Stable therapeutic compositions in aprotic polar solvents and methods for their preparation

A high water content aprotic polar solvent formulation addresses compatibility issues with medical device materials by maintaining stability and reducing interaction with device components, while also offering long-term storage compatibility.

JP7689499B2Active Publication Date: 2025-06-06XERIS PHARMACEUTICALS INC
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Patent Information

Application Number
JP2021570778
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-05-31
Filing Date
2020-05-29
Publication Date
2025-06-06
Estimated Expiration
2040-05-29

AI Technical Summary

Technical Problem

Existing formulations using biocompatible organic solvents like DMSO face compatibility issues with commercial materials such as plastics and rubber, leading to dissolution, extraction, and degradation problems in container-closure systems.

Method used

A high water content aprotic polar solvent formulation comprising a therapeutic agent, an ionization stabilizing excipient, an aprotic polar solvent, and water at greater than 10% v/v, which is compatible with various plastic and rubber components used in medical devices.

Benefits of technology

The formulation maintains physical and chemical stability of therapeutic molecules, reduces interaction with device components, and provides a low freezing point, enabling long-term storage and compatibility with commercially available pumps and infusion sets.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the use of an aprotic polar solvent, water, and an ionization stabilizer to prepare device-compatible, stable therapeutic formulations by dissolving a therapeutic agent (active ingredient) in an aprotic polar solvent system, which can then be used with various devices (e.g., pumps, infusion sets) for administration of the formulation. In certain embodiments, the present invention relates to formulations containing one or more therapeutic agents and methods for making such formulations, which comprise at least one therapeutic agent dissolved in an aprotic polar solvent system, such as a DMSO / water mixture, containing at least one ionization stabilizing excipient at a concentration sufficient to impart physical and chemical stability to the therapeutic agent. TIFF2022534291000007.tif85148
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Description

[Technical field]

[0001] CROSS-REFERENCE AND INCORPORATION BY REFERENCE TO RELATED APPLICATIONS This invention claims the benefit of priority to U.S. Provisional Application No. 62 / 855,134, filed May 31, 2019, the disclosure of which is incorporated herein by reference in its entirety.

[0002] A. Field of the Invention The present invention is in the field of medicine and pharmacy.Particular aspects generally relate to a plastic and / or rubber compatible therapeutic aprotic solvent formulation comprising one or more active pharmaceutical ingredients that can be used as therapeutic formulations in treating, preventing and / or diagnosing diseases, disorders and medical conditions in mammals, particularly humans.In particular, the present invention relates to the use of aprotic polar solvent, water and at least one ionization stabilizer to prepare device compatible, stable therapeutic formulations by dissolving therapeutic agents (active pharmaceutical ingredients) in aprotic polar solvent system, which formulations can then be used with various devices for administration of the formulations. [Background technology]

[0003] B. Description of Related Art Parenteral formulations prepared in aprotic polar solvent systems (e.g., DMSO-based solvent systems) benefit from improved drug molecule stability due to the absence of degradation pathways through water. These pathways, including hydrolysis, deamidation, and aspartic acid isomerization, are known to be major contributors to peptide and protein instability in water-based formulations. In addition, hydrolysis is also known to promote chemical instability of small molecule drugs. Previous studies have shown improved stability of low water content peptide and small molecule formulations in DMSO compared to aqueous solutions (see, e.g., U.S. Pat. Nos. 9,339,545 and 10,485,850, the disclosures of which are incorporated herein by reference in their entireties).

[0004] However, one drawback of using biocompatible organic solvents (e.g., DMSO) is that many commercial materials, such as plastics, can dissolve in these non-aqueous systems. In addition, organic solvents can be strong extractants of compounds (e.g., antioxidants, plasticizers) used in commercial elastomeric components (e.g., rubber tubing). As a result, many commercially available container-closure systems (CCS), such as infusion sets and pumps, are not compatible with DMSO-based formulations due to dissolution, extraction and degradation issues.

[0005] Another approach to producing DMSO-compatible pumps and infusion sets would be to develop special DMSO-compatible components, which would be very expensive and require a long development and validation period.

[0006] There remains a need for a formulation platform that combines the stability and solubility offered by aprotic polar solvent systems, while also providing compatibility with a variety of devices, containers, and the like. [Prior art documents] [Patent documents]

[0007] [Patent Document 1] U.S. Patent No. 9,339,545 [Patent Document 2] U.S. Patent No. 10,485,850 Summary of the Invention

[0008] BRIEF SUMMARY OF THE INVETION The embodiments described herein provide an approach that improves the compatibility of formulations with materials, devices, containers, and / or one or more flow paths, eliminating the need for expensive dedicated components or flow paths. The commercial importance of this compatible formulation is to achieve DMSO-based formulations that are compatible with various plastic and rubber (elastomer) components used in off-the-shelf and commercially available pumps, infusion sets, containers, etc. In general, formulations prepared from biocompatible organic solvents (e.g., aprotic polar solvents) are often incompatible with the plastics, rubbers, and other materials used in devices, containers, and infusion sets.

[0009] One advantage of the formulations of the present invention over low water content DMSO-based formulations, which typically have an upper limit of 10% water content, is that they do not require specialized materials (e.g., plastics, polymers, elastomers) in the flow path, thereby reducing the development time and costs associated with manufacturing a solvent-compatible infusion set and / or a solvent-compatible flow path. The introduction of such compatible materials often requires significant expenditures in time and money, especially for devices that have already been scrutinized by regulatory agencies and approved for commercial use.

[0010] With the addition of moisture, the overall stability of the formulation may decrease due to the promotion of degradation pathways (e.g., hydrolysis) through water. In addition, some molecules (e.g., glucagon) that tend to gel and aggregate in aprotic polar solvents, such as DMSO, may be more sensitive to a certain degree of physical destabilization in high water content solvent-based formulations. It has been discovered that additional protonation (e.g., addition of acid and / or base) is required to reduce physical instability in higher water content formulations, which may increase the rate of chemical degradation. Therefore, high water content formulations may not exhibit the same long-term stability as non-aqueous formulations with low to no added water (e.g., less than about 10% water). However, for some applications, a different stability profile may be sufficient. For example, emergency formulations generally require room temperature stability of at least 1-2 years, since patients will generally need to carry the product containing them at all times. On the other hand, formulations used in pump-based delivery systems may be stored for long periods in refrigerators or freezers and removed from cold storage before use in the pump. Thus, this type of formulation may only require short-term room temperature stability (1-3 months) and even shorter-term high temperature stability (e.g., 3-7 days at body or body temperature (35-37 °C) since the formulation is stored within the pump for the period the pump is worn by the patient). In the latter type of application, data from high water content formulations presented herein indicate that it is a feasible approach to improve compatibility with commercially used materials, such as plastic and elastomeric (rubber) components. Described herein is the development of formulations that maintain sufficient physical and chemical stability of therapeutic molecules in the presence of high water content (e.g., >10%).

[0011] An additional advantage of high water content aprotic polar solvent based formulations is the low freezing point afforded by such solvent systems. For example, pure DMSO freezes at 18°C ​​and water freezes at 0°C. However, when mixed together, DMSO and water form a mixture that exhibits a minimum freezing point of approximately -70°C at approximately 30-35% (w / w) water addition. The advantage of this low freezing point is that these formulations can be stored in the refrigerator (2-8°C) or freezer (-20°C) for long term storage (which may inhibit chemical degradation) and are not subjected to freeze-thaw cycles that may promote physical and chemical instability.

[0012] Certain embodiments relate to aprotic polar solvent formulations comprising: (a) a therapeutic agent; (b) an ionization stabilizing excipient; (c) an aprotic polar solvent; and (d) water at greater than 10% v / v to about 50% v / v. In certain aspects, the water content is 20, 25, 30, 35 to 40% v / v, including all values ​​and ranges therebetween. In certain aspects, the aprotic solvent formulation is compatible with the container and / or device flow path. In certain instances, aprotic polar solvent at concentrations greater than 85% v / v to 100% v / v is incompatible with the device flow path. In certain aspects, the aprotic polar solvent is present at up to or about 85, 80, 75, 70, 65, 60, 55 to 50% v / v, including all values ​​and ranges therebetween. In certain aspects, components of the device flow channels may include rubbers, elastomers, thermoplastics, thermosets, polystyrene, polyvinyl alcohol, polyvinylpyrrolidone, polyalkylene oxides, acrylamide, acrylic acid, cellulose, cellulose ethers, cellulose esters, cellulose amides, polyvinyl acetate, polycarboxylic acids, polyamides, polyacrylamides, maleic / acrylic acid copolymers, polysaccharides, natural gums, and / or other solvent incompatible materials. Components of the device flow path may include one or more of polycarbonate (PC), acrylonitrile butadiene styrene (ABS), methacrylonitrile butadiene styrene (MABS), polyethylene terephthalate glycol (PETG), polycyclohexylene dimethylene terephthalate glycol (PCTG), polyethylene terephthalate (PETE), dimethyl cellulose, sodium carboxymethyl cellulose, dextrin, ethyl cellulose, hydroxyethyl cellulose, hydroxypropyl methylcellulose, maltodextrin, polymethacrylate, polystyrene (PS), polyisobutylene (PIB), polymethyl methacrylate (PMMA), ethylene vinyl acetate (EVA), polyvinyl chloride (PVC), thermoplastic polyurethane (TPU), hydroxypropyl methylcellulose (HPMC), high density polyethylene (HDPE), low density polyethylene (LDPE), polyurethane, or blends thereof.

[0013] In certain aspects, the therapeutic agent is a peptide or its salt.In certain examples, the peptide is administered by infusion (continuous or intermittent) over time, for example, at least 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, 25, 26, 27, 28, 29, 30 hours, or over a period of multiple days, for example, 1 day to 1 week (i.e., 1 day, 2 days, 3 days, 4 days, 5 days, 6 days, and up to 7 days).The peptide or its salt can be dissolved in an amount of about 0.01, 0.1, 0.5, 1.0, 1.5, 2.0, 3.0, 5.0 mg / mL up to the solubility limit of the peptide or its salt. In certain aspects, the peptide is a glucagon peptide, a glucagon analog, a glucagon mimetic, or a salt thereof.

[0014] At least one ionization stabilizing excipient can be dissolved in the aprotic solvent in an amount that stabilizes the ionization of the therapeutic agent. In certain aspects, the ionization stabilizing excipient is at a concentration of 0.01 mM or more and less than 200 mM. The ionization stabilizing excipient can be, but is not limited to, an inorganic acid. The inorganic acid can be selected from hydrochloric acid, sulfuric acid, nitric acid, and phosphoric acid. The ionization stabilizing excipient can also be an organic acid (an acid having a carboxylic acid-COOH functional group). Non-limiting examples of organic acids include acetic acid, citric acid, and amino acids. In certain aspects, the aprotic solvent is DMSO. In certain aspects, the ionization stabilizing excipient is an inorganic acid and the aprotic solvent is DMSO.

[0015] The formulation may further comprise less than 10, 5 or 3% w / v of a preservative, hi certain aspects, the preservative is benzyl alcohol.

[0016] The formulation may further comprise less than 10, 5 or 3% w / v of a disaccharide. In certain aspects, the disaccharide is trehalose.

[0017] In certain embodiments, the formulation may have a freezing point below 0°C, preferably below -20°C, or more preferably between -50°C and -70°C.

[0018] The formulation may be compatible with various devices that store and / or administer the formulation. Non-limiting examples include devices that include an infusion set connected to a pump that can administer the formulation parenterally to a subject. Alternatively, the device may be a patch pump that is attached directly to the patient and does not require an external infusion set.

[0019] Certain embodiments relate to methods of treating hypoglycemia by administering an effective amount of the formulations described herein to a subject in need thereof. In certain aspects, the formulation to be administered is provided or stored in a device or container that contains components that are incompatible with the formulation, including aprotic polar solvents in an amount of more than 90% (v / v) of the formulation. In certain aspects, the formulation is administered by infusion. In certain aspects, administration is by infusion through a pump that may be connected in series with an infusion set. Infusion may be continuous and / or bolus pump infusion.

[0020] Certain embodiments relate to a method of stably formulating glucagon peptides, comprising: (a) mixing at least one ionization stabilizing excipient with an aprotic solvent to form an ionization stabilizing excipient / aprotic solvent mixture; (b) dissolving a therapeutic agent in the ionization stabilizing excipient / aprotic solvent mixture; and (c) adding water to the ionization stabilizing excipient / aprotic solvent mixture to a water content of greater than 10% v / v to about 80% v / v, preferably about 20% v / v to about 50% v / v, to form a device flow path compatible aprotic solvent formulation. In certain aspects, the ionization stabilizing excipient is hydrochloric acid, nitric acid, sulfuric acid, or a combination thereof. The ionization stabilizing excipient can be, but need not be, at a concentration of 0.1 mM to 200 mM.

[0021] Without wishing to be bound by theory, these high water content aprotic polar solvent solutions (e.g., DMSO-based solutions) provide that the therapeutic agent is preferentially surrounded by the non-aqueous solvent molecules, thereby strongly solvating the therapeutic agent through the formation of hydrogen bonds (the aprotic polar solvent is a strong hydrogen bond acceptor and the therapeutic agent (e.g., backbone amines) acts as a hydrogen bond donor). While water may displace some of the solvent molecules that solvate the peptide, the therapeutic agent maintains a preferential association with the non-aqueous solvent, thereby excluding water, which may interact mostly with the container (i.e., plastic and rubber components of the infusion set or pump fluid path). The reduced interaction of the non-aqueous solvent with the container improves compatibility, while the interaction of the non-aqueous solvent with the therapeutic agent allows the formulation to maintain acceptable physical and chemical stability that exceeds that of the corresponding aqueous formulation.

[0022] The water content required to improve compatibility with the device may vary (e.g., depending on the material that constitutes the fluid flow path of the device). In certain embodiments, the water content may be greater than 10%, such as about 15%, about 20%, about 25%, about 30%, about 35%, about 40%, about 45%, about 50%, about 55%, about 60%, about 65%, about 70%, about 75% and about 80% (all v / v), including all values ​​and ranges therebetween. In certain aspects, the water content may be about 20%, about 25%, about 30%, about 35%, about 40% and about 45% to about 50% (all v / v), including all values ​​and ranges therebetween. Thus, as used herein, an "aprotic polar solvent system" includes at least one aprotic polar solvent (e.g., DMSO) and water to a final water content of greater than 10% to about 80% (v / v).

[0023] Therapeutic molecules typically require an optimal or beneficial ionization profile when dissolved in aprotic polar solvent systems to exhibit long-term stability. The maintenance of the beneficial ionization profile of therapeutic molecules dissolved in aprotic polar solvent systems can be achieved by using at least one ionization stabilizing excipient. Certain aspects of the present invention relate to a method for preparing a flow-path compatible stable formulation comprising at least one therapeutic molecule dissolved in aprotic polar solvent systems. In certain aspects, the therapeutic molecule does not need to be pre-dried from a buffered aqueous solution before reconstitution in aprotic polar solvent systems.

[0024] The ability to use existing (e.g., commercially available) devices and avoid the need to dry therapeutic molecules (e.g., peptides) from buffered aqueous solutions can save enormous amounts of time and money throughout the various product development stages.

[0025] A stable solution of a therapeutic agent solubilized in a non-aqueous aprotic polar solvent (e.g., DMSO) can be prepared by adding a certain amount of a compound or combination of compounds that function as an ionization stabilizing excipient. Without wishing to be bound by theory, it is believed that the ionization stabilizing excipient can act as a proton source (e.g., a molecule that can donate a proton to a therapeutic molecule) in an aprotic polar solvent system that can protonate an ionogenic group on the therapeutic molecule so that the therapeutic molecule has an ionization profile that exhibits improved physical and chemical stability in the aprotic polar solvent system. Alternatively, the ionization stabilizing excipient can act as a proton sink (e.g., a molecule or moiety that can accept / remove a proton from a therapeutic molecule) so that the therapeutic molecule has an ionization profile that exhibits improved physical and chemical stability in the aprotic polar solvent system. In one aspect of the present invention, a stable formulation for parenteral injection is disclosed. Alternatively, transdermal delivery to the skin, for example through topical application, can be used.

[0026] Certain embodiments relate to formulations of therapeutic agents that contain at least a maximum of about 0.1 mg / mL, about 1 mg / mL, about 5 mg / mL, about 10 mg / mL, about 15 mg / mL, about 20 mg / mL, about 25 mg / mL, about 50 mg / mL, or about 100 mg / mL to about 150 mg / mL, about 200 mg / mL, about 300 mg / mL, about 400 mg / mL, or about 500 mg / mL, or even higher concentrations up to the solubility limit of the therapeutic agent in an aprotic polar solvent system that contains at least one ionization stabilizing excipient at a concentration that provides physical and chemical stability to the therapeutic agent. In certain embodiments, the therapeutic agent is a peptide. In a further aspect, the therapeutic agent is a small molecule. The formulation may contain an ionization stabilizing excipient at a concentration of at least or up to about 0.01, 0.1, 0.5, 1, 10 or 50 mM to 10, 50, 75, 100, 500, 1000 mM, or up to the solubility limit of the ionization stabilizing excipient in the aprotic polar solvent system. In certain aspects, the concentration of the ionization stabilizing excipient is about 0.1 mM to about 100 mM, particularly about 1 mM to about 10 mM, such as about 1 mM, about 2 mM, about 3 mM, about 4 mM, about 5 mM, about 6 mM, about 7 mM, about 8 mM, about 9 mM, and about 10 mM. In certain embodiments, the ionization stabilizing excipient may be a suitable inorganic acid, such as hydrochloric acid, sulfuric acid, nitric acid, etc. In certain aspects, the ionization stabilizing excipient can be an organic acid, such as an amino acid, an amino acid derivative, or a salt of an amino acid or an amino acid derivative (examples include glycine, trimethylglycine (betaine), glycine hydrochloride, and trimethylglycine (betaine) hydrochloride). In further aspects, the amino acid can be glycine or the amino acid derivative trimethylglycine. In certain aspects, the peptide is less than 150, 100, 75, 50, or 25 amino acids. In further aspects, the aprotic solvent system comprises DMSO. The aprotic solvent can be deoxygenated, for example, deoxygenated DMSO. In certain embodiments, the formulation can be prepared by first adding the ionization stabilizing excipient to the aprotic polar solvent system, followed by adding the therapeutic molecule.Alternatively, the therapeutic molecule may first be solubilized in the aprotic polar solvent system, followed by the addition of the ionization stabilizing excipient. In a further aspect, the ionization stabilizing excipient and the therapeutic molecule may be simultaneously solubilized in the aprotic polar solvent system. In certain aspects, the therapeutic agent is glucagon, a glucagon analog, or a salt thereof.

[0027] Another aspect of the invention relates to a method of stably formulating a therapeutic agent (e.g., a peptide or small molecule) comprising the steps of: (a) calculating or determining appropriate ionization stabilizing excipients (e.g., proton concentrations) required to achieve a stabilized ionization profile of the targeted therapeutic agent (e.g., a peptide or small molecule) in an aprotic polar solvent system; (b) mixing at least one ionization stabilizing excipient with the aprotic polar solvent system to obtain a suitable ionization environment that provides the ionization profile determined in step (a); and (c) solubilizing the targeted therapeutic agent in an aprotic solvent having a suitable environment to physically and chemically stabilize the therapeutic agent. In certain non-limiting aspects, the Therapeutic Agent is chemically or physically stable at room temperature, refrigerated temperature (e.g., about 2° C. to about 10° C., or about 2° C., about 3° C., about 4° C., about 5° C., about 6° C., about 7° C., about 8° C., about 9° C., or about 10° C.), or at temperatures below zero degrees (e.g., about −4° C. to about −80° C., or about −4° C., about −10° C., about −15° C., about −20° C., about −25° C., about −40° C., about −45° C., about −50° C., about −60° C., about −70° C., or about −80° C.) for at least or about 0.25, 0.5, 1, 2, 3, 4, or 5 years, more preferably about 0.25 to about 2 years. In certain aspects, dissolution of the therapeutic agent and addition of the ionization stabilizing excipient to the aprotic polar solvent system can be performed in any order or simultaneously, so that the ionization stabilizing excipient can be mixed first and then the therapeutic agent can be dissolved, or the ionization stabilizing excipient can be added to the solution after the therapeutic agent is dissolved, or the ionization stabilizing excipient and the therapeutic agent can be added or dissolved simultaneously in the aprotic polar solvent system. In further aspects, the order of addition of water to the aprotic polar solvent can be performed before or after the addition of the therapeutic agent and / or the ionization stabilizing excipient. As a non-limiting example, for therapeutic agents with limited water solubility, it may be necessary to first dissolve an excess (i.e., above the target / final formulation concentration) concentration of the therapeutic agent in the aprotic polar solvent, and then charge water to achieve the target concentration of therapeutic compound and water in the final composition or formulation. The ionization stabilizing excipient can be added to the mixture before or after the addition of water.In some embodiments, the addition of ionization stabilizing excipients can be added before the addition of therapeutic agent to promote dissolution in aprotic polar solvent system. Additional formulation components (e.g., preservatives, surfactants, etc.) can be added to the formulation either before or after the addition of therapeutic agent. In further aspects, the entire amount of components (e.g., therapeutic agent or ionization stabilizing excipients) does not need to be mixed at a particular time, i.e., a portion of one or more components can be mixed first, second or simultaneously, and another portion can be mixed first, second or simultaneously at another time. In certain aspects, the therapeutic agent can be a peptide and the ionization stabilizing excipient can be a suitable inorganic acid, such as hydrochloric acid, sulfuric acid and / or nitric acid. In certain aspects, the peptide is less than 200, 150, 100, 75, 50 or 25 amino acids. The concentration of the therapeutic agent and / or ionization stabilizing excipient added to the solution can be between 0.01, 0.1, 1, 10, 100, 1000 mM, or up to its solubility limit, including all values ​​and ranges therebetween. In certain aspects, the aprotic polar solvent system is deoxygenated. In further aspects, the aprotic polar solvent in the solvent system comprises, consists essentially of, or consists of DMSO or deoxygenated DMSO.

[0028] In a further aspect of the present invention, a method for treating or preventing a condition, disease, disorder, etc. is disclosed, which comprises administering to a subject in need thereof an effective amount of the formulation of the present invention to treat or prevent the condition, disease, disorder, etc. Any suitable dose of therapeutic agent (e.g., protein, peptide, or small molecule) can be administered in the method of the present invention. The dose administered can of course vary depending on known factors, such as the pharmacodynamic characteristics of the individual compounds, salts, or combinations, the age, health, or weight of the subject, the nature and extent of symptoms, the drug and metabolic characteristics of the patient, the type of concurrent treatment, the frequency of treatment, or the desired effect. In certain aspects, hypoglycemia can be treated by administering the formulation described herein that includes an effective amount of glucagon.

[0029] The stable formulations described herein are useful for parenteral injection of any therapeutic agent (protein, peptide, and / or small molecule) that has limited or poor stability or solubility in an aqueous environment.In certain aspects, the formulations described herein are provided as injectable formulations.The injectable formulations can be administered to the epidermis, skin, subcutaneous or intramuscular layer of a patient.In certain aspects, the formulations are administered intradermally.

[0030] Thus, in some embodiments, the therapeutic agent or peptide or its salt is selected from the group consisting of glucagon, pramlintide, insulin, icatibant, leuprolide, LHRH agonist, parathyroid hormone (PTH), amylin, botulinum toxin, hematide, amyloid peptide, cholecystokinin, conotoxin, gastric inhibitory peptide, antibody (can be monoclonal or polyclonal) or fragment thereof, immunogenic peptide (e.g., peptide or peptide complex derived from virus, bacteria, or any prokaryotic or eukaryotic organism or cell thereof), insulin-like growth factor, growth hormone releasing factor, antibacterial factor, glatiramer, glucagon-like peptide-1 (GLP-1), GLP-1 agonist, exenatide, analogs thereof, and mixtures thereof. In one embodiment, the peptide is glucagon or a glucagon analog or glucagon peptidomimetic. In another embodiment, the peptide is parathyroid hormone. In yet another embodiment, the peptide is leuprolide. In yet another embodiment, the peptide is glatiramer. In yet another embodiment, the peptide is icatibant. In yet another embodiment, the first peptide is pramlintide and the second peptide is insulin. In yet another embodiment, the first peptide is glucagon and the second peptide is exenatide. In other embodiments, the stable formulation used according to the present invention comprises a co-formulation or mixture of compounds of the type described herein, such as at least one peptide, at least one small molecule, and combinations thereof.

[0031] definition Terms such as "container", "reservoir", "infusion set", "pump", "formulation flow path", "fluid flow path", etc. should be interpreted as interchangeable and equivalent, and these components are in direct contact with the formulation to be administered or stored, which may interact with the components and their surfaces. These terms connote any and all components that the formulation may come into contact with during storage (e.g., pump reservoir) and delivery (e.g., pump and the fluid flow path in the infusion set when connected in series to the pump). The term "infusion set", as used herein, may be interpreted to include both self-contained infusion sets (i.e., those contained within a patch pump) and complete tubing systems, usually external to the pump, that connect the pump to the pump user. In certain configurations, external infusion sets include cannulas (e.g., for subcutaneous administration), adhesive mounts, quick disconnects, and pump cartridge connectors (e.g., Luer-type connectors).

[0032] The term "dissolution" as used herein refers to the process by which a substance in a gaseous, solid or liquid state becomes a solute, a dissolved component of a solvent, forming a solution of the gas, liquid or solid in the solvent. In certain aspects, a therapeutic agent or excipient, such as an ionizable stabilizing excipient, is present in an amount up to its solubility limit or is completely solubilized. The term "dissolution" refers to the incorporation of a gas, liquid or solid into a solvent to form a solution.

[0033] The term "elastomer" as used herein refers to a natural or synthetic polymer having elastic properties. The terms "elastomer" and "rubber" may be used interchangeably herein.

[0034] The term "excipient" as used herein refers to a natural or synthetic substance (a non-active ingredient) that is formulated with the active or therapeutic ingredient of a pharmaceutical for the purposes of stabilization, bulking, or to provide a therapeutic enhancement to the active ingredient in the final dosage form, e.g., to facilitate drug absorption, reduce viscosity, enhance solubility, adjust osmolality, reduce injection site discomfort, lower the freezing point, or enhance stability. Excipients can also be useful in aiding in in vitro stability, e.g., preventing denaturation or aggregation during the expected storage period, as well as aiding in handling of the active ingredient of interest during the manufacturing process, e.g., by promoting powder flow or non-stick properties.

[0035] A "small molecule drug" in the context of the present invention is a biologically active compound (and its salts) that can produce a desired, beneficial, and / or pharmacological effect on a subject. These "small molecule drugs" are organic or inorganic compounds. Thus, small molecule drugs in the context of the present invention are not polymeric compounds. Typically, small molecule drugs have a molecular weight of approximately less than 1000 Daltons. Certain small molecule drugs are "moisture sensitive" in that they become increasingly unstable in the presence of water. Also, salts that can be used with small molecule drugs are known to those skilled in the art and include salts with inorganic acids, organic acids, inorganic bases, or organic bases.

[0036] The term "therapeutic agent" or "therapeutic" encompasses proteins, peptides, small molecule drugs, and pharma- ceutically acceptable salts thereof. Useful salts are known to those of skill in the art and include salts with inorganic acids, organic acids, inorganic bases, or organic bases. Therapeutic agents useful in the present invention are proteins, peptides, and small molecule compounds that provide a desired, beneficial, and often pharmacological effect when administered to humans or animals, either alone or in combination with other pharmaceutical excipients or inactive ingredients.

[0037] The terms "peptide" and "peptide compound" refer to amino acid or amino acid-like (peptidomimetic) multimers of up to about 200 amino acid residues linked together by amide (CONH) or other linkages. In certain aspects, peptides can be up to 150, 100, 80, 60, 40, 20, or 10 amino acids. "Protein" and "proteinaceous compound" refer to multimers of more than 200 amino acid residues linked together by amide bonds. Analogs, derivatives, agonists, antagonists, and pharma- ceutically acceptable salts of any of the peptide or proteinaceous compounds disclosed herein are included in these terms. These terms also include peptides, proteins, peptide compounds, and proteinaceous compounds having D-amino acids, modified, derivatized, or natural amino acids in D or L configuration, and / or peptidomimetic units as part of their structure.

[0038] "Analog" and "analog", when referring to a peptide or protein, refer to a modified peptide or protein in which one or more amino acid residues of the peptide or protein have been replaced by other amino acid residues, or one or more amino acid residues have been deleted from the peptide or protein, or one or more amino acid residues have been added to the peptide or protein, or any combination of such modifications. Such addition, deletion, or substitution of amino acid residues can occur at any point, or points, along the primary structure that constitutes the peptide, including the N-terminus of the peptide or protein and / or the C-terminus of the peptide or protein.

[0039] In reference to a parent peptide or protein, a "derivative" refers to a chemically modified parent peptide or protein or analog thereof, in which at least one substitution is not present in the parent peptide or protein or analog thereof. One such non-limiting example is a covalently modified parent peptide or protein. Typical modifications are amides, carbohydrates, alkyl groups, acyl groups, esters, pegylation, and the like.

[0040] A "monophasic solution" refers to a solution prepared from a therapeutic agent dissolved in a solvent or solvent system (e.g., a mixture of two or more solvents (e.g., a solvent and a co-solvent)) in which the therapeutic agent is completely dissolved in the solvent or solvent system and no particulate matter is visible, such that the solution can be described as optically clear. A monophasic solution may also be referred to as a "monophasic system," which is distinguished from a "two-phase system," in that the latter is formed from a particulate matter (e.g., a powder) suspended in a fluid.

[0041] "Inhibition," "reduction," or any variation of these terms includes any measurable decrease or complete inhibition that achieves the desired result.

[0042] "Effective" or "treatment" or "prevention," or any variation of these terms, means sufficient to achieve a desired, expected, or intended result.

[0043] "Chemical stability" refers to the formation of acceptable proportions of degradation products by chemical pathways, such as oxidation and / or hydrolysis and / or fragmentation and / or other chemical degradation pathways. In particular, a formulation of the type described herein can be considered chemically stable if about 20% or less degradation products are formed after at least one year of storage at the intended storage temperature of the product (e.g., refrigerated storage or storage below zero degrees), or after one month, two months, or preferably three months of storage of the product under accelerated conditions (25°C / 60% relative humidity). In some embodiments, a chemically stable formulation has less than 30%, less than 25%, less than 20%, less than 15%, less than 10%, less than 5%, less than 4%, less than 3%, less than 2% or less than 1% degradation products formed after long-term storage at the intended storage temperature of the product.

[0044] "Physical stability" refers to the formation of an acceptable proportion of aggregates (e.g., dimers, trimers and larger forms) when referring to a therapeutic agent. In particular, a formulation is considered physically stable if about 15% or less aggregates are formed after at least one year of storage at the intended storage temperature of the product (e.g., refrigerated storage or storage below zero degrees), or after one month, two months and preferably three months of storage of the product under 25°C / 60% relative humidity. In some embodiments, a physically stable formulation has less than 15%, less than 10%, less than 5%, less than 4%, less than 3%, less than 2% or less than 1% aggregates formed after long-term storage at the intended storage temperature of the product.

[0045] A "stable formulation" refers to a formulation in which at least about 65% of the therapeutic agent (e.g., a peptide or salt thereof) remains chemically and physically stable after storage at room temperature for at least one month or storage at refrigerated or subzero temperatures for up to at least one year. Particularly preferred formulations are those in which at least about 80%, 85%, 90%, 91%, 92%, 93%, 94%, 95%, 96%, 97%, 98%, or 99% of the therapeutic agent remains chemically and physically stable under these storage conditions. Particularly preferred stable formulations are those that do not exhibit degradation after sterilizing irradiation (e.g., gamma, beta, or electron beam).

[0046] As used herein, "parenteral injection" refers to administration of a therapeutic agent (e.g., a peptide or small molecule) through a route other than the digestive canal -- any administration not via the digestive tract -- e.g., intravenous infusion, intranasal administration, buccal administration, transdermal administration, or injection under or through one or more layers of the skin or mucosa of an animal, e.g., a human. Standard parenteral injections are given into subcutaneous, intramuscular, or intradermal tissues of an animal, e.g., a human. These deeper sites are targeted because the tissues expand more readily than shallow skin sites to accommodate the injection volumes required to deliver most therapeutic agents, e.g., 0.1-3.0 cc (mL).

[0047] The term "intradermal" includes administration into the epidermal, dermal or subcutaneous skin layers.

[0048] As used herein, the term "aprotic polar solvent" refers to a polar solvent that does not contain an acidic hydrogen and therefore does not act as a hydrogen bond donor. Polar aprotic solvents include, but are not limited to, dimethylsulfoxide (DMSO), dimethylformamide (DMF), ethyl acetate, n-methylpyrrolidone (NMP), dimethylacetamide (DMA), and propylene carbonate.

[0049] As used herein, the term "aprotic polar solvent system" refers to a solution in which the solvent is a single aprotic polar solvent (e.g., neat DMSO) or a mixture of two or more aprotic polar solvents (e.g., a mixture of DMSO and NMP), or a mixture of at least one aprotic polar solvent and another pharma- ceutically acceptable solvent system. In a further aspect, the term "aprotic polar solvent system" refers to a solution in which the solvent is one or more aprotic polar solvents mixed with an amount of moisture, e.g., water, in a v / v ratio of at least about 99.9% aprotic solvent to about 0.1% water up to a v / v ratio of at least about 50% aprotic solvent to about 50% water.

[0050] As used herein, "residual moisture" may refer to the residual moisture (typically, residual water) in a drug powder after preparation by the manufacturer / supplier. Typical powders often have a residual moisture content in the range of up to 10% (w / w). When these powders are dissolved in an aprotic polar solvent system, the residual moisture in the powder is incorporated into the formulation. In addition, aprotic polar solvents may also contain a certain level of residual moisture. For example, a freshly opened bottle of USP grade DMSO may contain up to 0.1% (w / w) moisture. Residual moisture differs from "added moisture" where water is intentionally added to the formulation, for example, to act as a co-solvent or to depress the freezing point of the aprotic polar solvent system. Moisture may also be present upon the addition of an ionizable stabilizing excipient (e.g., inorganic acid (e.g., 1N HCl or H) from an aqueous stock solution). 2 SO 4 ) or through the addition of water (e.g., water for injection). The total water content (% v / v, unless otherwise stated) in the formulation immediately after preparation is due to contributions from both residual and added water.

[0051] As used herein, a "device flow path" refers to a portion of a device that may come into contact with a formulation / solution / solvent during administration of the formulation / solution / solvent to a subject using the device. In some aspects, the device may be an infusion set in series with a pump that can parenterally administer the formulation / solution / solvent to a subject through various needles and / or tubes. In other aspects, the device may be a patch pump that is attached directly to the patient and does not require the use of an external infusion set that is connected in series with the pump.

[0052] As used herein, a "device flow path compatible formulation / solution / solvent" refers to a formulation / solution / solvent that is compatible with a component of the device flow path. For a formulation / solution / solvent to be compatible with a component, the formulation / solution is expected to dissolve less than 0.05-5% of the component when the component is in sustained contact with the formulation / solution / solvent for a particular period of use and storage conditions (e.g., one non-limiting example would be a 3-day period of use at 37°C in an on-body pump and / or infusion set). In addition to not dissolving, a formulation compatible component should not undergo other significant physical changes (e.g., discoloration, loss of transparency, e.g., progression from clear to partially opaque, becoming excessively brittle / soft or hard / rigid) when in contact with the formulation under the specified period of use and conditions, e.g., a 12-72 hour period at a temperature of 25-40°C.

[0053] As used herein, a "formulation / solution / solvent incompatible with a device flow path" means that the formulation / solution / solvent is incompatible with one or more components of the device flow path. For a formulation / solution / solvent to be incompatible with a component, the formulation / solution / solvent may dissolve at least 1-20% of the component when the component is in sustained contact with the formulation / solution / solvent for a given period of use and storage conditions, e.g., within 12-24 hours or sooner at a temperature of 25-40°C.

[0054] The terms "about" or "approximately" or "substantially unchanged" are defined as close as understood by one of ordinary skill in the art, and in one non-limiting embodiment, the term is defined as within 10%, preferably within 5%, more preferably within 1%, and most preferably within 0.5%. Additionally, "substantially non-aqueous" refers to less than 5%, 4%, 3%, 2%, 1% or less water by weight or volume.

[0055] A "pharmaceutically acceptable" ingredient, excipient or component is one that is suitable for use in humans and / or animals without causing undue adverse side effects (e.g., toxicity, irritation, and allergic reactions) commensurate with a reasonable benefit / risk ratio.

[0056] "Pharmaceutically acceptable carrier" means a pharma- ceutically acceptable solvent, suspending agent, or vehicle for delivering a drug compound of the invention to a mammal, e.g., a human.

[0057] As used herein, an "ionization stabilizing excipient" is an excipient that establishes and / or maintains a particular ionization state for a therapeutic agent. In certain aspects, an ionization stabilizing excipient can be or includes a molecule that, under appropriate conditions, donates or is a proton source of at least one proton. In accordance with the Bronsted-Lowry definition, an "acid" is a molecule that can donate a proton to another molecule, which can therefore be classified as a base by accepting the donated proton. In other aspects, an ionization stabilizing excipient can be or includes a molecule that, under appropriate conditions, accepts or is a proton sink of at least one proton. In accordance with the Bronsted-Lowry definition, a "base" is a molecule that can accept a proton from another molecule, which can therefore be classified as an acid by donating the accepted proton. As used herein, and as will be understood by those of skill in the art, the term "proton" refers to a hydrogen ion, a hydrogen cation, or a H +represents the hydrogen atom. A hydrogen ion has no electrons and is composed of a nucleus that typically consists of only a proton (the most common hydrogen isotope is protium). In particular, any molecule that can donate a proton to a therapeutic agent is considered an acid or proton source, whether it is fully ionized, nearly ionized, partially ionized, nearly non-ionized, or fully non-ionized in an aprotic polar solvent.

[0058] As used herein, a "mineral acid" is an acid derived from one or more inorganic compounds. Thus, an inorganic acid may also be referred to as an "inorganic acid." Inorganic acids may be monoprotic or polyprotic (e.g., diprotic, triprotic, etc.). Non-limiting examples of inorganic acids are hydrochloric acid (HCl), nitric acid (HNO 3 ), sulfuric acid (H 2 SO 4 ), and phosphoric acid (H 3 PO 4 ).

[0059] As used herein, an "inorganic base" (which may equally and alternatively be referred to as an "inorganic base") is a base derived from one or more inorganic compounds. Many, but not all, inorganic bases are typically classified as "strong bases" and non-limiting examples of inorganic bases are sodium hydroxide (NaOH), potassium hydroxide (KOH), magnesium hydroxide (Mg(OH) 2 ) and calcium hydroxide (Ca(OH) 2 ).

[0060] As used herein, an "organic acid" is an organic compound that has acidity (i.e., can function as a proton source). A carboxylic acid, such as acetic acid or citric acid, is one example of an organic acid. Other known examples of organic acids include, but are not limited to, alcohols, thiols, enols, phenols, and sulfonic acids. Organic acids can be monoprotic or polyprotic (e.g., diprotic, triprotic, etc.).

[0061] As used herein, an "organic base" is an organic compound that has basicity (i.e., can function as a proton acceptor / sink). Many, but not all, organic bases contain nitrogen atoms (e.g., amines), and non-limiting examples of organic bases include amino acids (e.g., histidine, arginine, lysine), pyridine, imidazole, and tromethamine. Organic bases can accept one or more protons per molecule.

[0062] "Charge profile," "charge state," "ionization," "ionization state," and "ionization profile" may be used interchangeably to refer to the ionization states based on the protonation and / or deprotonation of ionogenic groups of the peptide.

[0063] As used herein, a "co-formulation" is a formulation that contains two or more therapeutic agents dissolved in an aprotic polar solvent system.The therapeutic agents can be of the same class (e.g., a co-formulation that contains two or more therapeutic peptides, such as insulin and pramlintide, or glucagon and GLP-1), or the therapeutic agents can be of different classes (e.g., a co-formulation that contains one or more therapeutic small molecules and one or more therapeutic peptide molecules, such as GLP-1 and lisofylline).

[0064] When used in conjunction with the term "comprising" in the claims and / or specification, the use of the words "a" or "an" can mean "one," but can also mean "one or more," "at least one," and "one or more than one."

[0065] "Comprising" (and any form of comprising, e.g., "comprise" and "comprises"), "having" (and any form of having, e.g., "have" and "has"), "including" (and any form of including, e.g., "includes" and "include") or "containing" (and any form of containing, e.g., "contains" and "contain") are inclusive and open-ended and do not exclude additional, unrecited elements or method steps.

[0066] [The present invention 1001] (a) a therapeutic agent; (b) an ionizable stabilizing excipient; and (c) an aprotic polar solvent; (d) about 10% v / v to about 50% v / v water and is compatible with the container and / or injection device fluid path. [The present invention 1002] The formulation of the present invention 1001, wherein the component of the device flow path comprises a rubber, a thermoplastic, a thermoset, polystyrene, polyvinyl alcohol, polyvinylpyrrolidone, a polyalkylene oxide, acrylamide, acrylic acid, cellulose, cellulose ether, cellulose ester, cellulose amide, polyvinyl acetate, a polycarboxylic acid, a polyamide, a polyacrylamide, a maleic acid / acrylic acid copolymer, a polysaccharide, or a natural gum, or a combination of two or more thereof. [The present invention 1003] The formulation of the present invention 1002, wherein the components of the device flow path include polycarbonate (PC), acrylonitrile butadiene styrene (ABS), methacrylonitrile butadiene styrene (MABS), methylcellulose, sodium carboxymethylcellulose, dextrin, ethylcellulose, hydroxyethylcellulose, hydroxypropylmethylcellulose, maltodextrin, polymethacrylate, polystyrene (PS), polyisobutylene (PIB), polymethylmethacrylate (PMMA), ethylene vinyl acetate (EVA), polyvinyl chloride (PVC), thermoplastic polyurethane (TPU), hydroxypropylmethylcellulose (HPMC), high density polyethylene (HDPE), low density polyethylene (LDPE), polyurethane, or blends thereof. [The present invention 1004] The formulation of claim 10, wherein the therapeutic agent is a peptide. [The present invention 1005] The formulation of the present invention 1004, wherein the peptide or its salt is dissolved in an amount from about 0.1 mg / mL up to the solubility limit of the peptide or its salt. [The present invention 1006] The formulation of the present invention 1004, wherein the peptide is a glucagon peptide, a glucagon analog, a glucagon mimetic, or a salt thereof. [The present invention 1007] The formulation of claim 1001, wherein an ionizable stabilizing excipient is included in the formulation in an amount that maintains the physical stability of the therapeutic agent. [The present invention 1008] The formulation of claim 10, wherein the ionizable stabilizing excipient is at a concentration of 0.01 mM or more and less than 200 mM. [The present invention 1009] The formulation of claim 10, wherein the ionizable stabilizing excipient is an inorganic acid. [The present invention 1010] The formulation of claim 10, wherein the inorganic acid is selected from the group consisting of hydrochloric acid, sulfuric acid, and nitric acid. [The present invention 1011] The formulation of invention 1001, wherein the aprotic polar solvent is DMSO. [The present invention 1012] The formulation of invention 1001, wherein the ionizable stabilizing excipient is hydrochloric acid and the aprotic solvent is DMSO. [The present invention 1013] 1001. A formulation of the present invention having a water content of 20% v / v to 40% v / v. [The present invention 1014] A formulation of the present invention 1001 further comprising less than about 10%, less than about 5% w / v, or less than about 3% w / v of a preservative. [The present invention 1015] 1014. The formulation of claim 10, wherein the preservative is metacresol. [The present invention 1016] A formulation of this invention 1001 further comprising less than about 10% w / v, less than about 5% w / v, or less than about 3% w / v of a disaccharide. [The present invention 1017] 1016. The formulation of claim 10, wherein the disaccharide is trehalose. [The present invention 1018] A formulation of the present invention having a freezing point of less than about 0° C. [The present invention 1019] A formulation of the present invention having a freezing point of less than about -20°C. [The present invention 1020] The formulation of the present invention having a freezing point of about -50°C to about -80°C. [The present invention 1021] The formulation of claim 1001, wherein the container or injection device fluid path is an infusion set or pump capable of parenterally administering the formulation to a subject. [The present invention 1022] A method of treating hypoglycemia by introducing an effective amount of a formulation of the present invention 1001 into a subject in need thereof. [The present invention 1023] The method of claim 1022, wherein the formulation is introduced into the subject via injection. [The present invention 1024] The method of claim 1023, wherein the infusion is accomplished by pump infusion. [The present invention 1025] The method of the present invention 1024, wherein the pump infusion comprises continuous or bolus pump infusion, or a combination thereof. [The present invention 1026] mixing at least one ionization stabilizing excipient, at least one aprotic polar solvent, glucagon, and sufficient water to provide a water content in the formulation of greater than 10% v / v to about 50% v / v, thereby forming a stable glucagon formulation that is compatible with the device and / or fluid flow path. A method for producing a stable glucagon formulation comprising: [The present invention 1027] The method of claim 1026, wherein the water content is from about 15% v / v to about 50% v / v. [The present invention 1028] The method of the present invention 1026, wherein the water content is about 20% v / v, about 25% v / v, about 30% v / v, about 35% v / v, about 40% v / v, about 45% v / v, or about 50% v / v. [The present invention 1029] The method of claim 1026, wherein the ionizable stabilizing excipient is at least one inorganic acid. [The present invention 1030] The process of claim 1029, wherein the inorganic acid is hydrochloric acid, nitric acid, sulfuric acid, or a combination thereof. [The present invention 1031] The method of claim 1026, wherein the concentration of the ionizable stabilizing excipient is from about 0.1 mM to about 200 mM. [The present invention 1032] The method of claim 1031, wherein the concentration of the ionizable stabilizing excipient is from about 1 mM to about 20 mM. [The present invention 1033] The method of claim 1031, wherein the concentration of the ionizable stabilizing excipient is from about 1 mM to about 10 mM. [The present invention 1034] The method of claim 1031, wherein the concentration of the ionizable stabilizing excipient is from about 4 mM to about 9 mM. [The present invention 1035] The method of claim 1026, wherein the aprotic solvent is DMSO. [The present invention 1036] A method of diagnosing a disease or physical disorder in a human patient by introducing to a patient suffering from or susceptible to the disease or disorder an effective amount of a formulation of the present invention 1001 as an adjunct to a diagnostic test and performing the diagnostic test on the patient. [The present invention 1037] The method of any one of claims 10 to 36, wherein the patient is suffering from or susceptible to Alzheimer's disease. [The present invention 1038] The method of claim 1036, wherein the patient is suffering from or susceptible to growth hormone deficiency. [The present invention 1039] The method of the present invention, wherein the patient is suffering from or susceptible to a gastrointestinal disorder. [The present invention 1040] The method of claim 1039, wherein the diagnostic test is a radiological examination of the patient's gastrointestinal tract. [The present invention 1041] The method of claim 1036, wherein the formulation is introduced into the patient intravenously, intramuscularly, or intradermally. Other objects, features and advantages of the present invention will become apparent from the following detailed description. It should be understood, however, that the detailed description and examples, while indicating specific embodiments of the present invention, are given by way of illustration only. In addition, it is contemplated that changes and modifications within the spirit and scope of the present invention will become apparent to those skilled in the art from this detailed description. [Brief description of the drawings]

[0067] The following drawings form part of the present specification and are included to further demonstrate certain aspects of the invention. The invention may be better understood by reference to one or more of these drawings in combination with the detailed description of specific embodiments presented herein.

[0068] [Figure 1] Figure 1 shows the effect of water content (% v / v) on polycarbonate clear plastic luer fittings from a commercial infusion set. Water content is provided as (100%-DMSO volume), with the amount of DMSO provided on the label of each vial. For example, for samples labeled 60% DMSO, the water content is approximately 40% (v / v). Samples were photographed after 1 week at 45°C in an incubation orbital shaker. At 0% water (100% DMSO), the plastic components partially dissolved into solution, and at 10% water (90% DMSO), the clear plastic appeared not to have dissolved but had become opaque. At 25% water and above, the plastic components remained visually clear and undissolved until the end of the storage period. [Diagram 2] Shown is the effect on a prefillable injection system (UniJect™; Becton-Dickenson) device filled with a DMSO-HO mixture after 2 weeks of storage at 45° C. The plastic was visually opaque at 100%, 95% and 90% added moisture and visually clear at 25%, 50% and 100% added moisture. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0069] Detailed Description of the Invention When prepared as an aqueous solution, standard small molecules, peptides, and protein molecules can be subject to multiple physical and chemical decomposition pathways. For many of these therapeutic molecules, the decomposition pathways (e.g., hydrolysis, racemization, deamidation) that are catalyzed, mediated, and / or promoted by water cannot be avoided, and as a result, the molecule cannot be sufficiently stabilized. Therefore, many therapeutic agents cannot be prepared as a stable solution for parenteral injection, but instead are prepared as a powder that is reconstituted immediately before use.

[0070] To address the physical and / or chemical instability that many therapeutic molecules exhibit in water, formulations can be prepared in which the therapeutic agent is dissolved in a biocompatible non-aqueous liquid, such as an aprotic polar solvent (e.g., DMSO). Previous non-aqueous formulations are based, at least in part, on the premise that limiting the water content of the formulation promotes physical and chemical stability by inhibiting water-mediated degradation pathways. Many of these known formulations limit their water content to a maximum of 10% (w / w).

[0071] The use of aprotic polar solvents in preparing non-aqueous therapeutic formulations to inhibit many common degradation pathways, especially those involving water, can greatly improve the stability of solubilized or dissolved therapeutic molecules. However, problems remain with compositions and methods disclosed in the art. In particular, direct dissolution of therapeutic molecules in aprotic polar solvents is not a suitable approach for preparing stable compositions of most therapeutic molecules. When various therapeutic agents are directly dissolved in DMSO, for example, glucagon at a concentration of 5 mg / mL can form insoluble aggregates within one day of storage at room temperature. For a composition containing only glucagon and DMSO, 5 mg / mL corresponds to approximately 0.45% (w / w) of peptide compound, indicating that even at relatively low concentrations, direct dissolution in aprotic polar solvent systems alone cannot prevent physical aggregation and / or gelation of therapeutic molecules. Furthermore, therapeutic molecules that may not form insoluble aggregates in aprotic polar solvent systems may nevertheless be susceptible to chemical degradation when directly solubilized in aprotic polar solvent systems.

[0072] Without wishing to be bound by theory, it is believed that therapeutic molecules may require a specific ionization profile to exhibit enhanced or optimal stability and solubility when formulated in aprotic polar solvent systems. An ionization profile is a charge state that is acquired through protonation and / or deprotonation of ionogenic groups of therapeutic molecules. For example, protonation of ionogenic amino acid residues (e.g., arginine, lysine, aspartic acid, glutamic acid) that constitute therapeutic peptides may impart an overall positive charge to the molecule in solution. Alternatively, deprotonation of ionogenic amino acid residues may impart an overall negative charge to the molecule in solution. In the non-limiting examples used herein, protonated (i.e., positively charged) molecules are described, but deprotonation of ionogenic amino acid residues in therapeutic peptide molecules is also considered to be within the scope of the present invention. The relatively long-range electrostatic repulsion between positively charged peptide molecules may inhibit short-range hydrophobic interactions that may result in physical aggregation and / or gelation. Thus, in the absence of sufficient protonation (i.e., optimal or beneficial ionization profile), therapeutic molecules dissolved in aprotic polar solvent systems may be physically unstable and form soluble and / or insoluble aggregates. Therefore, it may be necessary to include at least one excipient at a sufficient concentration to function as an ionization stabilizing excipient that can impart an ionization profile for improved physical and / or chemical stability to the active agent in the aprotic polar solvent system. The appropriate concentration of the ionization stabilizing excipient added to the solution depends on various factors, including but not limited to the chemical structure of the ionization stabilizing excipient, the chemical structure of the active agent, the concentration of the drug, the solvent system used, the presence of co-solvents, and the presence of additional excipients or formulation components and their respective concentrations.

[0073] Certain compositions and methods are designed to establish optimal ionization profiles for therapeutic molecules before they are solubilized in aprotic polar solvent systems. For example, peptide powders from a supplier / manufacturer are first dissolved in a buffered aqueous solution, and the pH of the buffered aqueous peptide solution is set to that of optimal stability and solubility for the individual peptide. The peptides are then dried (e.g., through freeze-drying or spray-drying) from the aqueous solution into a powder, such that the ionization profile of the peptide molecules in the powder can be approximately equivalent to the ionization profile of the peptide molecules in the aqueous solution before drying. When the peptide powder is then solubilized in aprotic polar solvent systems, the ionization profile of the peptide molecules can be approximately equivalent to the ionization profile of the peptide molecules in the powder. Thus, the ionization profile of the peptide molecules in the aprotic polar solvent system is approximately equivalent to the ionization profile of the peptide molecules in the buffered aqueous solution.

[0074] The need to dry therapeutic molecules from buffered aqueous solutions to optimize the ionization profile of the molecule and provide pH memory before being solubilized in aprotic polar solvents often imposes significant additional costs, both in time and money, on the formulation manufacturing process. In particular, drying processes are known to impose various burdens on therapeutic molecules, and sufficient amounts of additional excipients (e.g., cryoprotectants, such as trehalose and sucrose, and / or surfactants, such as polysorbate 80) must be included in the aqueous solution to protect the therapeutic molecule, thus increasing the cost and complexity of the formulation. Furthermore, drying processes (e.g., spray drying, lyophilization) often must be optimized for a given therapeutic molecule, both during initial research and development when the process is first developed, at research scale, and then during manufacturing scale when the process is scaled up and transferred to equipment and facilities capable of manufacturing commercial scale batches. As a result, the combination of initial development and optimization of a drying process for a given therapeutic molecule can be very expensive, with the added time and cost associated with both transferring the method and incorporating additional steps in the manufacturing process. Without wishing to be bound by theory, it is believed that by providing at least one ionization stabilizing excipient in a sufficient amount to achieve a suitable or optimal ionization profile of the therapeutic molecule, the electrostatic repulsion between therapeutic molecules having the same charge polarity (i.e., negatively or positively charged) can be of sufficient magnitude to prevent physical degradation (e.g., through short-range hydrophobic interactions between molecules that lead to aggregation). This is particularly important for molecules that exhibit a tendency to aggregate in solution, especially when the concentration of the molecule in the solution becomes high. Furthermore, by controlling and optimizing the degree of ionization (i.e., protonation or deprotonation) of the therapeutic agent, chemical degradation can be minimized, for example, because excessive protonation can promote chemical destabilization through decomposition reactions, such as oxidation (e.g., oxidation of methionine residues) and fragmentation (e.g., cleavage of the peptide backbone).Thus, for some therapeutic molecules, an optimal or beneficial ionization profile may be achieved through protonation or deprotonation such that physical and / or chemical decomposition reactions are minimized. For therapeutic peptides, the degree of ionization (i.e., protonation or deprotonation) required for stabilization, and therefore the amount of ionizable stabilizing excipient required in solution, may depend, among other things, on its primary structure (i.e., amino acid sequence) and the concentration of the peptide in solution.

[0075] Each molecule that functions as an ionization stabilizing excipient may exhibit a certain tendency to donate or accept protons from the therapeutic molecule and / or additional drug substance / powdered components (e.g., salts, counterions, buffer molecules, etc.) in a given solvent system, where the tendency to donate a proton may be expressed as the relative acidic strength of the molecule, and the tendency to accept a proton may be expressed as the relative basic strength of the molecule. As a non-limiting example, for a fixed concentration of proton donating molecules (and, for simplicity, assuming only monoprotic molecules in this example), molecules with higher acidic strength may protonate the therapeutic molecule to a greater extent than weaker acids. Thus, the concentration of a given proton donating molecule (ionization stabilizing excipient) required to achieve a suitable or optimal ionization profile for a therapeutic molecule may be inversely proportional to its acidic strength. These and other non-limiting aspects of the invention are discussed herein.

[0076] In certain aspects, the aprotic polar solvent may be deoxygenated prior to preparation of the formulation. Many different techniques may be used in the context of the present invention to deoxygenate or remove oxygen from the aprotic polar solvent (e.g., degassing or deoxygenation). For example, it is envisioned that deoxygenation may remove oxygen dissolved in the liquid aprotic polar solvent, either by the liquid alone, by the liquid and other solute molecules (e.g., micelles, cyclodextrins, etc.), or by other solute molecules alone. Non-limiting examples of deoxygenation techniques include placing the aprotic polar solvent under reduced pressure and / or heating the liquid to reduce the solubility of dissolved gases, fractional distillation, membrane degassing, displacement with inert gas, use of reducing agents, freeze-degassing-thaw cycles, or long-term storage in an airlocked container. In one embodiment, the aprotic polar solvent is deoxygenated by vacuum degassing. In another embodiment, the aprotic polar solvent is deoxygenated using a degassing device. In one example, the degasser is a tray or cascade type degasser. In another example, the degasser is a spray type degasser. In yet another embodiment, the aprotic polar solvent is deoxygenated using a gas-liquid separation membrane. In one example, the aprotic polar solvent is degassed using a gas-liquid separation membrane and reduced pressure. In one embodiment, a non-oxygen gas (e.g., N 2 ) is pumped through the liquid to replace or reduce the oxygen in the aprotic polar solvent. 2) is blown through the aprotic polar solvent. In one example, the gas blown through the aprotic polar solvent is argon, helium, nitrogen, an inert gas, and / or hydrogen gas, preferably nitrogen gas. In another example, the gas is blown through the aprotic polar solvent using a gas stripping tower. In yet another embodiment, the aprotic polar solvent is deoxygenated using one or more reducing agents. Non-limiting examples of reducing agents include ammonium sulfite, hydrogen gas, active deoxidizing metals, copper, tin, cadmium, Wood's metal alloy (50% bismuth, 25% lead, 12.5% ​​tin, and 12.5% ​​cadmium), and the like. In yet another embodiment, the aprotic polar solvent is degassed by freeze-degas-thaw cycles (e.g., at least one, two, three, or more cycles may be used). In one example, the freeze-degas-thaw cycles include freezing the aprotic polar solvent under liquid nitrogen, applying a vacuum, and then thawing the solvent in warm water. In one embodiment, the aprotic polar solvent is deoxygenated by long-term storage in a steel, glass or wooden container. In another embodiment, the aprotic polar solvent is sonicated, ultrasonicated or agitated during deoxygenation.

[0077] Once treated or deoxygenated, the aprotic polar solvent may have less than 0.1 mM dissolved oxygen, preferably less than 0.05 mM dissolved oxygen. Methods known to those skilled in the art may be used to determine the amount of dissolved oxygen in any given aprotic polar solvent (e.g., a dissolved oxygen meter or probe device, such as the dissolved oxygen probe commercially available from Vernier (Beaverton, Oregon, USA), may be used).

[0078] In certain aspects, the formulations disclosed herein can be prepared and / or sealed under an inert gas atmosphere.A common method includes backfilling the primary container sealing system (e.g., vial) to provide a head space of inert gas (e.g., nitrogen, argon).The secondary container sealing system (e.g., sealed foil pouch) can also be sealed under an inert gas environment.

[0079] I. Formulations The formulations of the invention comprise a therapeutic agent present in an aprotic polar solvent system that includes at least one ionization stabilizing excipient that is compatible with the container and / or fluid flow path. The therapeutic agent may be dissolved (e.g., fully or partially solubilized) or suspended (fully or partially) in the aprotic polar solvent system having a high level of water.

[0080] In some embodiments, the therapeutic agent is present in an aprotic polar solvent that is "neat", i.e., does not contain any co-solvent other than water. In other embodiments, the therapeutic agent is present in a solvent system (i.e., an aprotic polar solvent system) that is a mixture of two or more aprotic polar solvents and has a moisture content or water content of more than 10% v / v. An example is a 75 / 25 (% v / v) mixture of DMSO and NMP with a total water content of more than 10% (v / v). However, in some embodiments, a co-solvent may be used, where one or more aprotic polar solvents are mixed with the co-solvent. Non-limiting examples of co-solvents include (explicitly excluding water) ethanol, propylene glycol (PG), glycerol, and mixtures thereof. The co-solvent may be present in the formulation in an amount ranging from about 0.1% (w / v) to about 50% (w / v), e.g., about 0.1%, about 0.5%, about 1%, about 5%, about 10%, about 15%, about 20%, about 25%, about 30%, about 35%, or about 40% (w / v). In some embodiments, the co-solvent is present in the formulation in an amount ranging from about 10% (w / v) to about 50% (w / v), about 10% (w / v) to about 40% (w / v), about 10% (w / v) to about 30% (w / v), about 10% (w / v) to about 25% (w / v), about 15% (w / v) to about 50% (w / v), about 15% (w / v) to about 40% (w / v), about 15% (w / v) to about 30% (w / v), or about 15% (w / v) to about 25% (w / v).

[0081] Still further, the formulation of the present invention may include one or more other excipients in addition to the (at least one) ionizable stabilizing excipient. In some embodiments, the other excipients are selected from sugars, salts, starches, sugar alcohols, antioxidants, chelating agents, and preservatives. Examples of suitable sugar excipients include, but are not limited to, trehalose, glucose, sucrose, and the like. Examples of suitable starches for stabilizing excipients include, but are not limited to, hydroxyethyl starch (HES). Examples of suitable sugar alcohols (also referred to as polyols) for stabilizing excipients include, but are not limited to, mannitol and sorbitol. Examples of suitable antioxidants include, but are not limited to, ascorbic acid, cysteine, methionine, monothioglycerol, sodium thiosulfate, sulfite, BHT, BHA, ascorbyl palmitate, propyl gallate, N-acetyl-L-cysteine ​​(NAC), and vitamin E. Examples of suitable chelating agents include, but are not limited to, EDTA, EDTA disodium salt (edetate disodium), tartaric acid and its salts, glycerin, and citric acid and its salts. Examples of suitable inorganic salts include, but are not limited to, sodium chloride, potassium chloride, calcium chloride, magnesium chloride, calcium sulfate, magnesium sulfate, zinc sulfate, and zinc acetate. Examples of suitable preservatives include, but are not limited to, benzyl alcohol, methylparaben, metacresol, propylparaben, and mixtures thereof. Additional formulation components include local anesthetics, such as lidocaine or procaine.In some embodiments, the additional stabilizing excipient is from about 0.01% (w / v) to about 60% (w / v), from about 1% (w / v) to about 50% (w / v), from about 1% (w / v) to about 40% (w / v), from about 1% (w / v) to about 30% (w / v), from about 1% (w / v) to about 20% (w / v), from about 5% (w / v) to about 60% (w / v), from about 5% (w / v) to about 50% (w / v), from about 5% (w / v) to about 40% (w / v), from about 5% (w / v) to about 30% (w / v), from about 5% (w / v) to about 20% (w / v), from about 10% (w / v) to about 60% (w / v), from about 10% (w / v) to about 50% (w / v), from about 10% (w / v) to about 50% (w / v), (w / v) to about 40% (w / v), about 10% (w / v) to about 30% (w / v), or about 10% (w / v) to about 20% (w / v). In some embodiments, the additional stabilizing excipient is present in the formulation in an amount of about, up to, or at least 0.01, 0.1, 0.5, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 15, 20, 25, 30, 35, 40, 45, 50, 55, or 60% (w / v).

[0082] II. Therapeutic Agents The therapeutic agent in the context of the present invention includes peptide or protein compounds, small molecule drugs, and their pharma- ceutically acceptable analogs and / or salts.Those skilled in the art will know which therapeutic agent is suitable for treating a particular disease or condition, and will be able to administer an effective amount of the therapeutic agent in the formulations described herein for treating the disease or condition.

[0083] Non-limiting examples of peptides and proteins (and their salts) that may be used in the context of the present invention include, but are not limited to, glucagon, pramlintide, insulin, leuprolide, luteinizing hormone releasing hormone (LHRH) agonists, parathyroid hormone (PTH), amylin, angiotensin (1-7), botulinum toxin, hematide, amyloid peptides, gastric inhibitory peptides, antibodies (which may be monoclonal or polyclonal) or fragments thereof, immunogenic peptides (e.g., peptides or peptide complexes derived from viruses, bacteria, or prokaryotic or eukaryotic organisms or cells thereof), insulin-like growth factors, growth hormone releasing factors, antibacterial factors, glatiramer, glucagon-like peptide-1 (GLP-1), GLP-1 agonists, exenatide, analogs thereof, amylin analogs (pramlintide), and mixtures thereof. In some preferred aspects, the therapeutic agent is glucagon, insulin and / or pramlintide. Further suitable examples of such peptides, proteins, peptide conjugates and derivatives thereof that can be advantageously used in the compositions and methods of the present invention will be known to those of skill in the art based on the information provided herein and information readily available in the art.

[0084] Non-limiting examples of small molecule drugs (and salts thereof) that may be used in the context of the present invention include epinephrine, benzodiazepines, levothyroxine, catecholemines, "triptans", sumatriptan, novantrone, chemotherapeutic small molecules (e.g., mitoxantrone), corticosteroid small molecules (e.g., methylprednisolone, betamethasone dipropionate), immunosuppressive small molecules (e.g., azathioprine, cladribine, cyclophosphamide monohydrate, methotrexate), anti-inflammatory small molecules (e.g., salicylic acid, acetylsalicylic acid, lisofylline, diflunisal, choline magnesium trisalicylate, salicylate, benorylate, flufenamic acid, mefenamic acid, meclofenamic acid, triflu ...acid), diclofenac, fenclofenac, alclofenac, fentiazac, ibuprofen, flurbiprofen, ketoprofen, naproxen, fenoprofen, fenbufen, suprofen, indoprofen, tiaprofenic acid, benoxaprofen, pirprofen, tolmetin, zomepirac, clopinac, indomethacin, sulindac, phenylbutazone, oxyphenbutazone, azapropazone, feprazone, piroxicam, isoxicam), neurological disorders small molecules used to treat cancer (e.g., vincristine, vinblastine, paclitaxel, docetaxel, cisplatin, irinotecan, topotecan, phenytoin), small molecules used to treat cancer (e.g., cimetidine, ranitidine, famotidine, nizatidine, tacrine, metrifonate, rivastigmine, selegiline, imipramine, fluoxetine, olanzapine, sertindole, risperidone, valproate semisodium, gabapentin, carbamazepine, topiramate, phenytoin), statins (e.g., atorvastatin, amlodipine, rosuvastatin, sitagliptin, simvastatin, fluvastatin, pitavastatin, lovastatin, pravastatin, simvastatin) and other taxane derivatives, small molecules used to treat tuberculosis (e.g., rifampicin), small molecule antifungals (e.g., fluconazole), small molecule anxiolytics and small molecule anticonvulsants (e.g., lorazepam), small molecule anticoli Examples of suitable anti-inflammatory drugs include, but are not limited to, agonists, (e.g., atropine), small molecule beta-agonist drugs (e.g., albuterol sulfate), small molecule mast cell stabilizers and small molecule agents used to treat allergies (e.g., cromolyn sodium), small molecule anesthetics and small molecule antiarrhythmics (e.g., lidocaine), small molecule antibiotics (e.g., tobramycin, ciprofloxacin), small molecule antimigraine agents (e.g., sumatriptan), and small molecule antihistamines (e.g., diphenhydramine). In a preferred embodiment, the small molecule is epinephrine.

[0085] The therapeutic agents of the present invention may be administered intradermally for the prevention, diagnosis, mitigation, treatment, or cure of disease. Examples of proteins and proteinaceous compounds that may be formulated according to the present invention and used in the delivery systems according to the present invention include proteins that have biological activity or that may be used to treat a disease or other pathological condition.

[0086] Each of the above peptides, proteins, and small molecule drugs is well known and commercially available from various manufacturers and sources.Furthermore, the amount of peptide, protein, or small molecule drug in the dosage formulation may vary depending on the currently acceptable amount, the subject / patient's requirements (e.g., age, health, weight, nature and severity of symptoms), etc., and such amount can be easily determined by those skilled in the art of pharmacy and pharmacology based on readily available information.

[0087] The therapeutic agent provided by the manufacturer or commercial source is typically provided as a powder for dissolution in the formulations described herein. Many known techniques can be used to form a powdered agent for dissolution.

[0088] Any suitable dose of the peptide or peptides may be formulated in the stable formulation of the present invention. Generally, the peptide (or, in embodiments comprising two or more peptides, each peptide) is present in the formulation in an amount ranging from about 0.1 mg / mL up to the solubility limit of the peptide or peptides. In certain such embodiments, the dose is from about 0.1 mg / mL to about 500 mg / mL, or up to about 200 mg / mL, about 250 mg / mL, about 300 mg / mL, about 350 mg / mL, about 400 mg / mL, about 450 mg / mL, or about 500 mg / mL. In some embodiments, the peptide is present in the formulation in an amount ranging from about 2 mg / mL to about 60 mg / mL. In other embodiments, the peptide is present in the formulation in an amount ranging from about 3 mg / mL to about 50 mg / mL. In still other embodiments, the peptide is present in the formulation in an amount ranging from about 5 mg / mL to about 15 mg / mL. In yet other embodiments, the peptide is present in the formulation in an amount ranging from about 0.1 mg / mL to about 10 mg / mL (e.g., about 0.5 mg / mL, about 1 mg / mL, about 2 mg / mL, about 2.5 mg / mL, about 3 mg / mL, about 4 mg / mL, or about 5 mg / mL). In yet other embodiments, the peptide is present in the formulation in an amount ranging from about 1 mg / mL to about 50 mg / mL. Again, it will be readily apparent to one of skill in the art based on the information provided herein and readily available in the relevant art that the dose of the peptide may vary depending on the peptide used and the disease, disorder, or condition being treated.

[0089] In some embodiments, the formulations of the invention further comprise an antioxidant. In other embodiments, the formulations further comprise a chelating agent. In still other embodiments, the formulations of the invention further comprise a preservative, a sugar (e.g., a monosaccharide, a disaccharide, or a polysaccharide), a sugar alcohol, a polyol, a surfactant, and / or a salt.

[0090] III. Treatment method In another aspect, the present invention provides a method of treating a disease, condition, or disorder by administering to a subject a therapeutic agent in a stable formulation described herein to treat the disease, condition, or disorder in an amount effective to treat, ameliorate, or prevent the disease, condition, or disorder.

[0091] In some embodiments, the therapeutic methods of the present invention include treating hypoglycemia by administering to a subject having hypoglycemia an amount of a hypoglycemic therapeutic agent in a stable formulation described herein effective to treat hypoglycemia. In some embodiments, the subject is administered a stable formulation comprising glucagon. In certain aspects, hypoglycemia can be caused by diabetes or non-diabetic related diseases, conditions, and disorders.

[0092] As reported by a workgroup of the American Diabetes Association and the Endocrine Society on hypoglycemia (Seaquist, et al, (2013), Diabetes Care, Vol 36, pages 1384-1395), a single plasma glucose concentration threshold that defines hypoglycemia in diabetes is typically not specified because glycemic thresholds for hypoglycemic symptoms shift (among other responses) to lower plasma glucose concentrations after recent preceding hypoglycemia and to higher plasma glucose concentrations in patients whose diabetes is poorly controlled and who do not experience frequent hypoglycemia.

[0093] However, warning values ​​can be defined that draw the attention of both patients and caregivers to the potential harm associated with hypoglycemia. Patients at risk for hypoglycemia (i.e., those treated with sulfonylureas, glinides, and insulin) should be warned of the possibility of developing hypoglycemia when their self-monitored plasma glucose - or continuous glucose monitored subcutaneous glucose - concentration is ≦70 mg / dL (≦3.9 mmol / L). Because it is higher than the glycemic threshold for symptoms in both nondiabetic and well-controlled individuals, it usually allows time to prevent a clinical hypoglycemic episode and provides some margin for the limited accuracy of monitoring devices at low glucose levels.

[0094] Severe hypoglycemic states are events that require the assistance of another person to actively administer carbohydrates, glucagon, or perform other corrective measures. Although plasma glucose concentrations may not be available during the event, neurological recovery following return of plasma glucose to normal is considered sufficient evidence that the event was induced by a low plasma glucose concentration. Typically, these events begin to occur at plasma glucose concentrations of ≦50 mg / dL (≦2.8 mmol / L). Documented symptomatic hypoglycemia is an event that is accompanied by the typical symptoms of hypoglycemia with a measured plasma glucose concentration of ≦70 mg / dL (≦3.9 mmol / L). Asymptomatic hypoglycemia is an event that is not accompanied by the typical symptoms of hypoglycemia, but is accompanied by a measured plasma glucose concentration of ≦70 mg / dL (≦3.9 mmol / L). A probable symptomatic hypoglycemia is an event in which symptoms typical of hypoglycemia are not accompanied by a plasma glucose measurement, but which is thought to be caused by a measured plasma glucose concentration of ≦70 mg / dL (≦3.9 mmol / L). A pseudohypoglycemia is an event in which a person with diabetes reports any of the typical symptoms of hypoglycemia, and the measured plasma glucose concentration is >70 mg / dL (>3.9 mmol / L) but is approaching that level.

[0095] Additionally, hypoglycemia-associated autonomic failure (HAAF) is included among the indications that may be treated by the disclosed invention. As described in Philip E. Cryer, Perspectives in Diabetes, Mechanisms of Hypoglycemia-Associated Autonomic Failure and Its Component Syndromes in Diabetes, Diabetes, Vol. 54, pp. 3592-3601 (2005), "immediate preceding iatrogenic hypoglycemia leads to both defective glucose counterregulation (by reducing epinephrine response to a certain level of subsequent hypoglycemia in the absence of insulin reduction and glucagon increase) and hypoglycemia unawareness (by reducing sympathetic-adrenal medullary response and the resulting neurogenic symptom response to a certain level of subsequent hypoglycemia), thus triggering a dangerous cycle of hypoglycemia." HAAF affects those with type 1 and advanced type 2 diabetes. Furthermore, the disclosed invention may also treat hypoglycemia in patients after islet cell transplantation.

[0096] The formulations of the present invention can also be used to treat hyperinsulinemic hypoglycemia, broadly referring to the state and effects of low blood glucose levels caused by excess insulin. The most common type of hyperinsulinemic hypoglycemia, which is severe but typically transient, is caused by the administration of exogenous insulin in type 1 diabetes patients. This type of hypoglycemia can be defined as iatrogenic hypoglycemia and is a limiting factor in the glycemic control of type 1 and type 2 diabetes. Nocturnal hypoglycemia (nocturnal hypoglycemia) is a common type of iatrogenic hypoglycemia that occurs in patients who take exogenous insulin. However, hyperinsulinemic hypoglycemia can also be caused by endogenous insulin, for example, in congenital hyperinsulinemia, insulinoma (insulin-secreting tumor), exercise-induced hypoglycemia, and reactive hypoglycemia. Reactive hypoglycemia is a non-diabetic hypoglycemia that results from low blood glucose that occurs after a meal - typically within 4 hours after a meal. Reactive hypoglycemia can also be referred to as postprandial hypoglycemia. Symptoms and signs of reactive hypoglycemia may include hunger, weakness, trembling, drowsiness, sweating, confusion and anxiety. Gastric surgery (e.g., bariatric surgery) is one possible contributing factor, as food may pass too quickly into the small intestine after surgery (post-bariatric hypoglycemia (PBH)). Additional contributing factors include enzyme deficiencies that make it difficult for the body to break down food, or increased sensitivity to the hormone epinephrine.

[0097] In some embodiments, the disease, condition, or disorder treated with the stable formulation of the present invention is a diabetic condition.Examples of diabetic conditions include, but are not limited to, type 1 diabetes, type 2 diabetes, gestational diabetes, prediabetes, hyperglycemia, hypoglycemia, and metabolic syndrome.In some embodiments, the disease, condition, or disorder is hypoglycemia, including, but not limited to, diabetes-related hypoglycemia, exercise-induced hypoglycemia, and post-bariatric surgery hypoglycemia, or other types of hypoglycemia as described herein and known to those skilled in the art.In some embodiments, the disease, condition, or disorder is diabetes.

[0098] In some embodiments, the therapeutic method of the present invention comprises treating diabetes by administering to a subject having diabetes an effective amount of a therapeutic agent in a stable formulation described herein to treat diabetes. In some embodiments, the subject is administered a stable formulation comprising insulin. In some embodiments, the subject is administered a stable formulation comprising pramlintide. In some embodiments, the subject is administered a stable formulation comprising insulin and pramlintide. In some embodiments, the subject is administered a stable formulation comprising exenatide. In some embodiments, the subject is administered a stable formulation comprising glucagon and exenatide.

[0099] In certain aspects, epinephrine can be administered to subjects at risk of or suspected of anaphylaxis.Epinephrine is designated as an emergency treatment for type I allergic reactions that can be caused by multiple causes, including but not limited to food, drug and / or other allergens, allergen immunotherapy, diagnostic test materials, insect stings and bites, and spontaneous or exercise-induced anaphylaxis.

[0100] The dosage of the peptide or small molecule drug described herein for treating a disease, condition, or disorder (e.g., diabetic condition, hypoglycemia, or anaphylaxis) will follow dosage and schedule schedules practiced by those skilled in the art. General guidelines for appropriate dosages of all pharmacological agents used in the methods of the present invention are provided in Goodman and Gilman's, The Pharmacological Basis of Therapeutics, 11th Edition, 2006, supra, and in the Physicians' Desk Reference (PDR), e.g., its 65th (2011) or 66th (2011) edition, PDR Network, LLC, each of which is incorporated herein by reference. The appropriate dosage of the peptide drug for treating a disease, condition, or disorder described herein may vary according to a variety of factors, including the formulation of the composition, the patient's response, the severity of the condition, the subject's weight, and the judgment of the prescribing physician. An effective dosage of the described formulation delivers a medically effective amount of the peptide drug. Doses can be increased or decreased over time as required by an individual patient or as determined by a physician.

[0101] The determination of effective amounts or doses is well within the capabilities of those skilled in the art, especially in light of the detailed disclosure provided herein.Generally, formulations that deliver these doses may contain one, two, three, four, or more small molecules, peptides, or peptide analogs (collectively "peptides" unless peptide analogs are expressly excluded), with each peptide present in the formulation at a concentration of about 0.1 mg / mL up to the solubility limit of that peptide.This concentration is preferably about 1 mg / mL to about 100 mg / mL. In certain aspects, the concentration is about 1 mg / mL, about 2 mg / mL, about 2.5 mg / mL, about 3 mg / mL, about 4 mg / mL, about 5 mg / mL, about 7.5 mg / mL, about 10 mg / mL, about 15 mg / mL, about 20 mg / mL, about 25 mg / mL, about 30 mg / mL, about 35 mg / mL, about 40 mg / mL, about 45 mg / mL, about 50 mg / mL, about 55 mg / mL, about 60 mg / mL, about 65 mg / mL, about 70 mg / mL, about 75 mg / mL, about 80 mg / mL, about 85 mg / mL, about 90 mg / mL, about 95 mg / mL, or about 100 mg / mL. Concentrations of small molecules are known to those of ordinary skill in the art and can be established and implemented using the disclosure provided herein, for example, from 0.01 mg / ml to 500 mg / ml, or at doses of about 1, 2, 2.5, 3, 4, 5, 10, 25, 50, 75, 100, 200, 500 to about 1000 mg, including all values ​​and ranges therebetween.

[0102] The formulation of the present invention can be used for parenteral administration, including but not limited to subcutaneous, intradermal, intramuscular, intranasal, oral, transdermal, or intravenous administration (e.g., by injection or infusion).In some embodiments, the formulation is administered subcutaneously.The formulation can also be delivered transdermally, for example, by topically applying the composition to the skin (e.g., spreading the composition on the skin or loading the composition into a skin patch and applying the skin patch to the skin).

[0103] The formulation of the present disclosure can be administered by infusion or injection using any suitable device. For example, the formulation of the present invention can be placed in a syringe (e.g., a pre-filled syringe), a pen injection device, an automatic injection device, or a pump device. In some embodiments, the injection device is a multi-dose injection pump device or a multi-dose automatic injection device. The formulation is present in the device in such a manner that when the injection device, e.g., an automatic injector, is actuated, it can easily flow out of the needle to deliver the peptide drug. Suitable pen / automatic injection devices include, but are not limited to, pen / automatic injection devices manufactured by Becton-Dickenson, Swedish Healthcare Limited (SHL Group), YpsoMed Ag, etc. Suitable pump devices include, but are not limited to, pump devices manufactured by Tandem Diabetes Care, Inc., Delsys Pharmaceuticals, etc.

[0104] In some embodiments, the formulations of the invention are provided ready-to-administer in vials, cartridges, or pre-filled syringes.

[0105] In some embodiments, the stable formulation is used to formulate a medicament for the treatment of hypoglycemia. In some embodiments, the stable formulation comprises glucagon or a salt thereof (e.g., glucagon acetate). In some embodiments, the stable formulation comprises glucagon and exenatide.

[0106] In some embodiments, the stable formulation is used to formulate a medicament for the treatment of diabetes. In some embodiments, the stable formulation comprises insulin. In some embodiments, the stable formulation comprises exenatide. In some embodiments, the stable formulation comprises pramlintide. In some embodiments, the stable formulation comprises insulin and pramlintide.

[0107] In further embodiments, the formulations provided by the present invention may be used in certain diagnostic procedures. In certain such embodiments, the glucagon-containing formulations of the present invention may be administered to a mammal, such as a human or vertebrate, prior to, adjunct to, as part of, or in combination with one or more diagnostic procedures, thereby providing a method of diagnosing a disease or disorder in a patient suffering from or susceptible to the disease or disorder. Non-limiting examples of such diagnostic procedures in which the glucagon-containing formulations of the present invention may be suitably used include methods of diagnosing Alzheimer's disease (see U.S. Pat. No. 4,727,041, which is incorporated by reference in its entirety) and growth hormone deficiency (see U.S. Pat. No. 5,065,747; see also Boguszewski, CL, Endocrine 57: 361-363 (2017), and Yuen, KCJ, ISRN Endocrinology, vol. 211, Article ID 608056, pp. 1-6 (2011), doi:10.5402 / 2011 / 608056; the disclosures of all of which are incorporated by reference in their entireties). Further examples of such uses are in certain radiological diagnostic procedures, particularly those used in the diagnosis of gastrointestinal disease conditions (non-limiting examples of which include intestinal obstruction, appendicitis, Barrett's esophagus, celiac disease, cancer, cirrhosis of the liver, Crohn's disease, diverticulitis, diverticulosis, ulcers, gallstones, gastric prolapse, gastritis, gastroesophageal reflux disease, hepatitis (A / B / C), hiatal hernia, inflammatory bowel disorder, hernia, irritable bowel syndrome, pancreatitis, perianal cleft, ulcerative colitis, etc.), in adult patients. during radiological examinations of the gastrointestinal system to temporarily inhibit the movement of organs and connective tissues of the gastrointestinal tract (see, e.g., the product labeling for Glucagon Lyophilized (NDC code 63323-185-03), available at https: / / dailymed.nlm.nih.gov / dailymed / drugInfo.cfm?setid=8c8acad6-44cc-43aa-966b-027e053be8f5); Glucagon in Gastroenterology, J. Picazo, ed., Lancaster, England: MTP Press Ltd. (1979), especially chapters 3-7, pp. 39-120; the disclosures of which are incorporated herein by reference). In such diagnostic methods, the glucagon-containing formulations of the invention are administered to a patient suffering from or susceptible to the disorder by any suitable method of introducing such a formulation into the patient's body, such as those described herein, e.g., intravenously at a dose of about 0.2 mg to about 0.75 mg about 1-10 minutes prior to a diagnostic test (e.g., a radiological procedure), or intramuscularly or transdermally at a dose of about 1 mg to about 2 mg about 5-15 minutes prior to a diagnostic test (e.g., a radiological procedure). Other suitable therapeutic and diagnostic methods of use of the formulations of the invention will be readily known to the ordinarily skilled physician or pharmacist based on the disclosure contained herein in light of information available in the art.

[0108] IV. Kits / Containers Kits are also envisioned for use in certain aspects of the present invention. For example, the formulations of the present invention can be included in a kit that can include a container. In one aspect, for example, the formulations can be included in a container that is ready to be administered to a subject or incorporated into a device configured to administer to a subject without the need to reconstitute or dilute the formulation. That is, the formulation to be administered can be stored in this container and can be used immediately when needed. The container can be a device. The device can be a syringe (e.g., a pre-filled syringe), a pen injection device, an autoinjection device, a device that can pump or administer the formulation (e.g., an automatic or non-automatic external pump (e.g., a patch pump, or a pump that requires an external infusion set), an implantable pump), or a perfusion bag. Suitable pen / autoinjection devices include, but are not limited to, pen / autoinjection devices manufactured by Becton-Dickenson, Swedish Healthcare Limited (SHL Group), YpsoMed Ag, etc. Suitable pump devices include, but are not limited to, pump devices manufactured by Tandem Diabetes Care, Inc., Delsys Pharmaceuticals, etc. Suitable infusion sets include, but are not limited to, those manufactured / distributed / sold by Tandem Diabetes Care, Inc., Medtronic, Disetronic, YpsoMed Ag, Unomedical A / S, etc. EXAMPLES

[0109] Some aspects of the present disclosure will be described in more detail by specific examples.The following examples are provided for illustrative purposes and are not intended to limit the present invention in any manner.For example, those skilled in the art will easily recognize various non-critical parameters that can be changed or modified to obtain essentially the same results without undue experimentation.

[0110] Example 1: Suitability of the infusion system for DMSO-containing formulations In an initial study of the suitability of certain infusion systems / sets for the DMSO-containing formulations and compositions of the present invention, the hard plastic portion (i.e., pump connector) of a commercially available infusion set (Cleo, Ypsomed) was immersed in various DMSO and water mixtures ranging from 0% DMSO (pure water) to 100% DMSO (neat DMSO). Samples were photographed after 1 week at 45°C in an incubation orbital shaker. Note that no additional formulation components (e.g., active ingredients) were included in this example.

[0111] Figure 1 shows the effect of DMSO content (% v / v) on the structural integrity of the connector of the infusion system - a measure of the compatibility of this component, and therefore the entire infusion system, with the particular formulation of the present invention. The hard plastic part of the infusion set was made of polycarbonate and was the only part of the infusion set observed to be incompatible with DMSO when tested under real-world use conditions. At or below 75% (v / v) DMSO (i.e., 25% (v / v) water), the infusion set component was visually compatible with the solvent system (i.e., the plastic remained clear and undissolved). At 90% (v / v) DMSO (i.e., 10% (v / v) water), the component showed discoloration (i.e., opacification), and at 100% DMSO, the component began to dissolve 10 minutes after immersion.

[0112] The improved visual compatibility for DMSO-based solutions prepared with higher water content was further demonstrated using a different commercially available plastic-based delivery system, the UniJect™ injection system (Becton Dickinson). These pre-filled syringe devices are syringes molded from a single piece of plastic that are inexpensively designed for use in third world countries. Initial stability studies (not shown) showed that high DMSO concentration formulations (i.e., >90% (v / v)) were not compatible with this injection system, and DMSO-based formulations promoted discoloration (opacification) and delamination of the plastic during accelerated storage. However, subsequent compatibility testing was performed with DMSO solutions with a range of added water amounts according to the present invention. In this study, the UniJect™ device was used to deliver DMSO-H 2 The plastic was filled with 0.25% DMSO and photographed after 2 weeks of storage at 45° C. As shown in FIG. 2, the UniJect™ device discolored and became opaque in solutions containing 100%, 95% and 90% DMSO (note that these solutions contained 0%, 5% and 10% added moisture (v / v)). At 25% added moisture (or 75% DMSO), the plastic appeared clear, similar in appearance to the 100% water (or 0% DMSO) sample. In contrast, the plastic was visually clear in 75%, 50% and 0% DMSO (corresponding to 25%, 50% and 100% added moisture, respectively).

[0113] Taken together, the results of these studies indicate that high moisture content (e.g., high water content) DMSO-containing formulations, especially those with concentrations of 75% DMSO (v / v) or less, are believed to be compatible with most, if not all, plastic-containing commercially available injection systems.

[0114] Example 2: Storage stability of glucagon in high water content formulations Based on the results described in Example 1, it became of interest to test the stability of certain therapeutic compounds, such as glucagon, in high water content formulations to enable the use of plastic-containing injection systems with DMSO-based therapeutic glucagon formulations.

[0115] Stability studies with high water content glucagon-based formulations have shown that additional acid may be required to suppress physical instability (i.e., fibril formation and / or gelation) in the formulation. For 5 mg / mL glucagon formulations, physical stability was observed to be related to the concentration of acid added to the formulation. Glucagon formulations were prepared in glass vials at 5 mg / mL in DMSO (with various water concentrations in the solution) and diluted with various concentrations of inorganic acids (e.g., HCl or H 2 SO 4 (in this study, HCl was used) was also present in the solution. After 3 weeks of storage of the glucagon formulations in the glass vials at 45° C., the vials were visually examined for the presence of gelation or aggregation of the vial contents. The results of these studies are shown in Table 1, where a check mark indicates that the sample was physically stable (i.e., there was no visual observation of gelation or aggregation) and an "X" indicates that gelation and / or aggregation was observed within the sample. These initial studies indicate that physically stable glucagon formulations having high water content can be prepared.

[0116] Table 1. Physical stability of 5 mg / mL glucagon formulations at various moisture contents (v / v with DMSO) and inorganic acid concentrations (3 mM to 7 mM). TIFF0007689499000001.tif48152

[0117] Previous studies of the chemical stability of physically stable (i.e., non-gelling) formulations have shown that the presence of high levels of moisture in DMSO / peptide (e.g., glucagon) formulations promotes chemical degradation of the peptide. As discussed in U.S. Patent No. 9,649,364 (the disclosure of which is incorporated herein by reference in its entirety), the addition of ionizable stabilizing excipients (e.g., proton donors) is required to inhibit gelation, and this stabilizing effect is believed to be due to increased electrostatic repulsion between adjacent positively charged molecules, which inhibits the formation of relatively short-range hydrophobic interactions (i.e., the alignment of hydrophobic regions of adjacent molecules that is believed to promote fibrillation and gelation).

[0118] Without wishing to be bound by theory, it is believed that the addition of high levels of moisture imparts multiple destabilizing effects to DMSO-based peptide formulations. These include (but are not limited to): (1) higher moisture content may promote hydrophobic interactions (i.e., higher moisture may bring together hydrophobic regions of adjacent molecules), thereby resulting in gelation and fibrillation; and (2) higher moisture may initiate destabilizing hydrolysis reactions (e.g., fragmentation, deamidation, and aspartic acid isomerization) that are responsible for the instability of water-based formulations. The first pathway may be inhibited via the addition of more protons (i.e., acids, especially inorganic acids such as sulfuric acid, hydrochloric acid, and / or nitric acid) through the introduction of ionizable stabilizing excipients (similar to that described in U.S. Pat. No. 9,649,364). It is believed that the increase in proton concentration may enhance the strength of electrostatic repulsion between adjacent peptide molecules. However, the addition of more protons also catalyzes many water-mediated decomposition reactions, promoting chemical degradation of peptides. Thus, as is known in the art, the addition of water to a peptide-containing solution may promote destabilization of the peptide. However, formulations that exhibit acceptable long-term stability at low temperatures (i.e., refrigerated temperatures) may still be suitable for use in pump-based products if exposure to elevated temperatures (e.g., 37° C.) is relatively short (≦1 week).

[0119] Glucagon formulations containing various water contents and inorganic acid concentrations were prepared and tested for both physical and chemical stability during storage. Sample formulations were prepared by dissolving glucagon powder at a concentration of 5 mg / mL in DMSO containing moisture content (water content) of 30-40% (v / v). In addition, a range of acid concentrations (HCl) from 5-9 mM were included in the formulations to inhibit fibrillation / gelation and promote physical stability. The solutions were filled into 2 mL glass vials, sealed, and stored upside down in stability chambers at either 5°C or 25°C / 60% RH. Pure DMSO has a freezing point of approximately 18.5°C, but the high water content of the formulations depresses the freezing point such that the solutions do not solidify at 5°C. The physical and chemical stability of the formulations was evaluated after 8 weeks (56 days) of storage. Physical stability was assessed visually (observing for the formation of fibrils or gelling of the solution) and chemical stability was assessed by UHPLC-UV (280 nm) using the Glucagon Stability Indicating Method (see U.S. Pat. No. 9,649,364).

[0120] At the 8-week time point, visual inspection of all formulations revealed a clear, colorless solution free of apparent particulate matter. No fibrillation or gelation was observed in any of the samples.

[0121] Chemical stability results are shown in Table 2, where the data show the percent purity of the glucagon peak through UHPLC at the temperatures indicated (n=1 for each sample). These results show that solutions at 5° C. (not frozen) exhibit excellent stability.

[0122] Table 2. Chemical stability of high water content glucagon formulations during storage TIFF0007689499000002.tif55152

[0123] At 5°C, increasing water content and acid appeared to promote some degradation of the glucagon peptide, but the difference in measured peak purity between all samples varied by ≤1%. At 25°C, the effects of acid and moisture were greater, with both components promoting degradation. However, all formulations appeared to have acceptable physical and chemical stability over a combined 1-month shelf life at room temperature and longer storage periods under refrigerated conditions.

[0124] To extend these studies and combine them with the information regarding the infusion system provided in Example 1, three different 5 mg / mL glucagon formulations were prepared and evaluated for incorporation into a developmental patch pump that contains an internal plastic reservoir for loading the formulation into the device: one low water content ("Formulation 1") and two high water content formulations ("Formulation 2" and "Formulation 3"). These formulations contained the components shown in Table 3. "Formulation 1" had a water content of <1.5% (v / v), while formulations 2 and 3 were prepared with 35% (v / v) and 50% (v / v) water content, respectively.

[0125] Table 3. Test glucagon formulations for evaluation in a patch pump delivery system TIFF0007689499000003.tif48152

[0126] The plastic-based fluid reservoirs of separate pumps were filled with approximately 1.5 mL of each formulation and delivered at a constant infusion rate of 500 μL (0.5 mL) per day for three days. The pumps were placed in a 35° C. oven during the three-day delivery period to simulate the body surface temperature when worn by a patient. For each syringe, the delivered fluid was collected in a glass vial for analysis by UHPLC.

[0127] Within 30 minutes of filling the pump with formulation 1 (the low water content formulation), a system error occurred indicating that the pump would no longer operate. Testing of the pump revealed that this formulation had leaked within the pump (i.e., caused holes to form within the flow path by dissolving the plastic components of the reservoir). In contrast, pumps filled with both high water content formulations (2 and 3) did not exhibit any leakage within the pump and functioned as expected over a 3-day period.

[0128] As a control, samples were also stored in glass vials under the same conditions. For each formulation, three vials and two patch pump samples were tested. The results are shown in Table 4.

[0129] Table 4. Chemical stability of vial and pump samples of glucagon / DMSO formulation. TIFF0007689499000004.tif71128

[0130] These results indicate that peptide stability is not negatively affected by the fluid interface in the pump (e.g., plastic and rubber components) and that both formulations exhibit comparable stability between glass vials and pumps. The data demonstrate the effectiveness of high water content DMSO-based formulations for delivery through commercially available pumps, while indicating incompatibility of high DMSO content (>90% (w / w)) formulations with some pump-based delivery systems. Collectively, these studies demonstrate that high water content DMSO / glucagon formulations can be prepared that exhibit excellent long-term storage stability under refrigerated conditions, along with high in-use stability and compatibility with commercially available pumps.

[0131] Example 3: Long-term storage stability of glucagon in a high water content formulation To demonstrate the long-term storage stability of high water content glucagon formulations, DMSO-based peptide formulations containing 30–50% (v / v) water were prepared. The concentration of glucagon was 5 mg / mL in all formulations evaluated. Sulfuric acid (either 6 mM or 7 mM) was included in the samples to maintain physical stability.

[0132] Samples were stored in 2R ISO glass vials at either 2-8°C or -20°C for over one year (398 days) and then characterized for physical and chemical stability. Physical stability was assessed by visually examining samples for signs of fibrillation and / or gelation, including the formation of insoluble particulate material. Chemical stability (i.e., glucagon peak purity) was tested using the stability-indicating UHPLC method described in Example 2. Results are shown in Table 5.

[0133] Table 5. UHPLC data for samples after 398 days under the indicated storage conditions (glucagon peak purity) (N=1). TIFF0007689499000005.tif41133

[0134] All samples did not freeze under either condition and maintained a liquid state throughout storage. No signs of physical instability (e.g., gelation, precipitation) were observed in the sample formulations. UHPLC analysis indicated that the samples maintained chemical stability over the moisture range evaluated. For samples stored at refrigerated temperatures (2-8°C), a decrease in chemical stability was observed with both increasing moisture and acid content, but overall glucagon purity remained well above 95% after more than 1 year of storage.

[0135] These results, taken together with those of the preceding examples, demonstrate that high water content DMSO / glucagon formulations can be prepared that exhibit excellent long-term storage stability under both refrigerated and sub-zero conditions.

[0136] All compositions and / or methods disclosed and claimed herein can be made and performed without undue experimentation in light of this disclosure. Although the compositions and methods of the present disclosure have been described in terms of several embodiments, it will be apparent to one skilled in the art that variations can be applied to the compositions and methods described herein and in the steps or sequence of steps of the methods without departing from the concept, spirit and scope of the present disclosure. More specifically, it will be apparent that the agents described herein can be substituted with specific agents that are both chemically and physiologically related and still achieve the same or similar results. All such similar substitutes and modifications apparent to one skilled in the art are deemed to be within the spirit, scope and concept of the present invention as defined by the appended claims.

Claims

1. (a) a glucagon peptide, glucagon analog, glucagon mimetic, or a salt thereof; (b) hydrochloric acid or sulfuric acid as an ionizable stabilizing excipient at a concentration of 5 mM to 9 mM; (c) an aprotic polar solvent; (d) about 25% v / v to about 50% v / v water; and is compatible with the container and / or injection device fluid path.

2. 10. The formulation of claim 1, wherein a component of the device flow path comprises a rubber, a thermoplastic, a thermoset plastic, polystyrene, polyvinyl alcohol, polyvinylpyrrolidone, a polyalkylene oxide, acrylamide, acrylic acid, cellulose, cellulose ethers, cellulose esters, cellulose amides, polyvinyl acetate, polycarboxylic acids, polyamides, polyacrylamides, maleic / acrylic acid copolymers, polysaccharides, or natural gums, or a combination of two or more thereof.

3. 3. The formulation of claim 2, wherein the components of the device flow path comprise polycarbonate (PC), acrylonitrile butadiene styrene (ABS), methacrylonitrile butadiene styrene (MABS), methylcellulose, sodium carboxymethylcellulose, dextrin, ethylcellulose, hydroxyethylcellulose, hydroxypropylmethylcellulose, maltodextrin, polymethacrylate, polystyrene (PS), polyisobutylene (PIB), polymethylmethacrylate (PMMA), ethylene vinyl acetate (EVA), polyvinyl chloride (PVC), thermoplastic polyurethane (TPU), hydroxypropylmethylcellulose (HPMC), high density polyethylene (HDPE), low density polyethylene (LDPE), polyurethane, or blends thereof.

4. 2. The formulation of claim 1, wherein the glucagon peptide, glucagon analog, glucagon mimetic, or salt thereof is dissolved in an amount from about 0.1 mg / mL up to the solubility limit of the glucagon peptide, glucagon analog, glucagon mimetic, or salt thereof.

5. 2. The formulation of claim 1, wherein the aprotic polar solvent is DMSO.

6. 2. The formulation of claim 1, wherein the ionizable stabilizing excipient is hydrochloric acid and the aprotic solvent is DMSO.

7. 2. The formulation of claim 1, having a water content of 30% v / v to 40% v / v.

8. 10. The formulation of claim 1, further comprising less than about 10%, less than about 5% w / v, or less than about 3% w / v of a preservative.

9. 9. The formulation of claim 8, wherein the preservative is metacresol.

10. 10. The formulation of claim 1, further comprising less than about 10% w / v, less than about 5% w / v, or less than about 3% w / v of disaccharides.

11. 11. The formulation of claim 10, wherein the disaccharide is trehalose.

12. 10. The formulation of claim 1, having a freezing point of less than about 0°C.

13. 13. The formulation of claim 12, having a freezing point of less than about -20°C.

14. 13. The formulation of claim 12, having a freezing point of about -50°C to about -80°C.

15. 10. The formulation of claim 1, wherein the container or injection device fluid path is an infusion set or pump capable of parenterally administering the formulation to a subject.

16. 13. The formulation of claim 1 for use in treating hypoglycemia.

17. 17. The formulation of claim 16, which is introduced into the subject via injection.

18. 18. The formulation of claim 17, wherein the infusion is accomplished by pump infusion.

19. 20. The formulation of claim 18, wherein the pump infusion comprises continuous or bolus pump infusion, or a combination thereof.

20. mixing hydrochloric acid or sulfuric acid at a concentration of 5 mM to 9 mM as an ionization stabilizing excipient, at least one aprotic polar solvent, glucagon, and sufficient water to provide a water content in the formulation of greater than 25% v / v to about 50% v / v, thereby forming a stable glucagon formulation that is compatible with the device and / or fluid flow path. A method for producing a stable glucagon formulation comprising:

21. 21. The method of claim 20, wherein the water content is from about 30% v / v to about 50% v / v.

22. 21. The method of claim 20, wherein the water content is about 35% v / v, about 40% w / v, about 45% v / v, or about 50% v / v.

23. 21. The method of claim 20, wherein the aprotic solvent is DMSO.

24. The formulation of claim 1 for use in a method for diagnosing a disease or physical disorder in a human patient, the method comprising introducing an effective amount of the formulation of claim 1 to a patient suffering from or susceptible to the disease or disorder as an adjunct to a diagnostic test, and performing the diagnostic test on the patient.

25. 25. The formulation of claim 24, wherein the patient has or is susceptible to Alzheimer's disease.

26. 25. The formulation of claim 24, wherein the patient is suffering from or susceptible to growth hormone deficiency.

27. 25. The formulation of claim 24, wherein the patient is suffering from or susceptible to a gastrointestinal disorder.

28. 28. The formulation of claim 27, wherein the diagnostic test is a radiological examination of the patient's gastrointestinal tract.

29. 30. The formulation of claim 28, which is introduced into a patient intravenously, intramuscularly, or intradermally.

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