Novel formulations of highly concentrated pharmacologically active antibodies

Stable liquid formulations with high antibody concentrations are achieved using phosphate buffer, aggregation inhibitors, and surfactants, addressing viscosity and aggregation issues for improved delivery and storage stability.

JP7792137B2Active Publication Date: 2025-12-25KASHIV BIOSCIENCES LLC
View PDF 9 Cites 0 Cited by

Patent Information

Application Number
JP2022513090
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-08-30
Filing Date
2020-08-29
Publication Date
2025-12-25
Estimated Expiration
2040-08-29

AI Technical Summary

Technical Problem

Existing antibody formulations face challenges with high viscosity, protein-protein interactions leading to aggregation, instability, and increased viscosity, which complicates delivery and storage stability, especially in highly concentrated solutions.

Method used

Development of stable liquid formulations containing pharmacologically active antibodies with concentrations above 100 mg/ml, using phosphate buffer, aggregation inhibitors like arginine or lysine, and surfactants such as Poloxamer 188, at pH 6.0 to 7.0, to minimize aggregation and maintain stability.

Benefits of technology

The formulations achieve low viscosity, reduced aggregation, and improved storage stability, allowing for subcutaneous administration with extended shelf life and reduced immunogenicity.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007792137000001
    Figure 0007792137000001
  • Figure 0007792137000002
    Figure 0007792137000002
  • Figure 0007792137000003
    Figure 0007792137000003
Patent Text Reader

Abstract

Novel formulations of highly concentrated pharmacologically active antibodies The present disclosure describes a pharmaceutically stable, high-concentration liquid formulation of an antibody. Such formulations comprise, in addition to the antibody, at least one anti-aggregating agent selected from arginine or lysine, a buffer, and poloxamer 188. Furthermore, the present disclosure provides high-concentration antibody formulations with a high amount of monomer, a low amount of aggregates, and a desirable viscosity.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to novel liquid formulations containing high concentrations of pharmacologically active antibodies. The present invention further provides stable liquid formulations containing pharmacologically active antibodies that have low aggregation, low viscosity, and low osmolality. [Background technology]

[0002] Traditionally, antibody formulations have been stabilized by lyophilizing the antibody and then reconstituting it with an appropriate solvent system before use. However, over time, there has been an increasing demand for stable, highly concentrated liquid formulations, which can be administered subcutaneously in a short time compared to intravenous injection. Furthermore, patients can administer subcutaneously at home, eliminating the need for a clinic visit. However, highly concentrated antibody formulations contain high amounts of antibody (greater than approximately 100 mg / ml) in a small volume, leading to protein-protein interactions and increased viscosity. Viscosity is not only problematic for the biophysical and biochemical properties of therapeutic proteins, but also for the delivery and manufacturing of such highly concentrated protein solutions. The higher the viscosity of the solution, the longer it takes to inject such a viscous solution using a syringe and needle. Furthermore, protein-protein interactions in highly concentrated antibody formulations tend to form oligomers and aggregates, thereby creating unstable formulations. Issues such as antibody aggregation, viscosity, fragmentation, insolubility, and degradation typically increase as the antibody concentration in the formulation increases. Furthermore, antibody aggregation affects storage stability, including shelf life. It is well recognized that there is no standard formulation strategy that works for all types of antibodies to provide stable, highly concentrated solutions for pharmaceutical use.

[0003] It is well established in the prior art that certain pharmaceutical excipients can be used to stabilize protein formulations. A major goal in pharmaceutical formulation is to prepare a formulation with the highest stability, capable of providing the antibody in the desired form throughout the product's shelf life.

[0004] Patent document 1 discloses a highly concentrated formulation of an antibody that is particularly suitable for subcutaneous administration, and further describes formulations of omalizumab using various excipients such as arginine-HCl, histidine, and polysorbate.

[0005] Patent Document 2 discloses a method for reducing the viscosity of a monoclonal antibody formulation using a buffer derived from arginine or histidine.

[0006] Due to the increasing demand for highly concentrated liquid formulations containing antibodies, there is a need to prepare stable liquid formulations containing highly concentrated pharmacologically active antibodies. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] U.S. Patent No. 10,034,940 [Patent Document 2] U.S. Patent No. 8,703,126 Summary of the Invention

[0008] The present invention relates to novel stable liquid formulations containing high concentrations of pharmacologically active antibodies and processes for their preparation.

[0009] In one aspect, the present disclosure provides a method for manufacturing a semiconductor device comprising: a. Pharmacologically active antibodies that bind to IgE; b. Phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof; d. a suitable surfactant; and e. pH 6.0 to 7.0 A pharmaceutically stable liquid formulation is provided having an antibody concentration of at least 100 mg / ml.

[0010] In another aspect, the present disclosure provides a method for producing a pharmaceutical composition comprising: a. 100-160 mg / ml of omalizumab antibody; b. 5mM-20mM phosphate buffer; c. 100 mM to about 200 mM lysine or lysine HCl as an aggregation inhibitor; d. 0.02% to approximately 0.04% Poloxamer 188; e. A pharmaceutical liquid formulation comprising a pH of 6.0 is provided.

[0011] In another aspect, the present disclosure provides a method for producing a pharmaceutical composition comprising: a. 100-160 mg / ml of omalizumab antibody; b. 5mM-20mM phosphate buffer; c. 100 mM to about 200 mM arginine or arginine HCl as an aggregation inhibitor; d. 0.02% to about 0.04% Poloxamer 188; and e. A pharmaceutical liquid formulation comprising a pH of 6.0 is provided.

[0012] In another aspect, the present disclosure provides a method for producing a pharmaceutical composition comprising: a. Pharmacologically active antibodies that bind to IgE; b. Histidine buffer; c. Lysine or a suitable salt thereof as an aggregation inhibitor; d. a suitable surfactant; and e. pH 6.0 to 7.0 A liquid pharmaceutical formulation is provided having an antibody concentration of at least 100 mg / ml.

[0013] In another aspect, the present disclosure provides a method of making a liquid pharmaceutical composition, the method comprising mixing together omalizumab, a phosphate buffer, an aggregation inhibitor selected from arginine or lysine or a salt thereof, and a surfactant. Also provided is a liquid pharmaceutical composition obtainable, obtained, or directly obtained by the method of making a liquid pharmaceutical composition as defined herein.

[0014] In another aspect, the present disclosure provides a drug delivery device (e.g., a pre-filled syringe or pen, or an intravenous bag) comprising a liquid pharmaceutical composition as defined herein.

[0015] In another aspect, the present disclosure provides stable pharmaceutical liquid formulations containing high amounts of monomers and lower amounts of aggregates and fragments.

[0016] Detailed Description of the Preferred Embodiments The terms used herein generally have their ordinary meanings in the art, within the context of the present invention and in the specific context in which each term is used. Specific terms used to describe the present invention are discussed below or elsewhere herein to provide further guidance to practitioners regarding the description of the present invention. Synonyms for particular terms are provided. The description of one or more synonyms does not exclude the use of other synonyms. The use of examples anywhere in the present specification, including examples of any term discussed herein, is illustrative only and does not limit the scope and meaning of the present invention or any exemplified term in any way. The present invention is not limited to the various embodiments provided herein. Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the present invention pertains. In the event of a conflict, the present specification, including definitions, will control.

[0017] The terms "approximately," "about," or "approximately" are generally intended to mean within 20 percent, within 10 percent, within 5, 4, 3, 2, or 1 percent of a stated value or range. Listed values ​​are approximations, and the term "approximately," "about," or "approximately" a given value can be inferred if not explicitly stated.

[0018] The term "omalizumab," or "omalizumab monomer," or "monomer" is equivalent to omalizumab. Omalizumab is a recombinant DNA-derived humanized IgG1K monoclonal antibody that selectively binds to human immunoglobulin E (IgE). The antibody has a molecular weight of approximately 149 kD. Xolair is produced in Chinese hamster ovary cells. For purposes of this application, the term "omalizumab" as used herein refers to Xolair, including but not limited to, commercially available high-concentration formulations, injectable ready-to-use formulations, formulations that are reconstituted with water, alcohol, and / or other ingredients, and the like.

[0019] As used herein, the terms "acidic variant" or "acidic species" and "AV" refer to a variant of a protein, e.g., an antibody or antigen-binding portion thereof, characterized by an overall acidic charge. For example, in monoclonal antibody (mAb) preparations, such acidic species can be detected by various methods, such as ion exchange (e.g., HPLC (weak cation exchange chromatography) WCX, or IEF (isoelectric focusing)). Acidic variants of antibodies are formed by chemical and enzymatic modifications, such as deamidation and sialylation, respectively, which result in an increase in the net negative charge of the antibody and a decrease in its pI value, thereby forming the acidic variant. C-terminal lysine cleavage results in the loss of a net positive charge and the formation of the acidic variant. Another mechanism for generating acidic variants is the formation of various types of covalent adducts, e.g., glycation, in which glucose or lactose can react with the primary amines of lysine residues during production in glucose-rich culture media or during storage when reducing sugars are present in the formulation (MAbs. 2010 Nov-Dec; 2(6): 613-624).

[0020] The term "acidic variant" does not include process-related impurities.

[0021] As used herein, the term "process-related impurities" refers to impurities that are present in a composition containing a protein but that are not derived from the protein itself.

[0022] Process-related impurities include, but are not limited to, host cell proteins (HCPs), host cell nucleic acids, chromatography materials, and media components.

[0023] The term used as "size variant" refers to LMW, HMW, or aggregates.

[0024] The term "low molecular weight (LMW) species" is used to refer to truncated fragments of the protein backbone and are considered product-related impurities that contribute to size heterogeneity of antibodies. LMW species often have low or significantly reduced activity compared to the monomeric form of the antibody and can potentially contribute to immunogenicity or affect pharmacokinetic properties in vivo. As a result, LMW species are considered critical quality attributes that are routinely monitored during drug development and as part of release testing of purified drug products during manufacturing.

[0025] The term "high molecular weight or HMW" refers to a product-related impurity that results in size heterogeneity in antibody products. The formation of HMW species within therapeutic antibody drugs as a result of protein aggregation can potentially compromise both efficacy and safety (e.g., by eliciting undesirable immunogenic responses). HMW is considered a critical quality attribute that is routinely monitored during drug development and as part of release testing of purified drug products during manufacturing.

[0026] The term "aggregate" is classified based on the type of interaction and solubility. Soluble aggregates are invisible particles that cannot be removed by filters. Insoluble aggregates can be removed by filtration and are often visible to the human eye. Both types of aggregates pose problems for biopharmaceutical development. Covalent aggregates result from the formation of covalent bonds between multiple monomers of a particular peptide. Disulfide bond formation of free thiols is a common mechanism of covalent aggregation. Oxidation of tyrosine residues can form bityrosines, which often lead to aggregation. Reversible protein aggregation is usually due to weaker protein interactions, particularly in dimers, trimers, and multimers.

[0027] The term "basic variant" refers to variants that may result from the presence of a C-terminal lysine or glycine, amidation, succinimide formation, amino acid oxidation or removal of sialic acid, which introduces an additional positive charge or removes a negative charge; any type of modification results in an increase in the pI value.

[0028] The term "stability" or similar terms refers to the tendency of omalizumab monomers to undergo various undesirable changes during storage. Such changes include the formation of oligomers and high molecular weight aggregates (hereinafter referred to as "aggregates" in which multiple copies of essentially intact omalizumab monomers irreversibly associate with each other through various non-covalent bonds (e.g., electrostatic interactions)). Undesirable changes during storage can also include the degradation of omalizumab monomers into smaller fragments and / or clipped species. Ideally, omalizumab formulations should minimize, to the greatest extent possible, the tendency of the formulation to form aggregates, misfolded proteins, oligomers, charge variants, and / or fragments of omalizumab during storage. An important benefit resulting from being able to reduce the formation of undesirable aggregates or fragments is a reduction in the potential toxicity and / or immunogenicity of the drug.

[0029] The terms "stable" or "stable" in relation to long-term storage are understood to mean that the omalizumab contained in the pharmaceutical composition does not lose more than 20%, more preferably 15%, even more preferably 10%, and most preferably 5% of its activity compared to the activity of the composition at the start of storage.

[0030] The term "formulation" refers to a mixture suitable for administration to a subject for therapeutic, diagnostic, or prophylactic purposes, typically containing a carrier such as a pharmaceutically acceptable carrier or excipient conventionally used in the art. It may contain omalizumab or polypeptide derived from cells in culture medium.

[0031] The term "pharmaceutically acceptable carrier" means a non-toxic solid, semi-solid, or liquid filler, diluent, encapsulating material, formulation aid, or excipient of any conventional type that is non-toxic to recipients at the dosages and concentrations employed and is compatible with the other ingredients of the formulation.

[0032] The terms "pharmaceutical formulation" and "composition" are used interchangeably.

[0033] The term "aggregation inhibitor" refers to an excipient that prevents aggregation of anti-IgE antibodies, such as omalizumab. Aggregation inhibitors are generally useful for stabilizing formulations when used at high concentrations. Preferred aggregation inhibitors are arginine or lysine. However, the selection of an aggregation inhibitor in combination with suitable excipients, such as buffers, surfactants, and pH, will produce desirable results. The present invention produces desirable results when arginine or a salt thereof, such as arginine HCl, is used with phosphate buffer and poloxamer 188 at pH 6.0. Alternatively, the present invention produces desirable results when lysine or a salt thereof, such as lysine HCl, is used with phosphate buffer or histidine buffer and poloxamer 188 at pH 6.0.

[0034] The terms "aggregation inhibitor" and "stabilizer" are used interchangeably.

[0035] The present invention provides novel liquid formulations containing high concentrations of pharmacologically active antibodies.

[0036] The present invention provides new and improved liquid formulations, which can be optionally lyophilized, comprising a highly concentrated therapeutic protein, preferably a monoclonal antibody, in a suitable buffer, one or more suitable aggregation inhibitors, and other excipients optionally selected from suitable surfactants and tonicity agents. The stable formulations provide the desired viscosity and prevent the formation of protein aggregates.

[0037] In certain embodiments, the novel formulations of the present invention are suitable for subcutaneous administration. The novel formulations of the present invention are stable and avoid or reduce precipitation or aggregation of the pharmacologically active antibody.

[0038] In certain embodiments, the novel formulations of the present invention are stable and avoid or reduce fragmentation or LMW formation of pharmacologically active antibodies.

[0039] In certain embodiments, the novel formulations of the present invention are stable and maintain the desired charge heterogeneity.

[0040] In certain embodiments, the present invention is stable at room temperature. In certain embodiments, the novel formulations of the present invention are stable at 2° C. to 8° C. In certain embodiments, the formulations of the present invention are stable at 37° C. for at least 15 days, or preferably 30 days.

[0041] In certain embodiments, the novel formulations of the present invention comprise high concentrations of a pharmacologically active antibody, a buffer, an aggregation inhibitor, and a surfactant.

[0042] In certain embodiments, the novel formulations of the present invention optionally include Ca+2 or Mg+2 salts. Optionally, the novel formulations of the present invention include an additive.

[0043] In certain embodiments, the pharmacologically active antibody is selected from IgG1, IgG2, IgG3, IgG4, or fragments thereof. In certain embodiments, the pharmacologically active antibody binds to IgE to treat allergic symptoms. In certain embodiments, the pharmacological antibody is omalizumab or ligelizumab.

[0044] The novel formulations of the present invention are primarily useful in the treatment of, but not limited to, asthma, allergies, and chronic spontaneous urticaria.

[0045] In one embodiment, the pharmacologically active antibody is present at a high concentration selected from 50 mg / ml to 200 mg / ml. In a specific embodiment, the pharmacologically active antibody is present at a high concentration selected from 80 mg / ml to 200 mg / ml. In a specific embodiment, the pharmacologically active antibody is present at a high concentration selected from 100 mg / ml to 200 mg / ml. In a specific embodiment, the pharmacologically active antibody is present at a high concentration selected from 125 mg / ml to 200 mg / ml. In a specific embodiment, the pharmacologically active antibody is present at a high concentration selected from 150 mg / ml.

[0046] In certain embodiments, the present invention provides novel stable formulations comprising a suitable buffer selected from phosphate, citrate, phosphate-citrate, histidine and acetate, and salts thereof.

[0047] In certain embodiments, the present invention provides novel stable formulations comprising multiple buffers.

[0048] In certain embodiments, when lysine or lysine HCl is used as the aggregation inhibitor, histidine can also be used in the form of its salts, such as histidine hydrochloride.

[0049] In certain embodiments, the buffer is present at a concentration of at least 1 mg / ml. In certain embodiments, the buffer is present in the range of 1 mg / ml to 20 mg / ml. In certain embodiments, the buffer is present in the range of 1 mg / ml to 10 mg / ml. In certain embodiments, the buffer is present in the range of 1 mg / ml to 5 mg / ml. In certain embodiments, the buffer is present at a concentration of 4 mg / ml. In certain embodiments, the buffer is present at a concentration of 3.7 mg / ml.

[0050] In certain embodiments, the buffer is present at a concentration of at least 5 mM, hi certain embodiments, the buffer is present in the range of 5 mM to 15 mM.

[0051] In certain embodiments, the aggregation inhibitor is selected from arginine, lysine, methionine, glycine, and suitable salts thereof.

[0052] In a preferred embodiment, the aggregation inhibitor used in the formulation is selected from lysine and / or arginine, or salt forms thereof (eg, lysine hydrochloride or arginine hydrochloride).

[0053] In certain embodiments, the aggregation inhibitor is present at a concentration of at least 1 mg / ml. In certain embodiments, the aggregation inhibitor is present in a range of 1 mg / ml to 75 mg / ml. In certain embodiments, the aggregation inhibitor is present in a range of 10 mg / ml to 50 mg / ml. In certain embodiments, the aggregation inhibitor is present in a range of 20 mg / ml to 50 mg / ml. In certain embodiments, the aggregation inhibitor is present in a range of 30 mg / ml to 45 mg / ml.

[0054] In one embodiment, the aggregation inhibitor is present in the range of 40 mg / ml.

[0055] The aggregation inhibitor is used at a concentration of at least 1 mM. In certain embodiments, the aggregation inhibitor is present in a range of 1 mM to 200 mM. In certain embodiments, the aggregation inhibitor is present in a range of 1 mM to 150 mM. In certain embodiments, the aggregation inhibitor is present in a range of 1 mM to 100 mM. In a preferred embodiment, the amount of the aggregation inhibitor is 200 mM. In certain embodiments, the surfactant is selected from polysorbate and poloxamer 188. In certain embodiments, the surfactant is selected from various grades of polysorbate, such as, but not limited to, polysorbate 20, polysorbate 40, polysorbate 60, polysorbate 80, or mixtures thereof. In a preferred embodiment, the surfactant is poloxamer 188.

[0056] In certain embodiments, the surfactant is present in an amount of 0.01% to 0.20%. In certain embodiments, the surfactant is present in an amount of 0.02% to 0.04%. In one embodiment, the amount of surfactant is 0.04%. In certain embodiments, the surfactant is present in an amount of 0.1 mg / ml to 0.5 mg / ml. In one embodiment, the amount of surfactant is about 0.4 mg / ml. In certain embodiments, a Ca+2 or Mg+2 salt is used to achieve the desired osmolality. In certain embodiments, the Ca+2 or Mg+2 salt of the present invention is calcium chloride or magnesium chloride.

[0057] The additives used in the present invention are selected from sodium chloride, mannitol, sucrose, proline, glycine, sodium acetate, sodium citrate, sodium succinate, sodium phosphate, and sodium sulfate.

[0058] In certain embodiments, the novel formulations of the present invention have a pH of 5 to 7. In certain embodiments, the novel formulations of the present invention have a pH of 5.5 to 6.5. In certain embodiments, the novel formulations of the present invention have a pH of 6.2. In certain embodiments, the novel formulations of the present invention have a pH of 6.0. In certain embodiments, the stable novel pharmaceutical liquid formulations have a viscosity of at least 5 cps. In certain embodiments, the stable novel pharmaceutical liquid formulations have a viscosity of 10 cps to 20 cps. In certain embodiments, the stable novel pharmaceutical liquid formulations have a viscosity of 10 cps to 15 cps. In certain embodiments, the stable novel pharmaceutical liquid formulations have a viscosity of 10 cps to 12 cps. In certain embodiments, the formulations have a viscosity of 10 cps.

[0059] In one aspect of such an embodiment, the viscosity is selected from 10 cp, 11 cp, 12 cp, 13 cp, 14 cp, 15 cp, 16 cp, 17 cp, 18 cp, 19 cp, and 20 cp.

[0060] It is understood that the viscosity value depends on the conditions under which the measurement is made, such as temperature, shear rate, and shear stress used. Apparent viscosity is defined as the ratio of shear stress to the applied shear rate. There are several alternative methods for measuring apparent viscosity. For example, viscosity can be tested by a suitable cone and plate, parallel plate, or other type of viscometer or rheometer.

[0061] In certain embodiments, the stable pharmaceutical novel liquid formulation has an osmolality selected from 350-410 mOsm. In certain embodiments, the stable pharmaceutical novel liquid formulation has an osmolality selected from 370-410 mOsm. In certain embodiments, the stable pharmaceutical novel liquid formulation has an osmolality selected from 390-410 mOsm. In certain embodiments, the stable pharmaceutical novel liquid formulation has an osmolality selected from 400-410 mOsm.

[0062] The present invention provides the cumulative effect of a poloxamer, a buffer, and an aggregation inhibitor.

[0063] In one embodiment, the present invention provides a. Pharmacologically active antibodies that bind to IgE; b. Phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof; d. a suitable surfactant; and e. pH 6.0 to 7.0 A pharmaceutically stable liquid formulation is provided having an antibody concentration of at least 100 mg / ml.

[0064] The pharmacologically active antibody that binds to IgE is omalizumab or ligelizumab.

[0065] In one aspect of such an embodiment, the formulation does not include a histidine buffer.

[0066] In another aspect of such embodiments, the formulation has a high amount of monomer and a low amount of aggregation and LMW.

[0067] In one embodiment, the present invention provides a. 125 mg / ml to approximately 160 mg / ml of omalizumab; b. Phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof; d. a suitable surfactant; and e. Provide a pharmaceutical stable liquid formulation having a pH of 6.0 to 7.0.

[0068] In one embodiment, the present invention provides a. 125 mg / ml to approximately 160 mg / ml of omalizumab; b. Phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof; d. Poloxamer 188; and e. Provide a pharmaceutical stable liquid formulation having a pH of 6.0 to 7.0.

[0069] In one embodiment, the present invention provides a. 150 mg / ml to approximately 160 mg / ml of omalizumab; b. Phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof; d. Poloxamer 188; and e. Provide a pharmaceutical stable liquid formulation having a pH of 6.0 to 7.0.

[0070] In one embodiment, the present invention provides Omalizumab; b. Phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof, at a concentration of about 1 mM to about 200 mM; d. Poloxamer 188; and e. Provide a pharmaceutical stable liquid formulation having a pH of 6.0 to 7.0.

[0071] In one embodiment, the present invention provides Omalizumab; b. 5 mg / ml to approximately 20 mg / ml phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof, at a concentration of about 1 mM to about 200 mM; d. Poloxamer 188; and e. Provide a pharmaceutical stable liquid formulation having a pH of 6.0 to 7.0.

[0072] In one embodiment, the present invention provides Omalizumab; b. 5 mg / ml to approximately 20 mg / ml phosphate buffer; c. a suitable aggregation inhibitor selected from arginine or lysine or a suitable salt thereof, at a concentration of about 1 mM to about 200 mM; d. 0.02% to about 0.04% Poloxamer 188; and e. Provide a pharmaceutical stable liquid formulation having a pH of 6.0 to 7.0.

[0073] In one embodiment, the present invention provides a. 100-160 mg / ml of omalizumab antibody; b. 5mM-20mM phosphate buffer; c. 100 mM to about 200 mM lysine or lysine HCl as an aggregation inhibitor; d. 0.02% to about 0.04% Poloxamer 188; and e. A pharmaceutical stable liquid formulation comprising a pH of 6.0 is provided.

[0074] In one embodiment, the present invention provides a. Approximately 150 mg / ml of omalizumab antibody; b. about 20 mM phosphate buffer; c. about 200 mM lysine or lysine HCl as an aggregation inhibitor; d. about 0.04% Poloxamer 188; and e. A pharmaceutical stable liquid formulation comprising a pH of 6.0 is provided.

[0075] In one aspect of such an embodiment, the formulation does not include arginine.

[0076] In another embodiment, the present invention provides a. 100-160 mg / ml of omalizumab antibody; b. 5mM-20mM phosphate buffer; c. 100 mM to about 200 mM arginine or arginine HCl as an aggregation inhibitor; d. 0.02% to about 0.04% Poloxamer 188; and e. A pharmaceutical stable liquid formulation comprising a pH of 6.0 is provided.

[0077] In another embodiment, the present invention provides a. Approximately 150 mg / ml of omalizumab antibody; b. about 20 mM phosphate buffer; c. about 200 mM arginine or arginine HCl as an aggregation inhibitor; d. about 0.04% Poloxamer 188; and e. A pharmaceutical stable liquid formulation comprising a pH of 6.0 is provided.

[0078] In such embodiments, the present invention provides a high content of monomers, at least greater than 90%, and low content of aggregates, HMW, and LMW. Certain embodiments of such formulations further provide a desirable charge variant with less than 20% acidic variants. Certain embodiments of such formulations further provide a desirable charge variant with less than 25% basic variants. In certain embodiments of such formulations, the viscosity is less than 15 cp. In certain embodiments of such formulations, the osmolality is about 390-410 mOsm.

[0079] Preferably, the liquid pharmaceutical composition of the present invention has a shelf life at a temperature of 2-8°C of at least 3 months, preferably at least 6 months, preferably at least 12 months, more preferably at least 24 months.

[0080] Preferably, the liquid pharmaceutical composition of the present invention has a shelf life at a temperature of 37°C of at least 7 days, preferably at least 15 days, preferably 1 month.

[0081] In one embodiment, the present invention provides a. A high concentration of pharmacologically active anti-IgE antibody in an amount of about 50 mg / ml to 150 mg / ml; b. a suitable buffer comprising histidine or histidine HCl in an amount of at least about 8 mM or 20 mM; c. Lysine or Lysine HCl as a suitable aggregation inhibitor; d. Polysorbate or Poloxamer 188; and e. To provide a novel pharmaceutical stable formulation having a pH of 6.0 to 7.0.

[0082] In one embodiment, suitable additives include NaCl, mannitol, sucrose, proline, and glycine.

[0083] In another embodiment, the present invention provides a. High concentrations of pharmacologically active antibodies; b. methionine as a preferred buffer; c. Arginine or arginine HCl as a suitable aggregation inhibitor; d. Polysorbate or Poloxamer 188; and e. To provide a novel pharmaceutical stable formulation having a pH of 6.0 to 7.0.

[0084] In another embodiment, the present invention provides a. High concentrations of pharmacologically active antibodies; b. methionine and phosphate as a suitable buffer; c. Arginine or arginine HCl as a suitable aggregation inhibitor; d. Poloxamer 188; and e. To provide a novel pharmaceutical stable formulation having a pH of 6.0 to 7.0.

[0085] In another embodiment, the present invention provides a. High concentrations of pharmacologically active antibodies; b. Histidine as a preferred buffer; c. Lysine or Lysine HCl as a suitable aggregation inhibitor; d. Poloxamer 188; and e. To provide a novel pharmaceutical stable formulation having a pH of 6.0 to 7.0.

[0086] In another embodiment, the present invention provides a. 100-160 mg / ml of omalizumab antibody; b. 5mM-20mM histidine buffer; c. 100 mM to about 200 mM lysine or lysine HCl as an aggregation inhibitor; d. 0.02% to about 0.04% Poloxamer 188; and e. To provide a novel pharmaceutical stable formulation having a pH of 6.0.

[0087] In another embodiment, the present invention provides a. Approximately 150 mg / ml of omalizumab antibody; b. about 20 mM histidine buffer; c. about 200 mM lysine or lysine HCl as an aggregation inhibitor; d. about 0.04% Poloxamer 188; and e. To provide a novel pharmaceutical stable formulation having a pH of 6.0.

[0088] In such embodiments, the present invention provides arginine-free, pharmaceutically stable formulations. The present invention further provides a high content of monomers, at least 90%, and low content of aggregates, HMW, and LMW. Certain embodiments of such formulations further provide desirable charge variants, with less than 20% acidic variants. Certain embodiments of such formulations further provide desirable charge variants, with less than 25% basic variants. Certain embodiments of such formulations have a viscosity of less than 15 cp. Certain embodiments of such formulations have an osmolality of about 390-410 mOsm.

[0089] Additionally, a formulation containing 20 mM phosphate buffer, 200 mM glycine HCl, and poloxamer 188 at pH 6.0 was also attempted. However, during the concentration of the bulk solution, the viscosity of the formulation increased significantly, and the omalizumab concentration could not be adjusted to the desired concentration, i.e., 145-155 mg / mL. Therefore, this formulation was not incubated for stability testing.

[0090] In a further aspect, the present invention provides a drug delivery device comprising a liquid pharmaceutical composition as defined herein. Preferably, the drug delivery device comprises a chamber in which the pharmaceutical composition is contained. More preferably, the drug delivery device is sterile.

[0091] The drug delivery device can be a vial, an ampoule, a syringe, an injection pen, or an auto-injector (e.g., essentially comprising a syringe). When the drug delivery device is a syringe, it is preferably an injection pen. Here, the syringe is a glass or plastic syringe.

[0092] In yet another aspect, the present invention provides a kit-of-parts comprising a drug delivery device (without said liquid pharmaceutical composition), a liquid pharmaceutical composition as defined herein (optionally contained in a separate package or container), and optionally an instruction set comprising directions for administration (e.g., subcutaneously or intravenously) of said liquid pharmaceutical composition. A user can then fill said drug delivery device with said liquid pharmaceutical composition (which may be provided in a vial or ampoule, etc.) prior to administration.

[0093] Also described is a package comprising a liquid pharmaceutical composition as defined herein. Preferably, the package comprises a drug delivery device as defined herein, preferably a plurality of drug delivery devices. The package can comprise any suitable container for housing one or more drug delivery devices.

[0094] The liquid pharmaceutical compositions defined herein can be used to treat any one or more of the aforementioned diseases or medical disorders, hi specific embodiments, the liquid pharmaceutical compositions are used to treat asthma, urticaria, allergies, and chronic idiopathic urticaria.

[0095] The liquid pharmaceutical compositions are suitably administered parenterally, via either intravenous or subcutaneous injection, preferably subcutaneous injection.

[0096] The present invention provides examples below for illustrative purposes, but the scope of the invention is not limited to the illustrative examples. [Example]

[0097] Example 1 An omalizumab injectable formulation was prepared at an antibody concentration of 150 mg / mL for subcutaneous administration.

[0098] The formulation was prepared by adding 20 mM phosphate buffer, 200 mM arginine HCl, and poloxamer 188 at pH 6.0. The bulk solution was filtered through a 0.2 μm PVDF filter to obtain a filtered solution, and 1 mL of the filtered solution was filled into a 1 mL glass PFS. The formulation composition was as follows: [Table 1]

[0099] Stability testing was performed for one month at 37° C. The analytical data are summarized below. [Table 2]

[0100] Based on the results, the formulation was stable for one month when stored at 37° C. with monomer % and HMW % being 98.08% and 0.36%, respectively, after one month.

[0101] Example 2 An omalizumab injectable formulation was prepared at an antibody concentration of 150 mg / mL for subcutaneous administration.

[0102] The formulation was prepared by adding 20 mM phosphate buffer, 200 mM lysine HCl, and poloxamer 188 at pH 6.0. The bulk solution was filtered through a 0.2 μm PVDF filter to obtain a filtered solution, and 1 mL of the filtered solution was filled into a 1 mL glass PFS. The formulation composition was as follows: [Table 3]

[0103] Stability testing was performed for one month at 37° C. The analytical data are summarized below. [Table 4]

[0104] Based on the results, the formulation was stable for one month when stored at 37° C. with monomer % and HMW % being 98.39% and 0.36%, respectively, after one month.

[0105] Example 3 An omalizumab injectable formulation was prepared at an antibody concentration of 150 mg / mL for subcutaneous administration.

[0106] The formulation was prepared by adding 20 mM histidine buffer, 200 mM lysine HCl, and poloxamer 188 at pH 6.0. The bulk solution was filtered through a 0.2 μm PVDF filter to obtain a filtered solution, and 1 mL of the filtered solution was filled into a 1 mL glass PFS. The formulation composition was as follows: [Table 5]

[0107] Stability testing was performed for one month at 37° C. The analytical data are summarized below. [Table 6]

[0108] Based on the results, the formulation was stable for one month when stored at 37° C. with monomer % and HMW % being 98.09% and 0.35%, respectively, after one month.

[0109] Example 4 The stability test of the three types of formulations (Examples 1 to 3) was carried out for three months in a refrigerator (2° C. to 8° C.) The obtained data is summarized in Table 7 below. [Table 7]

[0110] All three formulations (Examples 1-3) were found to be stable after 3 months of storage at 2°C to 8°C. All three formulations showed high percentages of monomer as measured by SEC-HPLC. Furthermore, HMW, LMW, and charge variants were also very low after 3 months of storage, making the formulations highly stable for longer periods.

[0111] All three formulations were charged to provide sustained long-term stability.

[0112] Example 5 All three formulations described in Examples 1, 2, and 3 were further evaluated by differential scanning fluorimetry (DSF) to analyze the protein folding state and thermal stability. This is a fast, reliable, and powerful tool for investigating protein stability over an increasing temperature range (e.g., 25°C to 95°C) and thermal protein unfolding upon controlled heating (e.g., 0.5°C / min) of the protein. The protein concentrations of the samples were normalized prior to analysis.

[0113] This study was conducted using Examples 1-3 in addition to Formulation Fl, which contained 150 mg / ml omalizumab formulated in 200 mM arginine HCl, 20 mM histidine buffer, and 0.4 mg / ml polysorbate 20. The data are summarized in Table 8. [Table 8]

[0114] Based on the above data, it is clear that the onset temperatures of all three formulations (Examples 1 to 3) are higher than that of Formulation F1, indicating that all three formulations (Examples 1 to 3) are more thermally stable than Formulation F1.

[0115] Example 6 The formulation was prepared by adding 20 mM histidine buffer, 200 mM lysine HCl, and poloxamer 188 at pH 6.0. The bulk solution was filtered through a 0.2 μm PVDF filter to obtain a filtered solution, and 1 mL of the filtered solution was filled into a 1 mL glass PFS.

[0116] The effect of polysorbate 20 and poloxamer 188 on the stability of the formulation was evaluated. The following compositions were used in this study: [Table 9]

[0117] Both formulations were stable charged for 15 days at 37° C. The results are as follows: [Table 10]

[0118] Table 10 shows that after 15 days of incubation at 37°C, polysorbate 20 had a higher HMW% than poloxamer 188.

[0119] Example 7 Formulation F2 was prepared by adding 20 mM histidine buffer, 200 mM arginine HCl, and poloxamer 188 at pH 6.0. The bulk solution was filtered through a 0.2 μm PVDF filter to obtain a filtered solution, and 1 mL of the filtered solution was filled into a 1 mL glass PFS.

[0120] The stability of the F2 formulation and Examples 1 to 3 was evaluated by charging at 37°C for 1 month.

[0121] Below is a summary of data for all formulations. [Table 11]

[0122] Based on the demonstrated effect of Poloxamer 188 on Polysorbate 20 in Example 6, we further evaluated the combined effect of poloxamer with aggregation inhibitors and buffers. From Table 11, it is clear that Examples 1 and 2 have lower amounts of HMW and LMW compared to F2, indicating the improved effect of the phosphate buffer combined with Poloxamer 188 used in Examples 1 and 2.

[0123] Example 3 had lower amounts of HMW and LMW compared to the F2 formulation, indicating the effect of lysine and poloxamer 188 relative to the arginine and poloxamer 188 used in F2.

[0124] A low percentage of LMW is also important for preparing a stable formulation, since high amounts of LMW can lead to antibody fragmentation, which not only shortens the shelf life of the formulation but also reduces its potency.

Claims

1. 1. A pharmaceutical stable liquid formulation comprising: a. a pharmacologically active antibody that binds to IgE; b. phosphate buffer; c. an aggregation inhibitor selected from arginine or lysine or a salt thereof; and d. a surfactant; pH 6.0 to 7.0, the antibody concentration is at least 100 mg / ml; 1. A pharmaceutical stable liquid formulation, wherein the pharmacologically active antibody that binds to IgE is omalizumab and the surfactant is poloxamer 188.

2. The pharmaceutical stable liquid formulation of claim 1, wherein the omalizumab is present at at least about 100 mg / ml to about 200 mg / ml.

3. The pharmaceutical stable liquid formulation of claim 2, wherein the omalizumab is present at at least about 150 mg / ml.

4. The pharmaceutical stable liquid formulation of claim 1, wherein the phosphate buffer is present at about 5 mg / ml to about 20 mg / ml.

5. The pharmaceutical stable liquid formulation of claim 1, wherein the arginine or lysine as an aggregation inhibitor is present at about 100 mM to about 200 mM.

6. The pharmaceutical stable liquid formulation of claim 1, wherein the surfactant is poloxamer 188 in an amount of about 0.02% to about 0.04%.

7. a. about 100 to about 160 mg / ml of an omalizumab antibody; b. about 5 mM to about 20 mM phosphate buffer; c. about 100 mM to about 200 mM of an aggregation inhibitor selected from arginine or arginine HCl and lysine or lysine HCl; and d. about 0.02% to about 0.04% Poloxamer 188; 2. The pharmaceutical stable liquid formulation of claim 1, having a pH of 6.

0.

8. A omalizumab antibody at about 150 mg / ml; b. about 20 mM phosphate buffer; c. about 200 mM of an aggregation inhibitor selected from arginine or arginine HCl and lysine or lysine HCl; and d. about 0.04% Poloxamer 188; 8. The pharmaceutical stable liquid formulation of claim 7, having a pH of 6.

0.

9. The pharmaceutical stable liquid formulation of claim 1, which does not contain a histidine buffer.

10. The pharmaceutical stable liquid formulation of claim 1, wherein the pH is 6.

0.

11. A drug delivery device comprising the stable liquid pharmaceutical formulation of claim 1.

12. The pharmaceutical stable liquid formulation of claim 1, having a dynamic viscosity of about 10 cps to about 15 cps.

13. The pharmaceutical stable liquid formulation of claim 12, having a dynamic viscosity of about 10 cps to about 12 cps.

14. A pharmaceutical stable liquid formulation as described in claim 1 for the treatment of a disease selected from asthma, urticaria, allergy, and chronic idiopathic urticaria, comprising an anti-IgE antibody or omalizumab.

Citation Information

Patent Citations

  • High-concentration antibody and protein formulations

    JP2007524602A

  • Antibody preparations

    JP2010529999A

  • Pharmaceutical preparations

    JP2015509526A

  • Treatment and prevention of acute kidney injury using anti-alphavbeta5 antibodies

    JP2016515120A

  • Formulation of an antibody for aglycosylation treatment

    JP2018500380A