US20100239608A1 - PHARMACEUTICAL COMPOSITION CONTAINING A STABILISED mRNA OPTIMISED FOR TRANSLATION IN ITS CODING REGIONS - Google Patents

PHARMACEUTICAL COMPOSITION CONTAINING A STABILISED mRNA OPTIMISED FOR TRANSLATION IN ITS CODING REGIONS Download PDF

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US20100239608A1
US20100239608A1 US12/787,755 US78775510A US2010239608A1 US 20100239608 A1 US20100239608 A1 US 20100239608A1 US 78775510 A US78775510 A US 78775510A US 2010239608 A1 US2010239608 A1 US 2010239608A1
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modified mrna
mrna
sequence
modified
viruses
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US12/787,755
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Florian Von Der Mülbe
Ingmar Hoerr
Steve Pascolo
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Curevac SE
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Curevac AG
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Application filed by Curevac AG filed Critical Curevac AG
Priority to US12/787,755 priority Critical patent/US20100239608A1/en
Assigned to CUREVAC GMBH reassignment CUREVAC GMBH ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: HOERR, INGMAR, VON DER MULBE, FLORIAN, PASCOLO, STEVE
Publication of US20100239608A1 publication Critical patent/US20100239608A1/en
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Definitions

  • the present invention relates to a pharmaceutical composition containing an mRNA that is stabilised by sequence modifications in the translated region and is optimised for translation.
  • the pharmaceutical composition according to the invention is suitable in particular as an inoculating agent and also as a therapeutic agent for tissue regeneration. Furthermore a process for determining sequence modifications that stabilise and optimise mRNA translation is disclosed.
  • Gene therapy and genetic vaccination are tools of molecular medicine whose use in the treatment and prevention of diseases has considerable potential. Both of these approaches are based on the incorporation of nucleic acids into a patient's cells or tissue as well as on the subsequent processing of the information coded by the incorporated nucleic acids, i.e. the expression of the desired polypeptides.
  • a further process that has been suggested in particular in the case of genetic vaccination involves the use of DNA viruses as DNA vehicles. Because such viruses are infectious, a very high transfection rate can be achieved when using DNA viruses as vehicles. The viruses used are genetically altered so that no functional infectious particles are formed in the transfected cell. Despite this precautionary measure, however the risk of uncontrolled propagation of the introduced therapeutic gene as well as viral genes remains due to the possibility of recombination events.
  • the corresponding DNA vehicles contain a strong promoter, for example the viral CMV promoter.
  • the integration of such promoters into the genome of the treated cell may, however, lead to undesirable changes in the regulation of the gene expression in the cell.
  • a further disadvantage of the use of DNA as a therapeutic agent or vaccine is the induction of pathogenic anti-DNA antibodies in the patient, resulting in a potentially fatal immune response.
  • RNA In contrast to DNA, the use of RNA as a therapeutic agent or vaccine is regarded as significantly safer. In particular, use of RNA is not associated with a risk of stable integration into the genome of the transfected cell. In addition, no viral sequences such as promoters are necessary for effective transcription of RNA. Beyond this, RNA is degraded rapidly in vivo. Indeed, the relatively short half-life of RNA in circulating blood, as compared to that of DNA, reduces the risks associating with developing pathogenic anti-RNA antibodies. Indeed, anti-RNA antibodies have not been detected to date. For these reasons RNA may be regarded as the molecule of choice for molecular medicine therapeutic applications.
  • RNA expression systems Some basic problems still have to be solved before medical applications based on RNA expression systems can be widely employed.
  • One of the problems in the use of RNA is the reliable, cell-specific and tissue-specific efficient transfer of the nucleic acid. Since RNA is normally found to be very unstable in solution, up to now RNA could not be used or used only very inefficiently as a therapeutic agent or inoculating agent in the conventional applications designed for DNA use.
  • RNA Enzymes that break down RNA so-called RNases (ribonucleases) are responsible in part for the instability. Even minute contamination by ribonucleases is sufficient to degrade down RNA completely in solution.
  • RNases ribonucleases
  • the natural decomposition of mRNA in the cytoplasm of cells is extraordinare importance.
  • the so-called “cap structure” a modified guanosine nucleotide
  • a sequence of up to 200 adenosine nucleotides (the so-called poly-A tail) is located at the 3′ end.
  • RNA is recognised as mRNA by virtue of these structures and these structures contribute to the regulatory machinery controlling mRNA regulation.
  • stabilise or destabilise RNA There are further mechanisms that stabilise or destabilise RNA. Many of these mechanisms are still unknown, although often an interaction between the RNA and proteins appears to be important in this regard.
  • an mRNA surveillance system has been described (Hellerin and Parker, Annu. Rev. Genet. 1999, 33: 229 to 260), in which incomplete or nonsense mRNA is recognised by specific feedback protein interactions in the cytosol and is made accessible to decomposition. Exonucleases appear to contribute in large measure to this process.
  • RNA in particular mRNA
  • EP-A-1083232 a process for the incorporation of RNA, in particular mRNA, into cells and organisms has been proposed in order to solve the aforementioned problem of the instability of RNA ex vivo.
  • the RNA is present in the form of a complex with a cationic peptide or protein.
  • WO 99/14346 describes further processes for stabilising mRNA.
  • modifications of the mRNA are proposed that stabilise the mRNA species against decomposition by RNases. Such modifications may involve stabilisation by sequence modifications, in particular reduction of the C content and/or U content by base elimination or base substitution.
  • chemical modifications may be used, in particular the use of nucleotide analogues, as well as 5′ and 3′ blocking groups, an increased length of the poly-A tail as well as the complexing of the mRNA with stabilising agents, and combinations of the aforementioned measures.
  • mRNA vaccines and mRNA therapeutic agents are disclosed inter alia within the scope of “transient gene therapy” (TGT).
  • TGT transient gene therapy
  • Various measures are described therein for enhancing the translation efficiency and mRNA stability that relate in particular to the composition of the non-translated sequence regions.
  • the object of the present invention is to provide a new system for gene therapy and genetic vaccination that overcomes the disadvantages associated with the properties of DNA therapeutic agents and DNA vaccines and that increases the effectiveness of therapeutic agents based on RNA species.
  • a modified mRNA as well as a pharmaceutical composition containing at least one modified mRNA of the present invention and a pharmaceutically compatible carrier and/or vehicle are provided.
  • the modified mRNA encodes at least one biologically active or antigenic peptide or polypeptide, wherein the sequence of the mRNA comprises at least one modification as set forth herein below as compared to the wild type mRNA.
  • Such modifications may be located in the region coding for the at least one peptide or polypeptide, or in untranslated regions.
  • the G/C content of the region of the modified mRNA coding for the peptide or polypeptide is increased relative to that of the G/C content of the coding region of the wild type mRNA coding for the peptide or polypeptide.
  • the encoded amino acid sequence remains unchanged compared to the wild type (i.e. silent with respect to the encoded amino acid sequence).
  • This modification is based on the fact that, for efficient translation of an mRNA, the sequence of the region of the mRNA to be translated is essential.
  • the composition and the sequence of the various nucleotides play an important role.
  • sequences with an increased G (guanosine)/C (cytosine) content are more stable than sequences with an increased A (adenosine)/U (uracil) content.
  • the codons are varied compared to the wild type mRNA, while maintaining the translated amino acid sequence, so that they contain increased amounts of G/C nucleotides. Since several different codons can encode the same amino acid, due to degeneracy of the genetic code, the codons most favourable for the stability of the modified mRNA can be determined and incorporated (alternative codon usage).
  • the modified mRNA sequence compared to the wild type sequence are feasible.
  • amino acids that are encoded by codons that contain exclusively G or C nucleotides no modification of the codon is necessary.
  • the codons for Pro (CCC or CCG), Arg (CGC or CGG), Ala (GCC or GCG) and Gly (GGC or GGG) do not require any alteration since no A or U is present.
  • codons that contain A and/or U nucleotides are altered by substituting other codons that code for the same amino acids, but do not contain A and/or U.
  • Examples include: the codons for Pro, which may be changed from CCU or CCA to CCC or CCG; the codons for Arg, which may be changed from CGU or CGA or AGA or AGG to CGC or CGG; the codons for Ala, which may be changed from GCU or GCA to GCC or GCG; the codons for Gly, which may be changed from GGU or GGA to GGC or GGG.
  • the codons for Phe which may be changed from UUU to UUC
  • the codons for Leu may be changed from UUA, CUU or CUA to CUC or CUG
  • the codons for Ser which may be changed from UCU or UCA or AGU to UCC, UCG or AGC
  • the codon for Tyr which may be changed from UAU to UAC
  • the stop codon UAA which may be changed to UAG or UGA
  • the codon for Cys which may be changed from UGU to UGC
  • the codon for His which may be changed from CAU to CAC
  • the codon for Gln which may be changed from CAA to CAG
  • the codons for Ile which may be changed from AUU or AUA to AUC
  • the codons for Thr which may be changed from UUU to UUC
  • the codons for Leu may be changed from UUA, CUU or CUA to CUC or CUG
  • the codons for Ser which may be changed from UCU or UCA
  • substitutions listed above may be used individually and in all possible combinations in order to increase the G/C content of a modified mRNA compared to the original sequence.
  • all codons for Thr occurring in the original (wild type) sequence can be altered to ACC (or ACG).
  • substitution possibilities given above are employed, for example: substitution of all codons coding in the original sequence for Thr to ACC (or ACG) and substitution of all codons coding for Ser to UCC (or UCG or AGC); substitution of all codons coding in the original sequence for Ile to AUC and substitution of all codons coding for Lys to AAG and substitution of all codons coding originally for Tyr to UAC; substitution of all codons coding in the original sequence for Val to GUC (or GUG) and substitution of all codons coding for Glu to GAG and substitution of all codons coding for Ala to GCC (or GCG) and substitution of all codons coding for Arg to CGC (or CGG); substitution of all codons coding in the original sequence for Val to GUC (or GUG) and substitution of all codons coding for Glu to GAG and substitution of all codons coding for Ala to GCC (or GCG) and substitution of all codons coding for all codons coding
  • the G/C content of the region of the modified mRNA coding for the peptide or polypeptide is increased by at least 7%, more preferably by at least 15%, and particularly preferably by at least 20% compared to the G/C content of the coded region of the wild type mRNA encoding for the polypeptide.
  • a further modification of the mRNA comprised in the pharmaceutical composition of the present invention is based on an understanding that the translation efficiency is also affected by the relative abundance of different tRNAs in various cells.
  • a high frequency of so-called “rare” codons in an RNA sequence, which are recognized by relatively rare tRNAs, tends to decrease the translational efficiency of the corresponding mRNA, whereas a high frequency of codons recognized by relatively abundant rRNAs tends to enhance the translational efficiency of a corresponding mRNA.
  • the modified mRNA (which is contained in the pharmaceutical composition) comprises a region coding for the peptide or polypeptide which is changed compared to the corresponding region of the wild type mRNA so as to replace at least one codon of the wild type sequence that is recognized by a rare cellular tRNA with a codon recognized by an abundant cellular tRNA, wherein the abundant and rare cellular tRNAs recognize the same amino acid.
  • the substituted codon in the modified mRNA which is recognized by a relatively frequent tRNA, encodes the same amino acid as the wild type (unmodified) codon.
  • RNA sequences are modified so that codons are inserted/substituted that are recognized by abundantly expressed cellular tRNAs.
  • Modifications directed to altering codon usage in a nucleic acid sequence to optimise expression levels of polypeptides encoded therefrom are generally referred to in the art as “codon optimisation.”
  • tRNAs which are abundant or rare in a particular cell are known to a person skilled in the art; see for example Akashi, Curr. Opin. Genet. Dev. 2001, 11(6): 660-666.
  • Each organism has a preferred choice of nucleotide or codon usage to encode any particular amino acid.
  • Different species vary in their codon preferences for translating mRNA into protein.
  • the codon preferences of a particular species in which a modified mRNA of the present invention is to be expressed will, therefore, at least in part dictate the parameters of codon optimisation for a nucleic acid sequence.
  • all codons of the wild type sequence that are recognized by a relatively rare tRNA in a cell may in each case be replaced by a codon that is recognized by a relatively abundant tRNA.
  • the coding sequence of the peptide or polypeptide is preserved. That is, a relatively abundant tRNA species, which replaces a relatively rare tRNA species in a modified mRNA of the invention, recognizes an amino acid identical to that recognized by the rare tRNA species.
  • the sequential increase in the G/C fraction of a modified mRNA (particularly, for example, a maximally modified G/C content), with an increase in the number of codons recognized by abundant tRNAs, wherein the amino acid sequence of the peptide or polypeptide (one or more) encoded by the mRNA remains unaltered.
  • This preferred embodiment provides a particularly preferred mRNA species, possessing properties of efficient translation and improved stability. Such preferred mRNA species are well suited, for example, for the pharmaceutical compositions of the present invention.
  • Sequences of eukaryotic mRNAs frequently include destabilising sequence elements (DSE) to which signal proteins can bind and thereby regulate the enzymatic degradation of the mRNA in vivo.
  • DSE destabilising sequence elements
  • a modified mRNA of the invention which may be a component of a pharmaceutical composition of the invention, one or more changes may be made in the wild type mRNA sequence encoding the at least one peptide or polypeptide, so as to reduce the number of destabilising sequence elements present.
  • DSEs located anywhere in an mRNA, including the coding region and in the non-translated regions (3′ and/or 5′ UTR) may be mutated or changed to generate a modified mRNA having improved properties.
  • Such destabilising sequences are for example AU-rich sequences (“AURES”) that occur in 3′-UTR regions of a number of unstable mRNAs (Caput et al., Proc. Natl. Acad. Sci. USA 1986, 83: 1670-1674).
  • the RNA molecules contained in the pharmaceutical composition according to the invention are therefore preferably altered as compared to the wild type mRNA so as to reduce the number of or eliminate these destabilising sequences.
  • Such an approach also applies to those sequence motifs recognised by potential endonucleases.
  • sequences include, for example, GAACAAG, which is found in the 3′UTR of the gene encoding the transferring receptor (Binder et al., EMBO J. 1994, 13: 1969-1980).
  • Sequence motifs recognized by endonucleases are also preferably reduced in number or eliminated in the modified mRNA of the pharmaceutical composition according to the invention.
  • the whole mRNA may, for example, be chemically synthesised using standard techniques.
  • base substitutions are introduced using a DNA matrix for the production of modified mRNA with the aid of techniques routinely employed in targeted mutagenesis; see Maniatis et al., Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press, 3 rd Edition, Cold Spring Harbor, N.Y., 2001.
  • a corresponding DNA molecule is therefore transcribed in vitro for the production of the mRNA.
  • This DNA matrix has a suitable promoter, for example a T7 or SP6 promoter, for in vitro transcription, followed by the desired nucleotide sequence for the mRNA to be produced and a termination signal for the in vitro transcription.
  • the DNA molecule that forms the matrix of the RNA construct to be produced is prepared as part of a plasmid replicable in bacteria, wherein the plasmid is replicated or amplified during the course of bacterial replication and subsequently isolated by standard techniques. Plasmids suitable for use in the present invention include, but are not limited to pT7Ts (GenBank Accession No.
  • the desired nucleotide sequence can be cloned into a suitable plasmid by molecular biology methods known to the person skilled in the art (see Maniatis et al., above).
  • the DNA molecule is then excised from the plasmid, in which it may be present as a single copy or multiple copies, by digestion with restriction endonucleases.
  • the modified mRNA that is contained in the pharmaceutical composition according to the invention may furthermore have a 5′ cap structure (a modified guanosine nucleotide).
  • a 5′ cap structure a modified guanosine nucleotide
  • suitable cap structures include, but are not limited to m7G(5′)ppp (5′(A,G(5′)ppp(5′)A and G(5′)ppp(5′)G.
  • the modified mRNA comprises a poly-A tail of at least 50 nucleotides, preferably at least 70 nucleotides, more preferably at least 100 nucleotides and particularly preferably at least 200 nucleotides.
  • IRES internal ribosomal entry site
  • An IRES may act as the sole ribosome binding site, or may serve as one of the ribosome binding sites of an mRNA.
  • An mRNA comprising more than one functional ribosome binding site may encode several peptides or polypeptides that are translated independently by the ribosomes (“multicistronic mRNA”). Examples of IRES sequences that can be used according to the invention 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 modified mRNA comprises in the 5′ non-translated and/or 3′ non-translated regions stabilisation sequences that are capable of increasing the half-life of the mRNA in the cytosol.
  • stabilisation sequences may exhibit 100% sequence homology with naturally occurring sequences that are present in viruses, bacteria and eukaryotic cells, or may be derived from such naturally occurring sequences (i.e., may comprise, e.g., mutations substitutions, or deletions in these sequences).
  • Stabilising sequences that may be used in the present invention include, by way of non-limiting example, the untranslated sequences (UTR) of the ⁇ -globin gene of Homo sapiens or Xenopus laevis .
  • stabilisation sequence has the general formula (C/U)CCAN x CCC(U/A)Py x UC(C/U)CC, which is contained in the 3′UTR of the very stable mRNAs that encode ⁇ -globin, ⁇ -(I)-collagen, 15-lipoxygenase, or tyrosine hydroxylase (C. F. Holcik et al., Proc. Natl. Acad. Sci. USA 1997, 94: 2410-2414).
  • stabilisation sequences may be used individually or in combination, as well as in combination with other stabilisation sequences known to a person skilled in the art.
  • the modified mRNA comprises at least one analogue of a naturally occurring nucleotide.
  • This approach is based on the understanding that RNA-decomposing enzymes present in a cell preferentially recognise RNA comprising naturally occurring nucleotides as a substrate.
  • the insertion of nucleotide analogues into an RNA molecule therefore, retards decomposition of the RNA molecule so modified, whereas the effect of such analogs on translational efficiency, particularly when inserted into the coding region of the mRNA, may result in either an increase or decrease in translation of the modified RNA molecule.
  • nucleotide analogues that can be used in accordance with the invention: phosphorus amidates, phosphorus thioates, peptide nucleotides, methylphosphonates, 7-deazaguanosine, 5-methylcytosine and inosine.
  • the preparation of such analogues is known to the person skilled in the art, for example from U.S. Pat. No. 4,373,071, U.S. Pat. No. 4,401,796, U.S. Pat. No. 4,415,732, U.S. Pat. No. 4,458,066, U.S. Pat. No. 4,500,707, U.S. Pat. No. 4,668,777, U.S. Pat. No.
  • such analogues may be present in non-translated and/or translated regions of the modified mRNA.
  • the effective transfer of the modified mRNA into the cells to be treated or into the organism to be treated may be improved if the modified mRNA is associated with a cationic peptide or protein, or is bound thereto.
  • the use of protamine as polycationic, nucleic acid-binding protein is particularly effective. It is also possible to use other cationic peptides or proteins such as poly-L-lysine or histones. Procedures for stabilising mRNA are described in EP-A-1083232, whose relevant disclosure is incorporated herein in its entirety.
  • the modified mRNA therein codes for at least one biologically active peptide or polypeptide that is not formed or is only insufficiently or defectively formed in the patient to be treated.
  • Administration of a modified mRNA encoding the at least one biologically active peptide or polypeptide or a composition thereof to such a patient therefore, at least partially restores the expression and/or activity of the at least one biologically active peptide or polypeptide in the patient and thereby complements the patient's genetic defect.
  • the direct introduction of a normal, functional gene into a living animal has been studied as a means for replacing defective genetic information. In such studies, nucleic acid sequences are introduced directly into cells of a living animal.
  • examples of polypeptides coded by a modified mRNA of the invention include, without limitation, dystrophin, the chloride channel, which is defectively altered in cystic fibrosis; enzymes that are lacking or defective in metabolic disorders such as phenylketonuria, galactosaemia, homocystinuria, adenosine deaminase deficiency, etc.; enzymes that are involved in the synthesis of neurotransmitters such as dopamine, norepinephrine and GABA, in particular tyrosine hydroxylase and DOPA decarboxylase, and ⁇ -1-antitrypsin, etc.
  • dystrophin the chloride channel, which is defectively altered in cystic fibrosis
  • enzymes that are lacking or defective in metabolic disorders such as phenylketonuria, galactosaemia, homocystinuria, adenosine deaminase deficiency, etc.
  • compositions of the invention may also be used to effect expression of cell surface receptors and/or binding partners of cell surface receptors if the modified mRNA contained therein encodes for such biologically active proteins or peptides.
  • biologically active proteins or peptides include for example tissue plasminogen activator (TPA), growth hormones, insulin, interferons, granulocyte-macrophage colony stimulating factor (GM-CFS), and erythropoietin (EPO), etc.
  • TPA tissue plasminogen activator
  • GM-CFS granulocyte-macrophage colony stimulating factor
  • EPO erythropoietin
  • the pharmaceutical composition of the present invention may, for example, be used for tissue regeneration. In this way diseases that are characterised by tissue degeneration, for example neurodegenerative diseases such as Alzheimer's disease, Parkinson's disease, etc.
  • the modified mRNA in particular that contained in the pharmaceutical composition of the present invention, preferably encodes, without limitation, a TGF- ⁇ family member, EGF, FGF, PDGF, BMP, GDNF, BDNF, GDF and neurotrophic factors such as NGF, neutrophines, etc.
  • a further area of application of the present invention is vaccination, i.e. the use of a modified mRNA for inoculation or the use of a pharmaceutical composition comprising a modified mRNA as an inoculating agent, or the use of a modified mRNA in the preparation of the pharmaceutical composition for inoculation purposes.
  • Vaccination is based on introducing an antigen into an organism or subject, in particular into a cell of the organism or subject.
  • the genetic information encoding the antigen is introduced into the organism or subject in the form of a modified mRNA encoding the antigen.
  • the modified mRNA contained in the pharmaceutical composition is translated into the antigen, i.e.
  • the polypeptide or antigenic peptide coded by the modified mRNA is expressed, and an immune response directed against the polypeptide or antigenic peptide is stimulated.
  • a surface antigen of such an organism may be used as an antigen against which an immune response is elicited.
  • a pharmaceutical composition comprising a modified mRNA encoding such a surface antigen may be used as a vaccine.
  • the immune response is directed against tumour antigens by generating a modified mRNA encoding a tumour antigen(s), in particular a protein which is expressed exclusively on cancer cells.
  • a modified mRNA encoding a tumour antigen may be used alone or as a component of a pharmaceutical composition according to the invention, wherein administration of either the modified mRNA or a composition thereof results in expression of the cancer antigen(s) in the organism.
  • An immune response to such a vaccine would, therefore, confer to the vaccinated subject a degree of protective immunity against cancers associated with the immunizing cancer antigen.
  • such measures could be used to vaccinate a cancer patient with a modified mRNA encoding a tumour antigen(s) expressed on the patient's cancer cells so as to stimulate the cancer patient's immune response to attack any cancer cells expressing the encoded antigen.
  • the pharmaceutical composition according to the invention is suitable in particular for the treatment of cancers (in which the modified mRNA codes for a tumour-specific surface antigen (TSSA), for example for treating malignant melanoma, colon carcinoma, lymphomas, sarcomas, small-cell lung carcinomas, blastomas, etc.
  • TSSA tumour-specific surface antigen
  • tumour antigens include, inter cilia, 707-AP, AFP, ART-4, BAGE, ⁇ -catenin/m, Bcr-abl, CAMEL, CAP-1, CASP-8, CDC27/m, CDK4/m, CEA, CT, Cyp-B, DAM, ELF2M, ETV6-AML1, G250, GAGE, GnT-V, Gp100, HAGE, HER-2/neu, HLA-A*0201-R1701, HPV-E7, HSP70-2M, HAST-2, hTERT (or hTRT), iCE, KIAA0205, LAGE, LDLR/FUT, MAGE, MART-1/melan-A, MC1R, myosin/m, MUC1, MUM-1, -2, -3, NA88-A, NY-ESO-1, p190 minor bcr-abl, Pml/RAR ⁇ , PRAMS, PSA
  • the pharmaceutical composition of the invention may be used to treat infectious diseases, for example, viral infectious diseases such as AIDS (HIV), hepatitis A, B or C, herpes, herpes zoster (chicken pox), German measles (rubella virus), yellow fever, dengue fever etc. (flavi viruses), flu (influenza viruses), haemorrhagic infectious diseases (Marburg or Ebola viruses), bacterial infectious diseases such as Legionnaires' disease ( Legionella ), gastric ulcer ( Helicobacter ), cholera ( Vibrio ), E.
  • viral infectious diseases such as AIDS (HIV), hepatitis A, B or C, herpes, herpes zoster (chicken pox), German measles (rubella virus), yellow fever, dengue fever etc. (flavi viruses), flu (influenza viruses), haemorrhagic infectious diseases (Marburg or Ebola viruses), bacterial infectious diseases such as Legionnaires' disease ( Legionella ), gastric ulcer ( Heli
  • coli infections staphylococcal infections, salmonella infections or streptococcal infections, tetanus ( Clostridium tetani ), or protozoan infectious diseases (malaria, sleeping sickness, leishmaniasis, toxoplasmosis, i.e. infections caused by plasmodium , trypanosomes, leishmania and toxoplasma ).
  • infectious diseases the corresponding surface antigens with the strongest antigenic potential are encoded by the modified mRNA.
  • the corresponding surface antigens with the strongest antigenic potential are encoded by the modified mRNA.
  • this is typically a secreted form of a surface antigen.
  • polypeptides preferably coding for polypeptides are employed, because polypeptides generally comprise multiple epitopes (polyepitopes).
  • Polypeptides comprising polyepitopes include but are not limited to, surface antigens of pathogenic vectors or organisms, or of tumour cells, preferably secreted protein forms.
  • the modified mRNA according to the invention may comprise in addition to the antigenic or therapeutically active peptide or polypeptide, at least one further functional region that encodes, for example, a cytokine that promotes the immune response (e.g., a monokine, lymphokine, interleukin or chemokine, such as IL-1, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-10, IL-12, INF- ⁇ , INF- ⁇ , GM-CFS, LT- ⁇ or growth factors such as hGH).
  • a cytokine that promotes the immune response e.g., a monokine, lymphokine, interleukin or chemokine, such as IL-1, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-10, IL-12, INF- ⁇ , INF- ⁇ , GM-
  • the pharmaceutical composition according to the invention may contain one or more adjuvants.
  • adjuvant is understood in this context to denote any chemical or biological compound that promotes or augments a specific immune response.
  • Various mechanisms may be involved in this connection, depending on the various types of adjuvants.
  • compounds that promote endocytosis of the modified mRNA contained in the pharmaceutical composition by dentritic cells (DC) form a first class of usable adjuvants.
  • Other compounds that activate or accelerate maturation of DC for example, lipopolysaccharides, TNF- ⁇ or CD40 ligand
  • a second class of suitable adjuvants for example, lipopolysaccharides, TNF- ⁇ or CD40 ligand
  • any agent which is recognized as a potential “danger signal” by the immune system may be used as an adjuvant.
  • Co-administration of an adjuvant enhances an immune response generated against an antigen encoded by the modified mRNA.
  • the aforementioned cytokines are particularly preferred in this aspect.
  • Other known adjuvants include aluminium hydroxide, and Freund's adjuvant, as well as the aforementioned stabilising cationic peptides or polypeptides such as protamine.
  • lipopeptides such as Pam3Cys are also particularly suitable for use as adjuvants in the pharmaceutical composition of the present invention; see Deres et al, Nature 1989, 342: 561-564.
  • the pharmaceutical composition according to the invention comprises, in addition to the modified mRNA, a pharmaceutically compatible carrier and/or a pharmaceutically compatible vehicle.
  • a pharmaceutically compatible carrier and/or a pharmaceutically compatible vehicle.
  • suitable carriers include for example sterile water, sterile saline solutions, polyalkylene glycols, hydrogenated naphthalene and in particular biocompatible lactide polymers, lactide/glycolide copolymers or polyoxyethylene/polyoxypropylen-e copolymers.
  • compositions according to the invention may contain fillers or substances such as lactose, mannitol, substances for the covalent coupling of polymers such as for example polyethylene glycol to inhibitors according to the invention, complexing with metal ions or incorporation of materials in or on special preparations of polymer compound, such as for example polylactate, polyglycolic acid, hydrogel or on liposomes, microemulsions, microcells, unilamellar or multilamellar vesicles, erythrocyte fragments or spheroplasts.
  • polylactate polyglycolic acid
  • hydrogel or on liposomes such as for example polylactate, polyglycolic acid, hydrogel or on liposomes, microemulsions, microcells, unilamellar or multilamellar vesicles, erythrocyte fragments or spheroplasts.
  • the respective modifications of the compositions are chosen depending on physical properties such as, for example, solubility, stability
  • Controlled or constant release of the active component according to the invention in the composition includes formulations based on lipophilic depot substances (for example fatty acids, waxes or oils). Coatings of substances or compositions according to the invention containing such substances, namely coatings with polymers (for example poloxamers or poloxamines), are also disclosed within the scope of the present invention. Moreover substances or compositions according to the invention may contain protective coatings, for example protease inhibitors or permeability enhancers.
  • Preferred carriers are typically aqueous carrier materials, in which water for injection (WFI) or water buffered with phosphate, citrate or acetate, etc., is used, and the pH is typically adjusted to 5.0 to 8.0, preferably 6.0 to 7.0.
  • the carrier or the vehicle will in addition preferably contain salt constituents, for example sodium chloride, potassium chloride or other components that for example make the solution isotonic.
  • the carrier or the vehicle may contain, besides the aforementioned constituents, additional components such as human serum albumin (HSA), polysorbate 80, sugars or amino acids.
  • HSA human serum albumin
  • polysorbate 80 polysorbate 80, sugars or amino acids.
  • the concentration of the modified mRNA in such formulations may therefore vary within a wide range from 1 ⁇ g to 100 mg/ml.
  • the pharmaceutical composition according to the invention is preferably administered parenterally, for example intravenously, intraarterially, subcutaneously or intramuscularly to the patient. It is also possible to administer the pharmaceutical composition topically or orally.
  • the invention thus also provides a method for the treatment of the aforementioned medical conditions or an inoculation method for the prevention of the aforementioned conditions, which comprises the administration of the pharmaceutical composition according to the invention to a subject or patient, in particular a human patient.
  • a typical regimen for preventing, suppressing, or treating a pathology related to a viral, bacterial, or protozoan infection may comprise administration of an effective amount of a vaccine composition as described herein, administered as a single treatment, or repeated as enhancing or booster dosages, over a period up to and including between one week and about 24 months, or any range or value therein.
  • an “effective amount” of a vaccine composition is one that is sufficient to achieve a desired biological effect. It is understood that nature and manner of the administration and the effective dosage may be determined by a medical practitioner based on a number of variables including the age, sex, health, and weight of the recipient, the medical condition to be treated and its stage of progression, the kind of concurrent treatment, if any, frequency of treatment, and the nature of the desired outcome.
  • the ranges of effective doses provided below are not intended to limit the invention, but are provided as representative preferred dose ranges. However, the most preferred dosage will be tailored to the individual subject, as is understood and determinable by one of skill in the art, without undue experimentation.
  • the present invention relates to the use of genetic material (e.g., nucleic acid sequences) as immunizing agents.
  • the present invention relates to the introduction of exogenous or foreign modified DNA or RNA molecules into an individual's tissues or cells, wherein these molecules encode an exogenous protein capable of eliciting an immune response to the protein.
  • the exogenous nucleic acid sequences may be introduced alone or in the context of an expression vector wherein the sequences are operably linked to promoters and/or enhancers capable of regulating the expression of the encoded proteins.
  • the introduction of exogenous nucleic acid sequences may be performed in the presence of a cell stimulating agent capable of enhancing the uptake or incorporation of the nucleic acid sequences into a cell.
  • Such exogenous nucleic acid sequences may be administered in a composition comprising a biologically compatible or pharmaceutically acceptable carrier.
  • the exogenous nucleic acid sequences may be administered by a variety of means, as described herein, and well known in the art.
  • Such methods may be used to elicit immunity to a pathogen, absent the risk of infecting an individual with the pathogen.
  • the present invention may be practiced using procedures known in the art, such as those described in PCT International Application Number PCT/US90/01515, wherein methods for immunizing an individual against pathogen infection by directly injecting polynucleotides into the individual's cells in a single step procedure are presented.
  • the present invention relates to methods for eliciting immune responses in an individual or subject which can protect the individual from pathogen infection. Accordingly, genetic material that encodes an immunogenic protein is introduced into a subject's cells either in vivo or ex vivo. The genetic material is expressed by these cells, thereby producing immunogenic target proteins capable of eliciting an immune response. The resulting immune response is broad based and involves activation of the humoral immune response and both arms of the cellular immune response.
  • Target proteins may be proteins specifically associated with pathogens or the individual's own “abnormal” or infected cells.
  • Such an approach may be used advantageously to immunize a subject against pathogenic agents and organisms such that an immune response against a pathogen protein provides protective immunity against the pathogen.
  • This approach is particularly useful for protecting an individual against infection by non-encapsulated intracellular pathogens, such as a virus, which produce proteins within the host cells.
  • the immune response generated against such proteins is capable of eliminating infected cells with cytotoxic T cells (CTLs).
  • CTLs cytotoxic T cells
  • the immune response elicited by a target protein produced by vaccinated cells in a subject is a broad-based immune response which includes B cell and T cell responses, including CTL responses. It has been observed that target antigen produced within the cells of the host are processed intracellularly into small peptides, which are bound by Class I MHC molecules and presented in the context of Class I on the cell surface.
  • the Class I MHC-target antigen complexes are capable of stimulating CD8 + T cells, which are predominantly CTLs.
  • genetic immunization according to the present invention is capable of eliciting CTL responses (killer cell responses).
  • the CTL response is crucial in protection against pathogens such as viruses and other intracellular pathogens which produce proteins within infected cells. Similarly, the CTL response can be utilized for the specific elimination of deleterious cell types, which may express aberrant cell surface proteins recognizable by Class I MHC molecules.
  • the genetic vaccines of the present invention may be administered to cells in conjunction with compounds that stimulate cell division and facilitate uptake of genetic constructs. This step provides an improved method of direct uptake of genetic material. Administration of cell stimulating compounds results in a more effective immune response against the target protein encoded by the genetic construct.
  • modified DNA or mRNA that encodes a target protein is introduced into the cells of an individual where it is expressed, thus producing the target protein.
  • the modified DNA or RNA may be operably linked to regulatory elements (e.g., a promoter) necessary for expression in the cells of the individual.
  • regulatory elements e.g., a promoter
  • Other elements known to skilled artisans may also be included in genetic constructs of the invention, depending on the application.
  • the term “genetic construct” refers to the modified DNA or mRNA molecule that comprises a nucleotide sequence which encodes the target protein and which may include initiation and termination signals operably linked to regulatory elements including a promoter and polyadenylation signal (for modified DNA) capable of directing expression in the cells of the vaccinated individual.
  • the term “expressible form” refers to gene constructs which contain the necessary regulatory elements operably linked to a coding sequence of a target protein, such that when present in the cell of the individual, the coding sequence is expressed.
  • the term “genetic vaccine” refers to a pharmaceutical preparation that comprises a genetic construct.
  • the present invention provides genetic vaccines, which include genetic constructs comprising DNA or RNA which encode a target protein.
  • target protein refers to a protein capable of eliciting an immune response.
  • the target protein is an immunogenic protein derived from the pathogen or undesirable cell-type, such as an infected or transformed cell.
  • target proteins may be pathogen-associated proteins or tumour-associated proteins.
  • the immune response directed against the target protein protects the individual against the specific infection or disease with which the target protein is associated.
  • a genetic vaccine comprising a modified DNA or RNA molecule that encodes a pathogen-associated target protein is used to elicit an immune response that will protect the individual from infection by the pathogen.
  • genetic constructs can be tested for expression levels in vitro using cells maintained in culture, which are of the same type as those to be vaccinated.
  • cells maintained in culture which are of the same type as those to be vaccinated.
  • muscle cells grown in culture such as solid muscle tumor cells of rhabdomyosarcoma may be used as an in vitro model for measuring expression levels.
  • One of ordinary skill in the art could readily identify a model in vitro system which may be used to measure expression levels of an encoded target protein.
  • inoculants can be delivered to different cells, cell types, or tissues in an individual.
  • Such inoculants may comprise the same or different nucleic acid sequences of a pathogenic organism. This allows for the introduction of more than a single antigen target and maximizes the chances for developing immunity to the pathogen in a vaccinated subject.
  • the genetic vaccine may be introduced in vivo into cells of an individual to be immunized or ex vivo into cells of the individual which are re-implanted after incorporation of the genetic vaccine.
  • Either route may be used to introduce genetic material into cells of an individual.
  • preferred routes of administration include intramuscular, intraperitoneal, intradermal, and subcutaneous injection.
  • the genetic vaccine may be introduced by various means into cells isolated from an individual. Such means include, for example, transfection, electroporation, and microprojectile bombardment. These methods and other protocols for introducing nucleic acid sequences into cells are known to and routinely practiced by skilled practitioners.
  • the genetic construct After the genetic construct is incorporated into the cells, they are re-implanted into the individual. Prior to re-implantation, the expression levels of a target protein encoded by the genetic vaccine may be assessed. It is contemplated that otherwise non-immunogenic cells that have genetic constructs incorporated therein can be implanted into autologous or heterologous recipients.
  • the genetic vaccines according to the present invention comprise about 0.1 to about 1000 micrograms of nucleic acid sequences (i.e., DNA or RNA). In some preferred embodiments, the vaccines comprise about 1 to about 500 micrograms of nucleic acid sequences. In some preferred embodiments, the vaccines comprise about 25 to about 250 micrograms of nucleic acid sequences. Most preferably, the vaccines comprise about 100 micrograms nucleic acid sequences.
  • the genetic vaccines according to the present invention are formulated according to the mode of administration to be used.
  • One having ordinary skill in the art can readily formulate a genetic vaccine that comprises a genetic construct.
  • an isotonic formulation is generally used.
  • additives for isotonicity can include sodium chloride, dextrose, mannitol, sorbitol and lactose.
  • Isotonic solutions such as phosphate buffered saline are preferred.
  • Stabilizers can include gelatin and albumin.
  • the individual is administered a series of vaccinations to produce a comprehensive immune response.
  • at least two and preferably four injections are given over a period of time.
  • the period of time between injections may include from 24 hours apart to two weeks or longer between injections, preferably one week apart.
  • at least two and up to four separate injections may be administered simultaneously to different parts of the body.
  • a method for immunizing or vaccinating includes both methods of protecting an individual from pathogen challenge, as well as methods for treating an individual suffering from pathogen infection.
  • the present invention may be used as a vaccine for prophylactic protection or in a therapeutic manner; that is, as a reagent for immunotherapeutic methods and preparations.
  • the amount of a modified nucleic acid sequence generated using the methods of the invention which provides a therapeutically effective dose in the treatment of a patient with, for example, cancer or a pathogen-related disorder can be determined by standard clinical techniques based on the present description.
  • in vitro assays may optionally be employed to help identify optimal dosage ranges.
  • the precise dose to be employed in the formulation will also depend on the route of administration, and the seriousness of the disease or disorder, and should be decided according to the judgment of the practitioner and each subject's circumstances.
  • suitable dosage ranges for intravenous administration are generally directed to achieve a concentration of about 20-500 micrograms of polypeptide encoded by the modified nucleic acid per kilogram body weight.
  • Suitable dosage ranges for intranasal administration are generally directed to achieve a concentration of about 0.01 pg to 1 mg of polypeptide encoded by the modified nucleic acid per kg body weight. Effective doses may be extrapolated from dose-response curves derived from in vitro or animal model test systems.
  • compositions comprising the modified nucleic acid molecules of the invention can be administered for prophylactic and/or therapeutic treatments.
  • compositions are administered to a patient already suffering from a hyperproliferative disorder (such as, e.g., cancer) in an amount sufficient to cure or at least partially arrest the symptoms of the disease and its complications.
  • a hyperproliferative disorder such as, e.g., cancer
  • An amount adequate to accomplish this is defined as a “therapeutically effective amount or dose.” Amounts effective for this use will depend on the severity of the disease and the weight and general state of the patient.
  • compositions comprising modified nucleic acid molecules of the invention can be administered alone, or in combination, and/or in conjunction with known therapeutic agents/compounds used for the treatment of a patient with a particular disorder.
  • a composition comprising at least one modified nucleic acid of the invention which encodes a tumour antigen may be used in conjunction with one or more known cancer therapeutics, such as those described in the Physicians' Desk Reference, 54 th Edition (2000) or in Cancer: Principles & Practice of Oncology , DeVita, Jr., Hellman, and Rosenberg (eds.) 2nd edition, Philadelphia, Pa.: J. B. Lippincott Co., 1985, wherein standard treatment protocols and dosage formulations are presented.
  • a method for determining how to modify the sequence of an mRNA so as to generate a modified mRNA having altered properties, which may be used alone or in a pharmaceutical composition of the invention.
  • the modification of an RNA sequence is carried out with two different optimisation objectives: to maximize G/C content, and to maximize the frequency of codons that are recognized by abundantly expressed tRNAs.
  • a virtual translation of an arbitrary RNA (or DNA) sequence is carried out in order to generate the corresponding amino acid sequence. Starting from the amino acid sequence, a virtual reverse translation is performed that provides, based on degeneracy of the genetic code, all of the possible choices for the corresponding codons.
  • a suitable software program comprises a source code of Appendix I.
  • the optimised mRNA sequence is generated and can be output, for example, with the aid of a suitable display device and compared with the original (wild type) sequence.
  • the same also applies with regard to the frequency of the individual nucleotides.
  • the changes compared to the original nucleotide sequence are preferably emphasised.
  • naturally occurring stable sequences are incorporated therein to produce an RNA stabilised by the presence of natural sequence motifs.
  • a secondary structural analysis may also be performed that can analyse, on the basis of structural calculations, stabilising and destabilising properties or regions of the RNA.
  • modified nucleic acid sequences generated using the above computer-based method include SEQ ID NOs: 3-7, 10 and 11.
  • the present invention also includes pharmaceutical compositions of modified nucleic acid sequences of the invention, including SEQ ID NOs: 3-7, 10 and 11.
  • FIG. 1 shows wild type sequences and modified sequences for the influenza matrix protein.
  • FIG. 1A shows the wild type gene and FIG. 1B (SEQ ID NO: 2) shows the amino acid sequence derived therefrom (1-letter code).
  • FIG. 1C shows a gene sequence coding for the influenza matrix protein, whose G/C content is increased as compared to that of the wild type sequence.
  • FIG. 1D shows the sequence of a gene that codes for a secreted form of the influenza matrix protein (including an N-terminal signal sequence), wherein the G/C content of the sequence is increased relative to that of the wild type sequence.
  • FIG. 1A shows the wild type gene
  • FIG. 1B shows the amino acid sequence derived therefrom (1-letter code).
  • FIG. 1C shows a gene sequence coding for the influenza matrix protein, whose G/C content is increased as compared to that of the wild type sequence.
  • FIG. 1D shows the sequence of a gene that codes for a secreted form of the influenza matrix protein (including an N-terminal signal sequence), wherein the G/C content of the sequence is increased relative to that of the
  • FIG. 1E shows an mRNA coding for the influenza matrix protein, wherein the mRNA comprises stabilising sequences not present in the corresponding wild type mRNA.
  • FIG. 1F shows an mRNA coding for the influenza matrix protein that in addition to stabilising sequences also contains an increased G/C content.
  • FIG. 1G (SEQ ID NO: 7) likewise shows a modified mRNA that codes for a secreted form of the influenza matrix protein and comprises, as compared to the wild type, stabilising sequences and an elevated G/C content.
  • the start and stop codons are shown in bold type. Nucleotides that are changed relative to the wild type sequence of FIG. 1A are shown in capital letters in 1 C to 1 G.
  • FIG. 2 shows wild type sequences and modified sequences according to the invention that encode for the tumour antigen MAGE1.
  • FIG. 2A shows the sequence of the wild type gene and FIG. 2B (SEQ ID NO: 9) shows the amino acid sequence derived therefrom (3-letter code).
  • FIG. 2C shows a modified mRNA coding for MAGE1, whose G/C content is increased as compared to the wild type.
  • FIG. 2D shows the sequence of a modified mRNA encoding MAGE1, in which the codon usage has been optimised as frequently as possible with respect to the tRNA present in the cell and to the coding sequence in question. Start and stop codons are shown in each case in bold type.
  • a computer program modifies the nucleotide sequence of an arbitrary mRNA in such a way as to maximise the G/C content of the nucleic acid, and maximise the presence of codons recognized by abundant tRNAs present in a particular cell(s).
  • the computer program is based on an understanding of the genetic code and exploits the degenerative nature of the genetic code.
  • a modified mRNA having desirable properties is obtained, wherein the amino acid sequence encoded by the modified mRNA is identical to that of the unmodified mRNA sequence.
  • the invention may encompass alterations in either the G/C content or codon usage of an mRNA to produce a modified mRNA.
  • Visual Basic 6.0 program development environment employed: Microsoft Visual Studio Enterprise 6.0 with Servicepack 3
  • Appendix I The source code in Visual Basic 6.0 (program development environment employed: Microsoft Visual Studio Enterprise 6.0 with Servicepack 3) is given in the Appendix I.
  • RNA construct with a sequence of the lac-Z gene from E. coli optimised with regard to stabilisation and translational efficiency was produced with the aid of the computer program of Example 1.
  • a G/C content of 69% (compared to the wild type sequence of 51%; C. F. Kalnins et al., EMBO J. 1983, 2(4): 593-597) was achieved in this manner.
  • the optimised sequence was produced according to methods known in the art.
  • the terminal oligonucleotides have the following restriction cleavage sites: at the 5′ end an EcoRV cleavage site, and at the 3′ end a BglII cleavage site.
  • the modified lacZ sequence was incorporated into the plasmid pT7Ts (GenBank Accession No. U26404; C. F. Lai et al., see above) by digestion with EcoRV/BglII.
  • pT7Ts contains untranslated region sequences from the ⁇ -globin gene of Xenopus laevis at the 5′ and 3′ ends.
  • the plasmid was cleaved with the aforementioned restriction enzymes to facilitate insertion of the modified lacZ sequence having compatible 5′ and 3′ termini.
  • the pT7Ts-lac-Z construct was propagated in bacteria and purified by phenol-chloroform extraction. 2 ⁇ g of the construct were transcribed in vitro using methods known to a skilled artisan and the modified mRNA was produced.
  • the gene for the influenza matrix protein (wild type sequence, see FIG. 1A ; derived amino acid sequence, see FIG. 1B ) was optimised with the aid of the computer program according to the invention of Example 1.
  • the G/C-rich sequence variant shown in FIG. 1C (SEQ ID NO: 3) was thereby formed.
  • a G/C-rich sequence coding for a secreted form of the influenza matrix protein, which includes an N-terminal signal sequence was also determined (see FIG. 1D ; SEQ ID NO: 4).
  • the secreted form of the influenza matrix protein has the advantage of increased immunogenicity as compared to that of the non-secreted form.
  • mRNA molecules were designed starting from the optimised sequences.
  • the mRNA for the influenza matrix protein optimised with regard to G/C content and codon usage, was additionally provided with stabilising sequences in the 5′ region and 3′ region (the stabilisation sequences derive from the 5′-UTRs and 3′-UTRs of the ⁇ -globin-mRNA of Xenopus laevis ; pT7Ts-Vektor in C. F. Lai et al., see above). See also FIG. 1E ; SEQ ID NO: 5, which includes only stabilising sequences and 1 F; SEQ ID NO: 6, which includes both increased G/C content and stabilising sequences.
  • the mRNA coding for the secreted form of the influenza matrix protein was likewise also sequence optimised in the translated region and provided with the aforementioned stabilising sequences (see FIG. 1G ; SEQ ID NO: 7).
  • the mRNA encoding the tumour antigen MAGE1 was modified with the aid of the computer program of Example 1.
  • the sequence shown in FIG. 2C (SEQ ID NO: 10) was generated in this way, and has a 24% higher G/C content (351 G, 291 C) as compared to the wild type sequence (275 G, 244 C).
  • the wild type sequence was improved with regard to translational efficiency by substituting codons corresponding to tRNAs that are more abundant in a target cell (see FIG. 2D ; SEQ ID NO: 11).
  • the G/C content was likewise raised by 24% by the alternative codon usage.

Abstract

The present invention relates to a pharmaceutical composition containing an mRNA that is stabilised by sequence modifications in the translated region and is optimised for the translation. The pharmaceutical composition according to the invention is particularly suitable as an inoculating agent as well as a therapeutic agent for tissue regeneration. In addition a process is described for determining sequence modifications that serve for the stabilisation and translation optimisation of mRNA.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This Application is a Continuation of application Ser. No. 10/729,830 filed on Dec. 5, 2003, which is a continuation-in-part of PCT Application No. PCT/EP02/06180 filed Jun. 5, 2002, which in turn, claims priority from German Application 10127283.9, filed Jun. 5, 2001. Applicants claim benefit under 35 U.S.C. §120 as to the U.S. application and the PCT application and under 35 U.S.C. §119 to the German application, and the disclosures of all of said applications are incorporated herein by reference.
  • SUBMISSION OF SEQUENCE LISTING
  • The Sequence Listing associated with this application is filed in electronic format via EFS-Web and hereby incorporated by reference into the specification in its entirety. The name of the text file containing the Sequence Listing is Sequence_Listing2212200009_CON2. The size of the text file is 19 KB, and the text file was created on May 19, 2010.
  • BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • The present invention relates to a pharmaceutical composition containing an mRNA that is stabilised by sequence modifications in the translated region and is optimised for translation. The pharmaceutical composition according to the invention is suitable in particular as an inoculating agent and also as a therapeutic agent for tissue regeneration. Furthermore a process for determining sequence modifications that stabilise and optimise mRNA translation is disclosed.
  • 2. Description of the Prior Art
  • Gene therapy and genetic vaccination are tools of molecular medicine whose use in the treatment and prevention of diseases has considerable potential. Both of these approaches are based on the incorporation of nucleic acids into a patient's cells or tissue as well as on the subsequent processing of the information coded by the incorporated nucleic acids, i.e. the expression of the desired polypeptides.
  • The conventional procedure involved in previous processes of gene therapy and genetic vaccination is the use of DNA in order to incorporate the required genetic information into the cell. In this connection various processes for the incorporation of DNA into cells have been developed, such as for example calcium phosphate transfection, polyprene transfection, protoplast fusion, electroporation, microinjection and lipofection, in which connection lipofection in particular has proved to be a suitable process.
  • A further process that has been suggested in particular in the case of genetic vaccination involves the use of DNA viruses as DNA vehicles. Because such viruses are infectious, a very high transfection rate can be achieved when using DNA viruses as vehicles. The viruses used are genetically altered so that no functional infectious particles are formed in the transfected cell. Despite this precautionary measure, however the risk of uncontrolled propagation of the introduced therapeutic gene as well as viral genes remains due to the possibility of recombination events.
  • Normally DNA incorporated into a cell is integrated to a certain extent into the genome of the transfected cell. On the one hand this phenomenon can exert a desirable effect, since in this way a long-lasting action of the introduced DNA can be achieved. On the other hand the integration into the genome brings with it a significant risk for gene therapy. Such integration events may, for example, involve an insertion of the incorporated DNA into an intact gene, which produces a mutation that interferes with or completely ablates the function of the endogenous gene. As a result of such integration events, enzyme systems that are important for cellular viability may be switched off. Alternatively, there is also the risk of inducing transformation of the transfected cell if the integration site occurs in a gene that is critical for regulating cell growth. Accordingly, when using DNA viruses as therapeutic agents and vaccines, a carcinogenic risk cannot be excluded. In this connection it should also be borne in mind that, in order to achieve effective expression of the genes incorporated into the cell, the corresponding DNA vehicles contain a strong promoter, for example the viral CMV promoter. The integration of such promoters into the genome of the treated cell may, however, lead to undesirable changes in the regulation of the gene expression in the cell.
  • A further disadvantage of the use of DNA as a therapeutic agent or vaccine is the induction of pathogenic anti-DNA antibodies in the patient, resulting in a potentially fatal immune response.
  • In contrast to DNA, the use of RNA as a therapeutic agent or vaccine is regarded as significantly safer. In particular, use of RNA is not associated with a risk of stable integration into the genome of the transfected cell. In addition, no viral sequences such as promoters are necessary for effective transcription of RNA. Beyond this, RNA is degraded rapidly in vivo. Indeed, the relatively short half-life of RNA in circulating blood, as compared to that of DNA, reduces the risks associating with developing pathogenic anti-RNA antibodies. Indeed, anti-RNA antibodies have not been detected to date. For these reasons RNA may be regarded as the molecule of choice for molecular medicine therapeutic applications.
  • However, some basic problems still have to be solved before medical applications based on RNA expression systems can be widely employed. One of the problems in the use of RNA is the reliable, cell-specific and tissue-specific efficient transfer of the nucleic acid. Since RNA is normally found to be very unstable in solution, up to now RNA could not be used or used only very inefficiently as a therapeutic agent or inoculating agent in the conventional applications designed for DNA use.
  • Enzymes that break down RNA, so-called RNases (ribonucleases), are responsible in part for the instability. Even minute contamination by ribonucleases is sufficient to degrade down RNA completely in solution. Moreover, the natural decomposition of mRNA in the cytoplasm of cells is exquisitely regulated. Several mechanisms are known which contribute to this regulation. The terminal structure of a functional mRNA, for example, is of decisive importance. The so-called “cap structure” (a modified guanosine nucleotide) is located at the 5′ end and a sequence of up to 200 adenosine nucleotides (the so-called poly-A tail) is located at the 3′ end. The RNA is recognised as mRNA by virtue of these structures and these structures contribute to the regulatory machinery controlling mRNA regulation. In addition there are further mechanisms that stabilise or destabilise RNA. Many of these mechanisms are still unknown, although often an interaction between the RNA and proteins appears to be important in this regard. For example, an mRNA surveillance system has been described (Hellerin and Parker, Annu. Rev. Genet. 1999, 33: 229 to 260), in which incomplete or nonsense mRNA is recognised by specific feedback protein interactions in the cytosol and is made accessible to decomposition. Exonucleases appear to contribute in large measure to this process.
  • Certain measures have been proposed in the prior art in order to improve the stability of RNA and thereby enable its use as a therapeutic agent or RNA vaccine.
  • In EP-A-1083232 a process for the incorporation of RNA, in particular mRNA, into cells and organisms has been proposed in order to solve the aforementioned problem of the instability of RNA ex vivo. As described therein, the RNA is present in the form of a complex with a cationic peptide or protein.
  • WO 99/14346 describes further processes for stabilising mRNA. In particular modifications of the mRNA are proposed that stabilise the mRNA species against decomposition by RNases. Such modifications may involve stabilisation by sequence modifications, in particular reduction of the C content and/or U content by base elimination or base substitution. Alternatively, chemical modifications may be used, in particular the use of nucleotide analogues, as well as 5′ and 3′ blocking groups, an increased length of the poly-A tail as well as the complexing of the mRNA with stabilising agents, and combinations of the aforementioned measures.
  • In U.S. Pat. No. 5,580,859 and U.S. Pat. No. 6,214,804 mRNA vaccines and mRNA therapeutic agents are disclosed inter alia within the scope of “transient gene therapy” (TGT). Various measures are described therein for enhancing the translation efficiency and mRNA stability that relate in particular to the composition of the non-translated sequence regions.
  • Bieler and Wagner (in: Schleef (Ed.), Plasmids for Therapy and Vaccination, Chapter 9, pp. 147 to 168, Wiley-VCH, Weinheim, 2001) report on the use of synthetic genes in combination with gene therapy methods employing DNA vaccines and lentiviral vectors. The construction of a synthetic gag-gene derived from HIV-1 is described, in which the codons have been modified with respect to the wild type sequence (alternative codon usage) in such a way as to correspond to frequently used codons found in highly expressed mammalian genes. In this way, in particular, the A/T content compared to the wild type sequence was reduced. Moreover, the authors found an increased rate of expression of the synthetic gag gene in transfected cells. Furthermore, increased antibody formation against the gag protein was observed in mice immunised with the synthetic DNA construct. An increase in cytokine release in vitro in the case of transfected spleen cells of such mice was also observed. Finally, an induction of a cytotoxic immune response in mice immunised with the gag expression plasmid was also found. The authors of this article attribute the improved properties of their DNA vaccine to a change in the nucleocytoplasmic transport of the mRNA expressed by the DNA vaccine, which was due to the optimised codon usage. The authors maintain that the effect of the altered codon usage on the translation efficiency was only slight.
  • SUMMARY OF THE INVENTION
  • The object of the present invention is to provide a new system for gene therapy and genetic vaccination that overcomes the disadvantages associated with the properties of DNA therapeutic agents and DNA vaccines and that increases the effectiveness of therapeutic agents based on RNA species.
  • This object is achieved by the embodiments of the present invention characterised in the claims.
  • In particular, a modified mRNA, as well as a pharmaceutical composition containing at least one modified mRNA of the present invention and a pharmaceutically compatible carrier and/or vehicle are provided. The modified mRNA encodes at least one biologically active or antigenic peptide or polypeptide, wherein the sequence of the mRNA comprises at least one modification as set forth herein below as compared to the wild type mRNA. Such modifications may be located in the region coding for the at least one peptide or polypeptide, or in untranslated regions.
  • In one aspect, the G/C content of the region of the modified mRNA coding for the peptide or polypeptide is increased relative to that of the G/C content of the coding region of the wild type mRNA coding for the peptide or polypeptide. The encoded amino acid sequence, however, remains unchanged compared to the wild type (i.e. silent with respect to the encoded amino acid sequence).
  • This modification is based on the fact that, for efficient translation of an mRNA, the sequence of the region of the mRNA to be translated is essential. In this connection the composition and the sequence of the various nucleotides play an important role. In particular sequences with an increased G (guanosine)/C (cytosine) content are more stable than sequences with an increased A (adenosine)/U (uracil) content. In accordance with the invention, the codons are varied compared to the wild type mRNA, while maintaining the translated amino acid sequence, so that they contain increased amounts of G/C nucleotides. Since several different codons can encode the same amino acid, due to degeneracy of the genetic code, the codons most favourable for the stability of the modified mRNA can be determined and incorporated (alternative codon usage).
  • Depending on the amino acid to be coded by the modified mRNA, various possibilities for modifying the mRNA sequence compared to the wild type sequence are feasible. In the case of amino acids that are encoded by codons that contain exclusively G or C nucleotides, no modification of the codon is necessary. Thus, the codons for Pro (CCC or CCG), Arg (CGC or CGG), Ala (GCC or GCG) and Gly (GGC or GGG) do not require any alteration since no A or U is present.
  • In the following cases the codons that contain A and/or U nucleotides are altered by substituting other codons that code for the same amino acids, but do not contain A and/or U. Examples include: the codons for Pro, which may be changed from CCU or CCA to CCC or CCG; the codons for Arg, which may be changed from CGU or CGA or AGA or AGG to CGC or CGG; the codons for Ala, which may be changed from GCU or GCA to GCC or GCG; the codons for Gly, which may be changed from GGU or GGA to GGC or GGG.
  • In other cases, although A and/or U nucleotides may not be eliminated from the codons, it is however possible to reduce the A and U content by using codons that contain fewer A and/or U nucleotides. For example: the codons for Phe, which may be changed from UUU to UUC; the codons for Leu may be changed from UUA, CUU or CUA to CUC or CUG; the codons for Ser, which may be changed from UCU or UCA or AGU to UCC, UCG or AGC; the codon for Tyr, which may be changed from UAU to UAC; the stop codon UAA, which may be changed to UAG or UGA; the codon for Cys, which may be changed from UGU to UGC; the codon for His, which may be changed from CAU to CAC; the codon for Gln, which may be changed from CAA to CAG; the codons for Ile, which may be changed from AUU or AUA to AUC; the codons for Thr, which may be changed from ACU or ACA to ACC or ACG; the codon for Asn may be changed from AAU to AAC; the codon for Lys, which may be changed from AAA to AAG; the codons for Val, which may be changed from GUU or GUA to GUC or GUG; the codon for Asp, which may be changed from GAU to GAC; the codon for Glu, which may be changed from GAA to GAG.
  • In the case of the codons for Met (AUG) and Trp (UGG) there is however no possibility of modifying the sequence.
  • The substitutions listed above may be used individually and in all possible combinations in order to increase the G/C content of a modified mRNA compared to the original sequence. Thus for example all codons for Thr occurring in the original (wild type) sequence can be altered to ACC (or ACG). Preferably, however, combinations of the substitution possibilities given above are employed, for example: substitution of all codons coding in the original sequence for Thr to ACC (or ACG) and substitution of all codons coding for Ser to UCC (or UCG or AGC); substitution of all codons coding in the original sequence for Ile to AUC and substitution of all codons coding for Lys to AAG and substitution of all codons coding originally for Tyr to UAC; substitution of all codons coding in the original sequence for Val to GUC (or GUG) and substitution of all codons coding for Glu to GAG and substitution of all codons coding for Ala to GCC (or GCG) and substitution of all codons coding for Arg to CGC (or CGG); substitution of all codons coding in the original sequence for Val to GUC (or GUG) and substitution of all codons coding for Glu to GAG and substitution of all codons coding for Ala to GCC (or GCG) and substitution of all codons coding for Gly to GGC (or GGG) and substitution of all codons coding for Asn to AAC; substitution of all codons coding in the original sequence for Val to GUC (or GUG) and substitution of all codons coding for Phe to UUC and substitution of all codons for Cys to UGC and substitution of all codons coding for Leu to CUG (or CUC) and substitution of all codons coding for Gln to CAG and substitution of all codons encoding Pro to CCC (or CCG); etc.
  • Preferably the G/C content of the region of the modified mRNA coding for the peptide or polypeptide is increased by at least 7%, more preferably by at least 15%, and particularly preferably by at least 20% compared to the G/C content of the coded region of the wild type mRNA encoding for the polypeptide.
  • In this connection it is particularly preferred to maximize the G/C content of the modified mRNA as compared to that of the wild type sequence. For some applications, it may be particularly advantageous to maximise the G/C content of the modified mRNA in the region encoding the at least one peptide or polypeptide.
  • In accordance with the invention, a further modification of the mRNA comprised in the pharmaceutical composition of the present invention is based on an understanding that the translation efficiency is also affected by the relative abundance of different tRNAs in various cells. A high frequency of so-called “rare” codons in an RNA sequence, which are recognized by relatively rare tRNAs, tends to decrease the translational efficiency of the corresponding mRNA, whereas a high frequency of codons recognized by relatively abundant rRNAs tends to enhance the translational efficiency of a corresponding mRNA.
  • Thus, according to the invention, the modified mRNA (which is contained in the pharmaceutical composition) comprises a region coding for the peptide or polypeptide which is changed compared to the corresponding region of the wild type mRNA so as to replace at least one codon of the wild type sequence that is recognized by a rare cellular tRNA with a codon recognized by an abundant cellular tRNA, wherein the abundant and rare cellular tRNAs recognize the same amino acid. In other words, the substituted codon in the modified mRNA, which is recognized by a relatively frequent tRNA, encodes the same amino acid as the wild type (unmodified) codon.
  • Through such modifications, the RNA sequences are modified so that codons are inserted/substituted that are recognized by abundantly expressed cellular tRNAs. Modifications directed to altering codon usage in a nucleic acid sequence to optimise expression levels of polypeptides encoded therefrom are generally referred to in the art as “codon optimisation.”
  • Those tRNAs which are abundant or rare in a particular cell are known to a person skilled in the art; see for example Akashi, Curr. Opin. Genet. Dev. 2001, 11(6): 660-666. Each organism has a preferred choice of nucleotide or codon usage to encode any particular amino acid. Different species vary in their codon preferences for translating mRNA into protein. The codon preferences of a particular species in which a modified mRNA of the present invention is to be expressed will, therefore, at least in part dictate the parameters of codon optimisation for a nucleic acid sequence.
  • By means of this modification, according to the invention all codons of the wild type sequence that are recognized by a relatively rare tRNA in a cell may in each case be replaced by a codon that is recognized by a relatively abundant tRNA. As described herein, however, the coding sequence of the peptide or polypeptide is preserved. That is, a relatively abundant tRNA species, which replaces a relatively rare tRNA species in a modified mRNA of the invention, recognizes an amino acid identical to that recognized by the rare tRNA species.
  • According to the invention, it is particularly preferred to couple the sequential increase in the G/C fraction of a modified mRNA (particularly, for example, a maximally modified G/C content), with an increase in the number of codons recognized by abundant tRNAs, wherein the amino acid sequence of the peptide or polypeptide (one or more) encoded by the mRNA remains unaltered. This preferred embodiment provides a particularly preferred mRNA species, possessing properties of efficient translation and improved stability. Such preferred mRNA species are well suited, for example, for the pharmaceutical compositions of the present invention.
  • Sequences of eukaryotic mRNAs frequently include destabilising sequence elements (DSE) to which signal proteins can bind and thereby regulate the enzymatic degradation of the mRNA in vivo. Accordingly, for the further stabilisation of a modified mRNA of the invention, which may be a component of a pharmaceutical composition of the invention, one or more changes may be made in the wild type mRNA sequence encoding the at least one peptide or polypeptide, so as to reduce the number of destabilising sequence elements present. In accordance with the invention, DSEs located anywhere in an mRNA, including the coding region and in the non-translated regions (3′ and/or 5′ UTR), may be mutated or changed to generate a modified mRNA having improved properties.
  • Such destabilising sequences are for example AU-rich sequences (“AURES”) that occur in 3′-UTR regions of a number of unstable mRNAs (Caput et al., Proc. Natl. Acad. Sci. USA 1986, 83: 1670-1674). The RNA molecules contained in the pharmaceutical composition according to the invention are therefore preferably altered as compared to the wild type mRNA so as to reduce the number of or eliminate these destabilising sequences. Such an approach also applies to those sequence motifs recognised by potential endonucleases. Such sequences include, for example, GAACAAG, which is found in the 3′UTR of the gene encoding the transferring receptor (Binder et al., EMBO J. 1994, 13: 1969-1980). Sequence motifs recognized by endonucleases are also preferably reduced in number or eliminated in the modified mRNA of the pharmaceutical composition according to the invention.
  • Various methods are known to the person skilled in the art that are suitable for the substitution of codons in the modified mRNA according to the invention. In the case of relatively short coding regions (that code for biologically active or antigenic peptides), the whole mRNA may, for example, be chemically synthesised using standard techniques.
  • Preferably, however, base substitutions are introduced using a DNA matrix for the production of modified mRNA with the aid of techniques routinely employed in targeted mutagenesis; see Maniatis et al., Molecular Cloning: A Laboratory Manual, Cold Spring Harbor Laboratory Press, 3rd Edition, Cold Spring Harbor, N.Y., 2001.
  • In this method, a corresponding DNA molecule is therefore transcribed in vitro for the production of the mRNA. This DNA matrix has a suitable promoter, for example a T7 or SP6 promoter, for in vitro transcription, followed by the desired nucleotide sequence for the mRNA to be produced and a termination signal for the in vitro transcription. According to the invention the DNA molecule that forms the matrix of the RNA construct to be produced is prepared as part of a plasmid replicable in bacteria, wherein the plasmid is replicated or amplified during the course of bacterial replication and subsequently isolated by standard techniques. Plasmids suitable for use in the present invention include, but are not limited to pT7Ts (GenBank Accession No. U26404; Lai et al., Development 1995, 121: 2349-2360), the pGEM® series, for example pGEM®-1 (GenBank Accession No. X65300; from Promega) and pSP64 (GenBank-Accession No. X65327); see also Mezei and Storts, Purification of PCR Products, in: Griffin and Griffin (Eds.), PCR Technology: Current Innovation, CRC Press, Boca Raton, Fla., 2001.
  • Thus, by using short synthetic DNA oligonucleotides that comprise short single-strand transitions at the corresponding cleavage sites, or by means of genes produced by chemical synthesis, the desired nucleotide sequence can be cloned into a suitable plasmid by molecular biology methods known to the person skilled in the art (see Maniatis et al., above). The DNA molecule is then excised from the plasmid, in which it may be present as a single copy or multiple copies, by digestion with restriction endonucleases.
  • The modified mRNA that is contained in the pharmaceutical composition according to the invention may furthermore have a 5′ cap structure (a modified guanosine nucleotide). Examples of suitable cap structures include, but are not limited to m7G(5′)ppp (5′(A,G(5′)ppp(5′)A and G(5′)ppp(5′)G.
  • According to a further preferred embodiment of the present invention the modified mRNA comprises a poly-A tail of at least 50 nucleotides, preferably at least 70 nucleotides, more preferably at least 100 nucleotides and particularly preferably at least 200 nucleotides.
  • For efficient translation of the mRNA a productive binding of the ribosomes to the ribosome binding site [Kozak sequence: GCCGCCACCAUGG (SEQ ID NO: 13), the AUG forms the start codon] is generally required. In this regard it has been established that an increased A/U content around this site facilitates more efficient ribosome binding to the mRNA.
  • In addition, it is possible to introduce one or more so-called IRES (“internal ribosomal entry site”) into the modified mRNA. An IRES may act as the sole ribosome binding site, or may serve as one of the ribosome binding sites of an mRNA. An mRNA comprising more than one functional ribosome binding site may encode several peptides or polypeptides that are translated independently by the ribosomes (“multicistronic mRNA”). Examples of IRES sequences that can be used according to the invention 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).
  • According to a further preferred embodiment of the present invention the modified mRNA comprises in the 5′ non-translated and/or 3′ non-translated regions stabilisation sequences that are capable of increasing the half-life of the mRNA in the cytosol.
  • These stabilisation sequences may exhibit 100% sequence homology with naturally occurring sequences that are present in viruses, bacteria and eukaryotic cells, or may be derived from such naturally occurring sequences (i.e., may comprise, e.g., mutations substitutions, or deletions in these sequences). Stabilising sequences that may be used in the present invention include, by way of non-limiting example, the untranslated sequences (UTR) of the β-globin gene of Homo sapiens or Xenopus laevis. Another example of a stabilisation sequence has the general formula (C/U)CCANxCCC(U/A)PyxUC(C/U)CC, which is contained in the 3′UTR of the very stable mRNAs that encode α-globin, α-(I)-collagen, 15-lipoxygenase, or tyrosine hydroxylase (C. F. Holcik et al., Proc. Natl. Acad. Sci. USA 1997, 94: 2410-2414). Obviously such stabilisation sequences may be used individually or in combination, as well as in combination with other stabilisation sequences known to a person skilled in the art.
  • For the further stabilisation of the modified mRNA it is preferred that the modified mRNA comprises at least one analogue of a naturally occurring nucleotide. This approach is based on the understanding that RNA-decomposing enzymes present in a cell preferentially recognise RNA comprising naturally occurring nucleotides as a substrate. The insertion of nucleotide analogues into an RNA molecule, therefore, retards decomposition of the RNA molecule so modified, whereas the effect of such analogs on translational efficiency, particularly when inserted into the coding region of the mRNA, may result in either an increase or decrease in translation of the modified RNA molecule.
  • The following is a non-limiting list of nucleotide analogues that can be used in accordance with the invention: phosphorus amidates, phosphorus thioates, peptide nucleotides, methylphosphonates, 7-deazaguanosine, 5-methylcytosine and inosine. The preparation of such analogues is known to the person skilled in the art, for example from U.S. Pat. No. 4,373,071, U.S. Pat. No. 4,401,796, U.S. Pat. No. 4,415,732, U.S. Pat. No. 4,458,066, U.S. Pat. No. 4,500,707, U.S. Pat. No. 4,668,777, U.S. Pat. No. 4,973,679, U.S. Pat. No. 5,047,524, U.S. Pat. No. 5,132,418, U.S. Pat. No. 5,153,319, U.S. Pat. Nos. 5,262,530 and 5,700,642. According to the invention such analogues may be present in non-translated and/or translated regions of the modified mRNA.
  • Furthermore the effective transfer of the modified mRNA into the cells to be treated or into the organism to be treated may be improved if the modified mRNA is associated with a cationic peptide or protein, or is bound thereto. In particular in this connection the use of protamine as polycationic, nucleic acid-binding protein is particularly effective. It is also possible to use other cationic peptides or proteins such as poly-L-lysine or histones. Procedures for stabilising mRNA are described in EP-A-1083232, whose relevant disclosure is incorporated herein in its entirety.
  • For gene therapy applications, for example, wherein a pharmaceutical composition of the invention is used, the modified mRNA therein codes for at least one biologically active peptide or polypeptide that is not formed or is only insufficiently or defectively formed in the patient to be treated. Administration of a modified mRNA encoding the at least one biologically active peptide or polypeptide or a composition thereof to such a patient, therefore, at least partially restores the expression and/or activity of the at least one biologically active peptide or polypeptide in the patient and thereby complements the patient's genetic defect. The direct introduction of a normal, functional gene into a living animal has been studied as a means for replacing defective genetic information. In such studies, nucleic acid sequences are introduced directly into cells of a living animal. The following references pertain to methods for the direct introduction of nucleic acid sequences into a living animal: Nabel et al., (1990) Science 249:1285-1288; Wolfe et al., (1990) Science 247:1465-1468; Acsadi et al. (1991) Nature 352:815-818; Wolfe et al. (1991) BioTechniques 11(4):474-485; and Felgner and Rhodes, (1991) Nature 349:351-352, which are incorporated herein by reference.
  • Accordingly, examples of polypeptides coded by a modified mRNA of the invention include, without limitation, dystrophin, the chloride channel, which is defectively altered in cystic fibrosis; enzymes that are lacking or defective in metabolic disorders such as phenylketonuria, galactosaemia, homocystinuria, adenosine deaminase deficiency, etc.; enzymes that are involved in the synthesis of neurotransmitters such as dopamine, norepinephrine and GABA, in particular tyrosine hydroxylase and DOPA decarboxylase, and α-1-antitrypsin, etc. Pharmaceutical compositions of the invention may also be used to effect expression of cell surface receptors and/or binding partners of cell surface receptors if the modified mRNA contained therein encodes for such biologically active proteins or peptides. Examples of such proteins that act in an extracellular manner or that bind to cell surface receptors include for example tissue plasminogen activator (TPA), growth hormones, insulin, interferons, granulocyte-macrophage colony stimulating factor (GM-CFS), and erythropoietin (EPO), etc. By choosing suitable growth factors, the pharmaceutical composition of the present invention may, for example, be used for tissue regeneration. In this way diseases that are characterised by tissue degeneration, for example neurodegenerative diseases such as Alzheimer's disease, Parkinson's disease, etc. and other degenerative conditions, such as arthrosis, can be treated. In these cases the modified mRNA, in particular that contained in the pharmaceutical composition of the present invention, preferably encodes, without limitation, a TGF-β family member, EGF, FGF, PDGF, BMP, GDNF, BDNF, GDF and neurotrophic factors such as NGF, neutrophines, etc.
  • A further area of application of the present invention is vaccination, i.e. the use of a modified mRNA for inoculation or the use of a pharmaceutical composition comprising a modified mRNA as an inoculating agent, or the use of a modified mRNA in the preparation of the pharmaceutical composition for inoculation purposes. Vaccination is based on introducing an antigen into an organism or subject, in particular into a cell of the organism or subject. In the context of the present invention, the genetic information encoding the antigen is introduced into the organism or subject in the form of a modified mRNA encoding the antigen. The modified mRNA contained in the pharmaceutical composition is translated into the antigen, i.e. the polypeptide or antigenic peptide coded by the modified mRNA is expressed, and an immune response directed against the polypeptide or antigenic peptide is stimulated. For vaccination against a pathogenic organism, e.g., a virus, a bacterium, or a protozoan, a surface antigen of such an organism may be used as an antigen against which an immune response is elicited. In the context of the present invention, a pharmaceutical composition comprising a modified mRNA encoding such a surface antigen may be used as a vaccine. In applications wherein a genetic vaccine is used for treating cancer, the immune response is directed against tumour antigens by generating a modified mRNA encoding a tumour antigen(s), in particular a protein which is expressed exclusively on cancer cells. Such a modified mRNA encoding a tumour antigen may be used alone or as a component of a pharmaceutical composition according to the invention, wherein administration of either the modified mRNA or a composition thereof results in expression of the cancer antigen(s) in the organism. An immune response to such a vaccine would, therefore, confer to the vaccinated subject a degree of protective immunity against cancers associated with the immunizing cancer antigen. Alternatively, such measures could be used to vaccinate a cancer patient with a modified mRNA encoding a tumour antigen(s) expressed on the patient's cancer cells so as to stimulate the cancer patient's immune response to attack any cancer cells expressing the encoded antigen.
  • In its use as a vaccine the pharmaceutical composition according to the invention is suitable in particular for the treatment of cancers (in which the modified mRNA codes for a tumour-specific surface antigen (TSSA), for example for treating malignant melanoma, colon carcinoma, lymphomas, sarcomas, small-cell lung carcinomas, blastomas, etc. A non-limiting list of specific examples of tumour antigens include, inter cilia, 707-AP, AFP, ART-4, BAGE, β-catenin/m, Bcr-abl, CAMEL, CAP-1, CASP-8, CDC27/m, CDK4/m, CEA, CT, Cyp-B, DAM, ELF2M, ETV6-AML1, G250, GAGE, GnT-V, Gp100, HAGE, HER-2/neu, HLA-A*0201-R1701, HPV-E7, HSP70-2M, HAST-2, hTERT (or hTRT), iCE, KIAA0205, LAGE, LDLR/FUT, MAGE, MART-1/melan-A, MC1R, myosin/m, MUC1, MUM-1, -2, -3, NA88-A, NY-ESO-1, p190 minor bcr-abl, Pml/RARα, PRAMS, PSA, PSM, RAGE, RU1 or RU2, SAGE, SART-1 or SART-3, TEUAML1, TPI/m, TRP-1, TRP-2, TRP-2/INT2 and WT1. In addition to the above application, the pharmaceutical composition of the invention may be used to treat infectious diseases, for example, viral infectious diseases such as AIDS (HIV), hepatitis A, B or C, herpes, herpes zoster (chicken pox), German measles (rubella virus), yellow fever, dengue fever etc. (flavi viruses), flu (influenza viruses), haemorrhagic infectious diseases (Marburg or Ebola viruses), bacterial infectious diseases such as Legionnaires' disease (Legionella), gastric ulcer (Helicobacter), cholera (Vibrio), E. coli infections, staphylococcal infections, salmonella infections or streptococcal infections, tetanus (Clostridium tetani), or protozoan infectious diseases (malaria, sleeping sickness, leishmaniasis, toxoplasmosis, i.e. infections caused by plasmodium, trypanosomes, leishmania and toxoplasma). Preferably also in the case of infectious diseases the corresponding surface antigens with the strongest antigenic potential are encoded by the modified mRNA. With the aforementioned genes of pathogenic vectors or organisms, in particular in the case of viral genes, this is typically a secreted form of a surface antigen. Moreover, according to the invention mRNAs preferably coding for polypeptides are employed, because polypeptides generally comprise multiple epitopes (polyepitopes). Polypeptides comprising polyepitopes include but are not limited to, surface antigens of pathogenic vectors or organisms, or of tumour cells, preferably secreted protein forms.
  • Moreover, the modified mRNA according to the invention may comprise in addition to the antigenic or therapeutically active peptide or polypeptide, at least one further functional region that encodes, for example, a cytokine that promotes the immune response (e.g., a monokine, lymphokine, interleukin or chemokine, such as IL-1, IL-2, IL-3, IL-4, IL-5, IL-6, IL-7, IL-8, IL-9, IL-10, IL-12, INF-α, INF-γ, GM-CFS, LT-α or growth factors such as hGH).
  • Furthermore, in order to increase immunogenicity, the pharmaceutical composition according to the invention may contain one or more adjuvants. The term “adjuvant” is understood in this context to denote any chemical or biological compound that promotes or augments a specific immune response. Various mechanisms may be involved in this connection, depending on the various types of adjuvants. For example, compounds that promote endocytosis of the modified mRNA contained in the pharmaceutical composition by dentritic cells (DC) form a first class of usable adjuvants. Other compounds that activate or accelerate maturation of DC (for example, lipopolysaccharides, TNF-α or CD40 ligand) comprise a second class of suitable adjuvants. In general, any agent which is recognized as a potential “danger signal” by the immune system (LPS, GP96, oligonucleotides with the CpG motif) or cytokines such as GM-CSF, may be used as an adjuvant. Co-administration of an adjuvant enhances an immune response generated against an antigen encoded by the modified mRNA. The aforementioned cytokines are particularly preferred in this aspect. Other known adjuvants include aluminium hydroxide, and Freund's adjuvant, as well as the aforementioned stabilising cationic peptides or polypeptides such as protamine. In addition, lipopeptides such as Pam3Cys are also particularly suitable for use as adjuvants in the pharmaceutical composition of the present invention; see Deres et al, Nature 1989, 342: 561-564.
  • The pharmaceutical composition according to the invention comprises, in addition to the modified mRNA, a pharmaceutically compatible carrier and/or a pharmaceutically compatible vehicle. Appropriate methods for achieving a suitable formulation and preparation of the pharmaceutical composition according to the invention are described in “Remington's Pharmaceutical Sciences” (Mack Pub. Co., Easton, Pa., 1980), which is herein incorporated by reference in its entirety. For parenteral administration suitable carriers include for example sterile water, sterile saline solutions, polyalkylene glycols, hydrogenated naphthalene and in particular biocompatible lactide polymers, lactide/glycolide copolymers or polyoxyethylene/polyoxypropylen-e copolymers. Compositions according to the invention may contain fillers or substances such as lactose, mannitol, substances for the covalent coupling of polymers such as for example polyethylene glycol to inhibitors according to the invention, complexing with metal ions or incorporation of materials in or on special preparations of polymer compound, such as for example polylactate, polyglycolic acid, hydrogel or on liposomes, microemulsions, microcells, unilamellar or multilamellar vesicles, erythrocyte fragments or spheroplasts. The respective modifications of the compositions are chosen depending on physical properties such as, for example, solubility, stability, bioavailability or degradability. Controlled or constant release of the active component according to the invention in the composition includes formulations based on lipophilic depot substances (for example fatty acids, waxes or oils). Coatings of substances or compositions according to the invention containing such substances, namely coatings with polymers (for example poloxamers or poloxamines), are also disclosed within the scope of the present invention. Moreover substances or compositions according to the invention may contain protective coatings, for example protease inhibitors or permeability enhancers. Preferred carriers are typically aqueous carrier materials, in which water for injection (WFI) or water buffered with phosphate, citrate or acetate, etc., is used, and the pH is typically adjusted to 5.0 to 8.0, preferably 6.0 to 7.0. The carrier or the vehicle will in addition preferably contain salt constituents, for example sodium chloride, potassium chloride or other components that for example make the solution isotonic. In addition the carrier or the vehicle may contain, besides the aforementioned constituents, additional components such as human serum albumin (HSA), polysorbate 80, sugars or amino acids.
  • The concentration of the modified mRNA in such formulations may therefore vary within a wide range from 1 μg to 100 mg/ml. The pharmaceutical composition according to the invention is preferably administered parenterally, for example intravenously, intraarterially, subcutaneously or intramuscularly to the patient. It is also possible to administer the pharmaceutical composition topically or orally.
  • The invention thus also provides a method for the treatment of the aforementioned medical conditions or an inoculation method for the prevention of the aforementioned conditions, which comprises the administration of the pharmaceutical composition according to the invention to a subject or patient, in particular a human patient.
  • A typical regimen for preventing, suppressing, or treating a pathology related to a viral, bacterial, or protozoan infection, may comprise administration of an effective amount of a vaccine composition as described herein, administered as a single treatment, or repeated as enhancing or booster dosages, over a period up to and including between one week and about 24 months, or any range or value therein.
  • According to the present invention, an “effective amount” of a vaccine composition is one that is sufficient to achieve a desired biological effect. It is understood that nature and manner of the administration and the effective dosage may be determined by a medical practitioner based on a number of variables including the age, sex, health, and weight of the recipient, the medical condition to be treated and its stage of progression, the kind of concurrent treatment, if any, frequency of treatment, and the nature of the desired outcome. The ranges of effective doses provided below are not intended to limit the invention, but are provided as representative preferred dose ranges. However, the most preferred dosage will be tailored to the individual subject, as is understood and determinable by one of skill in the art, without undue experimentation. See, e.g., Berkow et al., eds., The Merck Manual, 16th edition, Merck and Co., Rahway, N.J., 1992; Goodman et al., eds., Goodman and Gilman's The Pharmacological Basis of Therapeutics, 8th edition, Pergamon Press, Inc., Elmsford, N.Y., (1990); Avery's Drug Treatment: Principles and Practice of Clinical Pharmacology and Therapeutics, 3rd edition, ADIS Press, LTD., Williams and Wilkins, Baltimore, Md. (1987), Ebadi, Pharmacology, Little, Brown and Co., Boston, Mass. (1985); and Katzung, ed. Basic and Clinical Pharmacology, Fifth Edition, Appleton and Lange, Norwalk, Conn. (1992), which references and references cited therein, are entirely incorporated herein by reference.
  • The present invention relates to the use of genetic material (e.g., nucleic acid sequences) as immunizing agents. In one aspect, the present invention relates to the introduction of exogenous or foreign modified DNA or RNA molecules into an individual's tissues or cells, wherein these molecules encode an exogenous protein capable of eliciting an immune response to the protein. The exogenous nucleic acid sequences may be introduced alone or in the context of an expression vector wherein the sequences are operably linked to promoters and/or enhancers capable of regulating the expression of the encoded proteins. The introduction of exogenous nucleic acid sequences may be performed in the presence of a cell stimulating agent capable of enhancing the uptake or incorporation of the nucleic acid sequences into a cell. Such exogenous nucleic acid sequences may be administered in a composition comprising a biologically compatible or pharmaceutically acceptable carrier. The exogenous nucleic acid sequences may be administered by a variety of means, as described herein, and well known in the art.
  • Such methods may be used to elicit immunity to a pathogen, absent the risk of infecting an individual with the pathogen. The present invention may be practiced using procedures known in the art, such as those described in PCT International Application Number PCT/US90/01515, wherein methods for immunizing an individual against pathogen infection by directly injecting polynucleotides into the individual's cells in a single step procedure are presented.
  • In one aspect, the present invention relates to methods for eliciting immune responses in an individual or subject which can protect the individual from pathogen infection. Accordingly, genetic material that encodes an immunogenic protein is introduced into a subject's cells either in vivo or ex vivo. The genetic material is expressed by these cells, thereby producing immunogenic target proteins capable of eliciting an immune response. The resulting immune response is broad based and involves activation of the humoral immune response and both arms of the cellular immune response.
  • This approach is useful for eliciting a broad range of immune responses against a target protein. Target proteins may be proteins specifically associated with pathogens or the individual's own “abnormal” or infected cells. Such an approach may be used advantageously to immunize a subject against pathogenic agents and organisms such that an immune response against a pathogen protein provides protective immunity against the pathogen. This approach is particularly useful for protecting an individual against infection by non-encapsulated intracellular pathogens, such as a virus, which produce proteins within the host cells. The immune response generated against such proteins is capable of eliminating infected cells with cytotoxic T cells (CTLs).
  • The immune response elicited by a target protein produced by vaccinated cells in a subject is a broad-based immune response which includes B cell and T cell responses, including CTL responses. It has been observed that target antigen produced within the cells of the host are processed intracellularly into small peptides, which are bound by Class I MHC molecules and presented in the context of Class I on the cell surface. The Class I MHC-target antigen complexes are capable of stimulating CD8+T cells, which are predominantly CTLs. Notably, genetic immunization according to the present invention is capable of eliciting CTL responses (killer cell responses).
  • The CTL response is crucial in protection against pathogens such as viruses and other intracellular pathogens which produce proteins within infected cells. Similarly, the CTL response can be utilized for the specific elimination of deleterious cell types, which may express aberrant cell surface proteins recognizable by Class I MHC molecules.
  • The genetic vaccines of the present invention may be administered to cells in conjunction with compounds that stimulate cell division and facilitate uptake of genetic constructs. This step provides an improved method of direct uptake of genetic material. Administration of cell stimulating compounds results in a more effective immune response against the target protein encoded by the genetic construct.
  • According to the present invention, modified DNA or mRNA that encodes a target protein is introduced into the cells of an individual where it is expressed, thus producing the target protein. The modified DNA or RNA may be operably linked to regulatory elements (e.g., a promoter) necessary for expression in the cells of the individual. Other elements known to skilled artisans may also be included in genetic constructs of the invention, depending on the application.
  • As used herein, the term “genetic construct” refers to the modified DNA or mRNA molecule that comprises a nucleotide sequence which encodes the target protein and which may include initiation and termination signals operably linked to regulatory elements including a promoter and polyadenylation signal (for modified DNA) capable of directing expression in the cells of the vaccinated individual. As used herein, the term “expressible form” refers to gene constructs which contain the necessary regulatory elements operably linked to a coding sequence of a target protein, such that when present in the cell of the individual, the coding sequence is expressed. As used herein, the term “genetic vaccine” refers to a pharmaceutical preparation that comprises a genetic construct.
  • The present invention provides genetic vaccines, which include genetic constructs comprising DNA or RNA which encode a target protein. As used herein, the term “target protein” refers to a protein capable of eliciting an immune response. The target protein is an immunogenic protein derived from the pathogen or undesirable cell-type, such as an infected or transformed cell. In accordance with the invention, target proteins may be pathogen-associated proteins or tumour-associated proteins. The immune response directed against the target protein protects the individual against the specific infection or disease with which the target protein is associated. For example, a genetic vaccine comprising a modified DNA or RNA molecule that encodes a pathogen-associated target protein is used to elicit an immune response that will protect the individual from infection by the pathogen.
  • DNA and RNA-based vaccines and methods of use are described in detail in several publications, including Leitner et al. (1999, Vaccines 18:765-777), Nagashunmugam et al. (1997, AIDS 11: 1433-1444), and Fleeton et al. (2001, J Infect Dis 183:1395-1398) the entire contents of each of which is incorporated herein by reference.
  • In order to test expression, genetic constructs can be tested for expression levels in vitro using cells maintained in culture, which are of the same type as those to be vaccinated. For example, if the genetic vaccine is to be administered into human muscle cells, muscle cells grown in culture such as solid muscle tumor cells of rhabdomyosarcoma may be used as an in vitro model for measuring expression levels. One of ordinary skill in the art could readily identify a model in vitro system which may be used to measure expression levels of an encoded target protein.
  • In accordance with the invention, multiple inoculants can be delivered to different cells, cell types, or tissues in an individual. Such inoculants may comprise the same or different nucleic acid sequences of a pathogenic organism. This allows for the introduction of more than a single antigen target and maximizes the chances for developing immunity to the pathogen in a vaccinated subject.
  • According to the invention, the genetic vaccine may be introduced in vivo into cells of an individual to be immunized or ex vivo into cells of the individual which are re-implanted after incorporation of the genetic vaccine. Either route may be used to introduce genetic material into cells of an individual. As described herein above, preferred routes of administration include intramuscular, intraperitoneal, intradermal, and subcutaneous injection. Alternatively, the genetic vaccine may be introduced by various means into cells isolated from an individual. Such means include, for example, transfection, electroporation, and microprojectile bombardment. These methods and other protocols for introducing nucleic acid sequences into cells are known to and routinely practiced by skilled practitioners. After the genetic construct is incorporated into the cells, they are re-implanted into the individual. Prior to re-implantation, the expression levels of a target protein encoded by the genetic vaccine may be assessed. It is contemplated that otherwise non-immunogenic cells that have genetic constructs incorporated therein can be implanted into autologous or heterologous recipients.
  • The genetic vaccines according to the present invention comprise about 0.1 to about 1000 micrograms of nucleic acid sequences (i.e., DNA or RNA). In some preferred embodiments, the vaccines comprise about 1 to about 500 micrograms of nucleic acid sequences. In some preferred embodiments, the vaccines comprise about 25 to about 250 micrograms of nucleic acid sequences. Most preferably, the vaccines comprise about 100 micrograms nucleic acid sequences.
  • The genetic vaccines according to the present invention are formulated according to the mode of administration to be used. One having ordinary skill in the art can readily formulate a genetic vaccine that comprises a genetic construct. In cases where intramuscular injection is the chosen mode of administration, for example, an isotonic formulation is generally used. As described in detail herein above, additives for isotonicity can include sodium chloride, dextrose, mannitol, sorbitol and lactose. Isotonic solutions such as phosphate buffered saline are preferred. Stabilizers can include gelatin and albumin.
  • In some embodiments of the invention, the individual is administered a series of vaccinations to produce a comprehensive immune response. According to this method, at least two and preferably four injections are given over a period of time. The period of time between injections may include from 24 hours apart to two weeks or longer between injections, preferably one week apart. Alternatively, at least two and up to four separate injections may be administered simultaneously to different parts of the body.
  • While this disclosure generally discusses immunization or vaccination in the context of prophylactic methods of protection, the terms “immunizing” or “vaccinating” are meant to refer to both prophylactic and therapeutic methods. Thus, a method for immunizing or vaccinating includes both methods of protecting an individual from pathogen challenge, as well as methods for treating an individual suffering from pathogen infection. Accordingly, the present invention may be used as a vaccine for prophylactic protection or in a therapeutic manner; that is, as a reagent for immunotherapeutic methods and preparations.
  • The amount of a modified nucleic acid sequence generated using the methods of the invention which provides a therapeutically effective dose in the treatment of a patient with, for example, cancer or a pathogen-related disorder can be determined by standard clinical techniques based on the present description. In addition, in vitro assays may optionally be employed to help identify optimal dosage ranges. The precise dose to be employed in the formulation will also depend on the route of administration, and the seriousness of the disease or disorder, and should be decided according to the judgment of the practitioner and each subject's circumstances. However, suitable dosage ranges for intravenous administration are generally directed to achieve a concentration of about 20-500 micrograms of polypeptide encoded by the modified nucleic acid per kilogram body weight. Suitable dosage ranges for intranasal administration are generally directed to achieve a concentration of about 0.01 pg to 1 mg of polypeptide encoded by the modified nucleic acid per kg body weight. Effective doses may be extrapolated from dose-response curves derived from in vitro or animal model test systems.
  • The compositions comprising the modified nucleic acid molecules of the invention can be administered for prophylactic and/or therapeutic treatments. In therapeutic applications, compositions are administered to a patient already suffering from a hyperproliferative disorder (such as, e.g., cancer) in an amount sufficient to cure or at least partially arrest the symptoms of the disease and its complications. An amount adequate to accomplish this is defined as a “therapeutically effective amount or dose.” Amounts effective for this use will depend on the severity of the disease and the weight and general state of the patient.
  • Compositions comprising modified nucleic acid molecules of the invention can be administered alone, or in combination, and/or in conjunction with known therapeutic agents/compounds used for the treatment of a patient with a particular disorder. For the treatment of a patient with cancer, for example, a composition comprising at least one modified nucleic acid of the invention which encodes a tumour antigen, may be used in conjunction with one or more known cancer therapeutics, such as those described in the Physicians' Desk Reference, 54th Edition (2000) or in Cancer: Principles & Practice of Oncology, DeVita, Jr., Hellman, and Rosenberg (eds.) 2nd edition, Philadelphia, Pa.: J. B. Lippincott Co., 1985, wherein standard treatment protocols and dosage formulations are presented.
  • In addition a method is also provided for determining how to modify the sequence of an mRNA so as to generate a modified mRNA having altered properties, which may be used alone or in a pharmaceutical composition of the invention. In this connection, and in accordance with the invention, the modification of an RNA sequence is carried out with two different optimisation objectives: to maximize G/C content, and to maximize the frequency of codons that are recognized by abundantly expressed tRNAs. In the first step of the process a virtual translation of an arbitrary RNA (or DNA) sequence is carried out in order to generate the corresponding amino acid sequence. Starting from the amino acid sequence, a virtual reverse translation is performed that provides, based on degeneracy of the genetic code, all of the possible choices for the corresponding codons. Depending on the required optimisation or modification, corresponding selection lists and optimisation algorithms are used for choosing suitable codons. The algorithms are executed on a computer, normally with the aid of suitable software. In accordance with the present invention, a suitable software program comprises a source code of Appendix I. Thus, the optimised mRNA sequence is generated and can be output, for example, with the aid of a suitable display device and compared with the original (wild type) sequence. The same also applies with regard to the frequency of the individual nucleotides. The changes compared to the original nucleotide sequence are preferably emphasised. Furthermore, according to a preferred embodiment, naturally occurring stable sequences are incorporated therein to produce an RNA stabilised by the presence of natural sequence motifs. A secondary structural analysis may also be performed that can analyse, on the basis of structural calculations, stabilising and destabilising properties or regions of the RNA.
  • Also encompassed by the present invention are modified nucleic acid sequences generated using the above computer-based method. Exemplary modified nucleic acid sequences of the invention include SEQ ID NOs: 3-7, 10 and 11. The present invention also includes pharmaceutical compositions of modified nucleic acid sequences of the invention, including SEQ ID NOs: 3-7, 10 and 11.
  • BRIEF DESCRIPTION OF THE DRAWINGS
  • FIG. 1 shows wild type sequences and modified sequences for the influenza matrix protein.
  • FIG. 1A (SEQ ID NO: 1) shows the wild type gene and FIG. 1B (SEQ ID NO: 2) shows the amino acid sequence derived therefrom (1-letter code). FIG. 1C (SEQ ID NO: 3) shows a gene sequence coding for the influenza matrix protein, whose G/C content is increased as compared to that of the wild type sequence. FIG. 1D (SEQ ID NO: 4) shows the sequence of a gene that codes for a secreted form of the influenza matrix protein (including an N-terminal signal sequence), wherein the G/C content of the sequence is increased relative to that of the wild type sequence. FIG. 1E (SEQ ID NO: 5) shows an mRNA coding for the influenza matrix protein, wherein the mRNA comprises stabilising sequences not present in the corresponding wild type mRNA. FIG. 1F (SEQ ID NO: 6) shows an mRNA coding for the influenza matrix protein that in addition to stabilising sequences also contains an increased G/C content. FIG. 1G (SEQ ID NO: 7) likewise shows a modified mRNA that codes for a secreted form of the influenza matrix protein and comprises, as compared to the wild type, stabilising sequences and an elevated G/C content. In FIG. 1A and FIGS. 1C to 1G the start and stop codons are shown in bold type. Nucleotides that are changed relative to the wild type sequence of FIG. 1A are shown in capital letters in 1C to 1G.
  • FIG. 2 shows wild type sequences and modified sequences according to the invention that encode for the tumour antigen MAGE1.
  • FIG. 2A (SEQ ID NO: 8) shows the sequence of the wild type gene and FIG. 2B (SEQ ID NO: 9) shows the amino acid sequence derived therefrom (3-letter code). FIG. 2C (SEQ ID NO: 10) shows a modified mRNA coding for MAGE1, whose G/C content is increased as compared to the wild type. FIG. 2D (SEQ ID NO: 11) shows the sequence of a modified mRNA encoding MAGE1, in which the codon usage has been optimised as frequently as possible with respect to the tRNA present in the cell and to the coding sequence in question. Start and stop codons are shown in each case in bold type.
  • DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • The following examples describe the invention in more detail and in no way are to be construed as restricting the scope thereof.
  • Example 1
  • As an exemplary embodiment of the process for determining the sequence of a modified mRNA according to the invention, a computer program was established that modifies the nucleotide sequence of an arbitrary mRNA in such a way as to maximise the G/C content of the nucleic acid, and maximise the presence of codons recognized by abundant tRNAs present in a particular cell(s). The computer program is based on an understanding of the genetic code and exploits the degenerative nature of the genetic code. By this means a modified mRNA having desirable properties is obtained, wherein the amino acid sequence encoded by the modified mRNA is identical to that of the unmodified mRNA sequence. Alternatively, the invention may encompass alterations in either the G/C content or codon usage of an mRNA to produce a modified mRNA.
  • The source code in Visual Basic 6.0 (program development environment employed: Microsoft Visual Studio Enterprise 6.0 with Servicepack 3) is given in the Appendix I.
  • Example 2
  • An RNA construct with a sequence of the lac-Z gene from E. coli optimised with regard to stabilisation and translational efficiency was produced with the aid of the computer program of Example 1. A G/C content of 69% (compared to the wild type sequence of 51%; C. F. Kalnins et al., EMBO J. 1983, 2(4): 593-597) was achieved in this manner. Through the synthesis of overlapping oligonucleotides that comprise the modified sequence, the optimised sequence was produced according to methods known in the art. The terminal oligonucleotides have the following restriction cleavage sites: at the 5′ end an EcoRV cleavage site, and at the 3′ end a BglII cleavage site. The modified lacZ sequence was incorporated into the plasmid pT7Ts (GenBank Accession No. U26404; C. F. Lai et al., see above) by digestion with EcoRV/BglII. pT7Ts contains untranslated region sequences from the β-globin gene of Xenopus laevis at the 5′ and 3′ ends. The plasmid was cleaved with the aforementioned restriction enzymes to facilitate insertion of the modified lacZ sequence having compatible 5′ and 3′ termini.
  • The pT7Ts-lac-Z construct was propagated in bacteria and purified by phenol-chloroform extraction. 2 μg of the construct were transcribed in vitro using methods known to a skilled artisan and the modified mRNA was produced.
  • Example 3
  • The gene for the influenza matrix protein (wild type sequence, see FIG. 1A; derived amino acid sequence, see FIG. 1B) was optimised with the aid of the computer program according to the invention of Example 1. The G/C-rich sequence variant shown in FIG. 1C (SEQ ID NO: 3) was thereby formed. A G/C-rich sequence coding for a secreted form of the influenza matrix protein, which includes an N-terminal signal sequence was also determined (see FIG. 1D; SEQ ID NO: 4). The secreted form of the influenza matrix protein has the advantage of increased immunogenicity as compared to that of the non-secreted form.
  • Corresponding mRNA molecules were designed starting from the optimised sequences. The mRNA for the influenza matrix protein, optimised with regard to G/C content and codon usage, was additionally provided with stabilising sequences in the 5′ region and 3′ region (the stabilisation sequences derive from the 5′-UTRs and 3′-UTRs of the β-globin-mRNA of Xenopus laevis; pT7Ts-Vektor in C. F. Lai et al., see above). See also FIG. 1E; SEQ ID NO: 5, which includes only stabilising sequences and 1F; SEQ ID NO: 6, which includes both increased G/C content and stabilising sequences. The mRNA coding for the secreted form of the influenza matrix protein was likewise also sequence optimised in the translated region and provided with the aforementioned stabilising sequences (see FIG. 1G; SEQ ID NO: 7).
  • Example 4
  • The mRNA encoding the tumour antigen MAGE1 was modified with the aid of the computer program of Example 1. The sequence shown in FIG. 2C (SEQ ID NO: 10) was generated in this way, and has a 24% higher G/C content (351 G, 291 C) as compared to the wild type sequence (275 G, 244 C). In addition, by means of alternative codon usage, the wild type sequence was improved with regard to translational efficiency by substituting codons corresponding to tRNAs that are more abundant in a target cell (see FIG. 2D; SEQ ID NO: 11). The G/C content was likewise raised by 24% by the alternative codon usage.

Claims (18)

1. Modified mRNA coding for at least one viral peptide or polypeptide, characterised in that the G/C content of the region of the modified mRNA coding for the peptide or polypeptide is increased compared to the G/C content of the coding region of the wild type mRNA coding for the peptide or polypeptide, and the encoded amino acid sequence is unchanged as compared to the wild type.
2. Modified mRNA according to claim 1, characterised in that the G/C content of the region of the modified mRNA coding for the peptide or polypeptide is increased by at least 7% points, preferably at least 15% points, compared to the G/C content of the coding region of the wild type mRNA coding for the peptide or polypeptide.
3. Modified mRNA according to claim 1, characterised in that the modified mRNA comprises a 5′ cap structure and/or a poly-A tail of at least 70 nucleotides and/or an IRES and/or a 5′ stabilisation sequence and/or a 3′ stabilisation sequence.
4. Modified mRNA according to claim 1, characterised in that the modified mRNA comprises at least one analogue of naturally occurring nucleotides.
5. Modified mRNA according to claim 4, characterised in that the analogue is selected from the group consisting of phosphorus thioates, phosphorus amidates, peptide nucleotides, methylphosphonates, 7-deazaguanosine, 5-methylcytosine and inosine.
6. Modified mRNA according to claim 1, characterised in that the viral antigen derives from the secreted form of a surface antigen.
7. Modified mRNA according to claim 1, characterised in that the mRNA codes for a surface antigen of a pathogenic viral germ.
8. Modified mRNA according to claim 1, characterised in that the mRNA is associated with a cationic peptide or protein or is bound thereto.
9. Modified mRNA according to claim 8, characterised in that the cationic peptide or protein is selected from the group consisting of protamine, poly-L lysine, and histones.
10. Modified mRNA according to claim 1, characterised in that the polypeptide is a polyepitope of viral antigens.
11. Modified mRNA according to claim 1, characterised in that the modified mRNA is a multicistronic mRNA.
12. Modified mRNA according to claim 1, characterised in that the mRNA in addition codes for at least one cytokine.
13. Modified mRNA according to claim 1, characterised in that the multicistronic RNA comprises more than one IRES sequence, wherein the IRES sequences are in particular selected from picorna viruses (e.g. FMDV), plague viruses (CFFV), polio viruses (PV), encephalo myocarditis viruses (ECMV), foot-and-mouth disease viruses (FMDV), hepatitis C viruses (HCV), classic swine fever viruses (CSFV), murine leukemia virus (MLV), simian immunodefiency viruses (SIV), or cricket paralysis viruses (CrPV).
14. Pharmaceutical composition characterized in that it contains a modified mRNA according to claim 1 in combination with a pharmaceutically acceptable carrier and/or vehicle.
15. Pharmaceutical composition according to claim 14, characterised in that the pharmaceutical composition contains at least one immune response stimulating adjuvant.
16. Pharmaceutical composition according to claim 14, which in addition contains at least one cytokine.
17. A vaccine for inoculation against viral infectious diseases comprising a modified mRNA according to claim 1.
18. Use of a pharmaceutical composition according to claim 17 for the preparation of a vaccine for inoculation against infections caused by AIDS, hepatitis A, B or C, Herpes, Herpes zoster, Dengue, haemorrhagic infection, Yellow fever and influenza.
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Cited By (63)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2013151665A2 (en) 2012-04-02 2013-10-10 modeRNA Therapeutics Modified polynucleotides for the production of proteins associated with human disease
WO2013151666A2 (en) 2012-04-02 2013-10-10 modeRNA Therapeutics Modified polynucleotides for the production of biologics and proteins associated with human disease
US8664194B2 (en) 2011-12-16 2014-03-04 Moderna Therapeutics, Inc. Method for producing a protein of interest in a primate
US8710200B2 (en) 2011-03-31 2014-04-29 Moderna Therapeutics, Inc. Engineered nucleic acids encoding a modified erythropoietin and their expression
US8822663B2 (en) 2010-08-06 2014-09-02 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
US8835108B2 (en) 2005-08-23 2014-09-16 The Trustees Of The University Of Pennsylvania RNA containing modified nucleosides and methods of use thereof
WO2015034928A1 (en) 2013-09-03 2015-03-12 Moderna Therapeutics, Inc. Chimeric polynucleotides
US8980864B2 (en) 2013-03-15 2015-03-17 Moderna Therapeutics, Inc. Compositions and methods of altering cholesterol levels
US9107886B2 (en) 2012-04-02 2015-08-18 Moderna Therapeutics, Inc. Modified polynucleotides encoding basic helix-loop-helix family member E41
US9283287B2 (en) 2012-04-02 2016-03-15 Moderna Therapeutics, Inc. Modified polynucleotides for the production of nuclear proteins
US9334328B2 (en) 2010-10-01 2016-05-10 Moderna Therapeutics, Inc. Modified nucleosides, nucleotides, and nucleic acids, and uses thereof
US9428535B2 (en) 2011-10-03 2016-08-30 Moderna Therapeutics, Inc. Modified nucleosides, nucleotides, and nucleic acids, and uses thereof
US9447431B2 (en) 2012-02-15 2016-09-20 Curevac Ag 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 therapeutic protein
US9464124B2 (en) 2011-09-12 2016-10-11 Moderna Therapeutics, Inc. Engineered nucleic acids and methods of use thereof
US9512456B2 (en) 2012-08-14 2016-12-06 Modernatx, Inc. Enzymes and polymerases for the synthesis of RNA
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
US9669089B2 (en) 2012-02-15 2017-06-06 Curevac Ag 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 pathogenic antigen
US9683233B2 (en) 2012-03-27 2017-06-20 Curevac Ag Artificial nucleic acid molecules for improved protein or peptide expression
WO2017180587A2 (en) 2016-04-11 2017-10-19 Obsidian Therapeutics, Inc. Regulated biocircuit systems
US9839697B2 (en) 2010-08-13 2017-12-12 Curevac Ag 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
US9872900B2 (en) 2014-04-23 2018-01-23 Modernatx, Inc. Nucleic acid vaccines
US9890391B2 (en) 2012-03-27 2018-02-13 Curevac Ag RNA vector with an open reading frame, an albumin 3′-UTR, and a histone stem loop
US9974845B2 (en) 2013-02-22 2018-05-22 Curevac Ag Combination of vaccination and inhibition of the PD-1 pathway
US10010592B2 (en) 2012-02-15 2018-07-03 Curevac Ag 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 tumour antigen
US10023626B2 (en) 2013-09-30 2018-07-17 Modernatx, Inc. Polynucleotides encoding immune modulating polypeptides
US10047375B2 (en) 2013-12-30 2018-08-14 Curevac Ag Artificial nucleic acid molecules
US10064934B2 (en) 2015-10-22 2018-09-04 Modernatx, Inc. Combination PIV3/hMPV RNA vaccines
US10064935B2 (en) 2015-10-22 2018-09-04 Modernatx, Inc. Human cytomegalovirus RNA vaccines
US10080809B2 (en) 2012-03-27 2018-09-25 Curevac Ag Artificial nucleic acid molecules comprising a 5′TOP UTR
US10124055B2 (en) 2015-10-22 2018-11-13 Modernatx, Inc. Zika virus RNA vaccines
US10172935B2 (en) 2011-03-02 2019-01-08 Curevac Ag Vaccination in newborns and infants
US10232024B2 (en) 2012-02-15 2019-03-19 Curevac Ag 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 allergenic antigen or an autoimmune self-antigen
US10258698B2 (en) 2013-03-14 2019-04-16 Modernatx, Inc. Formulation and delivery of modified nucleoside, nucleotide, and nucleic acid compositions
US10273269B2 (en) 2017-02-16 2019-04-30 Modernatx, Inc. High potency immunogenic zika virus compositions
US10307472B2 (en) 2014-03-12 2019-06-04 Curevac Ag Combination of vaccination and OX40 agonists
US10323076B2 (en) 2013-10-03 2019-06-18 Modernatx, Inc. Polynucleotides encoding low density lipoprotein receptor
US10428106B2 (en) 2015-10-16 2019-10-01 Modernatx, Inc. Phosphate replacement mRNA cap analogs
US10449244B2 (en) 2015-07-21 2019-10-22 Modernatx, Inc. Zika RNA vaccines
US10493143B2 (en) 2015-10-22 2019-12-03 Modernatx, Inc. Sexually transmitted disease vaccines
WO2019241315A1 (en) 2018-06-12 2019-12-19 Obsidian Therapeutics, Inc. Pde5 derived regulatory constructs and methods of use in immunotherapy
WO2020086742A1 (en) 2018-10-24 2020-04-30 Obsidian Therapeutics, Inc. Er tunable protein regulation
US10653767B2 (en) 2017-09-14 2020-05-19 Modernatx, Inc. Zika virus MRNA vaccines
US10695419B2 (en) 2016-10-21 2020-06-30 Modernatx, Inc. Human cytomegalovirus vaccine
US10849920B2 (en) 2015-10-05 2020-12-01 Modernatx, Inc. Methods for therapeutic administration of messenger ribonucleic acid drugs
US11045540B2 (en) 2017-03-15 2021-06-29 Modernatx, Inc. Varicella zoster virus (VZV) vaccine
US11060107B2 (en) 2013-03-14 2021-07-13 The Trustees Of The University Of Pennsylvania Purification and purity assessment of RNA molecules synthesized with modified nucleosides
US11103578B2 (en) 2016-12-08 2021-08-31 Modernatx, Inc. Respiratory virus nucleic acid vaccines
US11254951B2 (en) 2014-12-30 2022-02-22 Curevac Ag Artificial nucleic acid molecules
US11351242B1 (en) 2019-02-12 2022-06-07 Modernatx, Inc. HMPV/hPIV3 mRNA vaccine composition
US11364292B2 (en) 2015-07-21 2022-06-21 Modernatx, Inc. CHIKV RNA vaccines
EP4035659A1 (en) 2016-11-29 2022-08-03 PureTech LYT, Inc. Exosomes for delivery of therapeutic agents
US11406703B2 (en) 2020-08-25 2022-08-09 Modernatx, Inc. Human cytomegalovirus vaccine
US11464848B2 (en) 2017-03-15 2022-10-11 Modernatx, Inc. Respiratory syncytial virus vaccine
WO2023034856A1 (en) * 2021-08-31 2023-03-09 New York University COMPOSITIONS AND METHODS FOR SWITCHING ANTIBIOTIC RESISTANCE MARKERS PROGRESSIVELY FOR INTEGRATION (mSwAP-In)
EP4159741A1 (en) 2014-07-16 2023-04-05 ModernaTX, Inc. Method for producing a chimeric polynucleotide encoding a polypeptide having a triazole-containing internucleotide linkage
US11643441B1 (en) 2015-10-22 2023-05-09 Modernatx, Inc. Nucleic acid vaccines for varicella zoster virus (VZV)
US11697816B2 (en) 2013-12-30 2023-07-11 CureVac SE Artificial nucleic acid molecules
US11739125B2 (en) 2013-08-21 2023-08-29 Cure Vac SE Respiratory syncytial virus (RSV) vaccine
US11752206B2 (en) 2017-03-15 2023-09-12 Modernatx, Inc. Herpes simplex virus vaccine
US11866754B2 (en) 2015-10-16 2024-01-09 Modernatx, Inc. Trinucleotide mRNA cap analogs
US11905525B2 (en) 2017-04-05 2024-02-20 Modernatx, Inc. Reduction of elimination of immune responses to non-intravenous, e.g., subcutaneously administered therapeutic proteins
US11911453B2 (en) 2018-01-29 2024-02-27 Modernatx, Inc. RSV RNA vaccines

Families Citing this family (310)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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
DE10162480A1 (en) * 2001-12-19 2003-08-07 Ingmar Hoerr The application of mRNA for use as a therapeutic agent against tumor diseases
AU2003235707A1 (en) * 2002-01-18 2003-07-30 Curevac Gmbh Immunogenic preparations and vaccines on the basis of mrna
FR2845918A1 (en) * 2002-10-16 2004-04-23 Pasteur Institut New immunogenic preparation, useful for preparing a composition for treating or preventing infections caused by HIV, Hepatitis B or C virus, Rous-Sarcoma virus or Chlamydia pneumoniae
ES2354607T3 (en) 2002-06-28 2011-03-16 Protiva Biotherapeutics Inc. PROCEDURE AND APPLIANCE TO PRODUCE LIPOSOMES.
DE10229872A1 (en) 2002-07-03 2004-01-29 Curevac Gmbh Immune stimulation through chemically modified RNA
AU2002953015A0 (en) * 2002-12-02 2002-12-12 Women's And Children's Hospital Modified lacz gene
DE10335833A1 (en) * 2003-08-05 2005-03-03 Curevac Gmbh Transfection of blood cells with mRNA for immune stimulation and gene therapy
DE10347710B4 (en) 2003-10-14 2006-03-30 Johannes-Gutenberg-Universität Mainz Recombinant vaccines and their use
JP2008504840A (en) 2004-06-30 2008-02-21 アルニラム ファーマスーティカルズ インコーポレイテッド Oligonucleotides containing non-phosphate backbone bonds
DE102004035227A1 (en) * 2004-07-21 2006-02-16 Curevac Gmbh mRNA mixture for vaccination against tumor diseases
DE102004042546A1 (en) 2004-09-02 2006-03-09 Curevac Gmbh Combination therapy for immune stimulation
WO2006046132A2 (en) * 2004-09-17 2006-05-04 Institut Pasteur Method for modulating the evolution of a polypeptide encoded by a nucleic acid sequence
DE102005023170A1 (en) * 2005-05-19 2006-11-23 Curevac Gmbh Optimized formulation for mRNA
US20070104775A1 (en) 2005-09-15 2007-05-10 Steffen Panzner Amphoteric liposomes
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
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
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
US8980561B1 (en) * 2006-08-22 2015-03-17 Los Alamos National Security, Llc. Nucleic acid detection system and method for detecting influenza
US20090047673A1 (en) 2006-08-22 2009-02-19 Cary Robert B Miniaturized lateral flow device for rapid and sensitive detection of proteins or nucleic acids
WO2008043575A2 (en) 2006-10-13 2008-04-17 Novosom Ag Improvements in or relating to amphoteric liposomes
DE102006051516A1 (en) * 2006-10-31 2008-05-08 Curevac Gmbh (Base) modified RNA to increase the expression of a protein
DE102007001370A1 (en) * 2007-01-09 2008-07-10 Curevac Gmbh RNA-encoded antibodies
DE102007029471A1 (en) 2007-06-20 2008-12-24 Novosom Ag New optional cationic sterols
WO2009030254A1 (en) 2007-09-04 2009-03-12 Curevac Gmbh Complexes of rna and cationic peptides for transfection and for immunostimulation
WO2009039198A2 (en) * 2007-09-17 2009-03-26 The Trustees Of The University Of Pennsylvania Generation of hyperstable mrnas
WO2009046738A1 (en) * 2007-10-09 2009-04-16 Curevac Gmbh Composition for treating lung cancer, particularly of non-small lung cancers (nsclc)
EP2195015B1 (en) 2007-10-09 2017-04-12 CureVac AG COMPOSITION FOR TREATING PROSTATE CANCER (PCa)
WO2009046739A1 (en) 2007-10-09 2009-04-16 Curevac Gmbh Composition for treating prostate cancer (pca)
US20110038937A1 (en) * 2007-12-05 2011-02-17 Eyegate Pharma S.A.S. Methods for delivering siRNA via Ionthophoresis
RU2545701C2 (en) 2008-01-31 2015-04-10 Куревак Гмбх NUCLEIC ACIDS OF FORMULA (I) (NuGlXmGnNv)a AND DERIVATIVES THEREOF AS IMMUNOSTIMULATING AGENTS/ADJUVANTS
WO2009127230A1 (en) * 2008-04-16 2009-10-22 Curevac Gmbh MODIFIED (m)RNA FOR SUPPRESSING OR AVOIDING AN IMMUNOSTIMULATORY RESPONSE AND IMMUNOSUPPRESSIVE COMPOSITION
WO2009137059A1 (en) 2008-05-05 2009-11-12 Los Alamos National Security, Llc Highly simplified lateral flow-based nucleic acid sample preparation and passive fluid flow control
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
CN201397956Y (en) * 2009-03-23 2010-02-03 富士康(昆山)电脑接插件有限公司 Electric connector component
US20120237589A1 (en) 2009-07-09 2012-09-20 Marina Biotech, Inc. Amphoteric liposomes comprising imino lipids
US20110053829A1 (en) 2009-09-03 2011-03-03 Curevac Gmbh Disulfide-linked polyethyleneglycol/peptide conjugates for the transfection of nucleic acids
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
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
PT3243526T (en) 2010-07-06 2020-03-04 Glaxosmithkline Biologicals Sa Delivery of rna to trigger multiple immune pathways
MX2013000164A (en) 2010-07-06 2013-03-05 Novartis Ag Liposomes with lipids having an advantageous pka- value for rna delivery.
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
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
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
US8853377B2 (en) 2010-11-30 2014-10-07 Shire Human Genetic Therapies, Inc. mRNA for use in treatment of human genetic diseases
WO2012089225A1 (en) 2010-12-29 2012-07-05 Curevac Gmbh Combination of vaccination and inhibition of mhc class i restricted antigen presentation
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
AU2012234259A1 (en) 2011-03-31 2013-10-03 Libera-Korner, Jeanette Perfluorinated compounds for the non-viral transfer of nucleic acids
PT2699698T (en) 2011-04-20 2017-04-11 Mesa Biotech Inc Oscillating amplification reaction for nucleic acids
ME03498B (en) * 2011-05-24 2020-04-20 Tron Translationale Onkologie An Der Univ Der Johannes Gutenberg Univ Mainz Gemeinnuetzige Gmbh Individualized vaccines for cancer
AU2012261237B2 (en) 2011-05-24 2017-06-01 BioNTech SE Individualized vaccines for cancer
KR102128248B1 (en) 2011-06-08 2020-07-01 샤이어 휴먼 지네틱 테라피즈 인크. Lipid nanoparticle compositions and methods for mrna delivery
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
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
EP2814964B1 (en) 2012-02-15 2019-01-09 CureVac AG 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 allergenic antigen or an autoimmune self-antigen
EP3348645B1 (en) 2012-02-15 2020-06-03 CureVac AG 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 pathogenic antigen
PL3178488T3 (en) 2012-02-15 2019-10-31 Curevac Ag 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 tumour antigen
WO2013143555A1 (en) 2012-03-26 2013-10-03 Biontech Ag Rna formulation for immunotherapy
DK3260541T3 (en) 2012-03-27 2019-08-12 Curevac Ag ARTIFICIAL NUCLEIC ACID MOLECULES FOR IMPROVED PROTEIN OR PREPTIDE EXPRESSION
US10501513B2 (en) 2012-04-02 2019-12-10 Modernatx, Inc. Modified polynucleotides for the production of oncology-related proteins and peptides
US9649208B2 (en) 2012-04-13 2017-05-16 Medtronic Vascular, Inc. Hollow drug-filled stent and method of forming hollow drug-filled stent
US8998977B2 (en) 2012-04-13 2015-04-07 Medtronic Vascular, Inc. Hollow drug-filled stent and method of forming hollow drug-filled stent
US20150267192A1 (en) 2012-06-08 2015-09-24 Shire Human Genetic Therapies, Inc. Nuclease resistant polynucleotides and uses thereof
JP6484558B2 (en) 2012-11-28 2019-03-13 バイオエヌテック エールエヌアー ファーマシューティカルズ ゲーエムベーハーBiontech Rna Pharmaceuticals Gmbh Combination of cancer vaccine
WO2014113089A2 (en) 2013-01-17 2014-07-24 Moderna Therapeutics, Inc. Signal-sensor polynucleotides for the alteration of cellular phenotypes
EP2765137A1 (en) 2013-02-07 2014-08-13 Sanofi Pasteur Induction of cross-reactive cellular response against rhinovirus antigens
DK3292873T3 (en) 2013-02-22 2019-06-03 Curevac Ag Combination of vaccination and inhibition of PD-1 pathway
KR20150128687A (en) 2013-03-14 2015-11-18 샤이어 휴먼 지네틱 테라피즈 인크. Methods for purification of messenger rna
BR112015022868B1 (en) 2013-03-14 2023-05-16 Ethris Gmbh CFTR MRNA COMPOSITIONS AND RELATED USES AND METHODS
WO2014144767A1 (en) 2013-03-15 2014-09-18 Moderna Therapeutics, Inc. Ion exchange purification of mrna
WO2014152030A1 (en) 2013-03-15 2014-09-25 Moderna Therapeutics, Inc. Removal of dna fragments in mrna production process
US11377470B2 (en) 2013-03-15 2022-07-05 Modernatx, Inc. Ribonucleic acid purification
WO2014180490A1 (en) 2013-05-10 2014-11-13 Biontech Ag Predicting immunogenicity of t cell epitopes
EP3008191A2 (en) 2013-06-13 2016-04-20 Shire Human Genetic Therapies, Inc. Messenger rna based viral production
LT3019619T (en) 2013-07-11 2021-12-10 Modernatx, Inc. Compositions comprising synthetic polynucleotides encoding crispr related proteins and synthetic sgrnas and methods of use
EP3450561A1 (en) * 2013-08-21 2019-03-06 CureVac AG Method for increasing expression of rna-encoded proteins
CN110195072A (en) 2013-08-21 2019-09-03 库瑞瓦格股份公司 Rabies vacciness
CN105451779A (en) 2013-08-21 2016-03-30 库瑞瓦格股份公司 Method for increasing expression of RNA-encoded proteins
WO2015024669A1 (en) 2013-08-21 2015-02-26 Curevac Gmbh Combination vaccine
PL3035955T3 (en) 2013-08-21 2020-03-31 Curevac Ag Composition and vaccine for treating lung cancer
WO2015034925A1 (en) 2013-09-03 2015-03-12 Moderna Therapeutics, Inc. Circular polynucleotides
EP3052511A4 (en) 2013-10-02 2017-05-31 Moderna Therapeutics, Inc. Polynucleotide molecules and uses thereof
EP3060258A1 (en) 2013-10-22 2016-08-31 Shire Human Genetic Therapies, Inc. Mrna therapy for phenylketonuria
EP3501605B1 (en) 2013-10-22 2023-06-28 Translate Bio, Inc. Mrna therapy for argininosuccinate synthetase deficiency
ES2715890T3 (en) 2013-11-01 2019-06-06 Pfizer Expression vectors of prostate associated antigens
EP3062798B1 (en) 2013-11-01 2020-05-06 CureVac AG Modified rna with decreased immunostimulatory properties
ES2806575T3 (en) 2013-11-01 2021-02-18 Curevac Ag Modified RNA with decreased immunostimulatory properties
WO2015101416A1 (en) 2013-12-30 2015-07-09 Curevac Gmbh Methods for rna analysis
EP3495486B1 (en) 2013-12-30 2020-12-16 CureVac AG Artificial nucleic acid molecules
EP3090052B1 (en) * 2013-12-30 2018-06-13 CureVac AG Artificial nucleic acid molecules
CA2936286A1 (en) 2014-04-01 2015-10-08 Curevac Ag Polymeric carrier cargo complex for use as an immunostimulating agent or as an adjuvant
AU2015249312B2 (en) 2014-04-25 2021-07-29 Translate Bio, Inc. Methods for purification of messenger RNA
CN107075525B (en) * 2014-05-30 2021-06-25 纽约市哥伦比亚大学理事会 Methods for altering expression of polypeptides
MX2016016170A (en) 2014-06-10 2017-03-28 Curevac Ag Methods and means for enhancing rna production.
EP3157573A4 (en) 2014-06-19 2018-02-21 Moderna Therapeutics, Inc. Alternative nucleic acid molecules and uses thereof
AU2015289656A1 (en) 2014-07-16 2017-02-16 Modernatx, Inc. Circular polynucleotides
JP6824594B2 (en) 2014-09-11 2021-02-03 Jnc株式会社 How to design synthetic genes
WO2016045732A1 (en) 2014-09-25 2016-03-31 Biontech Rna Pharmaceuticals Gmbh Stable formulations of lipids and liposomes
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
WO2016086988A1 (en) * 2014-12-03 2016-06-09 Wageningen Universiteit Optimisation of coding sequence for functional protein expression
DE202015010000U1 (en) * 2014-12-12 2023-07-03 CureVac SE Artificial nucleic acid molecules for improved protein expression
EP3240558A1 (en) 2014-12-30 2017-11-08 CureVac AG Artificial nucleic acid molecules
WO2016128060A1 (en) 2015-02-12 2016-08-18 Biontech Ag Predicting t cell epitopes useful for vaccination
WO2016165825A1 (en) 2015-04-13 2016-10-20 Curevac Ag Method for producing rna compositions
WO2016165831A1 (en) 2015-04-17 2016-10-20 Curevac Ag Lyophilization of rna
US10293058B2 (en) 2015-04-22 2019-05-21 Curevac Ag RNA containing composition for treatment of tumor diseases
EP3289101B1 (en) 2015-04-30 2021-06-23 CureVac AG Immobilized poly(n)polymerase
WO2016180430A1 (en) 2015-05-08 2016-11-17 Curevac Ag Method for producing rna
MX2017014538A (en) 2015-05-15 2018-03-02 Curevac Ag Prime-boost regimens involving administration of at least one mrna construct.
US20200317764A1 (en) * 2015-05-19 2020-10-08 Morphogenesis, Inc. Modified mrna for multicell transformation
WO2016184575A1 (en) 2015-05-20 2016-11-24 Curevac Ag Dry powder composition comprising long-chain rna
CN107530448A (en) 2015-05-20 2018-01-02 库瑞瓦格股份公司 Include long-chain RNA dry powder composite
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
US10501768B2 (en) 2015-07-13 2019-12-10 Curevac Ag Method of producing RNA from circular DNA and corresponding template DNA
JP7078812B2 (en) 2015-08-28 2022-06-01 バイオンテック・エスイー Methods for reducing the immunogenicity of RNA
KR102645398B1 (en) * 2015-08-28 2024-03-07 큐어백 에스이 Novel artificial nucleic acid molecules
LT3350157T (en) 2015-09-17 2022-02-25 Modernatx, Inc. Compounds and compositions for intracellular delivery of therapeutic agents
WO2017049286A1 (en) 2015-09-17 2017-03-23 Moderna Therapeutics, Inc. Polynucleotides containing a morpholino linker
WO2017059902A1 (en) 2015-10-07 2017-04-13 Biontech Rna Pharmaceuticals Gmbh 3' utr sequences for stabilization of rna
US11225682B2 (en) 2015-10-12 2022-01-18 Curevac Ag Automated method for isolation, selection and/or detection of microorganisms or cells comprised in a solution
CA3001014A1 (en) * 2015-10-16 2017-04-20 Modernatx, Inc. Mrna cap analogs and methods of mrna capping
WO2017066782A1 (en) 2015-10-16 2017-04-20 Modernatx, Inc. Hydrophobic mrna cap analogs
WO2017066789A1 (en) 2015-10-16 2017-04-20 Modernatx, Inc. Mrna cap analogs with modified sugar
WO2017066791A1 (en) 2015-10-16 2017-04-20 Modernatx, Inc. Sugar substituted mrna cap analogs
CA3002822A1 (en) 2015-10-22 2017-04-27 Modernatx, Inc. Herpes simplex virus vaccine
CA3002820A1 (en) 2015-10-22 2017-04-27 Modernatx, Inc. Respiratory syncytial virus vaccine
US20180311336A1 (en) 2015-10-22 2018-11-01 Moderna TX, Inc. Broad spectrum influenza virus vaccine
EP3373965A1 (en) 2015-11-09 2018-09-19 CureVac AG Rotavirus vaccines
WO2017081082A2 (en) * 2015-11-09 2017-05-18 Curevac Ag Optimized nucleic acid molecules
JP7114465B2 (en) 2015-12-22 2022-08-08 モデルナティエックス インコーポレイテッド Compounds and compositions for intracellular delivery of drugs
AU2016375021B2 (en) 2015-12-22 2022-02-03 CureVac SE Method for producing RNA molecule compositions
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
AU2017207744A1 (en) 2016-01-11 2018-07-26 Verndari, Inc. Microneedle compositions and methods of using same
EP3405579A1 (en) 2016-01-22 2018-11-28 Modernatx, Inc. Messenger ribonucleic acids for the production of intracellular binding polypeptides and methods of use thereof
WO2017137095A1 (en) 2016-02-12 2017-08-17 Curevac Ag Method for analyzing rna
WO2017140905A1 (en) 2016-02-17 2017-08-24 Curevac Ag Zika virus vaccine
WO2017149139A1 (en) 2016-03-03 2017-09-08 Curevac Ag Rna analysis by total hydrolysis
EP3445392A1 (en) 2016-04-22 2019-02-27 CureVac AG Rna encoding a tumor antigen
US11596699B2 (en) 2016-04-29 2023-03-07 CureVac SE RNA encoding an antibody
US20210162037A1 (en) * 2016-05-04 2021-06-03 Curevac Ag Influenza mrna vaccines
EP3452493A1 (en) 2016-05-04 2019-03-13 CureVac AG Nucleic acid molecules and uses thereof
EP3452101A2 (en) 2016-05-04 2019-03-13 CureVac AG Rna encoding a therapeutic protein
EP4137509A1 (en) 2016-05-18 2023-02-22 ModernaTX, Inc. Combinations of mrnas encoding immune modulating polypeptides and uses thereof
US20190275170A1 (en) 2016-05-18 2019-09-12 Modernatx, Inc. Polynucleotides encoding jagged1 for the treatment of alagille syndrome
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
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
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
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
BR112018075479A2 (en) 2016-06-09 2019-03-19 Curevac Ag hybrid carriers for nucleic acid loading
EP3468608A1 (en) 2016-06-09 2019-04-17 CureVac AG Hybrid carriers for nucleic acid cargo
US20190336608A1 (en) 2016-06-09 2019-11-07 Curevac Ag Cationic carriers for nucleic acid delivery
AU2017286606A1 (en) 2016-06-14 2018-12-13 Modernatx, Inc. Stabilized formulations of lipid nanoparticles
CA3025812A1 (en) 2016-08-19 2018-02-22 Curevac Ag Rna for cancer therapy
WO2018041921A1 (en) 2016-08-31 2018-03-08 Curevac Ag Mixing device for the production of a liquid nucleic acid composition
US20200163878A1 (en) 2016-10-26 2020-05-28 Curevac Ag Lipid nanoparticle mrna vaccines
US11583504B2 (en) 2016-11-08 2023-02-21 Modernatx, Inc. Stabilized formulations of lipid nanoparticles
WO2018087276A1 (en) 2016-11-10 2018-05-17 Deutsches Krebsforschungszentrum Stiftung des öffentlichen Rechts Or10h1 modulators and uses thereof
WO2018089851A2 (en) 2016-11-11 2018-05-17 Modernatx, Inc. Influenza vaccine
US11279923B2 (en) 2016-11-28 2022-03-22 Curevac Ag Method for purifying RNA
WO2018104540A1 (en) 2016-12-08 2018-06-14 Curevac Ag Rnas for wound healing
US11464836B2 (en) 2016-12-08 2022-10-11 Curevac Ag RNA for treatment or prophylaxis of a liver disease
US11464847B2 (en) 2016-12-23 2022-10-11 Curevac Ag Lassa virus vaccine
US11524066B2 (en) 2016-12-23 2022-12-13 CureVac SE Henipavirus vaccine
EP3558356A2 (en) 2016-12-23 2019-10-30 CureVac AG Mers coronavirus vaccine
MA47438A (en) 2017-02-01 2019-12-11 Modernatx Inc SECONDARY POLYNUCLEOTIDE STRUCTURE
BR112019015797A2 (en) 2017-02-01 2020-03-17 Modernatx, Inc. IMMUNOMODULATORY THERAPEUTIC MRNA COMPOSITIONS THAT CODE ACTIVATING ONCOGEN MUTATION PEPTIDES
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
JP2020510426A (en) 2017-02-28 2020-04-09 アークトゥラス・セラピューティクス・インコーポレイテッドArcturus Therapeutics,Inc. Translatable molecules and their synthesis
US11576961B2 (en) 2017-03-15 2023-02-14 Modernatx, Inc. Broad spectrum influenza virus vaccine
WO2018170336A1 (en) 2017-03-15 2018-09-20 Modernatx, Inc. Lipid nanoparticle formulation
RS63953B1 (en) 2017-03-15 2023-02-28 Modernatx Inc Compound and compositions for intracellular delivery of therapeutic agents
WO2018167320A1 (en) 2017-03-17 2018-09-20 Curevac Ag Rna vaccine and immune checkpoint inhibitors for combined anticancer therapy
EP3595676A4 (en) 2017-03-17 2021-05-05 Modernatx, Inc. Zoonotic disease rna vaccines
SG11201906297QA (en) 2017-03-24 2019-10-30 Curevac Ag Nucleic acids encoding crispr-associated proteins and uses thereof
CA3057768A1 (en) 2017-03-31 2018-10-04 Accanis Biotech F&E Gmbh & Co Kg Prevention and treatment of non-melanoma skin cancer (nmsc)
WO2018191657A1 (en) 2017-04-13 2018-10-18 Acuitas Therapeutics, Inc. Lipids for delivery of active agents
AU2018256867A1 (en) 2017-04-27 2019-11-14 The Johns Hopkins University Nucleoside-modified mRNA-lipid nanoparticle lineage vaccine for hepatitis C virus
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.
WO2018232120A1 (en) 2017-06-14 2018-12-20 Modernatx, Inc. Compounds and compositions for intracellular delivery of agents
EP3648791A1 (en) 2017-07-04 2020-05-13 CureVac AG Novel nucleic acid molecules
US20200362382A1 (en) 2017-08-18 2020-11-19 Modernatx, Inc. Methods of preparing modified rna
US11602557B2 (en) 2017-08-22 2023-03-14 Cure Vac SE Bunyavirales vaccine
CA3073211A1 (en) 2017-08-31 2019-03-07 Modernatx, Inc. Methods of making lipid nanoparticles
JP2021501572A (en) 2017-10-19 2021-01-21 キュアバック アーゲー New artificial nucleic acid molecule
WO2019092153A1 (en) 2017-11-08 2019-05-16 Curevac Ag Rna sequence adaptation
WO2019115635A1 (en) 2017-12-13 2019-06-20 Curevac Ag Flavivirus vaccine
EP3728634A1 (en) 2017-12-21 2020-10-28 CureVac AG Linear double stranded dna coupled to a single support or a tag and methods for producing said linear double stranded dna
EP3508499A1 (en) 2018-01-08 2019-07-10 iOmx Therapeutics AG Antibodies targeting, and other modulators of, an immunoglobulin gene associated with resistance against anti-tumour immune responses, and uses thereof
CN108363904B (en) * 2018-02-07 2019-06-28 南京林业大学 A kind of CodonNX system and its optimization method for the optimization of xylophyta genetic codon
WO2019193183A2 (en) 2018-04-05 2019-10-10 Curevac Ag Novel yellow fever nucleic acid molecules for vaccination
CN112292395A (en) 2018-04-17 2021-01-29 库瑞瓦格股份公司 Novel RSV RNA molecules and compositions for vaccination
EP3813874A1 (en) 2018-06-27 2021-05-05 CureVac AG Novel lassa virus rna molecules and compositions for vaccination
WO2020041793A1 (en) 2018-08-24 2020-02-27 Translate Bio, Inc. Methods for purification of messenger rna
EP3853305A1 (en) 2018-09-19 2021-07-28 ModernaTX, Inc. High-purity peg lipids and uses thereof
US20220409536A1 (en) 2018-09-19 2022-12-29 Modernatx, Inc. Compounds and compositions for intracellular delivery of therapeutic agents
WO2020061284A1 (en) 2018-09-19 2020-03-26 Modernatx, Inc. Peg lipids and uses thereof
EP3852728A1 (en) 2018-09-20 2021-07-28 Modernatx, Inc. Preparation of lipid nanoparticles and methods of administration thereof
US11685906B2 (en) 2018-12-06 2023-06-27 Arcturus Therapeutics, Inc. Compositions and methods for treating ornithine transcarbamylase deficiency
PE20211342A1 (en) 2018-12-19 2021-07-26 Versameb Ag RIBONUCLEIC ACID (RNA) CODING FOR A PROTEIN
CN113453707A (en) 2018-12-21 2021-09-28 库瑞瓦格股份公司 RNA for malaria vaccine
CA3128215A1 (en) 2019-01-31 2020-08-06 Modernatx, Inc. Methods of preparing lipid nanoparticles
WO2020160430A1 (en) 2019-01-31 2020-08-06 Modernatx, Inc. Vortex mixers and associated methods, systems, and apparatuses thereof
CA3125511A1 (en) 2019-02-08 2020-08-13 Curevac Ag Coding rna administered into the suprachoroidal space in the treatment of ophthalmic diseases
WO2020254535A1 (en) 2019-06-18 2020-12-24 Curevac Ag Rotavirus mrna vaccine
MA56539A (en) * 2019-06-24 2022-04-27 Modernatx Inc ENDONUCLEASE RESISTANT MESSENGER RNA AND USES THEREOF
CA3146023A1 (en) 2019-07-05 2021-01-14 Iomx Therapeutics Ag Antibodies binding igc2 of igsf11 (vsig3) and uses thereof
AU2020328855A1 (en) 2019-08-14 2022-03-03 CureVac SE RNA combinations and compositions with decreased immunostimulatory properties
EP4048692A2 (en) 2019-10-24 2022-08-31 NovaGo Therapeutics AG Novel anti-nogo-a antibodies
EP3822288A1 (en) 2019-11-18 2021-05-19 Deutsches Krebsforschungszentrum, Stiftung des öffentlichen Rechts Antibodies targeting, and other modulators of, the cd276 antigen, and uses thereof
MX2022007680A (en) 2019-12-20 2022-09-26 Curevac Ag Lipid nanoparticles for delivery of nucleic acids.
US20230108894A1 (en) 2020-01-28 2023-04-06 Moderna TX, Inc Coronavirus rna vaccines
US11241493B2 (en) 2020-02-04 2022-02-08 Curevac Ag Coronavirus vaccine
CA3160511A1 (en) 2020-02-04 2021-08-12 Susanne RAUCH Coronavirus vaccine
US11576966B2 (en) 2020-02-04 2023-02-14 CureVac SE Coronavirus vaccine
KR20220140528A (en) 2020-02-07 2022-10-18 모더나티엑스, 인크. SARS-COV-2 mRNA domain vaccine
CN114206827B (en) 2020-04-09 2023-05-23 苏州艾博生物科技有限公司 Lipid nanoparticle compositions
TW202204622A (en) 2020-04-09 2022-02-01 大陸商蘇州艾博生物科技有限公司 Nucleic acid vaccines for coronavirus
WO2021213924A1 (en) 2020-04-22 2021-10-28 BioNTech SE Coronavirus vaccine
WO2021222304A1 (en) 2020-04-27 2021-11-04 Modernatx, Inc. Sars-cov-2 rna vaccines
WO2021159130A2 (en) 2020-05-15 2021-08-12 Modernatx, Inc. Coronavirus rna vaccines and methods of use
EP3993828A1 (en) 2020-05-29 2022-05-11 CureVac AG Nucleic acid based combination vaccines
WO2021245184A1 (en) 2020-06-02 2021-12-09 Neurimmune Ag HUMAN ANTIBODIES AGAINST SEVERE ACUTE RESPIRATORY SYNDROME CORONAVIRUS-2 (SARS-CoV-2)
WO2022002040A1 (en) 2020-06-30 2022-01-06 Suzhou Abogen Biosciences Co., Ltd. Lipid compounds and lipid nanoparticle compositions
WO2022008027A1 (en) 2020-07-06 2022-01-13 Iomx Therapeutics Ag Antibodies binding igv of igsf11 (vsig3) and uses thereof
US20230272052A1 (en) 2020-07-31 2023-08-31 CureVac SE Nucleic acid encoded antibody mixtures
CN114391008A (en) 2020-08-20 2022-04-22 苏州艾博生物科技有限公司 Lipid compounds and lipid nanoparticle compositions
US20240066114A1 (en) 2020-08-31 2024-02-29 CureVac SE Multivalent nucleic acid based coronavirus vaccines
WO2022067010A1 (en) 2020-09-25 2022-03-31 Modernatx, Inc. Multi-proline-substituted coronavirus spike protein vaccines
EP4203997A1 (en) 2020-10-26 2023-07-05 Pécsi Tudományegyetem Vaccine platform
EP3992205A1 (en) 2020-11-03 2022-05-04 Rheinische Friedrich-Wilhelms-Universität Bonn Sars coronavirus-2 spike protein binding compounds
EP4240762A1 (en) 2020-11-03 2023-09-13 Deutsches Krebsforschungszentrum Stiftung des öffentlichen Rechts Target-cell restricted, costimulatory, bispecific and bivalent anti-cd28 antibodies
WO2022106205A1 (en) 2020-11-18 2022-05-27 Rheinische Friedrich-Wilhelms-Universität Bonn Corona virus spike protein binding compounds
WO2022106860A1 (en) 2020-11-20 2022-05-27 Pécsi Tudományegyetem Recombinant peptides for use in therapy
WO2022137133A1 (en) 2020-12-22 2022-06-30 Curevac Ag Rna vaccine against sars-cov-2 variants
CA3171051A1 (en) 2020-12-22 2022-06-30 Curevac Ag Pharmaceutical composition comprising lipid-based carriers encapsulating rna for multidose administration
AU2021405281A1 (en) 2020-12-22 2023-07-06 CureVac SE Rna vaccine against sars-cov-2 variants
WO2022150717A1 (en) 2021-01-11 2022-07-14 Modernatx, Inc. Seasonal rna influenza virus vaccines
WO2022152109A2 (en) 2021-01-14 2022-07-21 Suzhou Abogen Biosciences Co., Ltd. Lipid compounds and lipid nanoparticle compositions
CN116615472A (en) 2021-01-14 2023-08-18 苏州艾博生物科技有限公司 Polymer conjugated lipid compounds and lipid nanoparticle compositions
CA3208303A1 (en) 2021-01-15 2022-07-21 Modernatx, Inc. Variant strain-based coronavirus vaccines
US20240100151A1 (en) 2021-01-15 2024-03-28 Moderna TX, Inc. Variant strain-based coronavirus vaccines
CN112735525B (en) * 2021-01-18 2023-12-26 苏州科锐迈德生物医药科技有限公司 mRNA sequence optimization method and device based on divide-and-conquer method
CA3170747A1 (en) 2021-01-27 2022-08-04 Moritz THRAN Method of reducing the immunostimulatory properties of in vitro transcribed rna
WO2022177597A1 (en) * 2021-02-16 2022-08-25 The Board Of Trustees Of The Leland Stanford Junior University Systems and methods to enhance rna stability and translation and uses thereof
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
CA3210650A1 (en) 2021-03-03 2022-09-09 Winfried Wels Bispecific antibodies enhancing cell mediated immune responses
CN117377491A (en) 2021-03-26 2024-01-09 葛兰素史克生物有限公司 Immunogenic compositions
CA3213771A1 (en) 2021-03-29 2022-10-06 Scirhom Gmbh Methods of treatment using protein binders to irhom2 epitopes
JP2024512669A (en) 2021-03-31 2024-03-19 フラグシップ パイオニアリング イノベーションズ ブイ,インコーポレーテッド Tanotransmission polypeptides and their use in the treatment of cancer
WO2022207862A2 (en) 2021-03-31 2022-10-06 Curevac Ag Syringes containing pharmaceutical compositions comprising rna
WO2022214664A1 (en) 2021-04-09 2022-10-13 Philogen S.P.A. Improved interferon-gamma mutant
EP4322993A1 (en) 2021-04-13 2024-02-21 ModernaTX, Inc. Respiratory virus combination vaccines
JP2024513999A (en) 2021-04-14 2024-03-27 モデルナティエックス インコーポレイテッド Influenza-coronavirus combination vaccine
EP4334446A1 (en) 2021-05-03 2024-03-13 CureVac SE Improved nucleic acid sequence for cell type specific expression
WO2022245888A1 (en) 2021-05-19 2022-11-24 Modernatx, Inc. Seasonal flu rna vaccines and methods of use
CN116472275A (en) 2021-05-24 2023-07-21 苏州艾博生物科技有限公司 Lipid compounds and lipid nanoparticle compositions
CA3171750A1 (en) 2021-07-30 2023-02-02 Tim SONNTAG Mrnas for treatment or prophylaxis of liver diseases
AU2021461416A1 (en) 2021-08-24 2024-02-22 BioNTech SE In vitro transcription technologies
CA3230031A1 (en) 2021-09-03 2023-03-09 Patrick Baumhof Novel lipid nanoparticles for delivery of nucleic acids
CA3230056A1 (en) 2021-09-03 2023-03-09 Patrick Baumhof Novel lipid nanoparticles for delivery of nucleic acids comprising phosphatidylserine
WO2023044333A1 (en) 2021-09-14 2023-03-23 Renagade Therapeutics Management Inc. Cyclic lipids and methods of use thereof
CA3231523A1 (en) 2021-09-14 2023-03-23 Renagade Therapeutics Management Inc. Acyclic lipids and methods of use thereof
US20230190806A1 (en) 2021-10-06 2023-06-22 Immatics Biotechnologies Gmbh Methods of treating metastatic lesions and compositions thereof
CN116064598B (en) 2021-10-08 2024-03-12 苏州艾博生物科技有限公司 Nucleic acid vaccine for coronavirus
AR127312A1 (en) 2021-10-08 2024-01-10 Suzhou Abogen Biosciences Co Ltd LIPID COMPOUNDS AND LIPID NANOPARTICLE COMPOSITIONS
WO2023056917A1 (en) 2021-10-08 2023-04-13 Suzhou Abogen Biosciences Co., Ltd. Lipid compounds and lipid nanoparticle compositions
WO2023064612A2 (en) 2021-10-15 2023-04-20 BioNTech SE Pharmaceutical compositions for delivery of viral antigens and related methods
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
WO2023092069A1 (en) 2021-11-18 2023-05-25 Modernatx, Inc. Sars-cov-2 mrna domain vaccines and methods of use
WO2023096858A1 (en) 2021-11-23 2023-06-01 Senda Biosciences, Inc. A bacteria-derived lipid composition and use thereof
WO2023107999A2 (en) 2021-12-08 2023-06-15 Modernatx, Inc. Herpes simplex virus mrna vaccines
WO2023122080A1 (en) 2021-12-20 2023-06-29 Senda Biosciences, Inc. Compositions comprising mrna and lipid reconstructed plant messenger packs
WO2023122752A1 (en) 2021-12-23 2023-06-29 Renagade Therapeutics Management Inc. Constrained lipids and methods of use thereof
WO2023144193A1 (en) 2022-01-25 2023-08-03 CureVac SE Mrnas for treatment of hereditary tyrosinemia type i
WO2023147090A1 (en) 2022-01-27 2023-08-03 BioNTech SE Pharmaceutical compositions for delivery of herpes simplex virus antigens and related methods
WO2023144330A1 (en) 2022-01-28 2023-08-03 CureVac SE Nucleic acid encoded transcription factor inhibitors
WO2023161350A1 (en) 2022-02-24 2023-08-31 Io Biotech Aps Nucleotide delivery of cancer therapy
WO2023196931A1 (en) 2022-04-07 2023-10-12 Renagade Therapeutics Management Inc. Cyclic lipids and lipid nanoparticles (lnp) for the delivery of nucleic acids or peptides for use in vaccinating against infectious agents
WO2023196914A1 (en) 2022-04-08 2023-10-12 Modernatx, Inc. Influenza nucleic acid compositions and uses thereof
WO2023213990A1 (en) 2022-05-05 2023-11-09 Etherna Immunotherapies Nv Multi-epitope construct
WO2023218431A1 (en) 2022-05-13 2023-11-16 BioNTech SE Rna compositions targeting hiv
WO2023230481A1 (en) 2022-05-24 2023-11-30 Modernatx, Inc. Orthopoxvirus vaccines
WO2023230295A1 (en) 2022-05-25 2023-11-30 BioNTech SE Rna compositions for delivery of monkeypox antigens and related methods
WO2023227608A1 (en) 2022-05-25 2023-11-30 Glaxosmithkline Biologicals Sa Nucleic acid based vaccine encoding an escherichia coli fimh antigenic polypeptide
WO2023249934A1 (en) * 2022-06-20 2023-12-28 The Board Of Trustees Of The Leland Stanford Junior University Methods of genetically modifying cells for altered codon-anti-codon interactions
WO2024002985A1 (en) 2022-06-26 2024-01-04 BioNTech SE Coronavirus vaccine
WO2024015890A1 (en) 2022-07-13 2024-01-18 Modernatx, Inc. Norovirus mrna vaccines
WO2024020346A2 (en) 2022-07-18 2024-01-25 Renagade Therapeutics Management Inc. Gene editing components, systems, and methods of use
WO2024023246A1 (en) 2022-07-28 2024-02-01 Philogen S.P.A. Antibody binding to pd1
WO2024033362A1 (en) 2022-08-08 2024-02-15 Atb Therapeutics Humanized antibodies against cd79b
WO2024037578A1 (en) 2022-08-18 2024-02-22 Suzhou Abogen Biosciences Co., Ltd. Composition of lipid nanoparticles
WO2024050483A1 (en) 2022-08-31 2024-03-07 Modernatx, Inc. Variant strain-based coronavirus vaccines and uses thereof
WO2024064934A1 (en) 2022-09-23 2024-03-28 BioNTech SE Compositions for delivery of plasmodium csp antigens and related methods
WO2024064931A1 (en) 2022-09-23 2024-03-28 BioNTech SE Compositions for delivery of liver stage antigens and related methods
WO2024063788A1 (en) 2022-09-23 2024-03-28 BioNTech SE Compositions for delivery of malaria antigens and related methods
WO2024063789A1 (en) 2022-09-23 2024-03-28 BioNTech SE Compositions for delivery of malaria antigens and related methods
WO2024068545A1 (en) 2022-09-26 2024-04-04 Glaxosmithkline Biologicals Sa Influenza virus vaccines

Citations (43)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3906092A (en) * 1971-11-26 1975-09-16 Merck & Co Inc Stimulation of antibody response
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
US4415732A (en) * 1981-03-27 1983-11-15 University Patents, Inc. Phosphoramidite compounds and processes
US4458066A (en) * 1980-02-29 1984-07-03 University Patents, Inc. Process for preparing polynucleotides
US4500707A (en) * 1980-02-29 1985-02-19 University Patents, Inc. Nucleosides useful in the preparation of polynucleotides
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
US5047524A (en) * 1988-12-21 1991-09-10 Applied Biosystems, Inc. Automated system for polynucleotide synthesis and purification
US5132418A (en) * 1980-02-29 1992-07-21 University Patents, Inc. Process for preparing polynucleotides
US5153319A (en) * 1986-03-31 1992-10-06 University Patents, Inc. Process for preparing polynucleotides
US5262530A (en) * 1988-12-21 1993-11-16 Applied Biosystems, Inc. Automated system for polynucleotide synthesis and purification
WO1995024485A2 (en) * 1994-03-07 1995-09-14 Merck & Co., Inc. Coordinate in vivo gene expression
US5580859A (en) * 1989-03-21 1996-12-03 Vical Incorporated Delivery of exogenous DNA sequences in a mammal
US5663153A (en) * 1994-03-25 1997-09-02 Isis Pharmaceuticals, Inc. Immune stimulation by phosphorothioate oligonucleotide analogs
US5700642A (en) * 1995-05-22 1997-12-23 Sri International Oligonucleotide sizing using immobilized cleavable primers
US5965720A (en) * 1994-03-18 1999-10-12 Lynx Therapeutics, Inc. Oligonucleotide N3'→P5' phosphoramidates
US5965726A (en) * 1992-03-27 1999-10-12 The United States Of America As Represented By The Department Of Health And Human Services Method of eliminating inhibitory/ instability regions of mRNA
US6214804B1 (en) * 1989-03-21 2001-04-10 Vical Incorporated Induction of a protective immune response in a mammal by injecting a DNA sequence
US6239116B1 (en) * 1994-07-15 2001-05-29 University Of Iowa Research Foundation Immunostimulatory nucleic acid molecules
US6322967B1 (en) * 1996-02-23 2001-11-27 Aviron Recombinant tryptophan mutants of influenza
US6406705B1 (en) * 1997-03-10 2002-06-18 University Of Iowa Research Foundation Use of nucleic acids containing unmethylated CpG dinucleotide as an adjuvant
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
US6500919B1 (en) * 1994-02-16 2002-12-31 Introgene B.V. Melanoma associated antigenic polypeptide, epitopes thereof and vaccines against melanoma
US6514948B1 (en) * 1999-07-02 2003-02-04 The Regents Of The University Of California Method for enhancing an immune response
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
US6589940B1 (en) * 1997-06-06 2003-07-08 Dynavax Technologies Corporation Immunostimulatory oligonucleotides, compositions thereof and methods of use thereof
US20030143204A1 (en) * 2001-07-27 2003-07-31 Lewis David L. Inhibition of RNA function by delivery of inhibitors to animal cells
US6610661B1 (en) * 1996-10-11 2003-08-26 The Regents Of The University Of California Immunostimulatory polynucleotide/immunomodulatory molecule conjugates
US20030170273A1 (en) * 2001-10-03 2003-09-11 O'hagan Derek Adjuvant compositions
US20030225016A1 (en) * 2001-06-21 2003-12-04 Fearon Karen L. Chimeric immunomodulatory compounds and methods of using the same - III
US6664066B2 (en) * 2000-06-23 2003-12-16 Wyeth Holdings Corporation Modified Morbillivirus V proteins
US20040005667A1 (en) * 2000-07-03 2004-01-08 Giuloi Ratti Immunisation against chlamydia pneumoniae
US20040106567A1 (en) * 1999-09-07 2004-06-03 Hagstrom James E. Intravascular delivery of non-viral nucleic acid
US20050037494A1 (en) * 2001-10-04 2005-02-17 Markus Hecker Inhibition of stat-1
US20050059624A1 (en) * 2001-12-19 2005-03-17 Ingmar Hoerr Application of mRNA for use as a therapeutic against tumour diseases
US20050064596A1 (en) * 2001-04-23 2005-03-24 Gudula Riemen Buffer solution for electroporation and a method comprising the use of the same
US20050250723A1 (en) * 2002-07-03 2005-11-10 Ingmar Hoerr Immunostimulation by chemically modified RNA
US20060172966A1 (en) * 2002-04-04 2006-08-03 Coley Pharmaceutical Gmbh Immunostimulatory G, U-containing oligoribonucleotides
US20060241076A1 (en) * 2005-04-26 2006-10-26 Coley Pharmaceutical Gmbh Modified oligoribonucleotide analogs with enhanced immunostimulatory activity
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
US20080025944A1 (en) * 2004-09-02 2008-01-31 Cure Vac Gmbh Combination Therapy for Immunostimulation
US20080171711A1 (en) * 2004-07-21 2008-07-17 Curevac Gmbh Mrna Mixture For Vaccinating Against Tumoral Diseases

Family Cites Families (79)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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
JPS6173986A (en) * 1984-09-19 1986-04-16 塩野義製薬株式会社 Gene codon sequence teaching aid
US4959314A (en) * 1984-11-09 1990-09-25 Cetus Corporation Cysteine-depleted muteins of biologically active proteins
US5116943A (en) * 1985-01-18 1992-05-26 Cetus Corporation Oxidation-resistant muteins of Il-2 and other protein
US5017691A (en) * 1986-07-03 1991-05-21 Schering Corporation Mammalian interleukin-4
US5091309A (en) 1986-01-16 1992-02-25 Washington University Sindbis virus vectors
US4879111A (en) * 1986-04-17 1989-11-07 Cetus Corporation Treatment of infections with lymphokines
US5082767A (en) * 1989-02-27 1992-01-21 Hatfield G Wesley Codon pair utilization
US6673776B1 (en) 1989-03-21 2004-01-06 Vical Incorporated Expression of exogenous polynucleotide sequences in a vertebrate, mammal, fish, bird or human
DE69032284T2 (en) 1989-03-21 1998-10-08 Vical Inc EXPRESSION OF EXOGENOUS POLYNUCLEOTIDE SEQUENCES IN VERTEBLE
SE9003978D0 (en) 1990-12-13 1990-12-13 Henrik Garoff DNA EXPRESSION SYSTEM BASED ON A VIRUS REPLICATION
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
EP0609739A1 (en) 1993-02-02 1994-08-10 American Cyanamid Company Method of reversing immunosuppression in vaccines
GB9406498D0 (en) * 1994-03-31 1994-05-25 Smithkline Beecham Biolog Novel compounds
US5786464C1 (en) * 1994-09-19 2012-04-24 Gen Hospital Corp Overexpression of mammalian and viral proteins
US5795737A (en) * 1994-09-19 1998-08-18 The General Hospital Corporation High level expression of proteins
US6051429A (en) * 1995-06-07 2000-04-18 Life Technologies, Inc. Peptide-enhanced cationic lipid transfections
US6265387B1 (en) * 1995-10-11 2001-07-24 Mirus, Inc. Process of delivering naked DNA into a hepatocyte via bile duct
US6534312B1 (en) * 1996-02-22 2003-03-18 Merck & Co., Inc. Vaccines comprising synthetic genes
US5853719A (en) 1996-04-30 1998-12-29 Duke University Methods for treating cancers and pathogen infections using antigen-presenting cells loaded with RNA
CA2258568A1 (en) * 1996-06-21 1997-12-24 Merck & Co., Inc. Vaccines comprising synthetic genes
US6114148C1 (en) * 1996-09-20 2012-05-01 Gen Hospital Corp High level expression of proteins
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
US6204250B1 (en) * 1996-11-22 2001-03-20 The Mount Sinai Medical Center Of The City Of New York Immunization of infants
EP0855184A1 (en) * 1997-01-23 1998-07-29 Grayson B. Dr. Lipford Pharmaceutical composition comprising a polynucleotide and an antigen especially for vaccination
EP0969862B1 (en) * 1997-02-07 2006-10-18 Merck & Co., Inc. Synthetic hiv gag genes
ATE432348T1 (en) 1997-06-06 2009-06-15 Univ California INHIBITORS OF IMMUNO-STIMULATIVE DNA SEQUENCE ACTIVITY
WO1999002694A1 (en) * 1997-07-09 1999-01-21 The University Of Queensland Nucleic acid sequence and method for selectively expressing a protein in a target cell or tissue
EP2292771A3 (en) 1997-09-19 2011-07-27 Life Technologies Corporation Sense mRNA therapy
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
ATE550042T1 (en) * 1997-11-20 2012-04-15 Vical Inc TREATMENT OF CANCER USING CYTOKINE-EXPRESSING POLYNUCLEOTIDES AND COMPOSITIONS THEREOF
US6432925B1 (en) 1998-04-16 2002-08-13 John Wayne Cancer Institute RNA cancer vaccine and methods for its use
IL125608A0 (en) * 1998-07-30 1999-03-12 Yeda Res & Dev Tumor associated antigen peptides and use of same as anti-tumor vaccines
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
US6734172B2 (en) * 1998-11-18 2004-05-11 Pacific Northwest Research Institute Surface receptor antigen vaccines
US6602705B1 (en) * 1998-12-31 2003-08-05 Chiron Corporation Expression of HIV polypeptides and production of virus-like particles
AU2487300A (en) 1998-12-31 2000-07-31 Chiron Corporation Polynucleotides encoding antigenic hiv type c polypeptides, polypeptides and uses thereof
US6537557B1 (en) * 1999-03-26 2003-03-25 The United States Of America As Represented By The Secretary Of The Army Attenuated dengue-4 virus vaccine
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
AU776268B2 (en) 1999-06-08 2004-09-02 Aventis Pasteur Immunostimulant oligonucleotide
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
DE60016765T2 (en) * 1999-08-25 2005-11-24 Merck & Co., Inc. SYNTHETIC PAPILLOMA GENES WHICH ARE OPTIMIZED FOR EXPRESSION IN HUMAN CELLS
US20050112141A1 (en) * 2000-08-30 2005-05-26 Terman David S. Compositions and methods for treatment of neoplastic disease
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
WO2002064799A2 (en) 1999-09-28 2002-08-22 Transkaryotic Therapies, Inc. Optimized messenger rna
AU2001251407A1 (en) * 2000-04-07 2001-10-23 The Regents Of The University Of California Synergistic improvements to polynucleotide vaccines
AU2001275294A1 (en) 2000-06-07 2001-12-17 Biosynexus Incorporated. Immunostimulatory RNA/DNA hybrid molecules
GB0017990D0 (en) * 2000-07-21 2000-09-13 Glaxo Group Ltd Papilloma virus sequences
KR100874552B1 (en) * 2000-07-21 2008-12-16 글락소 그룹 리미티드 Codon-Optimized Papilloma Virus Sequences
US20030092145A1 (en) * 2000-08-24 2003-05-15 Vic Jira Viral vaccine composition, process, and methods of use
CA2425152A1 (en) * 2000-10-04 2002-04-11 The Trustees Of The University Of Pennsylvania Highly expressible genes
AU2002215389A1 (en) 2000-10-11 2002-08-28 Transkaryotic Therapies, Inc. Optimized messenger rna
US20030077604A1 (en) * 2000-10-27 2003-04-24 Yongming Sun Compositions and methods relating to breast specific genes and proteins
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
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
AUPR446801A0 (en) * 2001-04-18 2001-05-17 University Of Queensland, The Novel compositions and uses therefor
US20030039636A1 (en) * 2001-05-01 2003-02-27 Genetix Pharmaceuticals, Inc. Novel self-inactivating (SIN) lentiviral vectors
WO2002099035A2 (en) * 2001-05-31 2002-12-12 Chiron Corporation Chimeric alphavirus replicon particles
US20030232324A1 (en) * 2001-05-31 2003-12-18 Chiron Corporation Chimeric alphavirus replicon particles
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
US7547551B2 (en) * 2001-06-21 2009-06-16 University Of Antwerp. Transfection of eukaryontic cells with linear polynucleotides by electroporation
AU2003235707A1 (en) 2002-01-18 2003-07-30 Curevac Gmbh Immunogenic preparations and vaccines on the basis of mrna
GB0202569D0 (en) * 2002-02-04 2002-03-20 Oxford Biomedica Ltd Delivery means
CA2474709A1 (en) 2002-02-04 2003-08-14 Biomira, Inc. Immunostimulatory, covalently lipidated oligonucleotides
SG165155A1 (en) 2002-02-26 2010-10-28 Maxygen Inc Novel flavivirus antigens
CN103540568A (en) 2002-04-26 2014-01-29 米迪缪尼有限公司 Multi plasmid system for the production of influenza virus
DE60336736D1 (en) * 2002-07-16 2011-05-26 VGX Pharmaceuticals LLC CODON-OPTIMIZED SYNTHETIC PLASMIDE
EP1393745A1 (en) 2002-07-29 2004-03-03 Hybridon, Inc. Modulation of immunostimulatory properties of oligonucleotide-based compounds by optimal presentation of 5'ends
US6943015B2 (en) * 2002-12-12 2005-09-13 Ilya Frolov Large scale production of packaged alphavirus replicons
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
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
DK176326B1 (en) 2003-05-14 2007-08-13 Smidth As F L Device for dividing a stream of particulate or powdered material into partial streams
DE10335833A1 (en) * 2003-08-05 2005-03-03 Curevac Gmbh Transfection of blood cells with mRNA for immune stimulation and gene therapy
HUE043492T2 (en) 2005-08-23 2019-08-28 Univ Pennsylvania Rna containing modified nucleosides and methods of use thereof
EP3041934A1 (en) 2013-09-03 2016-07-13 Moderna Therapeutics, Inc. Chimeric polynucleotides

Patent Citations (44)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3906092A (en) * 1971-11-26 1975-09-16 Merck & Co Inc Stimulation of antibody response
US4458066A (en) * 1980-02-29 1984-07-03 University Patents, Inc. Process for preparing polynucleotides
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
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
US5153319A (en) * 1986-03-31 1992-10-06 University Patents, Inc. Process for preparing polynucleotides
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
US6214804B1 (en) * 1989-03-21 2001-04-10 Vical Incorporated Induction of a protective immune response in a mammal by injecting a DNA sequence
US5580859A (en) * 1989-03-21 1996-12-03 Vical Incorporated Delivery of exogenous DNA sequences in a mammal
US5965726A (en) * 1992-03-27 1999-10-12 The United States Of America As Represented By The Department Of Health And Human Services Method of eliminating inhibitory/ instability regions of mRNA
US6500919B1 (en) * 1994-02-16 2002-12-31 Introgene B.V. Melanoma associated antigenic polypeptide, epitopes thereof and vaccines against melanoma
WO1995024485A2 (en) * 1994-03-07 1995-09-14 Merck & Co., Inc. Coordinate in vivo gene expression
US5965720A (en) * 1994-03-18 1999-10-12 Lynx Therapeutics, Inc. Oligonucleotide N3'→P5' phosphoramidates
US5663153A (en) * 1994-03-25 1997-09-02 Isis Pharmaceuticals, Inc. Immune stimulation by phosphorothioate oligonucleotide analogs
US6239116B1 (en) * 1994-07-15 2001-05-29 University Of Iowa Research Foundation Immunostimulatory nucleic acid molecules
US5700642A (en) * 1995-05-22 1997-12-23 Sri International Oligonucleotide sizing using immobilized cleavable primers
US6322967B1 (en) * 1996-02-23 2001-11-27 Aviron Recombinant tryptophan mutants of influenza
US7208478B2 (en) * 1996-10-11 2007-04-24 The Regents Of The University Of California Immunostimulatory polynucleotide/immunomodulatory molecule conjugates
US6610661B1 (en) * 1996-10-11 2003-08-26 The Regents Of The University Of California Immunostimulatory polynucleotide/immunomodulatory molecule conjugates
US6406705B1 (en) * 1997-03-10 2002-06-18 University Of Iowa Research Foundation Use of nucleic acids containing unmethylated CpG dinucleotide as an adjuvant
US6589940B1 (en) * 1997-06-06 2003-07-08 Dynavax Technologies Corporation Immunostimulatory oligonucleotides, compositions thereof and methods of use thereof
US6514948B1 (en) * 1999-07-02 2003-02-04 The Regents Of The University Of California Method for enhancing an immune response
US20040106567A1 (en) * 1999-09-07 2004-06-03 Hagstrom James E. Intravascular delivery of non-viral nucleic acid
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
US6664066B2 (en) * 2000-06-23 2003-12-16 Wyeth Holdings Corporation Modified Morbillivirus V proteins
US20040005667A1 (en) * 2000-07-03 2004-01-08 Giuloi Ratti Immunisation against chlamydia pneumoniae
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
US20050064596A1 (en) * 2001-04-23 2005-03-24 Gudula Riemen Buffer solution for electroporation and a method comprising the use of the same
US20030225016A1 (en) * 2001-06-21 2003-12-04 Fearon Karen L. Chimeric immunomodulatory compounds and methods of using the same - III
US20030143204A1 (en) * 2001-07-27 2003-07-31 Lewis David L. Inhibition of RNA function by delivery of inhibitors to animal cells
US20030170273A1 (en) * 2001-10-03 2003-09-11 O'hagan Derek Adjuvant compositions
US20050037494A1 (en) * 2001-10-04 2005-02-17 Markus Hecker Inhibition of stat-1
US20050059624A1 (en) * 2001-12-19 2005-03-17 Ingmar Hoerr Application of mRNA for use as a therapeutic against tumour diseases
US20060172966A1 (en) * 2002-04-04 2006-08-03 Coley Pharmaceutical Gmbh Immunostimulatory G, U-containing oligoribonucleotides
US20050250723A1 (en) * 2002-07-03 2005-11-10 Ingmar Hoerr Immunostimulation by chemically modified RNA
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
US20080171711A1 (en) * 2004-07-21 2008-07-17 Curevac Gmbh Mrna Mixture For Vaccinating Against Tumoral Diseases
US20080025944A1 (en) * 2004-09-02 2008-01-31 Cure Vac Gmbh Combination Therapy for Immunostimulation
US20060241076A1 (en) * 2005-04-26 2006-10-26 Coley Pharmaceutical Gmbh Modified oligoribonucleotide analogs with enhanced immunostimulatory activity

Non-Patent Citations (6)

* Cited by examiner, † Cited by third party
Title
Alberts et al. Molecular biology of the Cell, 3rd ed. Garland Publishing, Inc. New York, NY, 1994, pages 368-369. *
Cramer et al. Functional association between promoter structure and transcript alternative splicing. PNAS, Vol. 94, pages 11456-11460, October 1997. *
Gram et al. Immunological analysis of a Lactococcus lactis-based DNA vaccine expressing HIV gp120. Genetic Vaccine and Therapy, Vol. 5, No. 3, pages 1/11-11/11, January 2007. *
Huddleston et al. The sequence of the nucleoprotein gene of human influenza A virus, strain a/NT/60/68. Nucleic Acids Research, Vol. 10, No. 3, pages 1029-1038, 1982. *
Martinon et al. Induction of virus-specific cytotoxic T lymphocytes in vivo by liposome-entrapped mRNA. European Journal of Immunology, Vol. 23, pages 1719-1722, 1993. *
Reyes-Sandoval et al. DNA vaccines. Current Molecular Medicine, Vol. 1, pages 217-243, May 2001. *

Cited By (154)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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WO2015034928A1 (en) 2013-09-03 2015-03-12 Moderna Therapeutics, Inc. Chimeric polynucleotides
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US11697816B2 (en) 2013-12-30 2023-07-11 CureVac SE Artificial nucleic acid molecules
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US10709779B2 (en) 2014-04-23 2020-07-14 Modernatx, Inc. Nucleic acid vaccines
US10022435B2 (en) 2014-04-23 2018-07-17 Modernatx, Inc. Nucleic acid vaccines
US9872900B2 (en) 2014-04-23 2018-01-23 Modernatx, Inc. Nucleic acid vaccines
EP4159741A1 (en) 2014-07-16 2023-04-05 ModernaTX, Inc. Method for producing a chimeric polynucleotide encoding a polypeptide having a triazole-containing internucleotide linkage
US11254951B2 (en) 2014-12-30 2022-02-22 Curevac Ag Artificial nucleic acid molecules
US11364292B2 (en) 2015-07-21 2022-06-21 Modernatx, Inc. CHIKV RNA vaccines
US10702597B2 (en) 2015-07-21 2020-07-07 Modernatx, Inc. CHIKV RNA vaccines
US11007260B2 (en) 2015-07-21 2021-05-18 Modernatx, Inc. Infectious disease vaccines
US10449244B2 (en) 2015-07-21 2019-10-22 Modernatx, Inc. Zika RNA vaccines
US10849920B2 (en) 2015-10-05 2020-12-01 Modernatx, Inc. Methods for therapeutic administration of messenger ribonucleic acid drugs
US11590157B2 (en) 2015-10-05 2023-02-28 Modernatx, Inc. Methods for therapeutic administration of messenger ribonucleic acid drugs
US10563195B2 (en) 2015-10-16 2020-02-18 Modernatx, Inc. Phosphate replacement mRNA cap analogs
US10570388B2 (en) 2015-10-16 2020-02-25 Modernatx, Inc. Phosphate replacement MRNA cap analogs
US11866754B2 (en) 2015-10-16 2024-01-09 Modernatx, Inc. Trinucleotide mRNA cap analogs
US10428106B2 (en) 2015-10-16 2019-10-01 Modernatx, Inc. Phosphate replacement mRNA cap analogs
US10933127B2 (en) 2015-10-22 2021-03-02 Modernatx, Inc. Betacoronavirus mRNA vaccine
US10064934B2 (en) 2015-10-22 2018-09-04 Modernatx, Inc. Combination PIV3/hMPV RNA vaccines
US10383937B2 (en) 2015-10-22 2019-08-20 Modernatx, Inc. Human cytomegalovirus RNA vaccines
US11484590B2 (en) 2015-10-22 2022-11-01 Modernatx, Inc. Human cytomegalovirus RNA vaccines
US10517940B2 (en) 2015-10-22 2019-12-31 Modernatx, Inc. Zika virus RNA vaccines
US10675342B2 (en) 2015-10-22 2020-06-09 Modernatx, Inc. Chikungunya virus RNA vaccines
US11872278B2 (en) 2015-10-22 2024-01-16 Modernatx, Inc. Combination HMPV/RSV RNA vaccines
US10543269B2 (en) 2015-10-22 2020-01-28 Modernatx, Inc. hMPV RNA vaccines
US10272150B2 (en) 2015-10-22 2019-04-30 Modernatx, Inc. Combination PIV3/hMPV RNA vaccines
US10493143B2 (en) 2015-10-22 2019-12-03 Modernatx, Inc. Sexually transmitted disease vaccines
US11643441B1 (en) 2015-10-22 2023-05-09 Modernatx, Inc. Nucleic acid vaccines for varicella zoster virus (VZV)
US10064935B2 (en) 2015-10-22 2018-09-04 Modernatx, Inc. Human cytomegalovirus RNA vaccines
US11235052B2 (en) 2015-10-22 2022-02-01 Modernatx, Inc. Chikungunya virus RNA vaccines
US10716846B2 (en) 2015-10-22 2020-07-21 Modernatx, Inc. Human cytomegalovirus RNA vaccines
US11278611B2 (en) 2015-10-22 2022-03-22 Modernatx, Inc. Zika virus RNA vaccines
US10238731B2 (en) 2015-10-22 2019-03-26 Modernatx, Inc. Chikagunya virus RNA vaccines
US10702599B2 (en) 2015-10-22 2020-07-07 Modernatx, Inc. HPIV3 RNA vaccines
US10702600B1 (en) 2015-10-22 2020-07-07 Modernatx, Inc. Betacoronavirus mRNA vaccine
US10124055B2 (en) 2015-10-22 2018-11-13 Modernatx, Inc. Zika virus RNA vaccines
WO2017180587A2 (en) 2016-04-11 2017-10-19 Obsidian Therapeutics, Inc. Regulated biocircuit systems
US11541113B2 (en) 2016-10-21 2023-01-03 Modernatx, Inc. Human cytomegalovirus vaccine
US11197927B2 (en) 2016-10-21 2021-12-14 Modernatx, Inc. Human cytomegalovirus vaccine
US10695419B2 (en) 2016-10-21 2020-06-30 Modernatx, Inc. Human cytomegalovirus vaccine
EP4035659A1 (en) 2016-11-29 2022-08-03 PureTech LYT, Inc. Exosomes for delivery of therapeutic agents
US11103578B2 (en) 2016-12-08 2021-08-31 Modernatx, Inc. Respiratory virus nucleic acid vaccines
US10273269B2 (en) 2017-02-16 2019-04-30 Modernatx, Inc. High potency immunogenic zika virus compositions
US11918644B2 (en) 2017-03-15 2024-03-05 Modernatx, Inc. Varicella zoster virus (VZV) vaccine
US11464848B2 (en) 2017-03-15 2022-10-11 Modernatx, Inc. Respiratory syncytial virus vaccine
US11045540B2 (en) 2017-03-15 2021-06-29 Modernatx, Inc. Varicella zoster virus (VZV) vaccine
US11752206B2 (en) 2017-03-15 2023-09-12 Modernatx, Inc. Herpes simplex virus vaccine
US11905525B2 (en) 2017-04-05 2024-02-20 Modernatx, Inc. Reduction of elimination of immune responses to non-intravenous, e.g., subcutaneously administered therapeutic proteins
US11207398B2 (en) 2017-09-14 2021-12-28 Modernatx, Inc. Zika virus mRNA vaccines
US10653767B2 (en) 2017-09-14 2020-05-19 Modernatx, Inc. Zika virus MRNA vaccines
US11911453B2 (en) 2018-01-29 2024-02-27 Modernatx, Inc. RSV RNA vaccines
WO2019241315A1 (en) 2018-06-12 2019-12-19 Obsidian Therapeutics, Inc. Pde5 derived regulatory constructs and methods of use in immunotherapy
WO2020086742A1 (en) 2018-10-24 2020-04-30 Obsidian Therapeutics, Inc. Er tunable protein regulation
US11351242B1 (en) 2019-02-12 2022-06-07 Modernatx, Inc. HMPV/hPIV3 mRNA vaccine composition
US11406703B2 (en) 2020-08-25 2022-08-09 Modernatx, Inc. Human cytomegalovirus vaccine
WO2023034856A1 (en) * 2021-08-31 2023-03-09 New York University COMPOSITIONS AND METHODS FOR SWITCHING ANTIBIOTIC RESISTANCE MARKERS PROGRESSIVELY FOR INTEGRATION (mSwAP-In)

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