-09-12 Univ Ulster The Method and system for production of conjugated nanoparticles
US9931418B2 (en) 2012-08-07 2018-04-03 Northeastern University Compositions for the delivery of RNA and drugs into cells
WO2014024193A1 (en) 2012-08-07 2014-02-13 Prodel Pharma Ltd. Compositions and methods for rapid transmucosal delivery of pharmaceutical ingredients
CN104582747B (en) 2012-08-08 2016-12-21 南洋理工大学 For manufacturing the method for the hydrogel fines with living cells and for manufacturing the compositions of tissue engineering bracket
JP2015533522A (en) 2012-08-08 2015-11-26 プレサージュ バイオサイエンシズ,インコーポレイテッド Extrusion methods and devices for drug delivery
AU2013299641A1 (en) 2012-08-10 2015-03-19 The United States Of America, As Represented By The Secretary, Department Of Health And Human Services Drug delivery vehicle comprising conjugates between targeting polyamino acids and fatty acids
EP2882706A1 (en) 2012-08-13 2015-06-17 Massachusetts Institute of Technology Amine-containing lipidoids and uses thereof
WO2014027006A1 (en) 2012-08-13 2014-02-20 Edko Pazarlama Tanitim Ticaret Limited Sirketi Bioadhesive formulations for use in drug delivery
WO2014026284A1 (en) 2012-08-14 2014-02-20 Froese Aaron Internal structured self assembling liposomes
WO2014028209A1 (en) 2012-08-14 2014-02-20 The Trustees Of The University Of Pennsylvania Stabilizing shear-thinning hydrogels
AU2013302526B2 (en) 2012-08-15 2018-03-22 The University Of Chicago Exosome-based therapeutics against neurodegenerative disorders
WO2014039185A1 (en) 2012-09-05 2014-03-13 Creighton University Polymeric nanoparticles in a thermosensitive gel for coital-independent vaginal prophylaxis of hiv
US8703197B2 (en) 2012-09-13 2014-04-22 International Business Machines Corporation Branched polyamines for delivery of biologically active materials
EA032943B1 (en) 2012-09-17 2019-08-30 Пфайзер Инк. Process for preparing therapeutic nanoparticles (embodiments) and therapeutic nanoparticle (embodiments)
WO2014047649A1 (en) 2012-09-24 2014-03-27 The Regents Of The University Of California Methods for arranging and packing nucleic acids for unusual resistance to nucleases and targeted delivery for gene therapy
US20150246137A1 (en) 2012-09-27 2015-09-03 The University Of North Carolina At Chapel Hill Lipid coated nanoparticles containing agents having low aqueous and lipid solubilities and methods thereof
US20150202153A1 (en) 2012-10-04 2015-07-23 University Of The Witwatersrand, Johannesburg Liposomal drug delivery system
WO2014053879A1 (en) 2012-10-04 2014-04-10 Centre National De La Recherche Scientifique Cell penetrating peptides for intracellular delivery of molecules
WO2014053880A1 (en) 2012-10-04 2014-04-10 Centre National De La Recherche Scientifique Cell penetrating peptides for intracellular delivery of molecules
EP2716655A1 (en) 2012-10-04 2014-04-09 Institut Pasteur Neutralizing antibodies directed against Hepatitis C virus ectodomain glycoprotein E2
US20140100178A1 (en) 2012-10-04 2014-04-10 Aslam Ansari Composition and methods for site-specific drug delivery to treat malaria and other liver diseases
WO2014053881A1 (en) 2012-10-04 2014-04-10 Centre National De La Recherche Scientifique Cell penetrating peptides for intracellular delivery of molecules
WO2014053882A1 (en) 2012-10-04 2014-04-10 Centre National De La Recherche Scientifique Cell penetrating peptides for intracellular delivery of molecules
EP2716689A1 (en) 2012-10-05 2014-04-09 National University of Ireland, Galway Polymer comprising a plurality of branches having at least one disulfide group and/or at least one vinyl group
WO2014064534A2 (en) 2012-10-05 2014-05-01 Chrontech Pharma Ab Injection needle, device, immunogenic compositions and method of use
WO2014059022A1 (en) 2012-10-09 2014-04-17 The Brigham And Women's Hospital, Inc. Nanoparticles for targeted delivery of multiple therapeutic agents and methods of use
US20140106260A1 (en) 2012-10-11 2014-04-17 The Trustees Of The University Of Pennsylvania Core-shell nanoparticulate compositions and methods
SG11201502896XA (en) 2012-10-16 2015-05-28 Endocyte Inc Drug delivery conjugates containing unnatural amino acids and methods for using
EA035012B1 (en) 2012-10-18 2020-04-17 Рокфеллер Юниверсити (Дзе) Broadly-neutralizing anti-hiv antibodies
AU2013336237A1 (en) 2012-10-22 2015-06-11 Sabag-Rfa Ltd A system for delivering therapeutic agents into living cells and cells nuclei
MX2015005328A (en) 2012-10-26 2015-09-25 Nlife Therapeutics S L Compositions and methods for selective delivery of oligonucleotide molecules to cell types.
US10172956B2 (en) 2012-10-26 2019-01-08 Vanderbilt University Polymeric nanoparticles
US20150272900A1 (en) 2012-10-26 2015-10-01 The Johns Hopkins University Layer-By-Layer Approach to Co-Deliver DNA and siRNA via AuNPs: A Potential Platform for Modifying Release Kinetics
US20150376581A1 (en) 2012-10-29 2015-12-31 Technische Universitaet Dortmund T7 rna polymerase variants and methods of using the same
CN104769112A (en) 2012-11-01 2015-07-08 菲克特生物科学股份有限公司 Methods and products for expressing proteins in cells
WO2014071072A2 (en) 2012-11-02 2014-05-08 Pungente Michael D Novel cationic carotenoid-based lipids for cellular nucleic acid uptake
US10017767B2 (en) 2012-11-05 2018-07-10 Fondazione Centro San Raffaele Targets in multiple myeloma and other disorders
CA2890333C (en) 2012-11-06 2021-03-23 Rochal Industries, Llc Delivery of biologically-active agents using volatile, hydrophobic solvents
US9975916B2 (en) 2012-11-06 2018-05-22 President And Fellows Of Harvard College Compositions and methods relating to complex nucleic acid nanostructures
EP2916874B1 (en) 2012-11-07 2018-08-29 Council of Scientific and Industrial Research Nanocomplex containing cationic peptide for biomolecule delivery
US9669104B2 (en) 2012-11-07 2017-06-06 Council Of Scientific And Industrial Research Nanocomplex containing amphipathic peptide useful for efficient transfection of biomolecules
CN104884049A (en) 2012-11-08 2015-09-02 克莱尔塞德生物医学股份有限公司 Methods and devices for the treatment of ocular diseases in human subjects
WO2014074905A1 (en) 2012-11-08 2014-05-15 Eleven Biotherapeutics, Inc. Il-6 antagonists and uses thereof
AU2013343503B2 (en) 2012-11-08 2017-12-14 Albumedix Ltd. Albumin variants
TW201920677A (en) 2012-11-08 2019-06-01 美商武田疫苗股份有限公司 Compositions, methods and uses for dengue virus serotype-4 constructs
US9200119B2 (en) 2012-11-09 2015-12-01 Momentive Performance Materials Inc. Silicon-containing zwitterionic linear copolymer composition
TR201809547T4 (en) 2012-11-09 2018-07-23 Biontech Rna Pharmaceuticals Gmbh Method for cellular RNA expression.
WO2014071963A1 (en) 2012-11-09 2014-05-15 Biontech Ag Method for cellular rna expression
EP2916853B1 (en) 2012-11-09 2020-05-06 Velin-Pharma A/S Compositions for pulmonary delivery
GB201220354D0 (en) 2012-11-12 2012-12-26 Medpharm Ltd Dermal compositions
WO2014075047A2 (en) 2012-11-12 2014-05-15 Genvec, Inc. Malaria antigens and methods of use
EP2916835A4 (en) 2012-11-12 2016-07-27 Redwood Bioscience Inc Compounds and methods for producing a conjugate
US9943608B2 (en) 2012-11-13 2018-04-17 Baylor College Of Medicine Multi-arm biodegradable polymers for nucleic acid delivery
WO2014078636A1 (en) 2012-11-16 2014-05-22 President And Fellows Of Harvard College Nucleic acid hydrogel self-assembly
US9310374B2 (en) 2012-11-16 2016-04-12 Redwood Bioscience, Inc. Hydrazinyl-indole compounds and methods for producing a conjugate
EP2732825B1 (en) 2012-11-19 2015-07-01 Invivogen Conjugates of a TLR7 and/or TLR8 agonist and a TLR2 agonist
CN104853747B (en) 2012-11-19 2020-06-19 理工研究与开发基金公司 Liposomes for in vivo delivery
WO2014081849A1 (en) 2012-11-20 2014-05-30 Phasebio Pharmaceuticals, Inc. Formulations of active agents for sustained release
WO2014081300A1 (en) 2012-11-22 2014-05-30 Tagworks Pharmaceuticals B.V. Channel protein activatable liposomes
FI2922574T3 (en) 2012-11-22 2023-08-11 Tagworks Pharmaceuticals B V Chemically cleavable group
WO2014081299A1 (en) 2012-11-22 2014-05-30 Tagworks Pharmaceuticals B.V. Activatable liposomes
JP6144355B2 (en) 2012-11-26 2017-06-07 モデルナティエックス インコーポレイテッドModernaTX,Inc. Chemically modified mRNA
US10258698B2 (en) 2013-03-14 2019-04-16 Modernatx, Inc. Formulation and delivery of modified nucleoside, nucleotide, and nucleic acid compositions
US8980864B2 (en) 2013-03-15 2015-03-17 Moderna Therapeutics, Inc. Compositions and methods of altering cholesterol levels
CA3177878A1 (en) 2014-04-23 2015-10-29 Modernatx, Inc. Nucleic acid vaccines

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
Kore et al.; Synthesis and application of 2'-fluoro-substituted cap analogs; Bioorganic & Medicinal Chemistry Letters; Vol. 17, pp. 5295-5299, available online August 16, 2007 *

Cited By (138)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11298426B2 (en) 2003-10-14 2022-04-12 BioNTech SE Recombinant vaccines and use thereof
US10106800B2 (en) 2005-09-28 2018-10-23 Biontech Ag Modification of RNA, producing an increased transcript stability and translation efficiency
US8822663B2 (en) 2010-08-06 2014-09-02 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
US9937233B2 (en) 2010-08-06 2018-04-10 Modernatx, Inc. Engineered nucleic acids and methods of use thereof
US9447164B2 (en) 2010-08-06 2016-09-20 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
US9181319B2 (en) 2010-08-06 2015-11-10 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
US9701965B2 (en) 2010-10-01 2017-07-11 Modernatx, Inc. Engineered nucleic acids and methods of use thereof
US9950068B2 (en) 2011-03-31 2018-04-24 Modernatx, Inc. Delivery and formulation of engineered nucleic acids
US10898574B2 (en) 2011-03-31 2021-01-26 Modernatx, Inc. Delivery and formulation of engineered nucleic acids
US11911474B2 (en) 2011-03-31 2024-02-27 Modernatx, Inc. Delivery and formulation of engineered nucleic acids
US9533047B2 (en) 2011-03-31 2017-01-03 Modernatx, Inc. Delivery and formulation of engineered nucleic acids
US10738355B2 (en) 2011-05-24 2020-08-11 Tron-Translationale Onkologie An Der Universitätsmedizin Der Johannes Gutenberg-Universität Mainz Ggmbh Individualized vaccines for cancer
US11248264B2 (en) 2011-05-24 2022-02-15 Tron-Translationale Onkologie An Der Universitätsmedizin Der Johannes Gutenberg-Universität Mainz Ggmbh Individualized vaccines for cancer
US10982229B2 (en) 2011-12-05 2021-04-20 Factor Bioscience Inc. Methods and products for transfecting cells
US11692203B2 (en) 2011-12-05 2023-07-04 Factor Bioscience Inc. Methods and products for transfecting cells
US10829738B2 (en) 2011-12-05 2020-11-10 Factor Bioscience Inc. Methods and products for transfecting cells
US10662410B1 (en) 2011-12-05 2020-05-26 Factor Bioscience Inc. Methods and products for transfecting cells
US10472611B2 (en) 2011-12-05 2019-11-12 Factor Bioscience Inc. Methods and products for transfecting cells
US11466293B2 (en) 2011-12-05 2022-10-11 Factor Bioscience Inc. Methods and products for transfecting cells
US11708586B2 (en) 2011-12-05 2023-07-25 Factor Bioscience Inc. Methods and products for transfecting cells
US9605278B2 (en) 2011-12-05 2017-03-28 Factor Bioscience Inc. Methods and products for transfecting cells
US9605277B2 (en) 2011-12-05 2017-03-28 Factor Bioscience, Inc. Methods and products for transfecting cells
US9422577B2 (en) 2011-12-05 2016-08-23 Factor Bioscience Inc. Methods and products for transfecting cells
US9186372B2 (en) 2011-12-16 2015-11-17 Moderna Therapeutics, Inc. Split dose administration
US9295689B2 (en) 2011-12-16 2016-03-29 Moderna Therapeutics, Inc. Formulation and delivery of PLGA microspheres
US10485884B2 (en) 2012-03-26 2019-11-26 Biontech Rna Pharmaceuticals Gmbh RNA formulation for immunotherapy
US11559587B2 (en) 2012-03-26 2023-01-24 Tron-Translationale Onkologie An Der Universitätsmedizin Der Johannes Gutenberg-Universität Mainz Ggmbh RNA formulation for immunotherapy
US9828416B2 (en) 2012-04-02 2017-11-28 Modernatx, Inc. Modified polynucleotides for the production of secreted proteins
US9095552B2 (en) 2012-04-02 2015-08-04 Moderna Therapeutics, Inc. Modified polynucleotides encoding copper metabolism (MURR1) domain containing 1
US9220755B2 (en) 2012-04-02 2015-12-29 Moderna Therapeutics, Inc. Modified polynucleotides for the production of proteins associated with blood and lymphatic disorders
US9572897B2 (en) 2012-04-02 2017-02-21 Modernatx, Inc. Modified polynucleotides for the production of cytoplasmic and cytoskeletal proteins
US9587003B2 (en) 2012-04-02 2017-03-07 Modernatx, Inc. Modified polynucleotides for the production of oncology-related proteins and peptides
US9107886B2 (en) 2012-04-02 2015-08-18 Moderna Therapeutics, Inc. Modified polynucleotides encoding basic helix-loop-helix family member E41
US9301993B2 (en) 2012-04-02 2016-04-05 Moderna Therapeutics, Inc. Modified polynucleotides encoding apoptosis inducing factor 1
US9303079B2 (en) 2012-04-02 2016-04-05 Moderna Therapeutics, Inc. Modified polynucleotides for the production of cytoplasmic and cytoskeletal proteins
US9114113B2 (en) 2012-04-02 2015-08-25 Moderna Therapeutics, Inc. Modified polynucleotides encoding citeD4
US9283287B2 (en) 2012-04-02 2016-03-15 Moderna Therapeutics, Inc. Modified polynucleotides for the production of nuclear proteins
US9675668B2 (en) 2012-04-02 2017-06-13 Moderna Therapeutics, Inc. Modified polynucleotides encoding hepatitis A virus cellular receptor 2
US10703789B2 (en) 2012-04-02 2020-07-07 Modernatx, Inc. Modified polynucleotides for the production of secreted proteins
US9216205B2 (en) 2012-04-02 2015-12-22 Moderna Therapeutics, Inc. Modified polynucleotides encoding granulysin
US10385106B2 (en) 2012-04-02 2019-08-20 Modernatx, Inc. Modified polynucleotides for the production of secreted proteins
US9255129B2 (en) 2012-04-02 2016-02-09 Moderna Therapeutics, Inc. Modified polynucleotides encoding SIAH E3 ubiquitin protein ligase 1
US9782462B2 (en) 2012-04-02 2017-10-10 Modernatx, Inc. Modified polynucleotides for the production of proteins associated with human disease
US9814760B2 (en) 2012-04-02 2017-11-14 Modernatx, Inc. Modified polynucleotides for the production of biologics and proteins associated with human disease
US10577403B2 (en) 2012-04-02 2020-03-03 Modernatx, Inc. Modified polynucleotides for the production of secreted proteins
US9827332B2 (en) 2012-04-02 2017-11-28 Modernatx, Inc. Modified polynucleotides for the production of proteins
US9878056B2 (en) 2012-04-02 2018-01-30 Modernatx, Inc. Modified polynucleotides for the production of cosmetic proteins and peptides
US9254311B2 (en) 2012-04-02 2016-02-09 Moderna Therapeutics, Inc. Modified polynucleotides for the production of proteins
US9192651B2 (en) 2012-04-02 2015-11-24 Moderna Therapeutics, Inc. Modified polynucleotides for the production of secreted proteins
US10772975B2 (en) 2012-04-02 2020-09-15 Modernatx, Inc. Modified Polynucleotides for the production of biologics and proteins associated with human disease
US9233141B2 (en) 2012-04-02 2016-01-12 Moderna Therapeutics, Inc. Modified polynucleotides for the production of proteins associated with blood and lymphatic disorders
US9220792B2 (en) 2012-04-02 2015-12-29 Moderna Therapeutics, Inc. Modified polynucleotides encoding aquaporin-5
US9149506B2 (en) 2012-04-02 2015-10-06 Moderna Therapeutics, Inc. Modified polynucleotides encoding septin-4
US9221891B2 (en) 2012-04-02 2015-12-29 Moderna Therapeutics, Inc. In vivo production of proteins
EP3744835A1 (en) 2012-05-29 2020-12-02 The General Hospital Corporation Dna modifying fusion proteins and methods of use thereof
EP3747999A1 (en) 2012-05-29 2020-12-09 The General Hospital Corporation Dna modifying fusion proteins and methods of use thereof
EP3608407A1 (en) 2012-07-03 2020-02-12 BioMarin Technologies B.V. Oligonucleotide for the treatment of muscular dystrophy patients
WO2014007620A2 (en) 2012-07-03 2014-01-09 Prosensa Technologies B.V. Oligonucleotide for the treatment of muscular dystrophy patients
US9512456B2 (en) 2012-08-14 2016-12-06 Modernatx, Inc. Enzymes and polymerases for the synthesis of RNA
US10723754B2 (en) 2012-10-22 2020-07-28 Idenix Pharmaceuticals Llc 2′,4′-bridged nucleosides for HCV infection
US10590437B2 (en) 2012-11-01 2020-03-17 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US10415060B2 (en) 2012-11-01 2019-09-17 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US10724053B2 (en) 2012-11-01 2020-07-28 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US9447395B2 (en) 2012-11-01 2016-09-20 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US11339409B2 (en) 2012-11-01 2022-05-24 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US9657282B2 (en) 2012-11-01 2017-05-23 Factor Bioscience, Inc. Methods and products for expressing proteins in cells
US9464285B2 (en) 2012-11-01 2016-10-11 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US11339410B2 (en) 2012-11-01 2022-05-24 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US11332759B2 (en) 2012-11-01 2022-05-17 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US10752919B2 (en) 2012-11-01 2020-08-25 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US10752918B2 (en) 2012-11-01 2020-08-25 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US9376669B2 (en) 2012-11-01 2016-06-28 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US11332758B2 (en) 2012-11-01 2022-05-17 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US9487768B2 (en) 2012-11-01 2016-11-08 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US10767195B2 (en) 2012-11-01 2020-09-08 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US10752917B2 (en) 2012-11-01 2020-08-25 Factor Bioscience Inc. Methods and products for expressing proteins in cells
US9758797B2 (en) 2012-11-01 2017-09-12 Factor Bioscience, Inc. Methods and products for expressing proteins in cells
US9597380B2 (en) 2012-11-26 2017-03-21 Modernatx, Inc. Terminally modified RNA
US11504419B2 (en) 2012-11-28 2022-11-22 BioNTech SE Individualized vaccines for cancer
US10155031B2 (en) 2012-11-28 2018-12-18 Biontech Rna Pharmaceuticals Gmbh Individualized vaccines for cancer
US11603399B2 (en) 2013-03-13 2023-03-14 Modernatx, Inc. Long-lived polynucleotide molecules
US10258698B2 (en) 2013-03-14 2019-04-16 Modernatx, Inc. Formulation and delivery of modified nucleoside, nucleotide, and nucleic acid compositions
US10138507B2 (en) 2013-03-15 2018-11-27 Modernatx, Inc. Manufacturing methods for production of RNA transcripts
US10858647B2 (en) 2013-03-15 2020-12-08 Modernatx, Inc. Removal of DNA fragments in mRNA production process
US11377470B2 (en) 2013-03-15 2022-07-05 Modernatx, Inc. Ribonucleic acid purification
US10077439B2 (en) 2013-03-15 2018-09-18 Modernatx, Inc. Removal of DNA fragments in mRNA production process
US10590161B2 (en) 2013-03-15 2020-03-17 Modernatx, Inc. Ion exchange purification of mRNA
US11845772B2 (en) 2013-03-15 2023-12-19 Modernatx, Inc. Ribonucleic acid purification
US11222711B2 (en) 2013-05-10 2022-01-11 BioNTech SE Predicting immunogenicity of T cell epitopes
US11027025B2 (en) 2013-07-11 2021-06-08 Modernatx, Inc. Compositions comprising synthetic polynucleotides encoding CRISPR related proteins and synthetic sgRNAs and methods of use
WO2015038892A1 (en) * 2013-09-13 2015-03-19 Moderna Therapeutics, Inc. Polynucleotide compositions containing amino acids
US9925277B2 (en) 2013-09-13 2018-03-27 Modernatx, Inc. Polynucleotide compositions containing amino acids
EP3043826A4 (en) * 2013-09-13 2017-05-24 Moderna Therapeutics, Inc. Polynucleotide compositions containing amino acids
US10023626B2 (en) 2013-09-30 2018-07-17 Modernatx, Inc. Polynucleotides encoding immune modulating polypeptides
US10815291B2 (en) 2013-09-30 2020-10-27 Modernatx, Inc. Polynucleotides encoding immune modulating polypeptides
US10385088B2 (en) 2013-10-02 2019-08-20 Modernatx, Inc. Polynucleotide molecules and uses thereof
WO2015095351A1 (en) 2013-12-19 2015-06-25 Novartis Ag LEPTIN mRNA COMPOSITIONS AND FORMULATIONS
US9770489B2 (en) 2014-01-31 2017-09-26 Factor Bioscience Inc. Methods and products for nucleic acid production and delivery
US10124042B2 (en) 2014-01-31 2018-11-13 Factor Bioscience Inc. Methods and products for nucleic acid production and delivery
US10286086B2 (en) 2014-06-19 2019-05-14 Modernatx, Inc. Alternative nucleic acid molecules and uses thereof
US10407683B2 (en) 2014-07-16 2019-09-10 Modernatx, Inc. Circular polynucleotides
US11173120B2 (en) 2014-09-25 2021-11-16 Biontech Rna Pharmaceuticals Gmbh Stable formulations of lipids and liposomes
US10815463B2 (en) 2014-11-02 2020-10-27 Arcturus Therapeutics, Inc. Messenger UNA molecules and uses thereof
US11156617B2 (en) 2015-02-12 2021-10-26 BioNTech RNA Pharmaceuticals GbmH Predicting T cell epitopes useful for vaccination
US11241505B2 (en) 2015-02-13 2022-02-08 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US11434486B2 (en) 2015-09-17 2022-09-06 Modernatx, Inc. Polynucleotides containing a morpholino linker
US11590157B2 (en) 2015-10-05 2023-02-28 Modernatx, Inc. Methods for therapeutic administration of messenger ribonucleic acid drugs
US10849920B2 (en) 2015-10-05 2020-12-01 Modernatx, Inc. Methods for therapeutic administration of messenger ribonucleic acid drugs
US11492628B2 (en) 2015-10-07 2022-11-08 BioNTech SE 3′-UTR sequences for stabilization of RNA
US20180296662A1 (en) * 2015-10-22 2018-10-18 Modernatx, Inc. Sexually transmitted disease vaccines
US10493143B2 (en) * 2015-10-22 2019-12-03 Modernatx, Inc. Sexually transmitted disease vaccines
WO2017098468A1 (en) 2015-12-09 2017-06-15 Novartis Ag Label-free analysis of rna capping efficiency using rnase h, probes and liquid chromatography/mass spectrometry
EP3656872A1 (en) 2015-12-09 2020-05-27 Novartis AG Label-free analysis of rna capping efficiency using rnase h, probes and liquid chromatography/mass spectrometry
US20190275170A1 (en) * 2016-05-18 2019-09-12 Modernatx, Inc. Polynucleotides encoding jagged1 for the treatment of alagille syndrome
US11904023B2 (en) 2016-08-17 2024-02-20 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10350304B2 (en) 2016-08-17 2019-07-16 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10894092B2 (en) 2016-08-17 2021-01-19 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10576167B2 (en) 2016-08-17 2020-03-03 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10369233B2 (en) 2016-08-17 2019-08-06 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10363321B2 (en) 2016-08-17 2019-07-30 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10888627B2 (en) 2016-08-17 2021-01-12 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
US10137206B2 (en) 2016-08-17 2018-11-27 Factor Bioscience Inc. Nucleic acid products and methods of administration thereof
WO2018160592A1 (en) * 2017-02-28 2018-09-07 Arcturus Therapeutics, Inc. Translatable molecules and synthesis thereof
US11407800B2 (en) 2017-02-28 2022-08-09 Arcturus Therapeutics, Inc. Translatable molecules and synthesis thereof
US11939363B2 (en) 2017-02-28 2024-03-26 Arcturus Therapeutics, Inc. Translatable molecules and synthesis thereof
WO2019087113A1 (en) 2017-11-01 2019-05-09 Novartis Ag Synthetic rnas and methods of use
US11795456B2 (en) * 2018-04-16 2023-10-24 Georgia Tech Research Corporation MRNA driven expression of RNA editors for treatment of pathologies
US20210163938A1 (en) * 2018-04-16 2021-06-03 Georgia Tech Research Corporation MRNA Driven Expression of RNA Editors for Treatment of Pathologies
US11242311B2 (en) 2019-07-30 2022-02-08 Factor Bioscience Inc. Cationic lipids and transfection methods
US11814333B2 (en) 2019-07-30 2023-11-14 Factor Bioscience Inc. Cationic lipids and transfection methods
US10501404B1 (en) 2019-07-30 2019-12-10 Factor Bioscience Inc. Cationic lipids and transfection methods
US10556855B1 (en) 2019-07-30 2020-02-11 Factor Bioscience Inc. Cationic lipids and transfection methods
US10611722B1 (en) 2019-07-30 2020-04-07 Factor Bioscience Inc. Cationic lipids and transfection methods
US10752576B1 (en) 2019-07-30 2020-08-25 Factor Bioscience Inc. Cationic lipids and transfection methods
WO2022051677A1 (en) * 2020-09-04 2022-03-10 Verve Therapeutics, Inc. Compositions and methods for capping rnas
WO2022180213A1 (en) 2021-02-26 2022-09-01 Ethris Gmbh Formulations for aerosol formation and aerosols for the delivery of nucleic acid
WO2024042236A1 (en) 2022-08-26 2024-02-29 Ethris Gmbh Stable lipid or lipidoid nanoparticle suspensions
EP4327829A1 (en) 2022-08-26 2024-02-28 Ethris GmbH Stabilization of lipid or lipidoid nanoparticle suspensions

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