WO2001058474A2 - Microencapsulation and sustained release of biologically active agent - Google Patents

Microencapsulation and sustained release of biologically active agent Download PDF

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Publication number
WO2001058474A2
WO2001058474A2 PCT/US2001/003160 US0103160W WO0158474A2 WO 2001058474 A2 WO2001058474 A2 WO 2001058474A2 US 0103160 W US0103160 W US 0103160W WO 0158474 A2 WO0158474 A2 WO 0158474A2
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WO
WIPO (PCT)
Prior art keywords
sustained release
acid
polymer
biologically active
release composition
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PCT/US2001/003160
Other languages
French (fr)
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WO2001058474A3 (en
Inventor
Mark A. Tracy
Kevin L. Ward
David S. Scher
J. Keith Johnson
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Alkermes Controlled Therapeutics, Inc.
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Application filed by Alkermes Controlled Therapeutics, Inc. filed Critical Alkermes Controlled Therapeutics, Inc.
Priority to AU33175/01A priority Critical patent/AU767632B2/en
Priority to JP2001557582A priority patent/JP2003522156A/en
Priority to EP01905277A priority patent/EP1253936A2/en
Priority to CA002400186A priority patent/CA2400186A1/en
Publication of WO2001058474A2 publication Critical patent/WO2001058474A2/en
Publication of WO2001058474A3 publication Critical patent/WO2001058474A3/en

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/30Macromolecular organic or inorganic compounds, e.g. inorganic polyphosphates
    • A61K47/34Macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds, e.g. polyesters, polyamino acids, polysiloxanes, polyphosphazines, copolymers of polyalkylene glycol or poloxamers
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides
    • A61K38/16Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • A61K38/17Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • A61K38/19Cytokines; Lymphokines; Interferons
    • A61K38/21Interferons [IFN]
    • A61K38/215IFN-beta
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/14Particulate form, e.g. powders, Processes for size reducing of pure drugs or the resulting products, Pure drug nanoparticles
    • A61K9/16Agglomerates; Granulates; Microbeadlets ; Microspheres; Pellets; Solid products obtained by spray drying, spray freeze drying, spray congealing,(multiple) emulsion solvent evaporation or extraction
    • A61K9/1605Excipients; Inactive ingredients
    • A61K9/1629Organic macromolecular compounds
    • A61K9/1641Organic macromolecular compounds obtained otherwise than by reactions only involving carbon-to-carbon unsaturated bonds, e.g. polyethylene glycol, poloxamers
    • A61K9/1647Polyesters, e.g. poly(lactide-co-glycolide)

Definitions

  • ⁇ -IFN Numerous acid-stable or free sulfhydryl-containing proteins, such as ⁇ -IFN, exhibit biological activity in vivo, which renders them useful as medicaments in therapy.
  • MS Multiple Sclerosis
  • BETASERON ® Interferon beta- lb
  • MS is currently administered for the treatment of MS at a dose of 9 million IU, injected subcutaneously three time a week.
  • administration of biologically active acid-stable or free sulfhydryl-containing proteins requires frequent subcutaneous injections, which result in fluctuating levels of medicament and poor patient compliance.
  • biodegradable materials such as polymers
  • encapsulating the medicament can be employed as a sustained delivery system.
  • the use of biodegradable polymers for example, in the form of microparticles or microcarriers, can provide a sustained release of medicament, by utilizing the inherent biodegradabihty of the polymer to control the release of the medicament thereby providing a more consistent, sustained level of medicament and improved patient compliance.
  • these sustained release devices can exhibit high initial bursts of medicament and minimal release thereafter.
  • the medicament due to the high solution concentration of medicament within and localized around these sustained release devices, the medicament can aggregate thereby increasing immunogenicity in vivo and interfering with the desired release profile for the medicament.
  • sustained release compositions can result in loss of activity of the medicament due to the instability of the medicament and the degradative effects of the processing steps.
  • adsorption of the biologically active acid-stable or free sulfhydryl-containing proteins onto the polymer surface can inhibit the release from the sustained release composition.
  • compositions for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins and methods of forming and using said compositions, for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, in particular, ⁇ -JTN.
  • the sustained release compositions of this invention comprise a biocompatible polymer having dispersed therein a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, and at least one surfactant.
  • the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation of the sustained release composition comprises at least one biologically active acid-stable or free sulfhydryl-containing protein, at least one disaccharide and at least one acidic excipient
  • the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation further comprises a water soluble polymer.
  • the method of the invention for forming a composition for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, includes dissolving a biocompatible polymer in a polymer solvent to form a polymer solution, adding at least one surfactant and the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation to the polymer solution, and then solidifying the polymer to form a polymer matrix containing the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation and the surfactant dispersed therein.
  • the method of using the sustained release composition of the present invention comprises providing a therapeutically effective blood level of biologically active acid- stable or free sulfhydryl-containing protein, in particular, ⁇ -IFN in a subject for a sustained period by administering to the subject a dose of the sustained release composition described herein.
  • the sustained release composition of the invention overcomes the problem of aggregation of the biologically active acid-stable or free sulfhydryl-containing protein, for example, ⁇ -IFN which can occur during processing and/or following administration in vivo, when the biologically active protein is not stabilized. Further, loss of activity of the biologically active protein due to instability of the medicament, and chemical interactions between the biologically active protein and other components, which are contained in or used in formulating the sustained release composition, are minimized.
  • the advantages of the sustained release formulation for biologically active acid- stable or free sulfhydryl-containing proteins, in particular, ⁇ -IFN as described herein, include increased patient compliance and acceptance by eliminating the need for repetitive administration, increased therapeutic benefit by eliminating fluctuations in active agent concentration in blood levels by providing a desirable release profile, and a potential lowering of the total amount of biologically active acid-stable or free sulfhydryl-containing protein necessary to provide a therapeutic benefit, by reducing these fluctuations.
  • Figure 1 is a graph of the % of ⁇ -IFN dissolved following incubation at 37°C for one hour in pH 7 phosphate buffer for particular ⁇ -IFN formulations described in Table 4.
  • Figure 2 is a graph of the % of ⁇ -IFN adsorbed on various biocompatible polymer microparticles following incubation of the microparticles with stabilized ⁇ -IFN Formulation 24 of Table 4.
  • Figure 3 is a graph of the % of ⁇ -IFN adsorbed on polymer microparticles following incubation with a stabilized ⁇ -IFN and various surfactants.
  • Figure 4 is a graph of ⁇ -IFN serum concentration in rats receiving formulations containing excipients in the polymer phase to minimize adsorption of ⁇ -IFN to the biocompatible polymer matrix.
  • the sustained release compositions of this invention comprise a biocompatible polymer having dispersed therein a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, and at least one surfactant.
  • the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation of the sustained release composition comprises at least one biologically active acid-stable or free sulfhydryl-containing protein, at least one disaccharide and at least one acidic excipient.
  • the stabilized biologically active protein formulation further comprises a water soluble polymer.
  • the method of the invention for forming a composition for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, includes dissolving a biocompatible polymer in a polymer solvent to form a polymer solution, adding a surfactant and the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, to the polymer solution, and then solidifying the polymer to form a polymer matrix containing the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation and surfactant dispersed therein.
  • the method of using the sustained release composition of the present invention comprises providing a therapeutically effective blood level of biologically active acid- stable or free sulfhydryl-containing protein, in particular, ⁇ -EFN in a subject for a sustained period by administering to the subject a dose of the sustained release composition described herein.
  • Bioly active acid-stable or free sulfhydryl-containing protein as that term is used herein are proteins which are stable under acidic conditions or contain a free sulfhydryl group.
  • Acid-stable or free sulfhydryl-containing proteins suitable for use in the invention include, but are not limited to, IL-2, basic fibroblast growth factor, granulocyte colony stimulating factor, ⁇ -TFN and muteins of ⁇ -EFN, for example, IFN- ⁇ serl7 , MGDF (megakaryocyte growth and differentation factor), TPA (tissue plasminogen activator), IGF-1 (insulin-like growth factor- 1) and IL-l ⁇ (interleukin -l ⁇ ).
  • Proteins containing a free sulfhydryl can be determined using, reagents which detect the presence of the free sulfhydryl.
  • a reagent is Ellman's reagent (5,5'- dithiobis (2-nitrobenzoic acid)) also referred to as DTNB.
  • DTNB reacts with free sulfhydyls to give mixed disulfides plus 2-nitro-5-thiobenzoic acid (TNB) which can be quantified by its absorbance at 412 nm.
  • Acid stable proteins can be determined by incubating the protein under acidic conditions for a predetermined period of time and then evaluating the integrity of the protein by, for example, electrophoresis and/or circular dichroism. Proteins which do not exhibit significant degradation can be defined as acid stable. Degradation includes, for example, dimerization, particularly oxidative dimerization, and/or aggregation of the protein which can lead to an undesirable decrease in solubility. Preferably dimer formation is less than about 10%.
  • ⁇ -IFN or " ⁇ -interferon” as that term is used herein is an acid-stable or free sulfhydryl-containing protein which is synthesized by mammalian cells in response to viral infection, immune stimulation and other factors.
  • ⁇ -IFN has a molecular weight of between 18,000 and 23,000 daltons depending on the particular form, and is characterized by three cysteine amino acids, two of which are linked in a disulf ⁇ de bond leaving one remaining as a free sulfhydryl (cysteine 17).
  • ⁇ -IFN includes ⁇ -IFN derived both from natural sources, including human, bovine, canine, feline, porcine and equine, and by recombinant DNA techniques. The term also includes modified forms of ⁇ -interferon, for example, wherein glycosylation, methylation, substitution and/or deletion of a specified number of amino acids has occurred.
  • IFN- ⁇ serl7 refers to ⁇ -IFN in which the seventeenth amino acid present in the sequence (cysteine) has been replaced by serine.
  • a sustained release of biologically active acid-stable or free sulfhydryl-containing protein is a release of the protein from the sustained release composition of the invention which occurs over a period which is longer than that period during which a biologically significant amount of the protein, for example, ⁇ -IFN would be available following direct administration of a solution of the protein. It is preferred that a sustained release be a release of acid-stable or free sulfhydryl-containing protein which occurs over a period of greater than two days.
  • a sustained release of acid-stable or free sulfhydryl-containing protein from a polymeric matrix can be a continuous or a discontinuous release, with relatively constant or varying rates of release.
  • a “therapeutically or prophylactically effective amount”, as used herein, is the amount of the composition for the sustained release of a biologically active acid-stable or free sulfhydryl-containing protein, for example, ⁇ -IFN, necessary to elicit the desired biological response following administration.
  • Stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation refers to a biologically active acid-stable or free sulfhydryl-containing protein, for example, ⁇ -TFN which can be stabilized against degradation, aggregation, loss of potency and/or loss of biological activity, all of which can occur during formation of the sustained release composition, and prior to and/or during in vivo release.
  • ⁇ -TFN and other acid-stable or free sulfhydryl- containing proteins can aggregate to form a dimer which is not biologically active. The dimer can be formed during processing of the sustained release composition or following administration in vivo.
  • formation of covalent aggregates can result from intermolecular disulfide formation.
  • interactions between the biologically active acid-stable or free sulfhydryl-containing protein and the biocompatible polymer of the sustained release composition can shorten the period of sustained release.
  • ⁇ -IFN adsorbs onto the polymer of the sustained release composition resulting in an undesirable release profile.
  • proteins which are acid-stable can be significantly degraded when exposed in vivo to physiological pH (7.4) for sustained periods of time.
  • Stabilization of the biologically active acid-stable or free sulfhydryl-containing protein, for example, ⁇ -IFN can be accomplished, for example, by the use of a particular combination of stabilizing agents.
  • a stabilizing agent as that term is used herein, is any agent which binds or interacts in a covalent or non-covalent manner, or is included with the protein, for example, ⁇ -IFN to stabilize against degradation, loss of post hydration solubility, loss of potency and/or loss of biological activity.
  • Stabilizing agents can also be added to the sustained release composition which minimize the undesired interaction of the protein with the biocompatible polymer, for example, adsorption of the acid-stable or free sulfhydryl-containing protein to the surface of the biocompatible polymer of the sustained release composition.
  • a “stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation,” as defined herein, comprises at least one acid-stable or free sulfhydryl - containing protein in combination with at least one disaccharide, and at least one acidic excipient.
  • at least one water soluble polymer can also be present in the stabilized protein formulation.
  • the sustained release composition comprises the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, a biocompatible polymer and at least one surfactant which is dispersed in the polymer phase.
  • the water soluble polymer, optionally present in the stabilized biologically active protein formulation can in some instances be the same as the surfactant present in the polymer phase.
  • the amount of biologically active acid-stable or free sulfhydryl-containing protein in the stabilized biologically active protein formulation can range from about 0.5% (w/w) to about 50%) (w/w) of the dry stabilized biologically active protein formulation. For example, from about 0.5% (w/w) to about 30% (w/w), or more specifically from about 2% (w/w) to about 20% (w/w).
  • Acidic excipient refers to any organic acid. These excipients can be added as the acid, or as the salt form of the conjugate base of the acid.
  • the acidic excipient citric acid can be added either in the acid form, citric acid, or as the salt form of the conjugate base, for example, the mono-,di-, or trisodium salt of the citric acid.
  • Suitable acidic excipients include citric acid, ascorbic acid, acetic acid, ethylenediaminetetraacetic acid, saturated fatty acids, bile acids, dicarboxylic acids, and combinations thereof.
  • Suitable saturated fatty acids include, but are not limited to butyric, caproic, caprylic, capric, lauric, myristic, palmitic, stearic and arachadic.
  • Suitable bile acids include cholic acid, taurocholic acid, deoxycholic acid, taurodeoxycholic acid, chenodeoxychohc acid, glycocholic acid, glycodeoxycholic, and lithocholic acid.
  • Suitable dicarboxylic acids include, but are not limited to oxalic, malonic, succinic, glutaric, adipic, pimelic, suberic, azelaic, and sebacic.
  • Particular acidic excipients suitable for use in the invention include amino acids.
  • Preferred amino acids are the acidic amino acids.
  • Acidic amino acids refers to amino acids having acidic side chains, thereby resulting in the presence of more acidic groups than basic groups.
  • aspartic acid and glutamic acid are acidic amino acids.
  • These particular amino acids are typically referred to as aspartate and glutamate to emphasize that their side chains are nearly always negatively charged at physiological pH.
  • the amount of acidic excipient present in the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation can range from about 1% (w/w) to about 50% (w/w) of the dry stabilized biologically active protein formulation, for example from about 2% (w/w) to about 20% (w/w).
  • a “disaccharide”, as defined herein, is a compound which upon hydrolysis yields two molecules of a monosaccharide. Suitable disaccharides include, but are not limited to, sucrose and trehalose. It is preferred that the disaccharide is non-reducing. The amount of disaccharide present in the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation can range from about 5% to about 95%>.
  • surfactants refers to any substance which can reduce the surface tension between immiscible liquids.
  • Suitable surfactants include, polymer surfactants, such as nonionic polymer surfactants, for example, poloxamers, polysorbates, polyethylene glycols (PEGs), polyoxyethylene fatty acid esters, polyvinylpyrrolidone and combinations thereof.
  • poloxamers suitable for use in the invention include poloxamer 407 sold under the trademark PLURONIC ® F127 and poloxamer 188 sold under the trademark PLURONIC ® F68, both available from BASF Wyandotte.
  • polysorbates suitable for use in the invention include polysorbate 20 sold under the trademark TWEEN ® 20 and polysorbate 80 sold under the trademark TWEEN ® 80.
  • Cationic surfactants for example, benzalkonium chloride, are also suitable for use in the invention.
  • bile salts such as deoxycholate and glycocholate are suitable as surfactants based on their highly effective nature as detergents. As described in the Experimental Section, the surfactant assists in minimizing adsorption of the acid-stable or free sulfhydryl-containing protein to the biocompatible polymer of the polymer matrix.
  • the presence of an acidic excipient in the polymer phase of the sustained release composition described herein can increase the anti-adsorption effect seen with the surfactant.
  • the amount of surfactant present in the polymer of the sustained release composition can range from about 1% w/w to about 40% w/w of the total weight of the composition.
  • a "water soluble polymer” as defined herein is any polymer which is soluble in water. In a preferred embodiment, the water soluble polymer is also soluble in the polymer solvent used in the process for preparing the sustained release composition described herein.
  • Water soluble polymers suitable for use in the invention include water soluble polysaccharides, for example, methyl cellulose, ethyl cellulose, ficoll and combinations thereof, and nonionic polymer surfactants such as poloxamers, for example poloxamer 407, poloxamer 188 and combinations thereof, and polysorbates, for example, polysorbate 80, polysorbate 20, polyethylene glycol polymers, polyvinylpyrrolidone, polyoxyethylene fatty acid esters and any combination thereof.
  • the water soluble polymer can range from about 0.5% (w/w) to about 40% (w/w) of the dry weight of the stabilized formulation.
  • the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation is stabilized ⁇ -IFN comprising ⁇ -EFN, glutamate and trehalose.
  • the ⁇ -IFN can be present in the stabilized biologically active ⁇ -IFN in a range of from about 1% w/w to about 30%> w/w of the dry weight of the stabilized ⁇ -IFN formulation.
  • the glutamate can be present in the stabilized biologically active ⁇ -IFN in a range of from about 1%> w/w to about 30%> w/w of the dry weight of the stabilized ⁇ -IFN formulation.
  • the trehalose can be present in the stabilized biologically active ⁇ -IFN in a range of from about 20%> w/w to about 90%> w/w of the dry weight of the stabilized ⁇ -TFN formulation.
  • the optional water soluble polymer when present it can be present in an amount from about 0.5%> w/w to about 40%> w/w of the dry weight of the stabilized ⁇ -IFN formulation.
  • Polymers suitable to form the sustained release composition of this invention are biocompatible polymers which can be either biodegradable or non-biodegradable polymers or blends or copolymers thereof.
  • a polymer is biocompatible if the polymer and any degradation products of the polymer are non-toxic to the recipient and also possess no significant deleterious or untoward effects on the recipient's body, such as an immuno logical reaction at the injection site.
  • Biodegradable as defined herein, means the composition will degrade or erode in vivo to form smaller chemical species. Degradation can result, for example, by enzymatic, chemical and physical processes.
  • Suitable biocompatible, biodegradable polymers include, for example, poly(lactides), poly(glycolides), poly(lactide-co- glycolides), poly(lactic acid)s, poly(glycolic acid)s, polycarbonates, polyesteramides, polyanydrides, poly(amino acids), polyorthoesters, poly(dioxanone)s, poly(alkylene alkylate)s, copolymers or polyethylene glycol and polyorthoester, biodegradable polyurethane, blends thereof, and copolymers thereof.
  • Suitable biocompatible, non-biodegradable polymers include non-biodegradable polymers selected from the group consisting of polyacrylates, polymers of ethylene-vinyl acetates and other acyl substituted cellulose acetates, non-degradable polyurethanes, polystyrenes, polyvinylchloride, polyvinyl flouride, poly(vinyl imidazole), chloro sulphonate polyolefms, polyethylene oxide, blends thereof, and copolymers thereof.
  • non-biodegradable polymers selected from the group consisting of polyacrylates, polymers of ethylene-vinyl acetates and other acyl substituted cellulose acetates, non-degradable polyurethanes, polystyrenes, polyvinylchloride, polyvinyl flouride, poly(vinyl imidazole), chloro sulphonate polyolefms, polyethylene oxide, blends thereof, and copolymers thereof.
  • Acceptable molecular weights for polymers used in this invention can be determined by a person of ordinary skill in the art taking into consideration factors such as the desired polymer degradation rate, physical properties such as mechanical strength, and rate of dissolution of polymer in solvent. Typically, an acceptable range of molecular weight is of about 2,000 Daltons to about 2,000,000 Daltons.
  • the polymer is biodegradable polymer or copolymer.
  • the polymer is a poly(lactide-co-glycolide)(hereinafter "PLGA") with a lactide:glycolide ratio of about 1:1 and a molecular weight of about 5,000 Daltons to about 70,000 Daltons.
  • the molecular weight of the PLGA used in the present invention has a molecular weight of about 5,000 Daltons to about 42,000 Daltons.
  • At least one protein is mixed in an aqueous solution comprising at least one disaccharide and at least one acidic excipient.
  • at least one water soluble polymer can be included.
  • the resulting solution is then spray freeze dried to form the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, for example, ⁇ -IFN.
  • Spray freeze drying of the solution can be accomplished by atomizing the solution to form liquid droplets, contacting the liquid droplets with a freezing medium to produce frozen droplets, removing the solvent from the frozen droplets to form a stabilized biologically active acid- WO 01/58474 PCT/TJSOl/03160
  • the solvent can be removed from the droplets by, for example, lyophilization.
  • the formulation comprises particles of stabilized biologically active acid-stable or free sulfhydryl-containing protein, for example, ⁇ -IFN, having a volume median particle size of 10 micrometers or less.
  • the stabilized ⁇ -IFN and other stabilized protein particles can be fragmented separately, as described in co-pending U.S. Patent Application No. 08/006,682, filed January 21, 1993, which describes a process for producing small particles of biologically active agents, the entire content of which is incorporated herein by reference.
  • the stabilized ⁇ -IFN or other stabilized protein particles can be fragmented after being added to a polymer solution as part of the process for producing the sustained release composition described herein. Fragmentation can be accomplished, for example, by means of an ultrasonic probe, homogenization, mechanical shear, or ultrasonic nozzle.
  • the water soluble polymer is a nonionic water soluble polymer surfactant which is likewise soluble in the solvent for the biocompatible polymer of the sustained release composition.
  • a water soluble polymer as a means of reducing the particle size of biologically active agent is described in detail in U.S. Application Serial No.09/501, 636, entitled “A Method of Preparing a Sustained Release Composition and Use Thereof filed February 10, 2000, and incorporated herein by reference.
  • the amount of biologically active acid-stable or free sulfhydryl-containing protein, for example ⁇ -TFN, which is contained within the polymeric matrix of a controlled release composition is a therapeutically or prophylactically effective amount which can be determined by a person of ordinary skill in the art, taking into consideration factors such as body weight, condition to be treated, type of polymer used, and release rate from the polymer.
  • the sustained release composition can contain from about 0.01% (w/w) to about 30% (w/w) of the biologically active acid-stable or free sulfhydryl-containing protein (dry weight of composition).
  • the amount of the acid-stable or free sulfhydryl- containing protein will vary depending upon the desired effect of the acid-stable or free sulfhydryl-containing protein, the planned release levels, and the time span over which the protein, for example ⁇ -IFN will be released.
  • a specific range of loading is between about 0.1% (w/w) to about 10% (w/w) such as 0.5% (w/w) to about 5% (w/w).
  • the amount of stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation needed to achieve a theoretical load of protein in the sustained release composition can be determined based on the percentage of protein present in the formulation. For example, if a theoretical protein load of 1% is desired in the sustained release composition and the stabilized biologically active acid-stable or free sulfhydryl-containmg protein formulation contains 10% protein, then the final sustained release composition should contain 10% (w/w) of the formulation.
  • Bulking agents can also be present in the sustained release composition of the invention. Typically these bulking agents comprise inert materials. Suitable bulking agents are known to those skilled in the art.
  • a metal cation component which is dispersed within the polymer matrix can also be used as an optional excipient. This metal cation component acts to further modulate the release of the acid-stable or free sulfhydryl-containing protein and is not complex ed with the protein.
  • a metal cation component used in modulating release typically comprises at least one type of multivalent metal cation.
  • metal cation components suitable to modulate protein release include or contain, for example, Mg(OH) 2 , MgCO 3 (such as 4MgCO 3 Mg(OH) 2 5H 2 O), MgSO 4 , Zn(OAc) 2 , ZnSO 4 , ZnCl 2 , MgCl 2 and magnesium citrate.
  • a suitable ratio of metal cation component to polymer is between about 1:99 to about 1 :2 by weight. The optimum ratio depends upon the polymer and the metal cation component utilized.
  • a polymeric matrix containing a dispersed metal cation component to modulate the release of a biologically active agent from the polymeric matrix is further described in U.S. Patent No. 5,656,297 and co-pending U.S. Patent Application 08/727,531, the teachings of both of which are incorporated herein by reference in their entirety.
  • the sustained release composition of this invention can be formed into many shapes such as a film, a pellet, a cylinder, a disc or a microparticle.
  • a microparticle as defined herein, comprises a polymer component having a diameter of less than about one millimeter and having stabilized biologically active acid-stable or free sulfhydryl- containing protein, for example, ⁇ -IFN dispersed or dissolved therein.
  • a microparticle can have a spherical, non-spherical or irregular shape.
  • the microparticle will be of a size suitable for injection.
  • a typical size range for microparticles is 1000 microns or less. In a particular embodiment, the microparticle ranges from about one to about 180 microns in diameter.
  • a predetermined amount of particles of stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation is dispersed in a polymer solution. The amount of formulation is determined based on the load of protein desired.
  • a suitable polymer solution contains between about 1%> (w/v) and about 30%> (w/v) of a suitable biocompatible polymer, wherein the biocompatible polymer is typically dissolved in a suitable polymer solvent.
  • a polymer solution contains about 2% (w/v) to about 20% (w/v) polymer.
  • a suitable polymer solvent is a solvent in which the polymer is soluble, in which some, none, or all of the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation is soluble and in which the formulation is non- reactive.
  • suitable polymer solvents include polar organic liquids, such as methylene chloride, chloroform, ethyl acetate, methyl acetate, hexafluoroisopropanol, acetone, dimethylsulfoxide and combinations thereof.
  • a polymer solution containing the stabilized biologically active ⁇ - IFN or other stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation which can be present in solution or as a particle dispersion, is processed to create droplets, wherein at least a significant portion of the droplets contains polymer, polymer solvent and the stabilized ⁇ -IFN or other biologically active acid-stable or free sulfhydryl-containing protein particles. These droplets are then frozen by means suitable to form microparticles.
  • Examples of means for processing the mixture comprising a polymer solution and the stabilized biologically active ⁇ -IFN formulation or other biologically active acid-stable or free sulfhydryl-containing protein formulation to form droplets include directing the dispersion through an ultrasonic nozzle, pressure nozzle, Rayleigh jet, or by other known means for creating droplets from a solution.
  • Means suitable for freezing droplets to form microparticles include directing the droplets into or near a liquified gas, such as liquid argon or liquid nitrogen to form frozen microdroplets which are then separated from the liquid gas.
  • a liquified gas such as liquid argon or liquid nitrogen
  • the stabilized biologically active ⁇ -IFN formulation can be spray freeze dried following the above described procedure.
  • the frozen microdroplets are then exposed to a liquid or solid non-solvent, such as ethanol, hexane, ethanol mixed with hexane, heptane, ethanol mixed with heptane, pentane or oil.
  • a liquid or solid non-solvent such as ethanol, hexane, ethanol mixed with hexane, heptane, ethanol mixed with heptane, pentane or oil.
  • the solvent in the frozen microdroplets is extracted as a solid and/or liquid into the non-solvent to form stabilized ⁇ -TFN or other stabilized biologically active acid-stable or free sulfhydryl-containing protein containing microparticles.
  • ethanol with other non-solvents, such as hexane, heptane or pentane, can increase the rate of solvent extraction, above that achieved by ethanol alone, from certain polymers, such as poly(lactide-co-glycolide) polymers.
  • a wide range of sizes of sustained release microparticles can be made by varying the droplet size, for example, by changing the ultrasonic nozzle frequency. If very large microparticles are desired, the microparticles can be extruded, for example, through a syringe directly into the cold liquid. Increasing the viscosity of the polymer solution can also increase microparticle size.
  • the size of the microparticles which can be produced by this process ranges, for example, from greater than about 1000 to about 1 micrometers in diameter.
  • the particles can be isolated from the extraction solvent by filtration and can be dried by evaporation to further remove remaining solvent. The particles can be sized by passing them through an appropriately sized mesh.
  • Yet another method of forming sustained release composition, from a polymer solution includes film casting, such as in a mold, to form a film or a shape.
  • film casting such as in a mold
  • the polymer solvent is then removed by means known in the art, or the temperature of the polymer solution is reduced, until a film or shape, with a consistent dry weight, is obtained.
  • Film casting of a polymer solution, containing a biologically active agent is further described in U.S. Patent No. 5,656,297, the teachings of which are incorporated herein by reference in their entirety.
  • the release of the biologically active acid-stable or free sulfhydryl-containing protein can occur by two different mechanisms.
  • the biologically active acid-stable or free sulfhydryl-containing protein can be released by diffusion through aqueous filled channels generated in the polymeric matrix, such as by the dissolution of the protein, or by voids created by the removal of the polymer solvent during the preparation of the sustained release composition.
  • a second mechanism is the release of the protein, for example ⁇ - IFN, due to degradation of the polymer. The rate of degradation can be controlled by changing polymer properties that influence the rate of hydration of the polymer.
  • These properties include, for instance, the ratio of different monomers, such as lactide and glycolide, comprising a polymer; the use of the L-isomer of a monomer instead of a racemic mixture; and the molecular weight of the polymer.
  • These properties can affect hydrophilicity and crystallinity, which control the rate of hydration of the polymer.
  • the contributions of diffusion and/or polymer degradation to release can be controlled.
  • increasing the glycolide content of a poly(lactide-co-glycolide) polymer and/or decreasing the molecular weight of the polymer can enhance the hydrolysis of the polymer and thus, provides an increased rate of release of protein due to polymer erosion.
  • the rate of polymer hydrolysis is increased in non-neutral pH.
  • an acidic or a basic excipient can be added to the polymer solution, used to form the microparticle, to alter the polymer erosion rate.
  • the composition of this invention can be administered to a human, or other animal, by injection, implantation (e.g., subcutaneously, intramuscularly, intraperitoneally, intracranially, and intradermally), administration to mucosal membranes (e.g., intranasally, intravaginally, intrapulmonary or by means of a suppository), or in situ delivery (e.g., by enema or aerosol spray) to provide the desired dosage of biologically active acid-stable or free sulfhydryl-containing protein, for example ⁇ -IFN, based on the known parameters for treatment with such protein of the various medical conditions.
  • the following methods were employed to analyze samples produced during the production and characterization of the ⁇ -IFN containing microparticles.
  • the bulk drug can be analyzed
  • ⁇ -IFN lyophilizates can be analyzed
  • ⁇ -IFN extracted from the microparticles can be analyzed, as well as protein released from the microparticles.
  • SEC Size Exclusion Chromatography
  • Reversed Phase HPLC was used to determine the purity of ⁇ -IFN samples isolated at various stages as detailed above. Specifically, the quantity of oxidized beta-IFN was determined employing this method. RPHPLC was conducted on a 4.6 mm x 250 mm Supelco C4 5 ⁇ m Supelcosil LC-304 column available from Supelco (Part #: 5-8824).
  • the flow rate was 1 mL/min with a run time of 70 minutes.
  • a column load of between 0.5 ⁇ g and 30 ⁇ g and a detector setting at 214 nm.
  • the elution system consisted of Mobile Phase A (40% MeCN/0.14% HFBA(n-heptafluorobutyric acid), Mobile Phase B (80% MeCN/0.14% HFBA) and Mobile Phase C (80% MeCN/0.1% TFA) employing the following gradient:
  • an SDS-PAGE method performed under non-reducing conditions was employed to measure covalent aggregation of ⁇ -IFN in lyophilizate samples compared to the bulk drug.
  • Samples were reconstituted in 50 mM sodium acetate buffer (pH 3.8) at a concentration of about 0.4 mg/mL. The solution or suspension was sampled and then diluted to 0.3 mg/mL with a 4 X Novex SDS solubilization solution, available from Novex, Inc. After boiling for 5 minutes, solutions were allowed to cool to room temperature and 4 uL was applied to an 8-15% Gradient Phast Gel with SDS-buffer blocks.
  • the amount of ⁇ -IFN in rat serum was determined using an ELISA kit available from Toray-Fuji Bionics, Inc. (TFB, Inc.). The kit utilizes the one step sandwich method for the quantitation of ⁇ -IFN in serum.
  • the following procedure was employed to extract ⁇ -TFN from poly(lactide-co- glycolide) microparticles in order to determine the integrity of the drug post-encapsulation.
  • the procedure was performed at room temperature and used an extraction buffer composed of 80% acetic acid and 0.5% TWEEN 80. One and a half milliliters of this extraction buffer was added to a 10 mg sample of the microspheres and it was vortexed for about 5 minutes. The acetic acid dissolved both the polymer and the protein. The sample was centrifuged to remove any remaining particles. 300 ⁇ L of the resulting supernatant was transferred to a tube containing 1200 ⁇ L of water to precipitate the polymer. The tube was vortexed for about 10 seconds and centrifuged for about 10 minutes to remove the precipitated polymer. The supernatant was analyzed by SEC to determine protein integrity.
  • Polymer A Cat. No.: 5050 2M; Poly(lactide-co-glycolide; 50:50 lactide:glycolide ratio; 10 kD Mol. Wt; Esterified end group.
  • Polymer B Cat. No.: 5050 2A; Poly(lactide-co-glycolide; 50:50 lactide: glycolide ratio; lOkD Mol. Wt.; Carboxyhc acid end group.
  • Polymer C Cat. No.: 5050 4A; Poly(lactide-co-glycolide; 50:50 lactide:glycolide ratio; 40 kD Mol. Wt.; Carboxyhc acid end group.
  • Polymer D Cat. No.: 8515 2A; Poly(lactide-co-glycolide; 85: 15 lactide: glycolide ratio; 10 kD Mol. Wt.; Carboxyhc acid end group.
  • PROCESS FOR PREPARING MICROPARTICLES Formation of a polymer solution by dissolving polymer in a suitable polymer solvent.
  • the biologically active acid-stable or free sulfhydryl-containing protein formulation can be soluble or insoluble in the polymer solution.
  • Atomization of the polymer/protein mixture by sonication, and freezing of the droplets by contact with liquid nitrogen Atomization of the polymer/protein mixture by sonication, and freezing of the droplets by contact with liquid nitrogen.
  • Extraction of the polymer solvent from the polymer/protein droplets into an extraction solvent e.g., -80°C ethanol
  • an extraction solvent e.g., -80°C ethanol
  • Table 1 lists formulations of ⁇ -IFN initially investigated in assessing agents as potential stabilizers of ⁇ -IFN. Briefly, an aqueous solution containing the protein and the desired excipients, is sprayed into liquid nitrogen by pumping it through an ultrasonic nozzel. The resulting slurry of ice crystals and liquid nitrogen is kept at about -20 to -40°C until the liquid nitrogen evaporates. The frozen solution is freeze-dried in a programmable lyophilizer (FTS Systems) over the course of three days.
  • FTS Systems programmable lyophilizer
  • the formulations from Table 1 which are listed in Table 2 are those which resulted in a ⁇ -IFN formulation which was as stable as bulk drug substance (BDS) after the initial spray freeze drying step of the process. Stability was assessed using SDS-PAGE and SEC methods as described above.
  • the ⁇ -IFN formulations which gave values of % monomer greater than lyophilized bulk drug (Control) were determined as being stabilized ⁇ -IFN formulations.
  • Stabilized ⁇ -IFN formulations 2, 3 and 6 were encapsulated into biocompatible polymers A, B, and C described above, employing the process outlined above with a target load of ⁇ -IFN of about 1%.
  • Table 3 lists the various characteristics of the prepared microparticle formulations. The data suggests that the stabilized ⁇ -IFN lyophihzates are not deleteriously effected by the encapsulation process, and that the encapsulation efficiency of the stabilized ⁇ -TFN is high.
  • a water-jacketed incubator (purchased from Forma Scientific) having a 100% humidity level and a temperature of 37°C was used to simulate conditions experienced by microparticle formulations following administration in vivo.
  • Use of the humidity chamber allowed assessment of formulations without the need for encapsulating the stabilized ⁇ - IFN in the polymer.
  • Stabilized ⁇ -IFN formulations were prepared using water soluble polymers. The stability of the formulations was evaluated over 7 days at 37°C and 100%> humidity as earlier described. The results are presented in Table 6.
  • EXAMPLE 5 EVALUATION OF LYOPHTLTZATE DISSOLUTION BEFORE AND AFTER HYDRATION Formulations 15, 16, 17, 18, 21, 25 and 26 of Table 4 were evaluated for dissolution in phosphate buffer at pH 7.
  • Each of the stabilized ⁇ -TFN formulations evaluated were added to phosphate buffer at pH 7 at a concentration of approximately 2 mg/mL of ⁇ -IFN, and then incubated at 37°C for one hour. The samples were then centrifuged to remove precipitates and the supernatant was diluted in 250 mM acetate buffer for analysis by the Bio-Rad Protein Assay available from Bio-Rad Laboratories.
  • the dissolution results are presented graphically in Figure 1.
  • Figure 1 shows that a significant increase in dissolution is achieved with the presence of an acidic excipient alone or in combination with a water soluble polymer.
  • Additional formulations were prepared and evaluated for dissolution after one day of exposure to humidity.
  • the dissolution of the humidified formulations was determined at both pH 3.8 (acetate buffer) and pH 7 (phosphate buffer) at a target concentration of at least 200 ⁇ g/mL of ⁇ -IFN.
  • pH 3.8 acetate buffer
  • pH 7 phosphate buffer
  • dissolution of non-humidified formulations in acetate buffer (pH 3.8) was also determined.
  • the actual concentration of ⁇ -IFN in the solutions was measured using SEC.
  • the ⁇ -FN concentration in the supernatant was determined using SEC after two hours at 37 °C followed by centrifugation.
  • the % adsorption was determined by comparing the concentrations of the samples exposed to polymer to control samples without polymer using the following equation:
  • MYRJ 52 is commonly referred to as Polyoxy 40 Stearate of Polyoxyethylene (40) Monostearate and is a member of the general class of polyoxyethylene fatty acid esters.
  • the final concentration of ⁇ -FN was 0.2 mg/mL. 0.5 mL of each mixture was added to about 10 mg of microparticles prepared using Polymer D.
  • Microparticles were produced as described above using Stabilized ⁇ -FN Formulation 39 (10% ⁇ -FN/12% Aspartate/10% F68/68% Trehalose) and 33, and Polymer A. A description of each microparticle formulation is shown in Table 8.
  • FIG. 4 The in vivo release profile for each microparticle formulation is shown in Figure 4. Briefly, cyclosporin immunosuppressed male Sprague-Dawley rats weighing approximately 450 g were injected subcutaneously in the mid scapular region with 45 mgs of microparticle formulations IX-XVII listed in Table 8. Blood samples were taken at 1, 2, 4, 8, 24, 48 and 72 hours. ⁇ -FN concentration in the samples was determined using an ELISA available from Toray-Fuji Bionics, Inc. (TFB, Inc.). The results are shown graphically in Figure 4.
  • the release profiles in Figure 4 show that the presence of a poloxamer significantly increased the total amount of ⁇ -FN released as compared to the same formulation without poloxamer.
  • the presence of an acidic excipient also demonstrated an increase in the total amount of ⁇ -FN released during the time evaluated, but the increase was much less than that seen with the poloxamer.
  • the combination of poloxamer and acidic excipient showed an increase over surfactant alone. All profiles in Figure 4 were normalized to a dose of 0.45 mg ⁇ -FN per rat.

Abstract

This invention relates to sustained release compositions, and methods of forming and using said compositions, for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, in particular β-IFN. The sustained release composition of this invention comprises a biocompatible polymer having dispersed therein a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation and a nonionic polymer surfactant. The method of the invention, for forming a composition for the sustained release of biologically active acid-stable or free sulfhydryl-containing protein, in particular β-IFN, includes dissolving a polymer in a polymer solvent to form a polymer solution, adding a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation and a nonionic surfactant to the polymer solution, and then solidifying the polymer to form a polymer matrix containing the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, and a nonionic surfactant. The method of using the sustained release composition of the present invention comprises providing a therapeutically effective blood level of biologically active acid-stable or free sulfhydryl-containing protein in a subject for a sustained period by administering to the subject a dose of the sustained release composition described herein.

Description

MICROENCAPSULATION AND SUSTAINED RELEASE OF BIOLOGICALLY ACTIVE AGENT
RELATED APPLICATION
This application is a continuation of Application No. 09/501,934, filed February 10, 2000. The entire teachings of the above application is incorporated herein by reference.
BACKGROUND OF THE INVENTION
Numerous acid-stable or free sulfhydryl-containing proteins, such as β-IFN, exhibit biological activity in vivo, which renders them useful as medicaments in therapy. Many illnesses or conditions which can be treated with this type of protein, for example, Multiple Sclerosis (MS) which is currently treated with β-IFN, require administration of a constant or sustained level of medicament to provide the most effective prophylactic and/or therapeutic effects. For example, BETASERON® (Interferon beta- lb) is currently administered for the treatment of MS at a dose of 9 million IU, injected subcutaneously three time a week. As such, administration of biologically active acid-stable or free sulfhydryl-containing proteins requires frequent subcutaneous injections, which result in fluctuating levels of medicament and poor patient compliance.
As an alternative, the use of biodegradable materials, such as polymers, encapsulating the medicament can be employed as a sustained delivery system. The use of biodegradable polymers, for example, in the form of microparticles or microcarriers, can provide a sustained release of medicament, by utilizing the inherent biodegradabihty of the polymer to control the release of the medicament thereby providing a more consistent, sustained level of medicament and improved patient compliance. However, these sustained release devices can exhibit high initial bursts of medicament and minimal release thereafter. In addition, due to the high solution concentration of medicament within and localized around these sustained release devices, the medicament can aggregate thereby increasing immunogenicity in vivo and interfering with the desired release profile for the medicament. Further, methods used to form sustained release compositions can result in loss of activity of the medicament due to the instability of the medicament and the degradative effects of the processing steps. In addition, adsorption of the biologically active acid-stable or free sulfhydryl-containing proteins onto the polymer surface can inhibit the release from the sustained release composition.
Therefore, a need exists for a means of administering biologically active acid- stable or free sulfhydryl-containing proteins, for example, β-IFN in a sustained fashion wherein activity and potency of the protein is maintained.
SUMMARY OF THE INVENTION
This invention relates to compositions for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, and methods of forming and using said compositions, for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, in particular, β-JTN. The sustained release compositions of this invention comprise a biocompatible polymer having dispersed therein a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, and at least one surfactant. The stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation of the sustained release composition comprises at least one biologically active acid-stable or free sulfhydryl-containing protein, at least one disaccharide and at least one acidic excipient Optionally, the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation further comprises a water soluble polymer.
The method of the invention, for forming a composition for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, includes dissolving a biocompatible polymer in a polymer solvent to form a polymer solution, adding at least one surfactant and the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation to the polymer solution, and then solidifying the polymer to form a polymer matrix containing the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation and the surfactant dispersed therein.
The method of using the sustained release composition of the present invention comprises providing a therapeutically effective blood level of biologically active acid- stable or free sulfhydryl-containing protein, in particular, β-IFN in a subject for a sustained period by administering to the subject a dose of the sustained release composition described herein.
The sustained release composition of the invention overcomes the problem of aggregation of the biologically active acid-stable or free sulfhydryl-containing protein, for example, β-IFN which can occur during processing and/or following administration in vivo, when the biologically active protein is not stabilized. Further, loss of activity of the biologically active protein due to instability of the medicament, and chemical interactions between the biologically active protein and other components, which are contained in or used in formulating the sustained release composition, are minimized. The advantages of the sustained release formulation for biologically active acid- stable or free sulfhydryl-containing proteins, in particular, β-IFN as described herein, include increased patient compliance and acceptance by eliminating the need for repetitive administration, increased therapeutic benefit by eliminating fluctuations in active agent concentration in blood levels by providing a desirable release profile, and a potential lowering of the total amount of biologically active acid-stable or free sulfhydryl-containing protein necessary to provide a therapeutic benefit, by reducing these fluctuations.
BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 is a graph of the % of β-IFN dissolved following incubation at 37°C for one hour in pH 7 phosphate buffer for particular β-IFN formulations described in Table 4.
Figure 2 is a graph of the % of β-IFN adsorbed on various biocompatible polymer microparticles following incubation of the microparticles with stabilized β-IFN Formulation 24 of Table 4. Figure 3 is a graph of the % of β-IFN adsorbed on polymer microparticles following incubation with a stabilized β-IFN and various surfactants.
Figure 4 is a graph of β-IFN serum concentration in rats receiving formulations containing excipients in the polymer phase to minimize adsorption of β-IFN to the biocompatible polymer matrix. DETAILED DESCRIPTION OF THE INVENTION
The sustained release compositions of this invention comprise a biocompatible polymer having dispersed therein a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, and at least one surfactant. The stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation of the sustained release composition comprises at least one biologically active acid-stable or free sulfhydryl-containing protein, at least one disaccharide and at least one acidic excipient. Optionally, the stabilized biologically active protein formulation further comprises a water soluble polymer. The method of the invention, for forming a composition for the sustained release of biologically active acid-stable or free sulfhydryl-containing proteins, includes dissolving a biocompatible polymer in a polymer solvent to form a polymer solution, adding a surfactant and the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, to the polymer solution, and then solidifying the polymer to form a polymer matrix containing the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation and surfactant dispersed therein.
The method of using the sustained release composition of the present invention comprises providing a therapeutically effective blood level of biologically active acid- stable or free sulfhydryl-containing protein, in particular, β-EFN in a subject for a sustained period by administering to the subject a dose of the sustained release composition described herein.
"Biologically active acid-stable or free sulfhydryl-containing protein" as that term is used herein are proteins which are stable under acidic conditions or contain a free sulfhydryl group. Acid-stable or free sulfhydryl-containing proteins suitable for use in the invention include, but are not limited to, IL-2, basic fibroblast growth factor, granulocyte colony stimulating factor, β-TFN and muteins of β-EFN, for example, IFN-β serl7, MGDF (megakaryocyte growth and differentation factor), TPA (tissue plasminogen activator), IGF-1 (insulin-like growth factor- 1) and IL-l β (interleukin -lβ). Proteins containing a free sulfhydryl can be determined using, reagents which detect the presence of the free sulfhydryl. Such a reagent is Ellman's reagent (5,5'- dithiobis (2-nitrobenzoic acid)) also referred to as DTNB. DTNB reacts with free sulfhydyls to give mixed disulfides plus 2-nitro-5-thiobenzoic acid (TNB) which can be quantified by its absorbance at 412 nm.
Acid stable proteins can be determined by incubating the protein under acidic conditions for a predetermined period of time and then evaluating the integrity of the protein by, for example, electrophoresis and/or circular dichroism. Proteins which do not exhibit significant degradation can be defined as acid stable. Degradation includes, for example, dimerization, particularly oxidative dimerization, and/or aggregation of the protein which can lead to an undesirable decrease in solubility. Preferably dimer formation is less than about 10%. "β-IFN" or "β-interferon" as that term is used herein is an acid-stable or free sulfhydryl-containing protein which is synthesized by mammalian cells in response to viral infection, immune stimulation and other factors. β-IFN has a molecular weight of between 18,000 and 23,000 daltons depending on the particular form, and is characterized by three cysteine amino acids, two of which are linked in a disulfϊde bond leaving one remaining as a free sulfhydryl (cysteine 17). β-IFN includes β-IFN derived both from natural sources, including human, bovine, canine, feline, porcine and equine, and by recombinant DNA techniques. The term also includes modified forms of β-interferon, for example, wherein glycosylation, methylation, substitution and/or deletion of a specified number of amino acids has occurred. IFN-β serl7 refers to β-IFN in which the seventeenth amino acid present in the sequence (cysteine) has been replaced by serine.
As defined herein, a sustained release of biologically active acid-stable or free sulfhydryl-containing protein is a release of the protein from the sustained release composition of the invention which occurs over a period which is longer than that period during which a biologically significant amount of the protein, for example, β-IFN would be available following direct administration of a solution of the protein. It is preferred that a sustained release be a release of acid-stable or free sulfhydryl-containing protein which occurs over a period of greater than two days. A sustained release of acid-stable or free sulfhydryl-containing protein from a polymeric matrix can be a continuous or a discontinuous release, with relatively constant or varying rates of release. The continuity of release and level of release can be affected by the type of polymer composition used (e.g., monomer ratios, molecular weight, block composition, and varying combinations of polymers), protein loading, and/or selection of excipients to produce the desired effect. A "therapeutically or prophylactically effective amount", as used herein, is the amount of the composition for the sustained release of a biologically active acid-stable or free sulfhydryl-containing protein, for example, β-IFN, necessary to elicit the desired biological response following administration.
"Stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation", as that term is used herein, refers to a biologically active acid-stable or free sulfhydryl-containing protein, for example, β-TFN which can be stabilized against degradation, aggregation, loss of potency and/or loss of biological activity, all of which can occur during formation of the sustained release composition, and prior to and/or during in vivo release. For example, β-IFN and other acid-stable or free sulfhydryl- containing proteins can aggregate to form a dimer which is not biologically active. The dimer can be formed during processing of the sustained release composition or following administration in vivo. When the protein contains a free sulfhydryl, formation of covalent aggregates can result from intermolecular disulfide formation.
In addition, interactions between the biologically active acid-stable or free sulfhydryl-containing protein and the biocompatible polymer of the sustained release composition can shorten the period of sustained release. For example, it has been determined that β-IFN adsorbs onto the polymer of the sustained release composition resulting in an undesirable release profile. Furthermore, proteins which are acid-stable can be significantly degraded when exposed in vivo to physiological pH (7.4) for sustained periods of time.
Stabilization of the biologically active acid-stable or free sulfhydryl-containing protein, for example, β-IFN can be accomplished, for example, by the use of a particular combination of stabilizing agents. "A stabilizing agent" as that term is used herein, is any agent which binds or interacts in a covalent or non-covalent manner, or is included with the protein, for example, β-IFN to stabilize against degradation, loss of post hydration solubility, loss of potency and/or loss of biological activity. Stabilizing agents can also be added to the sustained release composition which minimize the undesired interaction of the protein with the biocompatible polymer, for example, adsorption of the acid-stable or free sulfhydryl-containing protein to the surface of the biocompatible polymer of the sustained release composition.
A "stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation," as defined herein, comprises at least one acid-stable or free sulfhydryl - containing protein in combination with at least one disaccharide, and at least one acidic excipient. Optionally, at least one water soluble polymer can also be present in the stabilized protein formulation. The sustained release composition comprises the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, a biocompatible polymer and at least one surfactant which is dispersed in the polymer phase. The water soluble polymer, optionally present in the stabilized biologically active protein formulation, can in some instances be the same as the surfactant present in the polymer phase. The amount of biologically active acid-stable or free sulfhydryl-containing protein in the stabilized biologically active protein formulation can range from about 0.5% (w/w) to about 50%) (w/w) of the dry stabilized biologically active protein formulation. For example, from about 0.5% (w/w) to about 30% (w/w), or more specifically from about 2% (w/w) to about 20% (w/w).
"Acidic excipient" as that term is used herein refers to any organic acid. These excipients can be added as the acid, or as the salt form of the conjugate base of the acid. For example, the acidic excipient citric acid can be added either in the acid form, citric acid, or as the salt form of the conjugate base, for example, the mono-,di-, or trisodium salt of the citric acid. Suitable acidic excipients include citric acid, ascorbic acid, acetic acid, ethylenediaminetetraacetic acid, saturated fatty acids, bile acids, dicarboxylic acids, and combinations thereof. Suitable saturated fatty acids include, but are not limited to butyric, caproic, caprylic, capric, lauric, myristic, palmitic, stearic and arachadic. Suitable bile acids include cholic acid, taurocholic acid, deoxycholic acid, taurodeoxycholic acid, chenodeoxychohc acid, glycocholic acid, glycodeoxycholic, and lithocholic acid. Suitable dicarboxylic acids include, but are not limited to oxalic, malonic, succinic, glutaric, adipic, pimelic, suberic, azelaic, and sebacic. Particular acidic excipients suitable for use in the invention include amino acids. Preferred amino acids are the acidic amino acids. "Acidic amino acids" as that term is used herein, refers to amino acids having acidic side chains, thereby resulting in the presence of more acidic groups than basic groups. For example, aspartic acid and glutamic acid are acidic amino acids. These particular amino acids are typically referred to as aspartate and glutamate to emphasize that their side chains are nearly always negatively charged at physiological pH. The amount of acidic excipient present in the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation can range from about 1% (w/w) to about 50% (w/w) of the dry stabilized biologically active protein formulation, for example from about 2% (w/w) to about 20% (w/w).
A "disaccharide", as defined herein, is a compound which upon hydrolysis yields two molecules of a monosaccharide. Suitable disaccharides include, but are not limited to, sucrose and trehalose. It is preferred that the disaccharide is non-reducing. The amount of disaccharide present in the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation can range from about 5% to about 95%>.
"Surfactants" as that term is used herein refers to any substance which can reduce the surface tension between immiscible liquids. Suitable surfactants include, polymer surfactants, such as nonionic polymer surfactants, for example, poloxamers, polysorbates, polyethylene glycols (PEGs), polyoxyethylene fatty acid esters, polyvinylpyrrolidone and combinations thereof. Examples of poloxamers suitable for use in the invention include poloxamer 407 sold under the trademark PLURONIC® F127 and poloxamer 188 sold under the trademark PLURONIC® F68, both available from BASF Wyandotte. Examples of polysorbates suitable for use in the invention include polysorbate 20 sold under the trademark TWEEN® 20 and polysorbate 80 sold under the trademark TWEEN® 80. Cationic surfactants, for example, benzalkonium chloride, are also suitable for use in the invention. In addition, bile salts, such as deoxycholate and glycocholate are suitable as surfactants based on their highly effective nature as detergents. As described in the Experimental Section, the surfactant assists in minimizing adsorption of the acid-stable or free sulfhydryl-containing protein to the biocompatible polymer of the polymer matrix. It has been found that in addition to the surfactant, the presence of an acidic excipient in the polymer phase of the sustained release composition described herein can increase the anti-adsorption effect seen with the surfactant. The amount of surfactant present in the polymer of the sustained release composition can range from about 1% w/w to about 40% w/w of the total weight of the composition. A "water soluble polymer" as defined herein is any polymer which is soluble in water. In a preferred embodiment, the water soluble polymer is also soluble in the polymer solvent used in the process for preparing the sustained release composition described herein. Water soluble polymers suitable for use in the invention include water soluble polysaccharides, for example, methyl cellulose, ethyl cellulose, ficoll and combinations thereof, and nonionic polymer surfactants such as poloxamers, for example poloxamer 407, poloxamer 188 and combinations thereof, and polysorbates, for example, polysorbate 80, polysorbate 20, polyethylene glycol polymers, polyvinylpyrrolidone, polyoxyethylene fatty acid esters and any combination thereof. When present in the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation the water soluble polymer can range from about 0.5% (w/w) to about 40% (w/w) of the dry weight of the stabilized formulation.
In a specific embodiment, the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation is stabilized β-IFN comprising β-EFN, glutamate and trehalose. The β-IFN can be present in the stabilized biologically active β-IFN in a range of from about 1% w/w to about 30%> w/w of the dry weight of the stabilized β-IFN formulation. The glutamate can be present in the stabilized biologically active β-IFN in a range of from about 1%> w/w to about 30%> w/w of the dry weight of the stabilized β-IFN formulation. The trehalose can be present in the stabilized biologically active β-IFN in a range of from about 20%> w/w to about 90%> w/w of the dry weight of the stabilized β-TFN formulation. When the optional water soluble polymer is present it can be present in an amount from about 0.5%> w/w to about 40%> w/w of the dry weight of the stabilized β-IFN formulation.
Polymers suitable to form the sustained release composition of this invention are biocompatible polymers which can be either biodegradable or non-biodegradable polymers or blends or copolymers thereof. A polymer is biocompatible if the polymer and any degradation products of the polymer are non-toxic to the recipient and also possess no significant deleterious or untoward effects on the recipient's body, such as an immuno logical reaction at the injection site. "Biodegradable", as defined herein, means the composition will degrade or erode in vivo to form smaller chemical species. Degradation can result, for example, by enzymatic, chemical and physical processes. Suitable biocompatible, biodegradable polymers include, for example, poly(lactides), poly(glycolides), poly(lactide-co- glycolides), poly(lactic acid)s, poly(glycolic acid)s, polycarbonates, polyesteramides, polyanydrides, poly(amino acids), polyorthoesters, poly(dioxanone)s, poly(alkylene alkylate)s, copolymers or polyethylene glycol and polyorthoester, biodegradable polyurethane, blends thereof, and copolymers thereof.
Suitable biocompatible, non-biodegradable polymers include non-biodegradable polymers selected from the group consisting of polyacrylates, polymers of ethylene-vinyl acetates and other acyl substituted cellulose acetates, non-degradable polyurethanes, polystyrenes, polyvinylchloride, polyvinyl flouride, poly(vinyl imidazole), chloro sulphonate polyolefms, polyethylene oxide, blends thereof, and copolymers thereof.
Acceptable molecular weights for polymers used in this invention can be determined by a person of ordinary skill in the art taking into consideration factors such as the desired polymer degradation rate, physical properties such as mechanical strength, and rate of dissolution of polymer in solvent. Typically, an acceptable range of molecular weight is of about 2,000 Daltons to about 2,000,000 Daltons. In a preferred embodiment, the polymer is biodegradable polymer or copolymer. In a more preferred embodiment, the polymer is a poly(lactide-co-glycolide)(hereinafter "PLGA") with a lactide:glycolide ratio of about 1:1 and a molecular weight of about 5,000 Daltons to about 70,000 Daltons. In an even more preferred embodiment, the molecular weight of the PLGA used in the present invention has a molecular weight of about 5,000 Daltons to about 42,000 Daltons.
To prepare stabilized biologically active acid-stable or free sulfhydryl-containing protein formulations, such as a stabilized biologically active β-IFN formulation, at least one protein is mixed in an aqueous solution comprising at least one disaccharide and at least one acidic excipient. Optionally, at least one water soluble polymer can be included. The resulting solution is then spray freeze dried to form the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation, for example, β-IFN. Spray freeze drying of the solution can be accomplished by atomizing the solution to form liquid droplets, contacting the liquid droplets with a freezing medium to produce frozen droplets, removing the solvent from the frozen droplets to form a stabilized biologically active acid- WO 01/58474 PCT/TJSOl/03160
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stable or free sulfhydryl-containing protein formulation. The solvent can be removed from the droplets by, for example, lyophilization.
Preferably, the formulation comprises particles of stabilized biologically active acid-stable or free sulfhydryl-containing protein, for example, β-IFN, having a volume median particle size of 10 micrometers or less. The stabilized β-IFN and other stabilized protein particles can be fragmented separately, as described in co-pending U.S. Patent Application No. 08/006,682, filed January 21, 1993, which describes a process for producing small particles of biologically active agents, the entire content of which is incorporated herein by reference. Alternatively, the stabilized β-IFN or other stabilized protein particles can be fragmented after being added to a polymer solution as part of the process for producing the sustained release composition described herein. Fragmentation can be accomplished, for example, by means of an ultrasonic probe, homogenization, mechanical shear, or ultrasonic nozzle.
It has been found that addition of a water soluble polymer to the solution which is spray freeze dried to form the biologically active acid stable or free sulfhydryl-containing protein formulation can result in a reduction in the volume median particle size of the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation. More specifically, subsequent fragmentation of the stabilized biologically active acid- stable or free sulfhydryl-containing protein formulation, in a solvent which is a nonsolvent for the protein but a solvent for the water soluble surfactant and biocompatible polymer of the resulting sustained release composition, can achieve this reduction in particle size. In a preferred embodiment, the water soluble polymer is a nonionic water soluble polymer surfactant which is likewise soluble in the solvent for the biocompatible polymer of the sustained release composition. Use of a water soluble polymer as a means of reducing the particle size of biologically active agent is described in detail in U.S. Application Serial No.09/501, 636, entitled "A Method of Preparing a Sustained Release Composition and Use Thereof filed February 10, 2000, and incorporated herein by reference.
The amount of biologically active acid-stable or free sulfhydryl-containing protein, for example β-TFN, which is contained within the polymeric matrix of a controlled release composition, is a therapeutically or prophylactically effective amount which can be determined by a person of ordinary skill in the art, taking into consideration factors such as body weight, condition to be treated, type of polymer used, and release rate from the polymer.
Typically, the sustained release composition can contain from about 0.01% (w/w) to about 30% (w/w) of the biologically active acid-stable or free sulfhydryl-containing protein (dry weight of composition). The amount of the acid-stable or free sulfhydryl- containing protein will vary depending upon the desired effect of the acid-stable or free sulfhydryl-containing protein, the planned release levels, and the time span over which the protein, for example β-IFN will be released. A specific range of loading is between about 0.1% (w/w) to about 10% (w/w) such as 0.5% (w/w) to about 5% (w/w). It is understood that the amount of stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation needed to achieve a theoretical load of protein in the sustained release composition can be determined based on the percentage of protein present in the formulation. For example, if a theoretical protein load of 1% is desired in the sustained release composition and the stabilized biologically active acid-stable or free sulfhydryl-containmg protein formulation contains 10% protein, then the final sustained release composition should contain 10% (w/w) of the formulation.
Bulking agents can also be present in the sustained release composition of the invention. Typically these bulking agents comprise inert materials. Suitable bulking agents are known to those skilled in the art. A metal cation component which is dispersed within the polymer matrix can also be used as an optional excipient. This metal cation component acts to further modulate the release of the acid-stable or free sulfhydryl-containing protein and is not complex ed with the protein. A metal cation component used in modulating release typically comprises at least one type of multivalent metal cation. Examples of metal cation components suitable to modulate protein release include or contain, for example, Mg(OH)2, MgCO3 (such as 4MgCO3Mg(OH)25H2O), MgSO4, Zn(OAc)2, ZnSO4, ZnCl2, MgCl2 and magnesium citrate. A suitable ratio of metal cation component to polymer is between about 1:99 to about 1 :2 by weight. The optimum ratio depends upon the polymer and the metal cation component utilized. A polymeric matrix containing a dispersed metal cation component to modulate the release of a biologically active agent from the polymeric matrix is further described in U.S. Patent No. 5,656,297 and co-pending U.S. Patent Application 08/727,531, the teachings of both of which are incorporated herein by reference in their entirety.
The sustained release composition of this invention can be formed into many shapes such as a film, a pellet, a cylinder, a disc or a microparticle. A microparticle, as defined herein, comprises a polymer component having a diameter of less than about one millimeter and having stabilized biologically active acid-stable or free sulfhydryl- containing protein, for example, β-IFN dispersed or dissolved therein. A microparticle can have a spherical, non-spherical or irregular shape. Typically, the microparticle will be of a size suitable for injection. A typical size range for microparticles is 1000 microns or less. In a particular embodiment, the microparticle ranges from about one to about 180 microns in diameter.
In the method of this invention for forming a composition for the sustained release of a biologically active acid-stable or free sulfhydryl-containing protein, for example, β- IFN, a predetermined amount of particles of stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation is dispersed in a polymer solution. The amount of formulation is determined based on the load of protein desired.
A suitable polymer solution contains between about 1%> (w/v) and about 30%> (w/v) of a suitable biocompatible polymer, wherein the biocompatible polymer is typically dissolved in a suitable polymer solvent. Preferably, a polymer solution contains about 2% (w/v) to about 20% (w/v) polymer.
A suitable polymer solvent, as defined herein, is a solvent in which the polymer is soluble, in which some, none, or all of the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation is soluble and in which the formulation is non- reactive. Examples of suitable polymer solvents include polar organic liquids, such as methylene chloride, chloroform, ethyl acetate, methyl acetate, hexafluoroisopropanol, acetone, dimethylsulfoxide and combinations thereof.
One suitable method for forming sustained release microparticles from a polymer solution is described in U.S. Patent No. 5,019,400, issued to Gombotz et al, and U.S. Patent No. 5,912,253 issued to Herbert et al., the teachings of which are incorporated herein by reference in their entirety. This method of microparticle formation, as compared with other methods such as phase separation, can also reduce the amount of biologically active acid-stable or free sulfhydryl-containing protein, such as β-IFN, required to produce a sustained release composition with a specific biologically active protein content.
In this method, a polymer solution, containing the stabilized biologically active β- IFN or other stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation which can be present in solution or as a particle dispersion, is processed to create droplets, wherein at least a significant portion of the droplets contains polymer, polymer solvent and the stabilized β-IFN or other biologically active acid-stable or free sulfhydryl-containing protein particles. These droplets are then frozen by means suitable to form microparticles. Examples of means for processing the mixture comprising a polymer solution and the stabilized biologically active β-IFN formulation or other biologically active acid-stable or free sulfhydryl-containing protein formulation to form droplets include directing the dispersion through an ultrasonic nozzle, pressure nozzle, Rayleigh jet, or by other known means for creating droplets from a solution.
Means suitable for freezing droplets to form microparticles include directing the droplets into or near a liquified gas, such as liquid argon or liquid nitrogen to form frozen microdroplets which are then separated from the liquid gas. It is to be understood that the stabilized biologically active β-IFN formulation can be spray freeze dried following the above described procedure.
The frozen microdroplets are then exposed to a liquid or solid non-solvent, such as ethanol, hexane, ethanol mixed with hexane, heptane, ethanol mixed with heptane, pentane or oil. The solvent in the frozen microdroplets is extracted as a solid and/or liquid into the non-solvent to form stabilized β-TFN or other stabilized biologically active acid-stable or free sulfhydryl-containing protein containing microparticles. Mixing ethanol with other non-solvents, such as hexane, heptane or pentane, can increase the rate of solvent extraction, above that achieved by ethanol alone, from certain polymers, such as poly(lactide-co-glycolide) polymers.
A wide range of sizes of sustained release microparticles can be made by varying the droplet size, for example, by changing the ultrasonic nozzle frequency. If very large microparticles are desired, the microparticles can be extruded, for example, through a syringe directly into the cold liquid. Increasing the viscosity of the polymer solution can also increase microparticle size. The size of the microparticles which can be produced by this process ranges, for example, from greater than about 1000 to about 1 micrometers in diameter. The particles can be isolated from the extraction solvent by filtration and can be dried by evaporation to further remove remaining solvent. The particles can be sized by passing them through an appropriately sized mesh.
Yet another method of forming sustained release composition, from a polymer solution, includes film casting, such as in a mold, to form a film or a shape. For instance, after putting the polymer solution containing a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation into a mold, the polymer solvent is then removed by means known in the art, or the temperature of the polymer solution is reduced, until a film or shape, with a consistent dry weight, is obtained. Film casting of a polymer solution, containing a biologically active agent, is further described in U.S. Patent No. 5,656,297, the teachings of which are incorporated herein by reference in their entirety. Without being bound by a particular theory it is believed that the release of the biologically active acid-stable or free sulfhydryl-containing protein, for example, β-IFN, can occur by two different mechanisms. First, the biologically active acid-stable or free sulfhydryl-containing protein can be released by diffusion through aqueous filled channels generated in the polymeric matrix, such as by the dissolution of the protein, or by voids created by the removal of the polymer solvent during the preparation of the sustained release composition. A second mechanism is the release of the protein, for example β- IFN, due to degradation of the polymer. The rate of degradation can be controlled by changing polymer properties that influence the rate of hydration of the polymer. These properties include, for instance, the ratio of different monomers, such as lactide and glycolide, comprising a polymer; the use of the L-isomer of a monomer instead of a racemic mixture; and the molecular weight of the polymer. These properties can affect hydrophilicity and crystallinity, which control the rate of hydration of the polymer. By altering the properties of the polymer, the contributions of diffusion and/or polymer degradation to release can be controlled. For example, increasing the glycolide content of a poly(lactide-co-glycolide) polymer and/or decreasing the molecular weight of the polymer can enhance the hydrolysis of the polymer and thus, provides an increased rate of release of protein due to polymer erosion. In addition, the rate of polymer hydrolysis is increased in non-neutral pH.
Therefore, an acidic or a basic excipient can be added to the polymer solution, used to form the microparticle, to alter the polymer erosion rate. The composition of this invention can be administered to a human, or other animal, by injection, implantation (e.g., subcutaneously, intramuscularly, intraperitoneally, intracranially, and intradermally), administration to mucosal membranes (e.g., intranasally, intravaginally, intrapulmonary or by means of a suppository), or in situ delivery (e.g., by enema or aerosol spray) to provide the desired dosage of biologically active acid-stable or free sulfhydryl-containing protein, for example β-IFN, based on the known parameters for treatment with such protein of the various medical conditions.
Even though the invention has been described with a certain degree of particularity, it is evident that many alternatives, modifications, and variations will be apparent to those skilled in the art in light of the foregoing disclosure. Accordingly, it is intended that all such alternatives, modifications, and variations which fall within the spirit and scope of the invention be embraced by the defined claims.
The invention will now be further and specifically described by the following examples.
EXEMPLIFICATIONS
The following methods were employed to analyze samples produced during the production and characterization of the β-IFN containing microparticles. For example, the bulk drug can be analyzed, β-IFN lyophilizates can be analyzed, β-IFN extracted from the microparticles can be analyzed, as well as protein released from the microparticles.
METHODS OF ANALYSIS
SIZE EXCLUSION CHROMATOGRAPHY
Size Exclusion Chromatography (SEC) was employed to determine the %> of native monomeric β-IFN in an aqueous solution. SEC was conducted on a 7.8 mm x 30 cm TSK G2000SWXL 5 μm column available from Supelco (Cat. #: 08540) using a precolumn filter. The flow rate was 0.5 mL/min with a column load of between 0.1 and 30 μg and a detector setting of 214 nm. The elution system was isocratic using 30%o MeCN/0.2% TFA. REVERSED PHASE HPLC (RPHPLC)
Reversed Phase HPLC was used to determine the purity of β-IFN samples isolated at various stages as detailed above. Specifically, the quantity of oxidized beta-IFN was determined employing this method. RPHPLC was conducted on a 4.6 mm x 250 mm Supelco C4 5 μm Supelcosil LC-304 column available from Supelco (Part #: 5-8824).
The flow rate was 1 mL/min with a run time of 70 minutes. A column load of between 0.5 μg and 30 μg and a detector setting at 214 nm. The elution system consisted of Mobile Phase A (40% MeCN/0.14% HFBA(n-heptafluorobutyric acid), Mobile Phase B (80% MeCN/0.14% HFBA) and Mobile Phase C (80% MeCN/0.1% TFA) employing the following gradient:
0' 70%A 30%B
5' 70%A 30%B
58' 62%A 38%B
63' 0%A 100%B 68' 00%%AA 00%%BB 100%C
69' 70%A 30%B SDS-PAGE
As a complement to the SEC method described above, an SDS-PAGE method performed under non-reducing conditions was employed to measure covalent aggregation of β-IFN in lyophilizate samples compared to the bulk drug. Samples were reconstituted in 50 mM sodium acetate buffer (pH 3.8) at a concentration of about 0.4 mg/mL. The solution or suspension was sampled and then diluted to 0.3 mg/mL with a 4 X Novex SDS solubilization solution, available from Novex, Inc. After boiling for 5 minutes, solutions were allowed to cool to room temperature and 4 uL was applied to an 8-15% Gradient Phast Gel with SDS-buffer blocks. The separation and Coomassie staining were performed by the Standard Phast System protocol available from Amersham Pharmacia. Gels were scanned using a laser densitometer and relative amounts monomer, dimer, and aggregate were quantitated. The results were compared to the bulk drug carried through the same SDS-PAGE sample preparation procedure. ELISA
The amount of β-IFN in rat serum was determined using an ELISA kit available from Toray-Fuji Bionics, Inc. (TFB, Inc.). The kit utilizes the one step sandwich method for the quantitation of β-IFN in serum.
EXTRACTION OF β-IFN FROM MICROPARTICLES
The following procedure was employed to extract β-TFN from poly(lactide-co- glycolide) microparticles in order to determine the integrity of the drug post-encapsulation. The procedure was performed at room temperature and used an extraction buffer composed of 80% acetic acid and 0.5% TWEEN 80. One and a half milliliters of this extraction buffer was added to a 10 mg sample of the microspheres and it was vortexed for about 5 minutes. The acetic acid dissolved both the polymer and the protein. The sample was centrifuged to remove any remaining particles. 300 μL of the resulting supernatant was transferred to a tube containing 1200 μL of water to precipitate the polymer. The tube was vortexed for about 10 seconds and centrifuged for about 10 minutes to remove the precipitated polymer. The supernatant was analyzed by SEC to determine protein integrity.
PREPARATIVE METHODS POLYMER
The polymers employed in the following examples were purchased from Alkermes, Inc. of Cincinnati,OH and can be described as follows:
Polymer A: Cat. No.: 5050 2M; Poly(lactide-co-glycolide; 50:50 lactide:glycolide ratio; 10 kD Mol. Wt; Esterified end group.
Polymer B: Cat. No.: 5050 2A; Poly(lactide-co-glycolide; 50:50 lactide: glycolide ratio; lOkD Mol. Wt.; Carboxyhc acid end group.
Polymer C: Cat. No.: 5050 4A; Poly(lactide-co-glycolide; 50:50 lactide:glycolide ratio; 40 kD Mol. Wt.; Carboxyhc acid end group. Polymer D: Cat. No.: 8515 2A; Poly(lactide-co-glycolide; 85: 15 lactide: glycolide ratio; 10 kD Mol. Wt.; Carboxyhc acid end group.
PROCESS FOR PREPARING MICROPARTICLES Formation of a polymer solution by dissolving polymer in a suitable polymer solvent.
Addition of a nonionic surfactant to the polymer phase.
Addition of the stabilized biologically active acid-stable or free sulfhydryl- containing protein formulation to the polymer solution to form a polymer/protein mixture. The biologically active acid-stable or free sulfhydryl-containing protein formulation can be soluble or insoluble in the polymer solution.
Optional homogenization of the polymer/protein mixture.
Atomization of the polymer/protein mixture by sonication, and freezing of the droplets by contact with liquid nitrogen.
Extraction of the polymer solvent from the polymer/protein droplets into an extraction solvent (e.g., -80°C ethanol), thereby forming particles comprising a polymer/stabilized protein matrix.
Isolation of the particles from the extraction solvent by filtration.
Removal of remaining solvent by evaporation.
Sizing of particles by passage through an appropriately sized mesh so as to produce an injectable product. EXAMPLE 1: PREPARATION OF STABILIZED β-EFN LYOPHILIZATE
Excipients were identified that stabilized β-IFN through the spray freeze drying process steps necessary to prepare the stabilized β-IFN formulation for encapsulation. Table 1 lists formulations of β-IFN initially investigated in assessing agents as potential stabilizers of β-IFN. Briefly, an aqueous solution containing the protein and the desired excipients, is sprayed into liquid nitrogen by pumping it through an ultrasonic nozzel. The resulting slurry of ice crystals and liquid nitrogen is kept at about -20 to -40°C until the liquid nitrogen evaporates. The frozen solution is freeze-dried in a programmable lyophilizer (FTS Systems) over the course of three days.
The formulations from Table 1 which are listed in Table 2 are those which resulted in a β-IFN formulation which was as stable as bulk drug substance (BDS) after the initial spray freeze drying step of the process. Stability was assessed using SDS-PAGE and SEC methods as described above. The β-IFN formulations which gave values of % monomer greater than lyophilized bulk drug (Control) were determined as being stabilized β-IFN formulations.
Table 1 Composition of β-IFN Formulations
Figure imgf000021_0001
β-IFN Composition (% ( /w)of the solid formulation) Formulation No.
12 80% ammonium sulfate, 10% β-IFN, 1% Tween 80, 9% acetate buffer salts pH4
13 80% ammonium sulfate, 10% β-IFN, 10% phosphate buffer salts pH5
14 70% mannitol, 10% β-IFN, 9% beta-cyclodextrin 11% buffer salts (acetate+bicarbonate) pH7 rmulation pH is of solution prior to lyophilization. If no pH listed, the pH was about 4.
Table 2
Figure imgf000022_0001
nb: SEC could not be used due to interference with HSA. BDS=Bulk Drug Substance
EXAMPLE 2: ENCAPSULATION OF LYOPfflLIZATE FORMULATIONS
Stabilized β-IFN formulations 2, 3 and 6 were encapsulated into biocompatible polymers A, B, and C described above, employing the process outlined above with a target load of β-IFN of about 1%. Table 3 lists the various characteristics of the prepared microparticle formulations. The data suggests that the stabilized β-IFN lyophihzates are not deleteriously effected by the encapsulation process, and that the encapsulation efficiency of the stabilized β-TFN is high. Table 3. Microparticle Characterization
Figure imgf000023_0001
*=Estimated from %> nitrogen minus nitrogen due to HSA NQ=Not Quantifiable due to HSA interference
EXAMPLE 3: PREPARATION OF β-IFN FORMULATIONS HAVING POST HYDRATION STABILITY
A water-jacketed incubator (purchased from Forma Scientific) having a 100% humidity level and a temperature of 37°C was used to simulate conditions experienced by microparticle formulations following administration in vivo. Use of the humidity chamber allowed assessment of formulations without the need for encapsulating the stabilized β- IFN in the polymer.
The β-IFN lyophilizate compositions tested are set forth in Table 4. Following incubation for 1 day monomer content was evaluated using SEC as described above. The humidity exposed stabilized β-IFN formulations were dissolved in a solution of 80% acetic acid/0.5% TWEEN® 80. The change in % monomer was determined by SEC and is listed in Table 4. Table 4
Figure imgf000024_0001
Figure imgf000025_0001
COV = Coefficient of Variation
The results presented in Table 4 show that the stabilized β-IFN Formulation 15 (Same components as Formulation 2 of Table 1), which was earlier determined to be stable to processing steps, did not sufficiently stabilize the β-IFN under conditions of hydration and likely release in vivo. Formulations 17, 21, 25 and 26 of Table 4, which all contain an acidic excipient were determined to be more stable than Formulation 15, and were therefore chosen for further investigation. Formulation 25 exhibited the greatest % increase in monomer over Formulation 15 (57% greater monomer content at Day 1). Formulation 16 exhibited low % monomer at Day 1 for two of the three batches tested. The data indicate that an acidic excipient is needed in the stabilized β-TFN formulation in order to minimize aggregation of β-TFN upon hydration.
EXAMPLE 4: FURTHER FORMULATION DEVELOPMENT
Additional formulations as well as ones described previously which contain various combinations of an acidic excipient and a disaccharide were prepared and tested in vitro for post hydration stability beyond one day of exposure to humidity. The stabilized β-IFN formulations were exposed to 100% humidity as detailed above. The results are presented in Table 5. Table 5
Figure imgf000026_0001
Stabilized β-IFN formulations were prepared using water soluble polymers. The stability of the formulations was evaluated over 7 days at 37°C and 100%> humidity as earlier described. The results are presented in Table 6.
Table 6
Figure imgf000026_0002
Figure imgf000027_0001
The results presented in Table 6 indicate that stability of the β-IFN formulation can be further increased by the presence of a water soluble polymer.
EXAMPLE 5: EVALUATION OF LYOPHTLTZATE DISSOLUTION BEFORE AND AFTER HYDRATION Formulations 15, 16, 17, 18, 21, 25 and 26 of Table 4 were evaluated for dissolution in phosphate buffer at pH 7. Each of the stabilized β-TFN formulations evaluated were added to phosphate buffer at pH 7 at a concentration of approximately 2 mg/mL of β-IFN, and then incubated at 37°C for one hour. The samples were then centrifuged to remove precipitates and the supernatant was diluted in 250 mM acetate buffer for analysis by the Bio-Rad Protein Assay available from Bio-Rad Laboratories. The dissolution results are presented graphically in Figure 1. Figure 1 shows that a significant increase in dissolution is achieved with the presence of an acidic excipient alone or in combination with a water soluble polymer.
Additional formulations were prepared and evaluated for dissolution after one day of exposure to humidity. The dissolution of the humidified formulations was determined at both pH 3.8 (acetate buffer) and pH 7 (phosphate buffer) at a target concentration of at least 200 μg/mL of β-IFN. As controls, dissolution of non-humidified formulations in acetate buffer (pH 3.8) was also determined. The actual concentration of β-IFN in the solutions was measured using SEC.
Table 7 Incubation at 37°C, 100% Humidity
Figure imgf000028_0001
EXAMPLE 6: DETERMINATION OF ADSORPTION OF β-FN TO A BIODEGRADABLE POLYMER Experiments were performed to determine whether stabilized β-FN formulations would be adsorbed onto the biocompatible polymer of the sustained release composition. The stabilized β-FN Formulation 15 was added to three buffers (pH=3.8 acetate, pH=7 phosphate, and pH=7 HEPES) in an amount sufficient to achieve a concentration of 2 mg stabilized formulation/mL (-0.2 mg β-FN/mL). Four batches of polymer microparticles were prepared as described above using polymers A-D also described above. 10 mg of each microparticle batch was added to 0.5 mL of each buffer. The β-FN concentration in the supernatant was determined using SEC after two hours at 37 °C followed by centrifugation. The % adsorption was determined by comparing the concentrations of the samples exposed to polymer to control samples without polymer using the following equation:
% Adsorption = [1 -Sample concentration/Control concentration (no polymer)] x 100
The results are presented graphically in Figure 2. The results show that β-FN adsorbs to the polymers evaluated. In addition, the extent of adsorption depends on other factors such as buffer type, pH and polymer type.
EXAMPLE 7: EFFECT OF ADDITIVES ON ADSORPTION OF β-FN TO POLYMER Stabilized β-FN Formulation 36 was added to pH=7 phosphate buffer containing the following additives at a concentration of 4 mg/mL: methyl cellulose, F127, MYRJ 52, deoxycholate, and benzalkonium chloride. MYRJ 52 is commonly referred to as Polyoxy 40 Stearate of Polyoxyethylene (40) Monostearate and is a member of the general class of polyoxyethylene fatty acid esters. The final concentration of β-FN was 0.2 mg/mL. 0.5 mL of each mixture was added to about 10 mg of microparticles prepared using Polymer D. The slurries were incubated at 37°C for two hours. Each supernatant was isolated by centrifugation, diluted with an equal volume of 250 mM acetate buffer, and the concentration of β-FN determined by SEC. Percent adsorption was calculated according to the formula provided in Example 6. The results are presented graphically in Figure 3. EXAMPLE 8: EFFECT OF FORMULATION ADDITIVES ON RELEASE IN VIVO
Microparticles were produced as described above using Stabilized β-FN Formulation 39 (10% β-FN/12% Aspartate/10% F68/68% Trehalose) and 33, and Polymer A. A description of each microparticle formulation is shown in Table 8.
The in vivo release profile for each microparticle formulation is shown in Figure 4. Briefly, cyclosporin immunosuppressed male Sprague-Dawley rats weighing approximately 450 g were injected subcutaneously in the mid scapular region with 45 mgs of microparticle formulations IX-XVII listed in Table 8. Blood samples were taken at 1, 2, 4, 8, 24, 48 and 72 hours. β-FN concentration in the samples was determined using an ELISA available from Toray-Fuji Bionics, Inc. (TFB, Inc.). The results are shown graphically in Figure 4.
The release profiles in Figure 4 show that the presence of a poloxamer significantly increased the total amount of β-FN released as compared to the same formulation without poloxamer. The presence of an acidic excipient also demonstrated an increase in the total amount of β-FN released during the time evaluated, but the increase was much less than that seen with the poloxamer. In addition, the combination of poloxamer and acidic excipient (Formulation XVII) showed an increase over surfactant alone. All profiles in Figure 4 were normalized to a dose of 0.45 mg β-FN per rat.
Table 8
Figure imgf000030_0001
Figure imgf000031_0001
EQUIVALENTS
While this invention has been particularly shown and described with references to preferred embodiments thereof, it will be understood by those skilled in the art that various changes in form and details may be made therein without departing from the spirit and scope of the invention as defined by the appended claims. Those skilled in the art will recognize or be able to ascertain using no more than routine experimentation, many equivalents to the specific embodiments of the invention described specifically herein. Such equivalents are intended to be encompassed in the scope of the claims.

Claims

CLALMSWhat is claimed is:
1. A composition for the sustained release of biologically active acid-stable or free sulfhydryl-containing protein comprising: a) a biocompatible polymer; b) a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation comprising at least one biologically active acid-stable or free sulfhydryl-containing protein, at least one disaccharide and at least one acidic excipient; and c) surfactant wherein said biologically active protein formulation and said surfactant are dispersed within the biocompatible polymer.
2. The sustained release composition of Claim 1 wherein the biologically active acid- stable or free sulfhydryl-containing protein is β-FN.
3. The sustained release composition of Claim 2 wherein the β-FN is present in the stabilized formulation from about 0.5% (w/w) to about 50% (w/w) of the dry weight of the formulation.
4. The sustained release composition of Claim 3 wherein the β-FN is present in a range from about 0.5%o (w/w) to about 30%. (w/w) of the dry weight of the formulation.
5. The sustained release composition of Claim 1 wherein the acidic excipient is an organic acid.
6. The sustained release composition of Claim 5 wherein the organic acid is selected form the group consisting of: citric acid, ascorbic acid, acetic acid, ethylenediaminetetraacetic acid, saturated fatty acids, dicarboxylic acids, bile acids, amino acids and combinations thereof.
7. The sustained release composition of Claim 6 wherein the organic acid is an acidic amino acid.
8. The sustained release composition of Claim 7 wherein the acidic amino acid is glutamic acid, aspartic acid or a combination thereof.
9. The sustained release composition of Claim 1 wherein the disaccharide is selected from the group consisting of: sucrose, trehalose and combinations thereof.
10. The sustained release composition of Claim 1 wherein the surfactant is selected from the group consisting of: poloxamers, polysorbates, polyethyleneglycols, polyoxyethlene fatty acid esters, bile salts, benzalkonium chloride, polyoxyethylene (40) monostearate and combinations thereof.
11. The sustained release composition of Claim 1 further comprising an acidic excipient which is separately dispersed within the biocompatible polymer.
12. The sustained release composition of Claim 10 wherein the poloxamer is selected from the group consisting of: poloxamer 407, poloxamer 188, and combinations thereof.
13. The sustained release composition of Claim 10 wherein the polysorbate is selected from the group consisting of: polysorbate 80, polysorbate 20 and combinations thereof.
14. The sustained release composition of Claim 1 wherein the biologically active protein is present from about 0.01%(w/w) to about 30% (w/w) of the total weight of the sustained release composition.
15. The sustained release composition of Claim 14 wherein the protein is present from about 0.5%) (w/w) to about 5% (w/w) of the total weight of the sustained release composition.
16. The sustained release composition of Claim 1 wherein the stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation further comprises a water soluble polymer.
17. The sustained release composition of Claim 16 wherein the water soluble polymer is a polysaccharide.
18. The sustained release composition of Claim 17 wherein the polysaccharide is selected from the group consisting of: methyl cellulose, ethylcellulose, ficoll, and combinations thereof.
19. The sustained release composition of Claim 16 wherein the water soluble polymer is a polymer surfactant.
20. The sustained release composition of Claim 19 wherein the polymer surfactant is nonionic.
21. The sustained release composition of Claim 20 wherein the nonionic surfactant is selected from the group consisting of: poloxamers, polysorbates, polyethyleneglycol, polyoxyethlene fatty acid esters and combinations thereof.
22. The sustained release composition of Claim 21 wherein the poloxamer is selected from the group consisting of: poloxamer 188, poloxamer 407 and combinations thereof.
23. The sustained release composition of Claim 21 wherein the polysorbate is selected from the group consisting of: polysorbate 80, polysorbate 20 and combinations thereof.
24. The sustained release composition of Claim 1 wherein the biocompatible polymer is selected from the group consisting of poly(lactides), poly(glycolides), poly(lactide-co-glycolides), poly(lactic acid)s, poly(glycolic acid)s, poly(lactic acid-co-glycolic acid)s, polycaprolactone, polycarbonates, polyesteramides, polyanhydrides, poly( amino acids), polyorthoesters, polycyanoacrylates, poly(p- dioxanone), poly(alkylene oxalate)s, biodegradable polyurethanes, blends thereof and copolymers thereof.
25. The sustained release composition of Claim 24 wherein said polymer comprises poly(lactide-co-glycolide) .
26. The sustained release composition of Claim 1 further comprising a multivalent metal cation component dispersed within the biocompatible polymer.
27. A method for providing a therapeutically effective amount of a biologically active acid-stable or free sulfhydryl-containing protein in a subject for a sustained period comprising administering to the subject a dose of the sustained release composition of Claim 1.
28. A method for forming a composition for the sustained release of a biologically active acid-stable or free sulfhydryl-containing protein, comprising the steps of: a) dissolving a biocompatible polymer in a polymer solvent to form a polymer solution; b) adding at least one surfactant and a stabilized biologically active acid-stable or free sulfhydryl-containing protein formulation comprising: at least one biologically active acid-stable or free sulfhydryl-containing protein; at least one disaccharide; and at least one acidic excipient, to the polymer solution; and c) solidifying the biocompatible polymer to form a polymer matrix containing the stabilized biologically active protein formulation and the surfactant dispersed therein.
29. The method of Claim 28 wherein the biologically active acid-stable or free sulfhydryl-containing protein is β-FN.
30. The method of Claim 29 wherein the β-FN is present in the stabilized formulation from about 0.5% (w/w) to about 50% (w/w) of the dry weight of the formulation.
31. The method of Claim 30 wherein the β-FN is present in a range from about 0.5% (w/w) to 30%) (w/w) of the dry weight of the formulation.
32. The method of Claim 28 wherein the acidic excipient is an organic acid.
33. The method of Claim 32 wherein the organic acid is selected form the group consisting of: citric acid, ascorbic acid, acetic acid, ethylenediaminetetraacetic acid, saturated fatty acids, dicarboxylic acids, bile acids, and combinations thereof.
34. The method of Claim 33 wherein the organic acid is an acidic amino acid.
35. The method of Claim 34 wherein the acidic amino acid is glutamic acid, aspartic acid or a combination thereof.
36. The method of Claim 28 wherein the disaccharide is selected from the group consisting of: sucrose, trehalose and combinations thereof.
37. The method of Claim 28 wherein the surfactant is selected from the group consisting of: poloxamers, polysorbates, polyethylene glycol, polyoxyethlene fatty acid esters, bile salts, benzalkonium chloride and combinations thereof.
38. The method of Claim 37 wherein the poloxamer is selected from the group consisting of: poloxamer 407, poloxamer 188 and combinations thereof.
39. The method of Claim 37 wherein the polysorbate is selected from the group consisting of: polysorbate 80, polysorbate 20 and combinations thereof.
40. The method of Claim 28 wherein the biologically active acid-stable or free sulfhydryl-containing protein is present from about 0.01%(w/w) to about 30%> (w/w) of the total weight of the sustained release composition.
41. The method of Claim 40 wherein the protein is present from about 0.5%> (w/w) to about 5%. (w/w) of the total weight of the composition.
42. The method of Claim 30 wherein the stabilized biologically active β-FN formulation further comprises a water soluble polymer.
43. The method of Claim 42 wherein the water soluble polymer is a polysaccharide.
44. The method of Claim 43 wherein the polysaccharide is selected from the group consisting of: methyl cellulose, ethyl cellulose, ficoll and combinations thereof.
45. The method of Claim 42 wherein the water soluble polymer is a polymer surfactant.
46. The method of Claim 45 wherein the polymer surfactant is nonionic.
47. The method of Claim 46 wherein the nonionic surfactant is selected from the group consisting of: poloxamers, polysorbates, polyethyleneglycol, polyoxyethylene fatty acid esters, and combinations thereof.
48. The method of Claim 47 wherein the poloxamer is selected from the group consisting of: poloxamer 407, poloxamer 188, and combinations thereof.
49. The method of Claim 47 wherein the polysorbate is selected from the group consisting of: polysorbate 80, polysorbate 20, and combinations thereof.
50. The method of Claim 28 wherein the biocompatible polymer is selected from the group consisting of poly(lactides), poly(glycolides), poly(lactide-co-glycolides), poly(lactic acid)s, poly(glycolic acid)s, poly(lactic acid-co-glycolic acid)s, polycaprolactone, polycarbonates, polyesteramides, polyanhydrides, poly( amino acids), polyorthoesters, polycyanoacrylates, poly(p-dioxanone), poly(alkylene oxalate)s, biodegradable polyurethanes, blends thereof and copolymers thereof.
51. The method of Claim 50 wherein said polymer comprises poly(lactide-co- glycolide).
52. The method of Claim 28 further comprising the step of adding a multivalent metal cation component to the polymer solution.
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Cited By (8)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002015877A2 (en) * 2000-08-23 2002-02-28 Alkermes Controlled Therapeutics, Inc. Methods and compositions for targeted delivery
WO2004075913A1 (en) * 2003-02-28 2004-09-10 Chugai Seiyaku Kabushiki Kaisha Stabilized preparation containing protein
WO2005110466A1 (en) * 2004-05-17 2005-11-24 Ares Trading S.A. Hydrogel interferon formulations
JP2008518881A (en) * 2003-07-18 2008-06-05 オークウッド ラボラトリーズ,エル.エル.シー. Prevention of molecular weight reduction, impurity formation and gelation of polymer in polymer composition
US7731948B2 (en) 2004-06-01 2010-06-08 Ares Trading S.A. Stabilized interferon liquid formulations
US8163307B2 (en) 2005-01-07 2012-04-24 Biolex Therapeutics, Inc. Controlled release compositions for interferon based PEGT/PBT block copolymers and method for preparation thereof
US9138403B2 (en) 2007-12-20 2015-09-22 Merck Serono Sa PEG-interferon-beta formulations
WO2017077066A1 (en) * 2015-11-06 2017-05-11 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Composition comprising a biocompatible and biodegradable polymer, nanocarries and a drug and methods of making and using the same

Families Citing this family (58)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6824822B2 (en) * 2001-08-31 2004-11-30 Alkermes Controlled Therapeutics Inc. Ii Residual solvent extraction method and microparticles produced thereby
US6887462B2 (en) * 2001-04-09 2005-05-03 Chiron Corporation HSA-free formulations of interferon-beta
DK1429731T3 (en) * 2001-09-19 2007-05-14 Elan Pharma Int Ltd Nanoparticle formulations containing insulin
US20040037809A1 (en) * 2002-06-28 2004-02-26 Nastech Pharmaceutical Company Inc. Compositions and methods for enhanced mucosal delivery of interferon beta
AU2003286472A1 (en) 2002-10-17 2004-05-04 Alkermes Controlled Therapeutics, Inc. Ii Microencapsulation and sustained release of biologically active polypeptides
US7731947B2 (en) 2003-11-17 2010-06-08 Intarcia Therapeutics, Inc. Composition and dosage form comprising an interferon particle formulation and suspending vehicle
US20040197413A1 (en) * 2003-04-04 2004-10-07 Genteric, Inc. Spray dry coacervation systems and methods
TWI272948B (en) * 2003-05-01 2007-02-11 Ares Trading Sa HSA-free stabilized interferon liquid formulations
ES2226567B1 (en) * 2003-06-20 2006-07-01 Universidad De Santiago De Compostela NANOPARTICULAS OF HIALURONIC ACID.
ES2232287B1 (en) * 2003-07-04 2006-11-01 Advanced In Vitro Cell Technologies, S.L. POLYOXYETHYLATE DERIVATIVES NANOPARTICLES.
DE10333317A1 (en) * 2003-07-22 2005-02-17 Biotecon Therapeutics Gmbh Formulation for protein medicines without the addition of human serum albumin (HSA)
US7090433B2 (en) * 2003-10-07 2006-08-15 Steve Searby Underground cable laying apparatus
US7658721B2 (en) * 2004-01-16 2010-02-09 Biodel Inc. Sublingual drug delivery device
US20080090753A1 (en) 2004-03-12 2008-04-17 Biodel, Inc. Rapid Acting Injectable Insulin Compositions
US20080248999A1 (en) * 2007-04-04 2008-10-09 Biodel Inc. Amylin formulations
US20080096800A1 (en) * 2004-03-12 2008-04-24 Biodel, Inc. Rapid mucosal gel or film insulin compositions
US8617613B2 (en) 2004-04-15 2013-12-31 Alkermes Pharma Ireland Limited Polymer-based sustained release device
US20060110423A1 (en) * 2004-04-15 2006-05-25 Wright Steven G Polymer-based sustained release device
US7456254B2 (en) * 2004-04-15 2008-11-25 Alkermes, Inc. Polymer-based sustained release device
ES2246695B1 (en) * 2004-04-29 2007-05-01 Instituto Cientifico Y Tecnologico De Navarra, S.A. STIMULATING COMPOSITION OF THE IMMUNE RESPONSE THAT INCLUDES NANOPARTICLES BASED ON A COPYLIMER OF METHYL VINYL ETER AND MALEIC ANHYDRIDE.
ES2246694B1 (en) * 2004-04-29 2007-05-01 Instituto Cientifico Y Tecnologico De Navarra, S.A. PEGILATED NANOPARTICLES.
CA2569137A1 (en) * 2004-06-07 2005-12-22 Nastech Pharmaceutical Company Inc. Intranasal formulations of interferon beta free of stabilizers that are proteins or polypeptides
CA2574085C (en) * 2004-07-16 2014-02-11 Oakwood Laboratories, L.L.C. Gonadotropin releasing hormone antagonists
US20060104969A1 (en) * 2004-08-16 2006-05-18 Massachusetts Institute Of Technology Compositions and methods for enhancing structural and functional nervous system reorganization and recovery
WO2006078841A1 (en) * 2005-01-21 2006-07-27 President And Fellows Of Harvard College Systems and methods for forming fluidic droplets encapsulated in particles such as colloidal particles
WO2006083761A2 (en) 2005-02-03 2006-08-10 Alza Corporation Solvent/polymer solutions as suspension vehicles
US11246913B2 (en) 2005-02-03 2022-02-15 Intarcia Therapeutics, Inc. Suspension formulation comprising an insulinotropic peptide
MY139088A (en) * 2005-02-21 2009-08-28 Lg Life Sciences Ltd Sustained release composition of protein drug
US20070042041A1 (en) * 2005-08-17 2007-02-22 Board Of Trustees Of The University Of Arkansas Drug-surfactant complexes for sustained release
US8084420B2 (en) 2005-09-29 2011-12-27 Biodel Inc. Rapid acting and long acting insulin combination formulations
US7713929B2 (en) 2006-04-12 2010-05-11 Biodel Inc. Rapid acting and long acting insulin combination formulations
JP5479739B2 (en) * 2006-02-01 2014-04-23 サムヤン バイオファーマシューティカルズ コーポレイション Anti-adhesion composition
MX2008013165A (en) 2006-04-12 2009-01-29 Biodel Inc Rapid acting and long acting insulin combination formulations.
DE602007009377D1 (en) 2006-05-30 2010-11-04 Intarcia Therapeutics Inc SECONDARY FLOW MODULATOR WITH AN INTERNAL CHANNEL FOR AN OSMOTIC OUTPUT SYSTEM
CN102274557B (en) 2006-08-09 2014-12-03 精达制药公司 Osmotic delivery systems and piston assemblies
CA2680365A1 (en) * 2007-03-22 2008-10-02 Alkermes, Inc. Coacervation process
DK2157967T3 (en) 2007-04-23 2013-04-08 Intarcia Therapeutics Inc Suspension formulations of insulinotropic peptides and applications thereof
CN101820887A (en) * 2007-07-25 2010-09-01 拜奥雷克斯治疗公司 Controlled release interferon drug products and treatment of hcv infection using sam
WO2009052493A1 (en) * 2007-10-19 2009-04-23 Bisco, Inc. Time-controlled intraoral film former system for intraoral use
US8343140B2 (en) 2008-02-13 2013-01-01 Intarcia Therapeutics, Inc. Devices, formulations, and methods for delivery of multiple beneficial agents
US9107815B2 (en) 2008-02-22 2015-08-18 Allergan, Inc. Sustained release poloxamer containing pharmaceutical compositions
JP2012515790A (en) * 2009-01-23 2012-07-12 サーモディクス ファーマシューティカルズ, インコーポレイテッド Continuous double emulsion process for fine particle production
US9060927B2 (en) 2009-03-03 2015-06-23 Biodel Inc. Insulin formulations for rapid uptake
LT2462246T (en) 2009-09-28 2017-11-27 Intarcia Therapeutics, Inc Rapid establishment and/or termination of substantial steady-state drug delivery
EP2308478A1 (en) * 2009-10-06 2011-04-13 Abbott GmbH & Co. KG Delivery system for sustained release of a calcium-channel blocking agent
US20120208755A1 (en) 2011-02-16 2012-08-16 Intarcia Therapeutics, Inc. Compositions, Devices and Methods of Use Thereof for the Treatment of Cancers
KR102196009B1 (en) 2011-10-25 2021-01-04 프로테나 바이오사이언시즈 리미티드 Antibody formulations and methods
US20130302366A1 (en) 2012-05-09 2013-11-14 Christopher Marshall Conformationally Specific Viral Immunogens
CA2919353C (en) 2013-07-25 2022-08-23 Avatar Medical, Llc Conformationally stabilized rsv pre-fusion f proteins
JP6704849B2 (en) 2013-08-03 2020-06-03 アバター・メディカル・エルエルシー Influenza hemagglutinin protein and method thereof
US9889085B1 (en) 2014-09-30 2018-02-13 Intarcia Therapeutics, Inc. Therapeutic methods for the treatment of diabetes and related conditions for patients with high baseline HbA1c
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USD840030S1 (en) 2016-06-02 2019-02-05 Intarcia Therapeutics, Inc. Implant placement guide
USD860451S1 (en) 2016-06-02 2019-09-17 Intarcia Therapeutics, Inc. Implant removal tool
EP3565580B1 (en) 2017-01-03 2024-03-06 i2o Therapeutics, Inc. Continuous administration of exenatide and co-adminstration of acetaminophen, ethinylestradiol or levonorgestrel
WO2020194034A1 (en) 2019-03-27 2020-10-01 Universidad De Chile Nanoparticle of chitosan and cyclodextrin containing encapsulated interferon and pharmaceutical compositions that contain it
WO2023154902A1 (en) * 2022-02-11 2023-08-17 Sameer Sabir Compositions of and methods for a cold slurry having hyaluronic acid

Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0251476A1 (en) * 1986-05-23 1988-01-07 Syntex (U.S.A.) Inc. Controlled release of macromolecular polypeptides
FR2620621A1 (en) * 1987-09-21 1989-03-24 Bpd Biopharm Dev Ltd PHARMACEUTICAL COMPOSITION FOR SUSTAINED AND CONTROLLED DELIVERY OF WATER-INSOLUBLE POLYPEPTIDES
WO1991012882A1 (en) * 1990-02-22 1991-09-05 Medgenix Group S.A. Microspheres for the controlled release of water-soluble substances and process for preparing them
WO1996003116A1 (en) * 1994-07-25 1996-02-08 Alkermes Controlled Therapeutics, Inc. Controlled release of metal cation-stabilized interferon
WO1996028143A1 (en) * 1995-03-10 1996-09-19 Boehringer Mannheim Gmbh Polypeptide-containing pharmaceutical forms of administration in the form of microparticles and method for the preparation thereof
WO1998027963A2 (en) * 1996-12-20 1998-07-02 Alza Corporation Gel composition and methods
WO1999024061A1 (en) * 1997-11-07 1999-05-20 Chiron Corporation Method for producing igf-1 sustained-release formulations

Family Cites Families (29)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4252791A (en) 1979-10-19 1981-02-24 The Medical College Of Wisconsin, Inc. Interferon stabilization
US4389330A (en) 1980-10-06 1983-06-21 Stolle Research And Development Corporation Microencapsulation process
IE52535B1 (en) 1981-02-16 1987-12-09 Ici Plc Continuous release pharmaceutical compositions
US4462940A (en) 1982-09-23 1984-07-31 Cetus Corporation Process for the recovery of human β-interferon-like polypeptides
US4992271A (en) 1982-09-23 1991-02-12 Cetus Corporation Formulation for lipophilic IL-2 proteins
US5643566A (en) 1982-09-23 1997-07-01 Cetus Corporation Formulation processes for lipophilic proteins
EP0123291A2 (en) 1983-04-20 1984-10-31 Kyowa Hakko Kogyo Co., Ltd. Method for stabilizing interferon
JPS60100516A (en) 1983-11-04 1985-06-04 Takeda Chem Ind Ltd Preparation of sustained release microcapsule
US4818542A (en) 1983-11-14 1989-04-04 The University Of Kentucky Research Foundation Porous microspheres for drug delivery and methods for making same
CA1294215C (en) 1986-10-27 1992-01-14 Ze'ev Shaked Pharmaceutical compositions of recombinant beta-interferon and formulation processes
US4853218A (en) 1987-02-24 1989-08-01 Schering Corporation Zinc-protamine-alpha interferon complex
US4871538A (en) 1987-07-13 1989-10-03 Schering Corporation Insoluble copper-alpha interferon complex
DE3881615T2 (en) 1987-09-08 1993-09-23 Takeda Chemical Industries Ltd WATER-INSOLUBLE CYTOKINS.
US5004605A (en) 1987-12-10 1991-04-02 Cetus Corporation Low pH pharmaceutical compositions of recombinant β-interferon
JP2670680B2 (en) 1988-02-24 1997-10-29 株式会社ビーエムジー Polylactic acid microspheres containing physiologically active substance and method for producing the same
US4990336A (en) 1989-02-08 1991-02-05 Biosearch, Inc. Sustained release dosage form
US5019400A (en) 1989-05-01 1991-05-28 Enzytech, Inc. Very low temperature casting of controlled release microspheres
AU620253B2 (en) 1989-05-01 1992-02-13 Alkermes Controlled Therapeutics, Inc. Process for producing small particles of biologically active molecules
US5126147A (en) 1990-02-08 1992-06-30 Biosearch, Inc. Sustained release dosage form
PL166045B1 (en) 1990-06-04 1995-03-31 Schering Corp Method of obtaining crystalline alpha-2 interferon
JP3286315B2 (en) 1990-06-20 2002-05-27 アドバンスト ポリマー システムズ,インコーポレイティド Compositions and methods for controlled release of soluble actives
US5874479A (en) * 1991-03-01 1999-02-23 Warner-Lambert Company Therapeutic permeation enhanced-wound healing compositions and methods for preparing and using same
US5176907A (en) 1991-08-13 1993-01-05 The Johns Hopkins University School Of Medicine Biocompatible and biodegradable poly (phosphoester-urethanes)
US5656297A (en) 1992-03-12 1997-08-12 Alkermes Controlled Therapeutics, Incorporated Modulated release from biocompatible polymers
US5441734A (en) 1993-02-25 1995-08-15 Schering Corporation Metal-interferon-alpha crystals
US5594091A (en) 1994-02-21 1997-01-14 Takeda Chemical Industries, Ltd. Matrix for sustained-release preparation
US5922253A (en) 1995-05-18 1999-07-13 Alkermes Controlled Therapeutics, Inc. Production scale method of forming microparticles
EP0831786A2 (en) 1995-06-07 1998-04-01 Alkermes Controlled Therapeutics, Inc. Device for releasing aggregation-stabilized, biologically active agent
US5942253A (en) 1995-10-12 1999-08-24 Immunex Corporation Prolonged release of GM-CSF

Patent Citations (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0251476A1 (en) * 1986-05-23 1988-01-07 Syntex (U.S.A.) Inc. Controlled release of macromolecular polypeptides
FR2620621A1 (en) * 1987-09-21 1989-03-24 Bpd Biopharm Dev Ltd PHARMACEUTICAL COMPOSITION FOR SUSTAINED AND CONTROLLED DELIVERY OF WATER-INSOLUBLE POLYPEPTIDES
WO1991012882A1 (en) * 1990-02-22 1991-09-05 Medgenix Group S.A. Microspheres for the controlled release of water-soluble substances and process for preparing them
WO1996003116A1 (en) * 1994-07-25 1996-02-08 Alkermes Controlled Therapeutics, Inc. Controlled release of metal cation-stabilized interferon
WO1996028143A1 (en) * 1995-03-10 1996-09-19 Boehringer Mannheim Gmbh Polypeptide-containing pharmaceutical forms of administration in the form of microparticles and method for the preparation thereof
WO1998027963A2 (en) * 1996-12-20 1998-07-02 Alza Corporation Gel composition and methods
WO1999024061A1 (en) * 1997-11-07 1999-05-20 Chiron Corporation Method for producing igf-1 sustained-release formulations

Cited By (22)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2002015877A2 (en) * 2000-08-23 2002-02-28 Alkermes Controlled Therapeutics, Inc. Methods and compositions for targeted delivery
WO2002015877A3 (en) * 2000-08-23 2003-02-27 Alkermes Inc Methods and compositions for targeted delivery
US6565888B1 (en) 2000-08-23 2003-05-20 Alkermes Controlled Therapeutics, Inc. Methods and compositions for the targeted delivery of biologically active agents
US7097857B2 (en) 2000-08-23 2006-08-29 Alkermes Controlled Therapeutics, Inc. Methods and compositions for the targeted delivery of biologically active agents
WO2004075913A1 (en) * 2003-02-28 2004-09-10 Chugai Seiyaku Kabushiki Kaisha Stabilized preparation containing protein
US9968677B2 (en) 2003-02-28 2018-05-15 Chugai Seiyaku Kabushiki Kaisha Stabilized protein-containing formulations
JPWO2004075913A1 (en) * 2003-02-28 2006-06-01 中外製薬株式会社 Protein-containing stabilized preparation
US8765124B2 (en) 2003-02-28 2014-07-01 Chugai Seiyaku Kabushiki Kaisha Stabilized preparation containing protein
AU2004216298B2 (en) * 2003-02-28 2009-04-23 Chugai Seiyaku Kabushiki Kaisha Stabilized protein-containing formulations
US8343513B2 (en) 2003-07-18 2013-01-01 Oakwood Laboratories, Llc Prevention of molecular weight reduction of the polymer, impurity formation and gelling in polymer compositions
JP2011148812A (en) * 2003-07-18 2011-08-04 Oakwood Lab Llc Prevention of molecular weight reduction of the polymer, impurity formation and gelling in polymer compositions
JP2008518881A (en) * 2003-07-18 2008-06-05 オークウッド ラボラトリーズ,エル.エル.シー. Prevention of molecular weight reduction, impurity formation and gelation of polymer in polymer composition
US9017715B2 (en) 2003-07-18 2015-04-28 Oakwood Laboratories, L.L.C. Prevention of molecular weight reduction of the polymer, impurity formation and gelling in polymer compositions
US7879320B2 (en) 2004-05-17 2011-02-01 Ares Trading S.A. Hydrogel interferon formulations
AU2005244448B2 (en) * 2004-05-17 2011-03-17 Ares Trading S.A. Hydrogel interferon formulations
EA012205B1 (en) * 2004-05-17 2009-08-28 Арес Трейдинг С.А. Hydrogel interferon formulations
WO2005110466A1 (en) * 2004-05-17 2005-11-24 Ares Trading S.A. Hydrogel interferon formulations
US7731948B2 (en) 2004-06-01 2010-06-08 Ares Trading S.A. Stabilized interferon liquid formulations
US8163307B2 (en) 2005-01-07 2012-04-24 Biolex Therapeutics, Inc. Controlled release compositions for interferon based PEGT/PBT block copolymers and method for preparation thereof
US9138403B2 (en) 2007-12-20 2015-09-22 Merck Serono Sa PEG-interferon-beta formulations
WO2017077066A1 (en) * 2015-11-06 2017-05-11 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V. Composition comprising a biocompatible and biodegradable polymer, nanocarries and a drug and methods of making and using the same
US10953103B2 (en) 2015-11-06 2021-03-23 Fraunhofer-Gesellschaft zur Förderung der angewandten Forschung e.V Composition comprising a biocompatible and biodegradable polymer, nanocarriers and a drug and methods of making and using the same

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