US20200316204A1 - Propylene glycol-containing peptide formulations which are optimal for production and for use in injection devices - Google Patents

Propylene glycol-containing peptide formulations which are optimal for production and for use in injection devices Download PDF

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US20200316204A1
US20200316204A1 US16/910,945 US202016910945A US2020316204A1 US 20200316204 A1 US20200316204 A1 US 20200316204A1 US 202016910945 A US202016910945 A US 202016910945A US 2020316204 A1 US2020316204 A1 US 2020316204A1
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formulation
glp
buffer
propylene glycol
concentration
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US16/910,945
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Tina Bjeldskov Pedersen
Claude Bonde
Dorthe Kot Engelund
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Novo Nordisk AS
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Novo Nordisk AS
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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides
    • A61K38/16Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • A61K38/17Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • A61K38/22Hormones
    • A61K38/28Insulins
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K38/00Medicinal preparations containing peptides
    • A61K38/16Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof
    • A61K38/17Peptides having more than 20 amino acids; Gastrins; Somatostatins; Melanotropins; Derivatives thereof from animals; from humans
    • A61K38/22Hormones
    • A61K38/26Glucagons
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • A61K47/08Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite containing oxygen, e.g. ethers, acetals, ketones, quinones, aldehydes, peroxides
    • A61K47/10Alcohols; Phenols; Salts thereof, e.g. glycerol; Polyethylene glycols [PEG]; Poloxamers; PEG/POE alkyl ethers
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • A61K47/16Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite containing nitrogen, e.g. nitro-, nitroso-, azo-compounds, nitriles, cyanates
    • A61K47/18Amines; Amides; Ureas; Quaternary ammonium compounds; Amino acids; Oligopeptides having up to five amino acids
    • A61K47/183Amino acids, e.g. glycine, EDTA or aspartame
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • A61K47/20Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite containing sulfur, e.g. dimethyl sulfoxide [DMSO], docusate, sodium lauryl sulfate or aminosulfonic acids
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K47/00Medicinal preparations characterised by the non-active ingredients used, e.g. carriers or inert additives; Targeting or modifying agents chemically bound to the active ingredient
    • A61K47/06Organic compounds, e.g. natural or synthetic hydrocarbons, polyolefins, mineral oil, petrolatum or ozokerite
    • A61K47/26Carbohydrates, e.g. sugar alcohols, amino sugars, nucleic acids, mono-, di- or oligo-saccharides; Derivatives thereof, e.g. polysorbates, sorbitan fatty acid esters or glycyrrhizin
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61KPREPARATIONS FOR MEDICAL, DENTAL OR TOILETRY PURPOSES
    • A61K9/00Medicinal preparations characterised by special physical form
    • A61K9/0012Galenical forms characterised by the site of application
    • A61K9/0019Injectable compositions; Intramuscular, intravenous, arterial, subcutaneous administration; Compositions to be administered through the skin in an invasive manner
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P3/00Drugs for disorders of the metabolism
    • A61P3/04Anorexiants; Antiobesity agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P3/00Drugs for disorders of the metabolism
    • A61P3/08Drugs for disorders of the metabolism for glucose homeostasis
    • A61P3/10Drugs for disorders of the metabolism for glucose homeostasis for hyperglycaemia, e.g. antidiabetics
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P5/00Drugs for disorders of the endocrine system
    • A61P5/48Drugs for disorders of the endocrine system of the pancreatic hormones
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P5/00Drugs for disorders of the endocrine system
    • A61P5/48Drugs for disorders of the endocrine system of the pancreatic hormones
    • A61P5/50Drugs for disorders of the endocrine system of the pancreatic hormones for increasing or potentiating the activity of insulin

Definitions

  • isotonicity agents in peptide-containing pharmaceutical formulations is widely known and one of the more common isotonic agents used in such formulations is mannitol.
  • mannitol causes problems during the production of peptide formulations as it crystallizes resulting in deposits in the production equipment and in the final product. Such deposits increase the need to clean the filling equipment during production of the formulation and this results in reduced production capability. In addition, such deposits may also result in reduced yield of the final product since vials/cartridges containing the peptide formulation may need to be discarded if particles are present.
  • the present inventors have observed that in peptide formulations to be administered by injection, the presence of mannitol results in clogging of injection devices.
  • the present invention further relates to methods of treatment using the pharmaceutical formulations of the invention where the compositions are administered in an amount effective to combat the disease, condition, or disorder for which administration of the peptide contained in the formulation is indicated.
  • the present invention also relates to a method for reducing deposits on production equipment during production of a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • the present invention further relates to a method for reducing the clogging of injection devices by a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • the reduction in clogging of the injection device by the propylene glycol-containing formulation relative to that observed for the formulation containing the previously utilized isotonicity agent is measured in a simulated in use study.
  • FIG. 1 shows a photograph of dried droplets on microscope slides of from left to right, placebo (no peptide) formulations containing no isotonic agent (e only water, preservative and buffer), mannitol, sorbitol, xylitol, sucrose or glycerol as the isotonic agent with the far right slide containing mannitol with peptide Arg 34 , Lys 26 (N ⁇ -( ⁇ -Glu(N ⁇ -hexadecanoyl)))-GLP-1(7-37).
  • no isotonic agent e only water, preservative and buffer
  • mannitol sorbitol
  • xylitol sucrose or glycerol
  • an analogue is used to designate a peptide wherein one or more amino acid residues of the parent peptide have been substituted by another amino acid residue and/or wherein one or more amino acid residues of the parent peptide have been deleted and/or wherein one or more amino acid residues have been added to the parent peptide.
  • Such addition can take place either at the N-terminal end or at the C-terminal end of the parent peptide or both.
  • the peptide to be included in the formulation of the invention is a GLP-1 agonist where “a GLP-1 agonist” is understood to refer to any peptide which fully or partially activates the human GLP-1 receptor.
  • the “GLP-1 agonist” is any peptide that binds to a GLP-1 receptor, preferably with an affinity constant (K D ) or a potency (EC 50 ) of below 1 ⁇ M, e.g. below 100 nM as measured by methods known in the art (see e.g. WO 98/08871) and exhibits insulinotropic activity, where insulinotropic activity may be measured in vivo or in vitro assays known to those of ordinary skill in the art.
  • the GLP-1 agonist may be administered to an animal and the insulin concentration measured over time.
  • WO 93/19175 Novo Nordisk A/S
  • suitable GLP-1 analogues and derivatives which can be used according to the present invention includes those referred to in WO 99/43705 (Novo Nordisk A/S), WO 99/43706 (Novo Nordisk A/S), WO 99/43707 (Novo Nordisk A/S), WO 98/08871 (analogues with lipophilic substituent) and in WO 02/46227 (analogues fused to serum albumin or to Fc portion of an Ig).
  • Novo Nordisk A/S WO 99/43708 (Novo Nordisk A/S), WO 99/43341 (Novo Nordisk A/S), WO 87/06941 (The General Hospital Corporation), WO 90/11296 (The General Hospital Corporation), WO 91/11457 (Buckley et al.), WO 98/43658 (Eli Lilly & Co.), EP 0708
  • the lipophilic substituent has a group which is negatively charged such as a carboxylic acid group.
  • the lipophilic substituent may be an acyl group of a straight-chain or branched alkane ⁇ , ⁇ -dicarboxylic acid of the formula HOOC(CH 2 ) m CO—, wherein m is an integer from 4 to 38, preferably an integer from 12 to 38, and most preferably is HOOC(CH 2 ) 14 CO—, HOOC(CH 2 ) 16 CO—, HOOC(CH 2 ) 18 CO—, HOOC(CH 2 ) 20 CO— or HOOC(CH 2 ) 22 CO—.
  • the lipophilic substituent with the attached spacer is a group of the formula CH 3 (CH 2 ) p NH—CO(CH 2 ) q CO—, wherein p is an integer from 8 to 33, preferably from 12 to 28 and q is an integer from 1 to 6, preferably 2.
  • the lipophilic substituent with the attached spacer is a group of the formula —NHCH(COOH)(CH 2 ) 4 NH—CO(CH 2 ) 2 CH(COOH)NHCO(CH 2 ) x CH 3 , wherein x is zero or an integer from 1 to 22, preferably 10 to 16.
  • the GLP-1 agonist is Arg 34 , Lys 26 (N ⁇ -( ⁇ -Glu(N ⁇ -hexadecanoyl)))-GLP-1(7-37).
  • the GLP-1 agonist is selected from the group consisting of Arg 26 -GLP-1(7-37); Are-GLP-1(7-37); Lys 36 -GLP-1(7-37); Arg 26,34 Lys 36 -GLP-1(7-37); Arg 26,34 -GLP-1(7-37); Arg 26,34 Lys 40 -GLP-1(7-37); Arg 26 Lys 36 -GLP-1(7-37); Arg 34 Lys 36 -GLP-1(7-37); Val 8 Arg 22 -GLP-1(7-37); Met 8 Arg 22 -GLP-1(7-37); Gly 8 His 22 -GLP-1(7-37); Val 8 His 22 -GLP-1(7-37); Met 8 His 22 -GLP-1(7-37); His 37 -GLP-1(7-37); Gly 8 -GLP-1(7-37); Val 8 -GLP-1(7-37); Met 8 His 22 -GLP-1(7-37);
  • the GLP-1 agonist is selected from the group consisting of Val 8 Trp 19 Glu 22 -GLP-1(7-37), Val 8 Glu 22 Val 25 -GLP-1(7-37), Val 8 Tyr 16 Glu 22 -GLP-1(7-37), Val 8 Trp 16 Glu 22 -GLP-1(7-37), Val 8 Leu 16 Glu 22 -GLP-1(7-37), Val 8 Tyr 18 Glu 22 -GLP-1(7-37), Val 8 Glu 22 His 37 -GLP-1(7-37), Val 8 Glu 22 Ile 33 -GLP-1(7-37), Val 8 Trp 16 Glu 22 Val 25 Ile 33 -GLP-1(7-37), Val 8 Trp 16 Glu 22 Ile 33 -GLP-1(7-37), Val 8 Trp 16 Glu 22 Val 25 Ile 33 -GLP-1(7-37), Val 8 Trp 16 Glu 22 Ile 33 -GLP-1(7-37), Val 8 Trp 16 Glu 22 Val 25 Ile
  • WO 97/46584 describes truncated versions of exendin peptide(s). The disclosed peptides increase secretion and biosynthesis of insulin, but reduce those of glucagon.
  • WO 01/04156 describes exendin-4 analogues and derivatives as well as the preparation of these molecules. Exendin-4 analogues stabilized by fusion to serum albumin or Fc portion of an Ig are disclosed in WO 02/46227.
  • insulins may include, but are not limited to, NPH insulin, Lys ⁇ 29 (N ⁇ -tetradecanoyl) des(B30) human insulin, LysB 29 -(N ⁇ -( ⁇ -glutamyl-N ⁇ -lithocholyl) des(B30) human insulin, N ⁇ B29 -octanoyl insulin, 30/70 mixtures of prompt insulin zinc (SemiLente®) with extended insulin zinc (Ultralente®), sold commercially as Lente®, insulin glargine (Lantus®) or extended insulin zinc (Ultralente®), Lys B28 Pro B29 human insulin (Hu-malog®) , Asp B28 human insulin, insulin aspart (Novolog®), or a 30/70 mixture of insulin aspart and insulin aspart protamine (NovoMix®) .
  • NPH insulin N ⁇ -tetradecanoyl des(B30) human insulin
  • the lipophilic substituent is an acyl group corresponding to a linear, saturated carboxylic acid having from 8 to 12 carbon atoms.
  • the peptide to be included in the formulations of the invention is hGH or Met-hGH.
  • the GLP-2 or an analogue or derivative thereof is present in a concentration from about 1 mg/ml to about 100 mg/ml, more preferably in a concentration from about 1 mg/ml to about 10 mg/ml.
  • the final concentration of propylene glycol in the formulations of the invention is from about 8 to about 16 mg/ml.
  • the low molecular weight compound is present in a concentration from 0.1 mg/ml to 50 mg/ml. In a further embodiment of the invention the low molecular weight compound is present in a concentration from 0.1 mg/ml to 5 mg/ml.
  • the method for preparing such a peptide formulation comprises:
  • the above methods of production can be used to produce peptide formulations suitable for use in production and/or for use in injection devices.
  • Factors for consideration of dose will include potency, bioavailability, desired pharmacokinetic/pharmacodynamic profiles, the condition or disease to be treated (e.g. diabetes, obesity, weight loss, gastric ulcers), patient-related factors (e.g. weight, health, age, etc.), presence of co-administered medications (e.g. insulin), time of administration, or other factors known to a medical practitioner.
  • condition or disease to be treated e.g. diabetes, obesity, weight loss, gastric ulcers
  • patient-related factors e.g. weight, health, age, etc.
  • co-administered medications e.g. insulin
  • time of administration e.g. insulin
  • the reduction in deposits on the production equipment during production by the propylene glycol-containing formulation relative to that observed for the formulation containing the previously utilized isotonicity agent is measured by a simulated filling experiment as described in the Examples.
  • the propylene glycol-containing formulation has a pH in the range from 7.3 to about 8.3.
  • the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 8.0.
  • the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 8 to about 16 mg/ml.
  • formulations without peptide give the same conclusions as formulations with peptide at 0.3-5.0 mg/ml, the screening studies in Example 1 have been done using placebo except where indicated otherwise.
  • FIG. 7 shows photographs of needles with no deposits when dosed with the propylene glycol (bottom panel) or showing deposits when dosed with the mannitol (top panel) containing formulations.
  • Lys ⁇ 29 (N ⁇ -tetradecanoyl) des(B30) human insulin and NovoMix 30 formulations will be as described in Example 5 except that mannitol will be replaced with a concentration of propylene glycol that assures tonicity. A simulated in use test will then be conducted as described in Example 5.

Abstract

The present invention relates to pharmaceutical formulations comprising a peptide and propylene glycol, to methods of preparing such formulations, and to uses of such formulations in the treatment of diseases and conditions for which use of the peptide contained in such formulations is indicated. The present invention further relates to methods for reducing the clogging of injection devices by a peptide formulation and for reducing deposits on production equipment during production of a peptide formulation.

Description

    CROSS REFERENCE TO RELATED APPLICATIONS
  • This Application is a continuation of U.S. application Ser. No. 16/260,204 filed Jan. 29, 2019, which is a continuation of U.S. application Ser. No. 16/050,827, filed Jul. 31, 2018 (now abandoned), which is a continuation of U.S. application Ser. No. 13/362,745, filed Jan. 31, 2012 (now abandoned), which is a continuation of U.S. application Ser. No. 11/435,977, filed May 17, 2006 (U.S. Pat. No. 8,114,833, issued Feb. 14, 2012), which is a continuation of International Application serial no. PCT/DK2004/000792 filed Nov. 18, 2004, which claims priority from Danish Application serial no. PA 2003 01719, filed Nov. 20, 2003; the contents of which are incorporated herein by reference.
  • SEQUENCE LISTING
  • The instant application contains a Sequence Listing which has been submitted in ASCII format via EFS-Web and is hereby incorporated by reference in its entirety. Said ASCII copy, created on Jun. 11, 2020, is named 6683US04_SeqList.txt and is 3 kilobytes in size.
  • FIELD OF THE INVENTION
  • The present invention relates to pharmaceutical formulations comprising a peptide and propylene glycol, to methods of preparing such formulations, and to uses of such formulations in the treatment of diseases and conditions for which use of the peptide contained in such formulations is indicated. The present invention further relates to methods for reducing the clogging of injection devices by a peptide formulation and for reducing deposits on production equipment during production of a peptide formulation.
  • BACKGROUND OF THE INVENTION
  • The inclusion of isotonicity agents in peptide-containing pharmaceutical formulations is widely known and one of the more common isotonic agents used in such formulations is mannitol. However, the present inventors have observed that mannitol causes problems during the production of peptide formulations as it crystallizes resulting in deposits in the production equipment and in the final product. Such deposits increase the need to clean the filling equipment during production of the formulation and this results in reduced production capability. In addition, such deposits may also result in reduced yield of the final product since vials/cartridges containing the peptide formulation may need to be discarded if particles are present. Finally, the present inventors have observed that in peptide formulations to be administered by injection, the presence of mannitol results in clogging of injection devices.
  • Accordingly, it is desirable to identify an alternative isotonic agent to mannitol for inclusion in peptide-containing formulations and in particular, for inclusion in peptide formulations which are administered by injection.
  • SUMMARY OF THE INVENTION
  • The present inventors have discovered that peptide formulations containing propylene glycol at certain concentrations exhibit reduced deposits in production equipment and in the final product and also exhibit reduced clogging of injection devices. The present compositions may be formulated with any peptide and are also physically and chemically stable thus rendering them shelf-stable and suitable for invasive (eg. injection, subcutaneous injection, intramuscular, intraveneous or infusion) as well as non-invasive (eg nasal, oral, pulmonary, transdermal or transmucosal e.g. buccal) means of administration.
  • The present invention therefore relates to a pharmaceutical formulation comprising a peptide and propylene glycol, where the propylene glycol is present in a concentration of 1-100 mg/ml and the pH of the formulation is from 7-10. In a preferred embodiment, the pharmaceutical formulations of the invention further contain a buffer and a preservative.
  • The present invention also relates to methods for producing the pharmaceutical formulations of the invention. In one embodiment, the method for preparing a peptide formulation comprises:
  • a) preparing a first solution by dissolving preservative, propylene glycol and buffer in water;
  • b) preparing a second solution by dissolving the peptide in water;
  • c) mixing the first and second solutions; and
  • d) adjusting the pH of the mixture in c) to the desired pH.
  • In another embodiment, the method for preparing a peptide formulation comprises:
  • a) preparing a first solution by dissolving preservative and buffer in water;
  • b) adding propylene glycol to the first solution;
  • c) mixing the first solution with a second solution containing peptide dissolved in water; and
  • d) adjusting the pH of the mixture in c) to the desired pH.
  • In yet another embodiment, the method for preparing a peptide formulation comprises:
  • a) preparing a solution by dissolving preservative, buffer and propylene glycol in water;
  • b) adding the peptide to the solution of step a); and
  • c) adjusting the pH of the solution of step b) to the desired pH.
  • The present invention further relates to methods of treatment using the pharmaceutical formulations of the invention where the compositions are administered in an amount effective to combat the disease, condition, or disorder for which administration of the peptide contained in the formulation is indicated. In addition the present invention also relates to a method for reducing deposits on production equipment during production of a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • In one embodiment, the reduction in deposits on the production equipment during production by the propylene glycol-containing formulation relative to that observed for the formulation containing the previously utilized isotonicity agent is measured by a simulated filling experiment.
  • The present invention also relates to a method for reducing deposits in the final product during production of a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • In one embodiment, the reduction in deposits in the final product is measured by a reduction in the number of vials and/or cartridges of the propylene glycol-containing formulation that must be discarded due to deposits relative to number of vials and/or cartridges of the formulation containing the previously utilized isotonicity agent that must be discarded due to deposits.
  • The present invention further relates to a method for reducing the clogging of injection devices by a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • In one embodiment, the reduction in clogging of the injection device by the propylene glycol-containing formulation relative to that observed for the formulation containing the previously utilized isotonicity agent is measured in a simulated in use study.
  • BRIEF DESCRIPTION OF THE FIGURES
  • FIG. 1 shows a photograph of dried droplets on microscope slides of from left to right, placebo (no peptide) formulations containing no isotonic agent (e only water, preservative and buffer), mannitol, sorbitol, xylitol, sucrose or glycerol as the isotonic agent with the far right slide containing mannitol with peptide Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37).
  • FIG. 2 shows light microscopy pictures of from left to right, some of the dried droplets of placebo formulations containing mannitol, arginin, inositol or glycerol as the isotonic agent.
  • FIG. 3 shows light microscopy pictures of clogged needles dosed with placebo formulations containing myoinositol, maltose or glycerol as the isotonic agent.
  • FIG. 4 shows light microscopy pictures of deposits on needles dosed with placebo formulations containing glycine, lactose or mannitol as the isotonic agent.
  • FIG. 5 shows filling equipment after 24 hours simulated filling with Arg34, Lys26(Nε-(γ-Glu(Nαhexadecanoyl)))-GLP-1(7-37) medium containing myo-inositol.
  • FIG. 6 shows deposits on filling equipment after 24 hours simulated filling with a mannitol-containing placebo formulation.
  • FIG. 7 shows deposits on needles dosed with mannitol (top panel) and propylene glycol (bottom panel)-containing Arg34, Lys26(Nε-(γ-Glu(Nαhexadecanoyl)))-GLP-1(7-37) formulations.
  • DESCRIPTION OF THE INVENTION
  • The present invention relates to a pharmaceutical formulation comprising a peptide or a mixture of peptides and propylene glycol where the final concentration of propylene glycol in the formulation is 1-100 mg/ml and the pH of the formulation is in the range of from 7-10.
  • The pharmaceutical formulations of the invention are found to be optimal for production because they exhibit reduced deposits in production equipment relative to formulations containing other isotonicity agents as measured by the simulated filling studies described in the Examples. In addition, the pharmaceutical formulations of the invention are found to be optimal for use in injection devices because they exhibit reduced clogging of the injection devices relative to formulations containing other isotonicity agents as measured by the simulated in use studies described in the Examples.
  • The formulations of the present invention may be formulated with any peptide where examples of such peptides include, but are not limited to, glucagon, human growth hormone (hGH), insulin, aprotinin, FactorVll, tissue plasminogen activator (TPA), FactorVIIa, FFRFactorVIIa, heparinase, ACTH, Heparin Binding Protein, corticotropin-releasing factor, angiotensin, calcitonin, glucagon-like peptide-1, glucagon-like peptide-2, insulin-like growth factor-1, insulin-like growth factor-2, fibroblast growth factors, gastric inhibitory peptide, growth hormone-releasing factor, pituitary adenylate cyclase activating peptide, secretin, enterogastrin, somatostatin, somatomedin, parathyroid hormone, thrombopoietin, erythropoietin, hypothalamic releasing factors, prolactin, thyroid stimulating hormones, endorphins, enkephalins, vasopressin, oxytocin, opiods, DPP IV, interleukins, immunoglobulins, complement inhibitors, serine protease inhibitors, cytokines, cytokine receptors, PDGF, tumor necrosis factors, tumor necrosis factors receptors, growth factors and analogues as well as derivatives thereof where each of these peptides constitutes an alternative embodiment of the present invention.
  • In the present application, the designation “an analogue” is used to designate a peptide wherein one or more amino acid residues of the parent peptide have been substituted by another amino acid residue and/or wherein one or more amino acid residues of the parent peptide have been deleted and/or wherein one or more amino acid residues have been added to the parent peptide. Such addition can take place either at the N-terminal end or at the C-terminal end of the parent peptide or both. Typically “an analogue” is a peptide wherein 6 or less amino acids have been substituted and/or added and/or deleted from the parent peptide, more preferably a peptide wherein 3 or less amino acids have been substituted and/or added and/or deleted from the parent peptide, and most preferably, a peptide wherein one amino acid has been substituted and/or added and/or deleted from the parent peptide.
  • In the present application, “a derivative” is used to designate a peptide or analogue thereof which is chemically modified by introducing an organic substituent e.g. ester, alkyl or lipophilic functionalities, on one or more amino acid residues of the peptide or analogue thereof.
  • In one embodiment, the peptide to be included in the formulation of the invention is a GLP-1 agonist where “a GLP-1 agonist” is understood to refer to any peptide which fully or partially activates the human GLP-1 receptor. In a preferred embodiment, the “GLP-1 agonist” is any peptide that binds to a GLP-1 receptor, preferably with an affinity constant (KD) or a potency (EC50) of below 1 μM, e.g. below 100 nM as measured by methods known in the art (see e.g. WO 98/08871) and exhibits insulinotropic activity, where insulinotropic activity may be measured in vivo or in vitro assays known to those of ordinary skill in the art. For example, the GLP-1 agonist may be administered to an animal and the insulin concentration measured over time.
  • Methods for identifying GLP-1 agonists are described in WO 93/19175 (Novo Nordisk A/S) and examples of suitable GLP-1 analogues and derivatives which can be used according to the present invention includes those referred to in WO 99/43705 (Novo Nordisk A/S), WO 99/43706 (Novo Nordisk A/S), WO 99/43707 (Novo Nordisk A/S), WO 98/08871 (analogues with lipophilic substituent) and in WO 02/46227 (analogues fused to serum albumin or to Fc portion of an Ig).(Novo Nordisk A/S), WO 99/43708 (Novo Nordisk A/S), WO 99/43341 (Novo Nordisk A/S), WO 87/06941 (The General Hospital Corporation), WO 90/11296 (The General Hospital Corporation), WO 91/11457 (Buckley et al.), WO 98/43658 (Eli Lilly & Co.), EP 0708179-A2 (Eli Lilly & Co.), EP 0699686-A2 (Eli Lilly & Co.), WO 01/98331 (Eli Lilly & Co).
  • In one embodiment, the GLP-1 agonist is selected from the group consisting of GLP-1(7-36)-amide, GLP-1(7-37), a GLP-1(7-36)-amide analogue, a GLP-1(7-37) analogue, or a derivative of any of these.
  • In one embodiment, the GLP-1 agonist is a derivative of GLP-1(7-36)-amide, GLP-1(7-37), a GLP-1(7-36)-amide analogue or a GLP-1(7-37) analogue, which comprises a lipophilic substituent.
  • In this embodiment of the invention, the GLP-1 derivative preferably has three lipophilic substituents, more preferably two lipophilic substituents, and most preferably one lipophilic substituent attached to the parent peptide (ie GLP-1(7-36)-amide, GLP-1(7-37), a GLP-1(7-36)-amide analogue or a GLP-1(7-37) analogue), where each lipophilic substituent(s) preferably has 4-40 carbon atoms, more preferably 8-30 carbon atoms, even more preferably 8-25 carbon atoms, even more preferably 12-25 carbon atoms, and most preferably 14-18 carbon atoms.
  • In one embodiment, the lipophilic substituent comprises a partially or completely hydrogenated cyclopentanophenathrene skeleton.
  • In another embodiment, the lipophilic substituent is a straight-chain or branched alkyl group.
  • In yet another embodiment, the lipophilic substituent is an acyl group of a straight-chain or branched fatty acid. Preferably, the lipophilic substituent is an acyl group having the formula CH3(CH2)nCO—, wherein n is an integer from 4 to 38, preferably an integer from 12 to 38, and most preferably is CH3(CH2)12CO—, CH3(CH2)14CO—, CH3(CH2)16CO—, CH3(CH2)18CO—, CH3(CH2)20CO— and CH3(CH2)22CO—. In a more preferred embodiment, the lipophilic substituent is tetradecanoyl. In a most preferred embodiment, the lipophilic substituent is hexadecanoyl.
  • In a further embodiment of the present invention, the lipophilic substituent has a group which is negatively charged such as a carboxylic acid group. For example, the lipophilic substituent may be an acyl group of a straight-chain or branched alkane α,ω-dicarboxylic acid of the formula HOOC(CH2)mCO—, wherein m is an integer from 4 to 38, preferably an integer from 12 to 38, and most preferably is HOOC(CH2)14CO—, HOOC(CH2)16CO—, HOOC(CH2)18CO—, HOOC(CH2)20CO— or HOOC(CH2)22CO—.
  • In the GLP-1 derivatives of the invention, the lipophilic substituent(s) contain a functional group which can be attached to one of the following functional groups of an amino acid of the parent GLP-1 peptide:
  • (a) the amino group attached to the alpha-carbon of the N-terminal amino acid,
  • (b) the carboxy group attached to the alpha-carbon of the C-terminal amino acid,
  • (c) the epsilon-amino group of any Lys residue,
  • (d) the carboxy group of the R group of any Asp and Glu residue,
  • (e) the hydroxy group of the R group of any Tyr, Ser and Thr residue,
  • (f) the amino group of the R group of any Trp, Asn, Gln, Arg, and His residue, or
  • (g) the thiol group of the R group of any Cys residue.
  • In one embodiment, a lipophilic substituent is attached to the carboxy group of the R group of any Asp and Glu residue.
  • In another embodiment, a lipophilic substituent is attached to the carboxy group attached to the alpha-carbon of the C-terminal amino acid.
  • In a most preferred embodiment, a lipophilic substituent is attached to the epsilon-amino group of any Lys residue.
  • In a preferred embodiment of the invention, the lipophilic substituent is attached to the parent GLP-1 peptide by means of a spacer. A spacer must contain at least two functional groups, one to attach to a functional group of the lipophilic substituent and the other to a functional group of the parent GLP-1 peptide.
  • In one embodiment, the spacer is an amino acid residue except Cys or Met, or a dipeptide such as Gly-Lys. For purposes of the present invention, the phrase “a dipeptide such as Gly-Lys” means any combination of two amino acids except Cys or Met, preferably a dipeptide wherein the C-terminal amino acid residue is Lys, His or Trp, preferably Lys, and the
  • N-terminal amino acid residue is Ala, Arg, Asp, Asn, Gly, Glu, Gln, Ile, Leu, Val, Phe, Pro, Ser, Tyr, Thr, Lys, His and Trp. Preferably, an amino group of the parent peptide forms an amide bond with a carboxylic group of the amino acid residue or dipeptide spacer, and an amino group of the amino acid residue or dipeptide spacer forms an amide bond with a carboxyl group of the lipophilic substituent.
  • Preferred spacers are lysyl, glutamyl, asparagyl, glycyl, beta-alanyl and gamma-aminobutanoyl, each of which constitutes an individual embodiment. Most preferred spacers are glutamyl and beta-alanyl. When the spacer is Lys, Glu or Asp, the carboxyl group thereof may form an amide bond with an amino group of the amino acid residue, and the amino group thereof may form an amide bond with a carboxyl group of the lipophilic substituent. When Lys is used as the spacer, a further spacer may in some instances be inserted between the ε-amino group of Lys and the lipophilic substituent. In one embodiment, such a further spacer is succinic acid which forms an amide bond with the ε-amino group of Lys and with an amino group present in the lipophilic substituent. In another embodiment such a further spacer is Glu or Asp which forms an amide bond with the a-amino group of Lys and another amide bond with a carboxyl group present in the lipophilic substituent, that is, the lipophilic substituent is a Nε-acylated lysine residue.
  • In another embodiment, the spacer is an unbranched alkane α,ω-dicarboxylic acid group having from 1 to 7 methylene groups, which spacer forms a bridge between an amino group of the parent peptide and an amino group of the lipophilic substituent. Preferably, the spacer is succinic acid.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula CH3(CH2)pNH—CO(CH2)qCO—, wherein p is an integer from 8 to 33, preferably from 12 to 28 and q is an integer from 1 to 6, preferably 2.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula CH3(CH2)rCO—NHCH(COOH)(CH2)2CO—, wherein r is an integer from 4 to 24, preferably from 10 to 24.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula CH3(CH2)sCO—NHCH((CH2)2COOH)CO—, wherein s is an integer from 4 to 24, preferably from 10 to 24.
  • In a further embodiment, the lipophilic substituent is a group of the formula COOH(CH2)tCO— wherein t is an integer from 6 to 24.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula —NHCH(COOH)(CH2)4NH—CO(CH2)uCH3, wherein u is an integer from 8 to 18.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula CH3(CH2)vCO—NH—(CH2)z—CO, wherein v is an integer from 4 to 24 and z is an integer from 1 to 6.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula —NHCH(COOH)(CH2)4NH—COCH((CH2)2COOH)NH—CO(CH2)wCH3, wherein w is an integer from 10 to 16.
  • In a further embodiment, the lipophilic substituent with the attached spacer is a group of the formula —NHCH(COOH)(CH2)4NH—CO(CH2)2CH(COOH)NHCO(CH2)xCH3, wherein x is zero or an integer from 1 to 22, preferably 10 to 16.
  • In yet another embodiment the GLP-1 agonist is Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37).
  • In yet another embodiment the GLP-1 agonist is selected from the group consisting of Gly8-GLP-1(7-36)-amide, Gly8-GLP-1(7-37), Val8-GLP-1(7-36)-amide, Val8-GLP-1(7-37), Val8Asp22-GLP-1(7-36)-amide, Val8Asp22-GLP-1(7-37) , Val8Glu22-GLP-1(7-36)-amide , Val8Glu22-GLP-1(7-37), Val8Lys22-GLP-1(7-36)-amide, Val8Lys22-GLP-1(7-37), Val8Arg22-GLP-1(7-36)-amide, Val8Arg22-GLP-1(7-37), Val8His22-GLP-1(7-36)-amide, Val8His22-GLP-1(7-37), analogues thereof and derivatives of any of these.
  • In yet another embodiment the GLP-1 agonist is selected from the group consisting of Arg26-GLP-1(7-37); Are-GLP-1(7-37); Lys36-GLP-1(7-37); Arg26,34Lys36-GLP-1(7-37); Arg26,34-GLP-1(7-37); Arg26,34Lys40-GLP-1(7-37); Arg26Lys36-GLP-1(7-37); Arg34Lys36-GLP-1(7-37); Val8Arg22-GLP-1(7-37); Met8Arg22-GLP-1(7-37); Gly8His22-GLP-1(7-37); Val8His22-GLP-1(7-37); Met8His22-GLP-1(7-37); His37-GLP-1(7-37); Gly8-GLP-1(7-37); Val8-GLP-1(7-37); Met8-GLP-1(7-37);Gly8Asp22-GLP-1(7-37); Val8Asp22-GLP-1(7-37); Met8Asp22-GLP-1(7-37);Gly8Glu22-GLP-1(7-37); Val8Glu22-GLP-1(7-37); Met8Glu22-GLP-1(7-37); Gly8Lys22-GLP-1(7-37); Val8Lys22-GLP-1(7-37); Met8Lys22-GLP-1(7-37); Gly8Arg22-GLP-1(7-37); Val8Lys22His37-GLP-1(7-37); Gly8Glu22His37-GLP-1(7-37); Val8Glu22His37-GLP-1(7-37); Met8Glu22His37-GLP-1(7-37);Gly8Lys22 His37-GLP-1(7-37); Met8Lys22His37-GLP-1(7-37);Gly8Arg22His37-GLP-1(7-37); Val8Arg22His37-GLP-1(7-37); Met8Arg22His37-GLP-1(7-37); Gly8His22His37-GLP-1(7-37); Val8His22His37-GLP-1(7-37); Met8His22His37-GLP-1(7-37); Gly8His37-GLP-1(7-37); Val8His37-GLP-1(7-37); Met8His37-GLP-1(7-37);Gly8Asp22 His37-GLP-1(7-37); Val8Asp22His37-GLP-1(7-37); Met8Asp22His37-GLP-1(7-37); Arg26-GLP-1(7-36)-amide; Arg34-GLP-1(7-36)-amide; Lys36-GLP-1(7-36)-amide; Arg26,34Lys36-GLP-1(7-36)-amide; Arg26,34-GLP-1(7-36)-amide; Arg26,34Lys40-GLP-1(7-36)-amide; Arg26Lys36-GLP-1(7-36)-amide; Arg34Lys36-GLP-1(7-36)-amide; Gly8-GLP-1(7-36)-amide; Val8-GLP-1(7-36)-amide; Met8-GLP-1(7-36)-amide; Gly8Asp22-GLP-1(7-36)-amide; Gly8Glu22His37-GLP-1(7-36)-amide; Val8Asp22-GLP-1(7-36)-amide; Met8Asp22-GLP-1(7-36)-amide; Gly8Glu22-GLP-1(7-36)-amide; Val8Glu22-GLP-1(7-36)-amide; Met8Glu22-GLP-1(7-36)-amide; Gly8Lys22-GLP-1(7-36)-amide; Val8Lys22-GLP-1(7-36)-amide; Met8Lys22-GLP-1(7-36)-amide; Gly8His22His37-GLP-1(7-36)-amide; Gly8Arg22-GLP-1(7-36)-amide; Val8Arg22-GLP-1(7-36)-amide; Met8Arg22-GLP-1(7-36)-amide; Gly8His22-GLP-1(7-36)-amide; Val8His22-GLP-1(7-36)-amide; Met8His22-GLP-1(7-36)-amide; His37-GLP-1(7-36)-amide; Val8Arg22His37-GLP-1(7-36)-amide; Met8Arg22His37-GLP-1(7-36)-amide; Gly8His37-GLP-1(7-36)-amide; Val8His37-GLP-1(7-36)-amide; Met8His37-GLP-1(7-36)-amide; Gly8Asp22 His37-GLP-1(7-36)-amide; Val8Asp22His37-GLP-1(7-36)-amide; Met8Asp22His37-GLP-1(7-36)-amide; Val8Glu22His37-GLP-1(7-36)-amide; Met8Glu22His37-GLP-1(7-36)-amide; Gly8Lys22 His37-GLP-1(7-36)-amide; Val8Lys22His37-GLP-1(7-36)-amide; Met8Lys22His37-GLP-1(7-36)-amide; Gly8Arg22His37-GLP-1(7-36)-amide; Val8His22His37-GLP-1(7-36)-amide; Met8His22His37-GLP-1(7-36)-amide; and derivatives thereof.
  • In yet another embodiment the GLP-1 agonist is selected from the group consisting of Val8Trp19Glu22-GLP-1(7-37), Val8Glu22Val25-GLP-1(7-37), Val8Tyr16Glu22-GLP-1(7-37), Val8Trp16Glu22-GLP-1(7-37), Val8Leu16Glu22-GLP-1(7-37), Val8Tyr18Glu22-GLP-1(7-37), Val8Glu22His37-GLP-1(7-37), Val8Glu22Ile33-GLP-1(7-37), Val8Trp16Glu22Val25Ile33-GLP-1(7-37), Val8Trp16Glu22Ile33-GLP-1(7-37), Val8Glu22Val25Ile33-GLP-1(7-37), Val8Trp16Glu22Val25-GLP-1(7-37), analogues thereof and derivatives of any of these.
  • In yet another embodiment the GLP-1 agonist is exendin-4 or exendin-3, an exen-din-4 or exendin-3 analogue or a derivative of any of these.
  • Examples of exendins as well as analogues, derivatives, and fragments thereof to be included within the present invention are those disclosed in WO 97/46584, U.S. Pat. No. 5,424,286 and WO 01/04156. U.S. Pat. No. 5,424,286 describes a method for stimulating insulin release with an exendin polypeptide. The exendin polypeptides disclosed include HGEGTFTSDLSKQMEEEAVRLFIEWLKNGGX (SEQ ID NO.: 1); wherein X=P or Y; HSDGTFITSDLSKQMEEEAVRLFIEWLKNGGPSSGAPPPS (SEQ ID NO.: 2) (exendin-3); and HGEGT-FITSDLSKQMEEEAVRLFIEWLKNGGPSSGAPPPS (SEQ ID NO.: 4) (exendin-4). WO 97/46584 describes truncated versions of exendin peptide(s). The disclosed peptides increase secretion and biosynthesis of insulin, but reduce those of glucagon. WO 01/04156 describes exendin-4 analogues and derivatives as well as the preparation of these molecules. Exendin-4 analogues stabilized by fusion to serum albumin or Fc portion of an Ig are disclosed in WO 02/46227.
  • In one embodiment, the exendin-4 analogue is HGEGTFTSDLSKQMEEEAVRL-FIEWLKNGGPSSGAPPSKKKKKK-amide (SEQ ID NO.: 3).
  • Where the peptide to be included in the formulation of the invention is a GLP-1 agonist, the GLP-1 agonist is present in a concentration from about 0.1 mg/ml to about 100 mg/ml, more preferably in a concentration from about 0.1 mg/ml to about 50 mg/ml, and most preferably in a concentration of from about 0.1 mg/ml to about 10 mg/ml.
  • In another embodiment, the peptide to be included in the formulation of the invention is insulin , where “insulin” is understood to mean human insulin, [where “human insulin” means insulin having the amino acid sequence shown in D S H W Nicol and L F Smith: Nature, (1960) 4736: 483-485, which is hereby incorporated by reference], human insulin analogs, human insulin derivatives or mixtures thereof, where examples of insulin analogs and derivatives are those disclosed in EP 0 792 290 (Novo Nordisk A/S), EP 0 214 826 and EP 0 705 275 (Novo Nordisk A/S), US 5,504,188 (Eli Lilly), EP 0 368 187 (Aventis), U.S. Pat. Nos. 5,750,497 and 6,011,007, EP 375437 and EP 383472 and where such insulins may include, but are not limited to, NPH insulin, Lys β29 (Nε-tetradecanoyl) des(B30) human insulin, LysB29-(Nε-(γ-glutamyl-Nα-lithocholyl) des(B30) human insulin, N□B29-octanoyl insulin, 30/70 mixtures of prompt insulin zinc (SemiLente®) with extended insulin zinc (Ultralente®), sold commercially as Lente®, insulin glargine (Lantus®) or extended insulin zinc (Ultralente®), LysB28 ProB29 human insulin (Hu-malog®) , AspB28 human insulin, insulin aspart (Novolog®), or a 30/70 mixture of insulin aspart and insulin aspart protamine (NovoMix®) .
  • In one embodiment, the insulin is a derivative of human insulin or a human insulin analogue where the derivative contains at least one lysine residue and a lipophilic substituent is attached to the epsilon amino group of the lysine residue.
  • In one embodiment, the lysine residue to which the lipophilic substituent is attached is present at position B28 of the insulin peptide.
  • In an alternative embodiment, the lysine residue to which the lipophilic substituent is attached is present at position B29 of the insulin peptide.
  • In yet another embodiment, lipophilic substituent is an acyl group corresponding to a carboxylic acid having at least 6 carbon atoms.
  • In another preferred embodiment, the lipophilic substituent is an acyl group, branched or unbranched, which corresponds to a carboxylic acid having a chain of carbon atoms 8 to 24 atoms long.
  • In another preferred embodiment, the lipophilic substituent is an acyl group corresponding to a fatty acid having at least 6 carbon atoms.
  • In another preferred embodiment, the lipophilic substituent is an acyl group corresponding to a linear, saturated carboxylic acid having from 6 to 24 carbon atoms.
  • In another preferred embodiment, the lipophilic substituent is an acyl group corresponding to a linear, saturated carboxylic acid having from 8 to 12 carbon atoms.
  • In another preferred embodiment, the lipophilic substituent is an acyl group corresponding to a linear, saturated carboxylic acid having from 10 to 16 carbon atoms. In another preferred embodiment, the lipophilic substituent is an oligo oxyethylene group comprising up to 10, preferably up to 5, oxyethylene units.
  • In another preferred embodiment, the lipophilic substituent is an oligo oxypropylene group comprising up to 10, preferably up to 5, oxypropylene units.
  • In one preferred embodiment, the invention relates to a human insulin derivative in which the B30 amino acid residue is deleted or is any amino acid residue which can be coded for by the genetic code except Lys, Arg and Cys; the A21 and the B3 amino acid residues are, independently, any amino acid residues which can be coded for by the genetic code except Lys, Arg and Cys; PheB1 may be deleted; the □-amino group of LysB29 has a lipophilic substituent which comprises at least 6 carbon atoms; and 2-4 Zn2+ ions may be bound to each insulin hexamer with the proviso that when B30 is Thr or Ala and A21 and B3 are both Asn, and PheB1 is not deleted, then 2-4 Zn2+ ions are bound to each hexamer of the insulin derivative.
  • In another preferred embodiment, the invention relates to a human insulin derivative in which the B30 amino acid residue is deleted or is any amino acid residue which can be coded for by the genetic code except Lys, Arg and Cys; the A21 and the B3 amino acid residues are, independently, any amino acid residues which can be coded for by the genetic code except Lys, Arg and Cys, with the proviso that if the B30 amino acid residue is Ala or Thr, then at least one of the residues A21 and B3 is different from Asn; PheB1 may be deleted; and the □-amino group of LysB29 has a lipophilic substituent which comprises at least 6 carbon atoms.
  • In another preferred embodiment, the invention relates to a human insulin derivative in which the B30 amino acid residue is deleted or is any amino acid residue which can be coded for by the genetic code except Lys, Arg and Cys; the A21 and the B3 amino acid residues are, independently, any amino acid residues which can be coded for by the genetic code except Lys, Arg and Cys; PheB1 may be deleted; the □-amino group of LysB29 has a lipophilic substituent which comprises at least 6 carbon atoms; and 2-4 Zn2+ ions are bound to each insulin hexamer.
  • Where the peptide to be included in the formulation of the invention is an insulin, the insulin is present in a concentration from about 0.5 mg/ml to about 20 mg/ml, more preferably in a concentration from about 1 mg/ml to about 15 mg/ml.
  • In another embodiment, the peptide to be included in the formulations of the invention is hGH or Met-hGH.
  • Where the peptide to be included in the formulation of the invention is hGH or MethGH, the hGH or Met-hGH is present in a concentration from about 0.5 mg/ml to about 50 mg/ml, more preferably in a concentration from about 1 mg/ml to about 10 mg/ml.
  • In yet another embodiment, the peptide to be included in the formulations of the invention is GLP-2 or an analogue or derivative thereof.
  • Where the peptide to be included in the formulation of the invention is GLP-2 or an analogue or derivative thereof, the GLP-2 or an analogue or derivative thereof is present in a concentration from about 1 mg/ml to about 100 mg/ml, more preferably in a concentration from about 1 mg/ml to about 10 mg/ml.
  • In yet a further embodiment, the peptide to be included in the formulations of the invention is Factor VII or Factor VIIa or an analogue or derivative thereof.
  • Where the peptide to be included in the formulation of the invention is Factor VII or Factor VIIa or an analogue or derivative thereof, the Factor VII or Factor VIIa or an analogue or derivative thereof is present in a concentration from about 0.1 mg/ml to about 10 mg/ml, more preferably in a concentration from about 0.5 mg/ml to about 5 mg/ml.
  • In one embodiment, the final concentration of propylene glycol in the formulations of the invention is from about 1 to about 50 mg/ml.
  • In another embodiment, the final concentration of propylene glycol in the formulations of the invention is from about 5 to about 25 mg/ml.
  • In yet another embodiment, the final concentration of propylene glycol in the formulations of the invention is from about 8 to about 16 mg/ml.
  • In yet a further embodiment, the final concentration of propylene glycol in the formulations of the invention is from about 13 to about 15 mg/ml.
  • In still another embodiment, the final concentration of propylene glycol in the formulations of the invention is from about 13.5 to about 14.5 mg/ml.
  • In another embodiment of the invention, the formulation has a pH in the range from about 7.0 to about 9.5 where the term “about” as used in connection with pH means + or −0.1 pH units from the stated number.
  • In a further embodiment of the invention, the formulation has a pH in the range from about 7.0 to about 8.0.
  • In yet a further embodiment of the invention, the formulation has a pH in the range from about 7.2 to about 8.0.
  • In a further embodiment of the invention, the formulation has a pH in the range from about 7.0 to about 8.3.
  • In yet a further embodiment of the invention, the formulation has a pH in the range from about 7.3 to about 8.3.
  • In a preferred embodiment of the invention, the formulations contain, in addition to a peptide and propylene glycol, a buffer and/or a preservative.
  • Where a buffer is to be included in the formulations of the invention, the buffer is selected from the group consisting of sodium acetate, sodium carbonate, citrate, glycylglycine, histidine, glycine, lysine, arginin, sodium dihydrogen phosphate, disodium hydrogen phosphate, sodium phosphate, and tris(hydroxymethyl)-aminomethan, or mixtures thereof. Each one of these specific buffers constitutes an alternative embodiment of the invention. In a preferred embodiment of the invention the buffer is glycylglycine, sodium dihydrogen phosphate, disodium hydrogen phosphate, sodium phosphate or mixtures thereof.
  • Where a pharmaceutically acceptable preservative is to be included in the formulations of the invention, the preservative is selected from the group consisting of phenol, m-cresol, methyl p-hydroxybenzoate, propyl p-hydroxybenzoate, 2-phenoxyethanol, butyl p-hydroxybenzoate, 2-phenylethanol, benzyl alcohol, chlorobutanol, and thiomerosal, or mixtures thereof. Each one of these specific preservatives constitutes an alternative embodiment of the invention. In a preferred embodiment of the invention the preservative is phenol or m-cresol.
  • In a further embodiment of the invention the preservative is present in a concentration from about 0.1 mg/ml to about 50 mg/ml, more preferably in a concentration from about 0.1 mg/ml to about 25 mg/ml, and most preferably in a concentration from about 0.1 mg/ml to about 10 mg/ml
  • The use of a preservative in pharmaceutical compositions is well-known to the skilled person. For convenience reference is made to Remington: The Science and Practice of Pharmacy, 19th edition, 1995.
  • In a further embodiment of the invention the formulation may further comprise a chelating agent where the chelating agent may be selected from salts of ethlenediaminetetraacetic acid (EDTA), citric acid, and aspartic acid, and mixtures thereof. Each one of these specific chelating agents constitutes an alternative embodiment of the invention.
  • In a further embodiment of the invention the chelating agent is present in a concentration from 0.1 mg/ml to 5mg/ml. In a further embodiment of the invention the chelating agent is present in a concentration from 0.1 mg/ml to 2mg/ml. In a further embodiment of the invention the chelating agent is present in a concentration from 2 mg/ml to 5 mg/ml.
  • The use of a chelating agent in pharmaceutical compositions is well-known to the skilled person. For convenience reference is made to Remington: The Science and Practice of Pharmacy, 19th edition, 1995.
  • In a further embodiment of the invention the formulation may further comprise a stabiliser selected from the group of high molecular weight polymers or low molecular compounds where such stabilizers include, but are not limited to, polyethylene glycol (e.g. PEG 3350), polyvinylalcohol (PVA), polyvinylpyrrolidone, carboxymethylcellulose, different salts (e.g. sodium chloride), L-glycine, L-histidine, imidazole, arginine, lysine, isoleucine, aspartic acid, tryptophan, threonine and mixtures thereof. Each one of these specific stabilizers constitutes an alternative embodiment of the invention. In a preferred embodiment of the invention the stabiliser is selected from the group consisting of L-histidine, imidazole and arginine.
  • In a further embodiment of the invention the high molecular weight polymer is present in a concentration from 0.1 mg/ml to 50 mg/ml. In a further embodiment of the invention the high molecular weight polymer is present in a concentration from 0.1 mg/ml to 5 mg/ml. In a further embodiment of the invention the high molecular weight polymer is present in a concentration from 5 mg/ml to 10 mg/ml. In a further embodiment of the invention the high molecular weight polymer is present in a concentration from 0 mg/ml to 20 mg/ml. In a further embodiment of the invention the high molecular weight polymer is present in a concentration from 20 mg/ml to 30 mg/ml. In a further embodiment of the invention the high molecular weight polymer is present in a concentration from 30 mg/ml to 50 mg/ml.
  • In a further embodiment of the invention the low molecular weight compound is present in a concentration from 0.1 mg/ml to 50 mg/ml. In a further embodiment of the invention the low molecular weight compound is present in a concentration from 0.1 mg/ml to 5 mg/ml.
  • In a further embodiment of the invention the low molecular weight compound is present in a concentration from 5 mg/ml to 10 mg/ml. In a further embodiment of the invention the low molecular weight compound is present in a concentration from 10 mg/ml to 20 mg/ml. In a further embodiment of the invention the low molecular weight compound is present in a concentration from 20 mg/ml to 30 mg/ml. In a further embodiment of the invention the low molecular weight compound is present in a concentration from 30 mg/ml to 50 mg/ml.
  • The use of a stabilizer in pharmaceutical compositions is well-known to the skilled person. For convenience reference is made to Remington: The Science and Practice of Pharmacy, 19th edition, 1995.
  • In a further embodiment of the invention the formulation of the invention may further comprise a surfactant where a surfactant may be selected from a detergent, ethoxylated castor oil, polyglycolyzed glycerides, acetylated monoglycerides, sorbitan fatty acid esters, poloxamers, such as 188 and 407, polyoxyethylene sorbitan fatty acid esters, polyoxyethylene derivatives such as alkylated and alkoxylated derivatives (tweens, e.g. Tween-20, or Tween-80), monoglycerides or ethoxylated derivatives thereof, diglycerides or polyoxyethylene derivatives thereof, glycerol, cholic acid or derivatives thereof, lecithins, alcohols and phospholipids, glycerophospholipids (lecithins, kephalins, phosphatidyl serine), glyceroglycolipids (galactopyransoide), sphingophospholipids (sphingomyelin), and sphingoglycolipids (ceramides, gangliosides), DSS (docusate sodium, docusate calcium, docusate potassium, SDS (sodium dodecyl sulfate or sodium lauryl sulfate), dipalmitoyl phosphatidic acid, sodium caprylate, bile acids and salts thereof and glycine or taurine conjugates, ursodeoxycholic acid, sodium cholate, sodium deoxycholate, sodium taurocholate, sodium glycocholate, N-Hexadecyl-N,N-dimethyl-3-ammonio-1-propanesulfonate, anionic (alkyl-aryl-sulphonates) monovalent surfactants, palmitoyl lysophosphatidyl-L-serine, lysophospholipids (e.g. 1-acyl-sn-glycero-3-phosphate esters of ethanolamine, choline, serine or threonine), alkyl, alkoxyl (alkyl ester), alkoxy (alkyl ether)-derivatives of lysophosphatidyl and phosphatidylcholines, e.g. lauroyl and myristoyl derivatives of lysophosphatidylcholine, dipalmitoylphosphatidylcholine, and modifications of the polar head group, that is cholines, ethanolamines, phosphatidic acid, serines, threonines, glycerol, inositol, and the postively charged DODAC, DOTMA, DCP, BISHOP, lysophosphatidylserine and lysophosphatidylthreonine, zwitterionic surfactants (e.g. N-alkyl-N,N-dimethylammonio-1-propanesulfonates, 3-cholamido-1-propyldimethylammonio-1-propanesulfonate, dodecylphosphocholine, myristoyl lysophosphatidylcholine, hen egg lysolecithin), cationic surfactants (quarternary ammonium bases) (e.g. cetyl-trimethylammonium bromide, cetylpyridinium chloride), non-ionic surfactants, polyethyleneoxide/polypropyleneoxide block copolymers (Pluronics/Tetronics, Triton X-100, Dodecyl β-D-glucopyranoside) or polymeric surfactants (Tween-40, Tween-80, Brij-35), fusidic acid derivatives- (e.g. sodium tauro-dihydrofusidate etc.), long-chain fatty acids and salts thereof C6-C12 (eg. oleic acid and caprylic acid), acylcarnitines and derivatives, Nα-acylated derivatives of lysine, arginine or histidine, or side-chain acylated derivatives of lysine or arginine, Nα-acylated derivatives of dipeptides comprising any combination of lysine, arginine or histidine and a neutral or acidic amino acid, Nα-acylated derivative of a tripeptide comprising any combination of a neutral amino acid and two charged amino acids, or the surfactant may be selected from the group of imidazoline derivatives, or mixtures thereof. Each one of these specific surfactants constitutes an alternative embodiment of the invention.
  • The use of a surfactant in pharmaceutical compositions is well-known to the skilled person. For convenience reference is made to Remington: The Science and Practice of Pharmacy, 19th edition, 1995.
  • The formulations of the invention may be prepared by conventional techniques, e.g. as described in Remington's Pharmaceutical Sciences, 1985 or in Remington: The Science and Practice of Pharmacy, 19th edition, 1995, where such conventional techniques of the pharmaceutical industry involve dissolving and mixing the ingredients as appropriate to give the desired end product.
  • As mentioned above, in a preferred embodiment, the formulations of the invention-contain, in addition to a peptide and propylene glycol, a buffer and/or a preservative.
  • In one embodiment, the method for preparing such a peptide formulation comprises:
  • a) preparing a first solution by dissolving preservative, propylene glycol and buffer in water;
  • b) preparing a second solution by dissolving the peptide in water;
  • c) mixing the first and second solutions; and
  • d) adjusting the pH of the mixture in c) to the desired pH.
  • In another embodiment, the method for preparing such a peptide formulation comprises:
  • a) preparing a first solution by dissolving preservative and buffer in water;
  • b) adding propylene glycol to the first solution;
  • c) mixing the first solution with a second solution containing peptide dissolved in water; and
  • d) adjusting the pH of the mixture in c) to the desired pH.
  • In yet another embodiment, the method for preparing a peptide formulation comprises:
  • a) preparing a solution by dissolving preservative, buffer and propylene glycol in water;
  • b) adding the peptide to the solution of step a); and
  • c) adjusting the pH of the solution of step b) to the desired pH.
  • As the formulations of the invention are optimal for production and for use in injection devices since they exhibit reduced deposits of production equipment and reduced clogging of injection devices, the above methods of production can be used to produce peptide formulations suitable for use in production and/or for use in injection devices.
  • The formulations of the invention are suitable for administration to a mammal, preferably a human. The route of administration of the formulations of the invention may be any route which effectively transports the peptide contained in the formulation to the appropriate or desired site of action, such as oral, nasal, buccal, pulmonal, transdermal or parenteral.
  • Due to the ability of propylene glycol to reduce clogging of injection devices when compared to other isotonic agents and to mannitol in particular, in a preferred embodiment, the formulations of the invention are to be administered parenterally to a patient in need thereof. Parenteral administration may be performed by subcutaneous, intramuscular or intravenous injection by means of a syringe, optionally a pen-like syringe. Alternatively, parenteral administration can be performed by means of an infusion pump.
  • A further option is a composition which may be a powder or a liquid for the administration of the formulation in the form of a nasal or pulmonal spray. As a still further option, the formulation can also be administered transdermally, e.g. from a patch, optionally a iontophoretic patch, or transmucosally, e.g. bucally. The above-mentioned possible ways to administer the formulations of the invention are not to be considered as limiting the scope of the invention.
  • Of course, it is understood that depending on the peptide or peptides included in the formulations of the invention, the formulations may be used in methods of treatment of diseases or conditions for which use of the peptide is indicated. One skilled in the art would understand that when used in such methods of treatment, the formulations would have to be administered in amount effective to treat the condition or disease for which the peptide was being administered where an “effective amount” or an “amount . . . effective” is understood to mean a dosage which is sufficient in order for the treatment of the patient with the disease or condition to be treated to be effective compared to treatment without the administered dosage. It is to be understood that “an effective amount” is the effective dose to be determined by a qualified practitioner, who may titrate dosages to achieve the desired response. Factors for consideration of dose will include potency, bioavailability, desired pharmacokinetic/pharmacodynamic profiles, the condition or disease to be treated (e.g. diabetes, obesity, weight loss, gastric ulcers), patient-related factors (e.g. weight, health, age, etc.), presence of co-administered medications (e.g. insulin), time of administration, or other factors known to a medical practitioner.
  • The present invention also relates to a method for reducing deposits on production equipment during production of a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • In one embodiment, the reduction in deposits on the production equipment during production by the propylene glycol-containing formulation relative to that observed for the formulation containing the previously utilized isotonicity agent is measured by a simulated filling experiment as described in the Examples.
  • In another embodiment, the isotonicity agent to be replaced by propylene glycol is selected from the group consisting of sorbitol, sucrose, glycine, mannitol, lactose monohydrate, arginin, myo-inositol and dimethylsulfon.
  • In a further embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 1 to about 50 mg/ml.
  • In another embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 5 to about 25 mg/ml.
  • In yet another embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 8 to about 16 mg/ml.
  • In another embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 9.5.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 8.0.
  • In yet a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from 7.2 to about 8.0.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 8.3.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from 7.3 to about 8.3.
  • The present invention also relates to a method for reducing deposits in the final product during production of a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • In one embodiment, the reduction in deposits in the final product is measured by a reduction in the number of vials and/or cartridges of the propylene glycol-containing formulation that must be discarded due to deposits relative to number of vials and/or cartridges of the formulation containing the previously utilized isotonicity agent that must be discarded due to deposits.
  • In another embodiment, the isotonicity agent to be replaced by propylene glycol is selected from the group consisting of sorbitol, sucrose, glycine, mannitol, lactose monohydrate, arginin, myo-inositol and dimethylsulfon.
  • In a further embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 1 to about 50 mg/ml.
  • In another embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 5 to about 25 mg/ml.
  • In yet another embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 8 to about 16 mg/ml.
  • In another embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 9.5.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 8.0.
  • In yet a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from 7.2 to about 8.0.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 8.3.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from 7.3 to about 8.3.
  • The present invention further relates to a method for reducing the clogging of injection devices by a peptide formulation, where the method comprises replacing the isotonicity agent previously utilized in said formulation with propylene glycol at a concentration of between 1-100 mg/ml.
  • In one embodiment, the reduction in clogging of the injection device by the propylene glycol-containing formulation relative to that observed for the formulation containing the previously utilized isotonicity agent is measured in a simulated in use study as described in the Examples.
  • In another embodiment, the isotonicity agent to be replaced by propylene glycol is selected from the group consisting of inositol, maltose, glycine, lactose and mannitol.
  • In a further embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 1 to about 50 mg/ml.
  • In another embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 5 to about 25 mg/ml.
  • In yet another embodiment, the isotonicity agent previously utilized in said formulation is replaced with propylene glycol in a concentration of from about 8 to about 16 mg/ml.
  • In another embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 9.5.
  • In a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from about 7.0 to about 8.0.
  • In yet a further embodiment of the invention, the propylene glycol-containing formulation has a pH in the range from 7.2 to about 8.0.
  • All scientific publications and patents cited herein are specifically incorporated by reference. The following examples illustrate various aspects of the invention but are in no way intended to limit the scope thereof.
  • EXAMPLES Example 1 Simulated Filling Experiments, Drop and Clogging Tests of Replacement Candidates for Mannitol
  • As laboratory experiments have shown that with regards to clogging of needles and deposits on needles, formulations without peptide (“placebo”) give the same conclusions as formulations with peptide at 0.3-5.0 mg/ml, the screening studies in Example 1 have been done using placebo except where indicated otherwise.
  • Preparation of Formulations With Different Isotonic Agents
  • Preservative (5.5 mg/ml phenol) and buffer 1.24 mg/ml disodium hydrogen phosphate, dihydrate) were dissolved in water and the isotonic agent was added while stirring. pH was adjusted to pH 7.9 using Sodium Hydroxide and/or Hydrochloric acid. Finally, the formulation was filtered through a 0.22 μm filter. The isotonic agents tested in each formulation and their concentrations are shown in Table 1.
  • TABLE 1
    Composition of the tested formulations
    Formulation
    no. Tonicity modifier
    1 Glucose monohydrate (38.0 mg/ml)
    2 Laktose monohydrate (65.0 mg/ml)
    3 Maltose (67.2 mg/ml)
    4 Glycine (15.1 mg/ml)
    5 Polyethylenglycol 400 (77.5 mg/ml)
    6 L-arginin (24.6 mg/ml)
    7 Myo-Inositol (35.2 mg/ml)
    8 Propylene glycol (13.7 mg/ml)
    9 Dimethylsulfon (18 mg/ml)
    10 Mannitol (35.9 mg/ml)
    11 Sorbitol (39.5 mg/ml)
    12 Xylitol (39.5 mg/ml)
    13 Sucrose (79.1 mg/ml
    14 Glycerol (16 mg/ml)
  • Osmolarity
  • The osmolarity of the different placebo formulations was determined and the results are shown in Table 2.
    An isotonic solution has an osmolarity of around 0.286 osmol/L. As can be seen from Table 2 three of the formulations (PEG 400, sucrose and xylitol) are more than 20% from being isotonic (0.229-0.343 osmol/l), however for these kind of experiments the osmolarity is not expected to influence the results, though, the tonicity of the formulations should be adjusted in future experiments.
  • TABLE 2
    The measured osmolarity of the formulations
    Formulation
    no. Isotonic agent Osmolarity
    1 Glucose monohydrate (38.0 mg/ml) 0.315
    2 Laktose monohydrate (65.0 mg/ml) 0.283
    3 Maltose (67.2 mg/ml) 0.306
    4 Glycine (15.1 mg/ml) 0.286
    5 Polyethylenglykol 400 (77.5 mg/ml) 0.370
    6 L-arginin(24.6 mg/ml) 0.318
    7 Myo-Inositol (35.2 mg/ml) 0.285
    8 Propylene glycol (13.7 mg/ml) 0.268
    9 Dimethylsulfon (18 mg/ml) 0.274
    10 Mannitol (35.9 mg/ml) 0.284
    11 Sorbitol (39.5 mg/ml) 0.310
    12 Xylitol (39.5 mg/ml) 0.351
    13 Sucrose (79.1 mg/ml 0.346
    14 Glycerol (16 mg/ml) 0.262
  • Drop Test
  • A droplet of each formulation is placed on a microscope slide and let to dry. The deposit is visually examined by eye and light microscope.
    A photograph of the dried droplets of some of the formulations is shown in FIG. 1. In this figure it is clearly observed that mannitol cause deposits on the microscope slide when let to dry. No deposits were observed for sorbitol, xylitol, sucrose and glycerol. The droplet on the far right (Form 1) contains mannitol and Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37).
    In FIG. 2, the candidates causing the most deposits on the microscope slide are shown. For comparison glycerol, which does not cause deposits, is shown (mannitol, arginine, inositol).
  • Clogging Test
  • In this test 10 NovoPens® 1.5 ml mounted with NovoFine 30® G (G 30 needle) were tested for each formulation, 5 of them placed in upright and 5 in horizontal position. The Pensystems were stored at room temperature in between testing. Each day the needle was examined for deposits and an air shot was performed prior to injection into a tissue. Degree of resistance and clogging, if any, was noted. Injections were made on a daily basis with the same needle, and this was done for 9 working days for all the formulations.
    The results from the clogging test are shown in Table 3.
  • TABLE 3
    Clogging test in NovoPen 1.5 using 30G NovoFine
    Isotonic Drop at Dried Gel-like
    agent (no. of Some Much top of drop at drop on Deposits
    observations) resistance Resistance resistance Clogged needle needle top needle on needle
    Mannitol (90) 10 0 0 0 0 2 0 43
    Glycerol (90) 13 0 0 0 1 0 3 0
    Sucrose (90) 23 0 0 0 0 0 21 0
    Propylene 20 0 0 0 0 0 0 0
    glycol (90)
    PEG 400 (90) 25 1 0 0 12 (5 at 0 0 0
    needle)
    arginin (90) 26 2 0 0 3 (2 at 1 0 0
    needle)
    Xylitol (90) 14 0 0 0 5 0 0 0
    Dimethylsulfon 21 0 0 0 4 0 0 0
    (90)
    sorbitol (90) 12 0 0 0 9 1 0 1
    Myoinositol 20 1 2 6 6 0 0 47
    (90)
    Glucose (90) 32 11 5 0 16 (7 at 1 0 (1 at
    needle) needle)
    glycine (90) 41 9 2 0 1 (2 at 0 0 31 (2 at
    needle) needle)
    maltose (90) 35 8 7 4 16 (6 at 0 0 1 (5 at
    needle) needle)
    laktose (90) 44 10 8 0 5 0 0 31 (2 at
    needle)

    In Table 3 and in FIG. 3 it was observed that inositol and maltose clogged the needle. For comparison glycerol which does not clog the needle is shown in FIG. 3. In FIG. 4, and in Table 3, it was observed that formulations containing glycine, lactose and mannitol gave rise to a lot of deposits on the needle. For glycine, the deposits were a droplet deposited down the needle, whereas for lactose and mannitol the deposits occurred at the top of the needle.
  • Simulated Filling
  • 1 L of each formulation was subjected to a simulated filling experiment which lasted for 24 hours. After 24 hours the filling equipment was inspected for the presence of deposits.
    Based on the results from the simulated filling studies (data not shown), the placebo formulations can be divided into three categories. 1. Those isotonic agents that do not cause deposits on the filling equipment: Xylitol, glycerol, glucose monohydrate, maltose, PEG 400 and propylene glycol. 2. Those isotonic agent that cause few deposits and have superior filling properties compared to mannitol: Sorbitol, sucrose and glycine. 3. Those isotonic agent that are comparable or worse than mannitol: Mannitol, lactose monohydrate, arginin, myo-inositol and dimethylsulfon.
  • CONCLUSION
  • In the simulated filling experiment xylitol, glycerol, glucose, maltose, PEG 400, propylene glycol, sorbitol, sucrose and glycine were found to be suitable replacements candidates for mannitol. However, as glucose is a reducing saccharide, and therefore is able to initiate unwanted degradation in the formulation, this tonicity modifier is ruled out. Furthermore, maltose is ruled out due to clogging of needles. This leads to the following candidates: glycerol, xylitol, sorbitol, sucrose, glycine, propylene glycol and PEG 400, which are found to have suitable properties as replacements candidates for mannitol in peptide formulations with regards to drop test, clogging of needles and simulated filling.
    However, on the basis of the following considerations, propylene glycol was chosen as the isotonic agent over the other candidates to be further investigated in head to head comparison studies with mannitol:
      • a. propylene glycol was observed to have no influence on the physical and chemical stability of Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37)-containing formulations;
      • b. propylene glycol was observed to have no influence on antimicrobial preservative testing; and
      • c. use of propylene glycol would no require that further toxicity studies be tested
    Example 2 Comparison Of Mannitol and Propylene Glycol-Containing Placebo Formulations In Simulated Filling Studies and Simulated Use Studies Preparation of Formulations
  • Preservative and buffer were dissolved in water and the isotonic agent was added while stirring. pH was adjusted to the aimed pH using Sodium Hydroxide and/or Hydrochloric acid. Finally, the formulation was filtered through a 0.22 μm filter. The compositions of the formulations were as follows:
      • Disodium hydrogen phosphate, dihydrate: 1.42 mg/ml
      • Phenol: 5.5 mg/ml
      • Propylene glycol or mannitol: 13.7 or 35.9 mg/ml
      • Water for Injection: up to 1.0 ml.
      • pH: 7.90
    Simulated Filling Study
  • A simulated filling study lasting 24 hours was performed as described in Example 1 and after 24 hours, the filling equipment was inspected for the presence of deposits. No deposits were observed on the filling equipment for the propylene glycol formulation. By comparison, after 24 hours, a lot of deposits were observed on the filling equipment for the mannitol formulation (see FIG. 6).
  • Simulated In Use Study
  • For the simulated in use study, a clogging test was conducted as described in Example 1. The same needle was used during the study period of ten working days and each day, the needle was inspected for the presence of deposits. FIG. 7 shows photographs of needles dosed with the propylene glycol (top panel) or mannitol (bottom panel) containing formulations. Deposits on the needle were observed in 48% of the cases when mannitol was used as an isotonic agent whereas no deposits were observed when propylene glycol was used as the isotonic agent.
  • Example 3 Comparison of Propylene Glycol to Mannitol In Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37) Containing Formulations Preparation of Formulations
  • Preservative, isotonic agent (mannitol or propylene glycol) and buffer were dissolved in water and pH was adjusted to the desired pH. Arg34, Lys26(Nε-(γ-Glu(Nαhexadecanoyl)))-GLP-1(7-37) was dissolved in water while stirring slowly. The two solutions were then mixed and pH adjusted to the desired pH using sodium hydroxide and/or hydrochloric acid. Finally, the formulation was filtered through a 0.22 μm filter. The compositions of the formulations were as follows:
  • Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37) (6.25 mg/ml),
  • Disodium hydrogen phosphate, dihydrate (1.42 mg/ml),
  • Phenol (5.5 mg/ml),
  • mannitol or propylene glycol (35.9 or 14.0 mg/ml),
  • Water for Injection (up to 1.0 ml),
  • pH: 8.15
  • Simulated In Use Study
  • For the simulated in use study, a clogging test was conducted as described in Example 1 except that a G31 needle was used. The same G31 needle was used during the study period of ten working days and each day, the needle was inspected for the presence of deposits. FIG. 7 shows photographs of needles with no deposits when dosed with the propylene glycol (bottom panel) or showing deposits when dosed with the mannitol (top panel) containing formulations.
  • For the mannitol containing formulation, clogging of the needle was observed in 1 out of 10 cases on day 4, 2 out of 10 cases on day 5, 3 out of 10 cases on day 8 and 4 out of 10 cases on day 9. By comparison, no clogging of needles was observed for the propylene glycol containing formulation.
  • It is believed that similar results to those obtained with the above-described propylene glycol-containing formulation would also be obtained if the pH was adjusted to 7.40, 7.70 or 7.90. In addition, additional formulations which could be tested include those having the following compositions:
  • Buffering agents: glycylglycine (1.32 mg/ml), L-Histidine (1.55 mg/ml), Hepes (2.38 mg/ml), or bicine (1.63 mg/ml)
  • Preservatives: phenol (5.0 or 5.5 mg/ml), benzylalcohol (18 mg/ml) or a mixture of m-cresol and phenol (2.5/2.0 mg/ml)
  • Propylene glycol: 14.0 or 14.3 mg.ml
  • Water for injection: up to 1.0 ml
  • pH: 7.40, 7.70, 7.90 or 8.15
  • Example 4 Influence of Peptide Concentration On Clogging of Needles
  • Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37) formulations were prepared as described in Example 3 using peptide concentrations ranging from 0-5 mg/ml of Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37). The compositions of the formulations were as follows:
    Liraglutide: 0, 0.3, 3 and 5 mg/ml
    Disodium hydrogen phosphate, dihydrate: 0.71 mg/ml
    Sodium dihydrogenphosphate, dihydrate: 0.62 mg/ml
    Mannitol: 36.9 mg/ml
    Phenol: 5.0 mg/ml
    Water for injection: up to 1.0 ml
    pH 7.40
  • A simulated in use study was conducted as in Example 3 except that a G30 needle was used and the results (data not shown) indicated that the clogging effect of the mannitol-containing formulations relative to the absence of clogging with the propylene glycol formulations was observed independent of the peptide concentration.
  • Example 5 Clogging of Needles in Lys β29 (Nε-tetradecanoyl) des(B30) Human Insulin and NovoMix 30 Formulations Containing Mannitol Preparation Of Formulations
  • The Lys β29 (Nε-tetradecanoyl) des(B30) human insulin-containing formulation was prepared as follows:
    a) Prepared a first solution by dissolving buffer, sodium chloride, preservatives (phenol and m-cresol) and mannitol in water
    b) Prepared a second solution of Lys β29 (Nε-tetradecanoyl) des(B30) human insulin and zinc acetate dissolved in water
    c) added the peptide-containing solution of step b) to the solution of step a); and
    d) adjusted the pH of the solution to the desired pH
    The composition of Lys β29 (Nε-tetradecanoyl) des(B30) human insulin-containing formulation prepared in the above manner was as follows:
    Lys β29 (Nε-tetradecanoyl) des(B30) human insulin (2400 nmol), Phenol (1.80 mg/ml), m-cresol (2.06 mg/ml), Mannitol (30.0 mg/ml), disodiumphosphate, dihydrate (0.890 mg/ml), Sodium chloride (1.17 mg/ml), Zinc acetate (65.4 ug/ml), water for injection (up to 1.0 ml), pH: 7.4
    The NovoMix 30-containing formulation was prepared as follows:
    a) Prepared a solution by dissolving buffer, sodium chloride, phenol, mannitol and sodium hydroxide in water
    b) Prepared a solution of sodium chloride, phenol and mannitol in water
    c) Prepared a solution of protamine sulphate in water
    d) Prepared a solution of insulin, hydrochloric acid and zinc in water
    e) Solutions b), c) and d) were mixed
    f) Solution e) was added to the solution of step a)
    g) Adjusted the pH of the solution to the desired pH and crystallized at room temperature
    h) Prepared a solution by dissolving m-cresol, phenol and mannitol in water
    i) Solution h) is added to the crystalline fraction of step g); and
    j) Adjusted the pH to the desired pH
    The composition of the NovoMix 30-containing formulation prepared in the above manner was as follows:
    Insulin aspart (100 units/ml), protamine sulphate (approx. 0.33 mg/ml), phenol (1.50 mg/ml), m-cresol (1.72 mg/ml), mannitol (30.0 mg/ml), disodiumphosphate dihydrate (1.25 mg/ml), sodium chloride (0.58 mg/ml), zinc (19.6 ug/ml), water for injection (up to 1.0 ml), pH: 7.3.
  • Results
  • A simulated in use study was conducted as described in Example 3 using G31 needles where 20 needles were investigated for 10 days. The results were as follows: Clogging of needles was observed for Lys β29 (Nε-tetradecanoyl) des(B30) human insulin on day 2 (5%), day 3 (70%) and on day 4 (100%). Clogging of needles for NovoMix 30 was observed on day 3 (5%), day 4 (10%), day 5 (35%), day 6 (40%), day 8 (50%), day 9 (55%) and day 10 (80%). Thus, the effect of mannitol on the clogging of needles is independent of the type of peptide included in the formulations since a comparable clogging effect was observed with Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37), Lys β29 (Nε-tetradecanoyl) des(B30) human insulin and NovoMix 30.
  • Example 6 Testing of Lys β29 (Nε-tetradecanoyl) des(B30) Human Insulin and NovoMix 30 Formulations Containing Propylene Glycol
  • The preparation and composition of the Lys β29 (Nε-tetradecanoyl) des(B30) human insulin and NovoMix 30 formulations will be as described in Example 5 except that mannitol will be replaced with a concentration of propylene glycol that assures tonicity. A simulated in use test will then be conducted as described in Example 5.
    Based on the fact that the clogging effect of Lys β29 (Nε-tetradecanoyl) des(B30) human insulin and NovoMix 30 mannitol-containing formulations was similar to that observed with Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37) mannitol-containing formulations, it is believed that the effect of propylene glycol on the clogging effect of Lys β29 (Nε-tetradecanoyl) des(B30) human insulin and NovoMix 30-containing formulations will be similar to that observed with Arg34, Lys26(Nε-(γ-Glu(Nα-hexadecanoyl)))-GLP-1(7-37)-containing formulations.

Claims (30)

1. A pharmaceutical formulation comprising:
Arg34, Lys26(N-ε-(γ-Glu(N-α-hexadecanoyl)))-GLP-1(7-37) in a concentration of about 0.1 mg/ml to about 10 mg/ml; and
propylene glycol in a concentration of from about 8 mg/ml to about 16 mg/ml,
wherein said formulation has a pH in the range of from about 7.0 to about 9.5.
2. The formulation according to claim 1, wherein the concentration of propylene glycol is from about 13 mg/ml to about 15 mg/ml.
3. The formulation according to claim 1, wherein the concentration of propylene glycol is from about 13.5 mg/ml to about 14.5 mg/ml.
4. The formulation according to claim 1, wherein said formulation has a pH of from about 7.0 to about 8.3 mg/ml.
5. The formulation according to claim 3, further comprising a buffer.
6. The formulation according to claim 5, wherein the buffer is sodium acetate.
7. The formulation according to claim 5, wherein the buffer is sodium carbonate.
8. The formulation according to claim 5, wherein the buffer is citrate.
9. The formulation according to claim 5, wherein the buffer is glycylglycine.
10. The formulation according to claim 5, wherein the buffer is histidine.
11. The formulation according to claim 5, wherein the buffer is glycine.
12. The formulation according to claim 5, wherein the buffer is lysine.
13. The formulation according to claim 5, wherein the buffer is arginine.
14. The formulation according to claim 5, wherein the buffer is sodium dihydrogen phosphate.
15. The formulation according to claim 5, wherein the buffer is disodium hydrogen phosphate.
16. The formulation according to claim 5, wherein the buffer is sodium phosphate.
17. The formulation according to claim 5, wherein the buffer is tris(hydroxymethyl)-aminomethane.
18. The formulation according to claim 5, wherein the buffer is selected from the group consisting of sodium acetate, sodium carbonate, citrate, glycylglycine, histidine, glycine, lysine, arginine, sodium dihydrogen phosphate, disodium hydrogen phosphate, sodium phosphate, tris(hydroxymethyl)-aminomethane, or mixtures thereof.
19. A pharmaceutical formulation consisting essentially of:
Arg34, Lys26(N-ε-(γ-Glu(N-α-hexadecanoyl)))-GLP-1(7-37) in a concentration of about 0.1 mg/ml to about 10 mg/ml;
propylene glycol in a concentration of from about 13 mg/ml to about 15 mg/ml;
a buffer,
a preservative;
and water for injection;
wherein said formulation has a pH in the range of from about 7.0 to about 9.5.
20. The formulation according to claim 19, wherein the buffer is selected from the group consisting of sodium acetate, sodium carbonate, citrate, glycylglycine, histidine, glycine, lysine, arginine, sodium dihydrogen phosphate, disodium hydrogen phosphate, sodium phosphate, tris(hydroxymethyl)-aminomethane, or mixtures thereof, and
wherein the preservative is selected from the group consisting of phenol, m-cresol, methyl p-hydroxybenzoate, propyl p-hydroxybenzoate, 2-phenoxyethanol, butyl p-hydroxybenzoate, 2phenylethanol, benzyl alcohol, chlorobutanol, and thimerosal, or mixtures thereof.
21. The formulation according to claim 20, wherein the buffer is glycylglycine, sodium dihydrogen phosphate, disodium hydrogen phosphate, sodium phosphate or mixtures thereof, and the preservative is phenol or m-cresol.
22. The formulation according to claim 21, wherein said formulation has a pH of 8.15.
23. A pharmaceutical formulation for use in an injection device containing a needle, the formulation comprising:
Arg34, Lys26(N-ε-(γ-Glu(N-α-hexadecanoyl)))-GLP-1(7-37) in a concentration of about 0.1 mg/ml to about 10 mg/ml; and
a propylene glycol isotonic agent in a concentration of from about 13 mg/ml to about 15 mg/ml;
wherein said formulation has a pH of from about 7.0 to about 9.5; and
wherein said formulation exhibits, in a simulated in-use study, reduced clogging of the needle relative to a formulation of the same components but containing mannitol as the isotonic agent.
24. The formulation of claim 23, wherein said formulation exhibits reduced deposits in production filling equipment relative to a formulation of the same components but containing mannitol as the isotonic agent.
25. The formulation according to claim 23, wherein the propylene glycol is present in said formulation in a concentration of from about 13.5 mg/ml to about 14.5 mg/ml.
26. The formulation according to claim 23, further comprising a buffer and a preservative.
27. The formulation according to claim 23, wherein said formulation has a pH of 8.15.
28. A parenteral administration device for administering Arg34, Lys26(N-ε-(γ-Glu(N-α-hexadecanoyl)))-GLP-1(7-37) to a patient in need thereof, the device comprising:
an injection device containing a needle with a needle top;
a pharmaceutical formulation in the injection device, said formulation comprising:
Arg34, Lys26(N-ε-(γ-Glu(N-α-hexadecanoyl)))-GLP-1(7-37) in a concentration of about 0.1 mg/ml to about 10 mg/ml; and
a propylene glycol isotonic agent in a concentration of from about 13 mg/ml to about 15 mg/ml;
wherein said formulation has a pH of from about 7.0 to about 9.5; and
wherein the device, in a simulated in-use study, after multiple uses exhibits no clogging of the needle, no drops at the needle top, no dried drops at the needle top, no gel-like drops on the needle, and no deposits on the needle.
29. The parenteral administration device of claim 28, wherein the propylene glycol is present in said formulation in a concentration of from about 13.5 mg/ml to about 14.5 mg/ml.
30. The parenteral administration device of claim 28, wherein said formulation further comprises a buffer and a preservative.
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US11/435,977 US8114833B2 (en) 2003-11-20 2006-05-17 Propylene glycol-containing peptide formulations which are optimal for production and for use in injection devices
US13/362,745 US20120225810A1 (en) 2003-11-20 2012-01-31 Propylene glycol-containing peptide formulations which are optimal for production and for use in injection devices
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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11318191B2 (en) 2020-02-18 2022-05-03 Novo Nordisk A/S GLP-1 compositions and uses thereof
US11752198B2 (en) 2017-08-24 2023-09-12 Novo Nordisk A/S GLP-1 compositions and uses thereof

Families Citing this family (66)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DK1412384T3 (en) * 2001-06-28 2008-04-28 Novo Nordisk As Stable formulation of modified GLP-1
SI1687019T1 (en) 2003-11-20 2018-04-30 Novo Nordisk A/S Propylene glycol-containing peptide formulations which are optimal for production and for use in injection devices
KR101729986B1 (en) 2006-09-22 2017-04-25 노보 노르디스크 에이/에스 Protease resistant insulin analogues
WO2008132224A2 (en) 2007-04-30 2008-11-06 Novo Nordisk A/S Method for drying a protein composition, a dried protein composition and a pharmaceutical composition comprising the dried protein
JP5675347B2 (en) * 2007-06-01 2015-02-25 ノボ・ノルデイスク・エー/エス Stable non-aqueous pharmaceutical composition
WO2008145728A1 (en) * 2007-06-01 2008-12-04 Novo Nordisk A/S Spontaneously dispersible preconcentrates including a peptide drug in a solid or semisolid carrier
ES2618073T3 (en) 2008-03-14 2017-06-20 Novo Nordisk A/S Insulin analogs stabilized against proteases
US8691759B2 (en) 2008-03-18 2014-04-08 Novo Nordisk A/S Protease stabilized, acylated insulin analogues
EP2111871A1 (en) * 2008-04-26 2009-10-28 Sandoz AG Stabilised fluid formula
US8031419B2 (en) 2009-07-28 2011-10-04 Hong Kong Applied Science and Technology Research Institute, Co., Ltd. Compact imaging device
US20110097386A1 (en) * 2009-10-22 2011-04-28 Biodel, Inc. Stabilized glucagon solutions
US9610329B2 (en) * 2009-10-22 2017-04-04 Albireo Pharma, Inc. Stabilized glucagon solutions
NZ602392A (en) 2010-03-18 2014-03-28 Innopharma Inc Stable bortezomib formulations
US8263578B2 (en) 2010-03-18 2012-09-11 Innopharma, Inc. Stable bortezomib formulations
CN105963685B (en) 2010-12-16 2021-01-15 诺和诺德股份有限公司 Solid compositions comprising a GLP-1 agonist and a salt of N- (8- (2-hydroxybenzoyl) amino) caprylic acid
CA2832811A1 (en) 2011-04-12 2012-10-18 Novo Nordisk A/S Double-acylated glp-1 derivatives
JP5950477B2 (en) * 2011-08-10 2016-07-13 アドシア Injection solution of at least one basal insulin
WO2013139694A1 (en) 2012-03-22 2013-09-26 Novo Nordisk A/S Compositions of glp-1 peptides and preparation thereof
CN104364260B (en) 2012-04-11 2017-02-22 诺和诺德股份有限公司 insulin formulations
JP6517690B2 (en) 2012-06-20 2019-05-22 ノヴォ ノルディスク アー/エス Tablet formulation containing peptide and delivery agent
SI2866825T1 (en) 2012-07-01 2020-07-31 Novo Nordisk A/S Use of long-acting glp-1 peptides
UA116217C2 (en) 2012-10-09 2018-02-26 Санофі Exendin-4 derivatives as dual glp1/glucagon agonists
WO2014096149A1 (en) 2012-12-21 2014-06-26 Sanofi Exendin-4 Derivatives
CN103893744B (en) * 2012-12-24 2017-12-19 杭州九源基因工程有限公司 A kind of pharmaceutical preparation for treating diabetes and preparation method thereof
TWI641381B (en) * 2013-02-04 2018-11-21 法商賽諾菲公司 Stabilized pharmaceutical formulations of insulin analogues and/or insulin derivatives
WO2014209886A1 (en) 2013-06-23 2014-12-31 Wisconsin Alumni Research Foundation Alpha/beta-polypeptide analogs of glucagon-like peptid-1
CN104415326A (en) * 2013-08-28 2015-03-18 深圳翰宇药业股份有限公司 Liraglutide-containing pharmaceutical preparation composition and preparation method thereof
AU2014333979B2 (en) 2013-10-07 2018-02-15 Novo Nordisk A/S Novel derivative of an insulin analogue
WO2015086733A1 (en) 2013-12-13 2015-06-18 Sanofi Dual glp-1/glucagon receptor agonists
EP3080154B1 (en) 2013-12-13 2018-02-07 Sanofi Dual glp-1/gip receptor agonists
WO2015086730A1 (en) 2013-12-13 2015-06-18 Sanofi Non-acylated exendin-4 peptide analogues
TW201609795A (en) 2013-12-13 2016-03-16 賽諾菲公司 EXENDIN-4 peptide analogues as dual GLP-1/GIP receptor agonists
JP6641280B2 (en) 2014-01-09 2020-02-05 サノフイSanofi Stabilized pharmaceutical formulations of insulin analogues and / or insulin derivatives
TW201625670A (en) 2014-04-07 2016-07-16 賽諾菲公司 Dual GLP-1/glucagon receptor agonists derived from EXENDIN-4
TW201625669A (en) 2014-04-07 2016-07-16 賽諾菲公司 Peptidic dual GLP-1/glucagon receptor agonists derived from Exendin-4
TW201625668A (en) 2014-04-07 2016-07-16 賽諾菲公司 Exendin-4 derivatives as peptidic dual GLP-1/glucagon receptor agonists
US9932381B2 (en) 2014-06-18 2018-04-03 Sanofi Exendin-4 derivatives as selective glucagon receptor agonists
WO2016038521A1 (en) * 2014-09-08 2016-03-17 Sun Pharmaceutical Industries Limited Pharmaceutical compositions of liraglutide
WO2016059593A1 (en) * 2014-10-16 2016-04-21 Piramal Enterprises Limited Stable injectable composition of protein drugs and process for its preparation
CN107249620B (en) * 2015-05-13 2018-06-26 杭州九源基因工程有限公司 A kind of pharmaceutical preparation comprising GLP-1 analogs and preparation method thereof
RS62368B1 (en) 2015-05-22 2021-10-29 Univ Leland Stanford Junior Treatment of post-bariatric hypoglycemia with exendin(9-39)
AR105319A1 (en) 2015-06-05 2017-09-27 Sanofi Sa PROPHARMS THAT INCLUDE A DUAL AGONIST GLU-1 / GLUCAGON CONJUGATE HIALURONIC ACID CONNECTOR
TW201706291A (en) 2015-07-10 2017-02-16 賽諾菲公司 New EXENDIN-4 derivatives as selective peptidic dual GLP-1/glucagon receptor agonists
CN108883158A (en) * 2016-03-04 2018-11-23 诺和诺德股份有限公司 Liraglutide for the kidney patient's condition
US10653753B2 (en) 2016-03-04 2020-05-19 Eiger Biopharmaceuticals, Inc. Treatment of hyperinsulinemic hypoglycemia with exendin-4 derivatives
US9968659B2 (en) 2016-03-04 2018-05-15 Novo Nordisk A/S Liraglutide in cardiovascular conditions
WO2017220463A1 (en) * 2016-06-20 2017-12-28 Isa Pharmaceuticals B.V. Formulation of a peptide vaccine
US10350293B2 (en) 2016-08-23 2019-07-16 Pharmacotherapia d.o.o. Compositions and methods for treating symptoms associated with multiple sclerosis
EP3515408A1 (en) 2016-09-23 2019-07-31 Delpor, Inc. Stable compositions for incretin mimetic compounds
AU2017361539B2 (en) 2016-11-21 2023-06-29 Eiger Biopharmaceuticals, Inc. Buffered formulations of exendin (9-39)
ES2930149T3 (en) 2016-12-16 2022-12-07 Novo Nordisk As Pharmaceutical compositions containing insulin
GB201621987D0 (en) * 2016-12-22 2017-02-08 Archer Virgil L See Archer Sheri A Arecor Ltd Novel composition
CA3087928A1 (en) 2018-02-02 2019-08-08 Novo Nordisk A/S Solid compositions comprising a glp-1 agonist, a salt of n-(8-(2-hydroxybenzoyl)amino)caprylic acid and a lubricant
WO2019200594A1 (en) * 2018-04-19 2019-10-24 杭州先为达生物科技有限公司 Acylated glp-1 derivative
TWI705820B (en) * 2018-06-22 2020-10-01 美商美國禮來大藥廠 Gip/glp1 agonist compositions
EP3628682A1 (en) 2018-09-28 2020-04-01 Zealand Pharma A/S Formulations of glucagon-like-peptide-2 (glp-2) analogues
US11058745B1 (en) 2018-10-04 2021-07-13 Good Health, Llc Stable liquid pharmaceutical compositions of daptomycin
JP2022502472A (en) * 2018-10-09 2022-01-11 トラン、ダットTRAN, Dat Compositions and Methods to Improve Systemic Delivery, Tolerability, and Efficacy of Cationic Macrocyclic Peptides
BR112021006598A2 (en) * 2018-10-26 2021-07-06 Novo Nordisk As liquid pharmaceutical composition, and kit
EP3897570A1 (en) 2018-12-19 2021-10-27 KRKA, d.d., Novo mesto Pharmaceutical composition comprising glp-1 analogue
US11471512B2 (en) 2019-03-01 2022-10-18 Merck Sharp & Dohme Llc Pharmaceutical compositions of a peptide
WO2020208541A1 (en) * 2019-04-08 2020-10-15 Enzene Biosciences Limited Composition comprising glp-1 analogue
WO2021123228A1 (en) 2019-12-18 2021-06-24 Krka, D.D., Novo Mesto Pharmaceutical composition comprising glp-1 analogue
US20230110689A1 (en) 2020-03-30 2023-04-13 Zealand Pharma A/S Agonist combination
US11478533B2 (en) 2020-04-27 2022-10-25 Novo Nordisk A/S Semaglutide for use in medicine
EP4329812A1 (en) 2021-04-27 2024-03-06 Aardvark Therapeutics Inc. Combination of bitter receptor agonist and gut-signaling compound

Family Cites Families (118)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPS56150012A (en) 1980-03-21 1981-11-20 Wellcome Found Isotomic solution medicine
US4483849A (en) 1983-01-07 1984-11-20 Carter William A Stabilization and purification of interferon with propylene glycol, resulting in a non-toxic product
US4468346A (en) 1983-10-27 1984-08-28 The United States Of America As Represented By The Secretary Of Agriculture Monoclonal antibodies to porcine immunoglobulins
PH25772A (en) 1985-08-30 1991-10-18 Novo Industri As Insulin analogues, process for their preparation
EP0587255A1 (en) 1986-05-05 1994-03-16 The General Hospital Corporation Insulinotropic hormone
CA1335765C (en) 1987-05-14 1995-06-06 Robert John Pearce Whey protein fractions
EP0422124A4 (en) 1988-06-27 1991-10-16 Genex Corporation Thermal release of recombinant protein into culture media
DE3837825A1 (en) 1988-11-08 1990-05-10 Hoechst Ag NEW INSULIN DERIVATIVES, THEIR USE AND A PHARMACEUTICAL PREPARATION CONTAINING THEM
WO1990007522A1 (en) 1988-12-23 1990-07-12 Novo Nordisk A/S Human insulin analogues
PT93057B (en) 1989-02-09 1995-12-29 Lilly Co Eli PROCESS FOR THE PREPARATION OF INSULIN ANALOGS
DE68929217T2 (en) 1989-03-20 2000-11-30 Gen Hospital Corp INSULINOTROPES HORMON
JP2822447B2 (en) * 1989-05-19 1998-11-11 住友電気工業株式会社 Method and apparatus for producing oxide superconducting wire
US5216011A (en) 1989-09-01 1993-06-01 Bristol-Myers Squibb Co. Stable solutions of mitomycin c
DE69013471T2 (en) 1989-12-05 1995-03-30 Merck & Co Inc Method for stabilizing recombinant hepatitis B virus surface proteins from yeast.
CA2073856C (en) 1990-01-24 2002-12-03 Douglas I. Buckley Glp-1 analogs useful for diabetes treatment
DE4002066A1 (en) 1990-01-25 1991-08-01 Basf Ag METHOD FOR SEPARATING RIBOFLAVIN FROM FERMENTATION SUSPENSIONS
EP0482608B1 (en) * 1990-10-26 1994-07-27 The Furukawa Electric Co., Ltd. A polyphenylenesulfide composition for powder coating
US5272135A (en) 1991-03-01 1993-12-21 Chiron Ophthalmics, Inc. Method for the stabilization of methionine-containing polypeptides
SE9101381D0 (en) * 1991-05-07 1991-05-07 Tomas Moks PEPTIDE HORMONE SOLUTION
US5206219A (en) * 1991-11-25 1993-04-27 Applied Analytical Industries, Inc. Oral compositions of proteinaceous medicaments
DK36492D0 (en) 1992-03-19 1992-03-19 Novo Nordisk As PREPARATION
DK39892D0 (en) 1992-03-25 1992-03-25 Bernard Thorens PEPTIDE
JP3631490B2 (en) * 1992-05-13 2005-03-23 ノバルティス ファーマ株式会社 Cyclosporine-containing ophthalmic composition
US6284727B1 (en) 1993-04-07 2001-09-04 Scios, Inc. Prolonged delivery of peptides
US5424286A (en) 1993-05-24 1995-06-13 Eng; John Exendin-3 and exendin-4 polypeptides, and pharmaceutical compositions comprising same
DE122006000017I1 (en) 1993-06-21 2006-06-29 Novo Nordisk As ASP-B28-insulin crystals
AU7531094A (en) * 1993-08-24 1995-03-21 Novo Nordisk A/S Protracted glp-1
KR100310122B1 (en) 1993-09-17 2002-04-24 한센 핀 베네드, 안네 제헤르, 웨이콥 마리안느 Acylated Insulin
US6011007A (en) 1993-09-17 2000-01-04 Novo Nordisk A/S Acylated insulin
GB9320782D0 (en) 1993-10-08 1993-12-01 Univ Leeds Innovations Ltd Stabilising of proteins on solution
PT729362E (en) * 1993-11-19 2000-06-30 Searle & Co TRANSDERMAL COMPOSITION OF N-PHENYL-ALPHA-L-FENILLALANIN OR ESTERS AND ITS PHARMACEUTICALLY ACCEPTED SALTS
US5705483A (en) 1993-12-09 1998-01-06 Eli Lilly And Company Glucagon-like insulinotropic peptides, compositions and methods
AU1847695A (en) * 1994-02-22 1995-09-04 Syntex-Synergen Neuroscience Joint Venture, The Pharmaceutical formulations of cntf
US5652216A (en) 1994-05-26 1997-07-29 Novo Nordisk A/S Pharmaceutical preparation
US5504188A (en) 1994-06-16 1996-04-02 Eli Lilly And Company Preparation of stable zinc insulin analog crystals
US5574008A (en) 1994-08-30 1996-11-12 Eli Lilly And Company Biologically active fragments of glucagon-like insulinotropic peptide
DE69532492T2 (en) 1994-08-31 2004-12-02 Mitsubishi Pharma Corp. Process for the purification of recombinant human serum albumin
US5512549A (en) 1994-10-18 1996-04-30 Eli Lilly And Company Glucagon-like insulinotropic peptide analogs, compositions, and methods of use
WO1996020005A1 (en) 1994-12-23 1996-07-04 Novo Nordisk A/S Protracted glp-1 compositions
EP0820299B1 (en) 1995-02-06 2002-04-24 Genetics Institute, Inc. Formulations for il-12
US6184201B1 (en) 1995-04-14 2001-02-06 Nps Allelix Corp. Intestinotrophic glucagon-like peptide-2 analogs
US5834428A (en) 1995-04-14 1998-11-10 1149336 Ontario Inc. Glucagon-like peptide-2 and its therapeutic use
DE69626976T2 (en) 1995-06-02 2004-03-04 Novozymes A/S TREATMENT OF A PROTEIN SOLUTION WITH A1 / Fe AND FOLLOWING MEMBRANE CONCENTRATION
US5631347A (en) 1995-06-07 1997-05-20 Eli Lilly And Company Reducing gelation of a fatty acid-acylated protein
JP2000516912A (en) 1996-06-05 2000-12-19 ロシュ ダイアグノスティクス ゲゼルシャフト ミット ベシュレンクテル ハフツング Exendin analogs, methods for their preparation and formulations containing them
PT909175E (en) * 1996-07-03 2003-10-31 Alza Corp NON-AQUEOUS FORMULATIONS OF PROTIC PEPTIDES
US5981489A (en) 1996-07-18 1999-11-09 Alza Corporation Non-aqueous protic peptide formulations
AU4063697A (en) 1996-08-08 1998-02-25 Amylin Pharmaceuticals, Inc. Methods for regulating gastrointestinal motility
JPH10101696A (en) 1996-08-08 1998-04-21 Shinotesuto:Kk Removal of contaminants included in protein expressed in transformant and purified protein therefrom
US6384016B1 (en) 1998-03-13 2002-05-07 Novo Nordisk A/S Stabilized aqueous peptide solutions
ATE356830T1 (en) 1996-08-30 2007-04-15 Novo Nordisk As GLP-1 DERIVATIVES
US6268343B1 (en) 1996-08-30 2001-07-31 Novo Nordisk A/S Derivatives of GLP-1 analogs
CA2277112C (en) 1997-01-07 2008-08-26 Amylin Pharmaceuticals, Inc. Use of exendins and agonists thereof for the reduction of food intake
CA2278199A1 (en) 1997-01-20 1998-07-23 Japan Energy Corporation Method for stabilizing peptides and freeze-dried medicinal compositions containing peptides obtained by using the method
WO1998043658A1 (en) 1997-03-31 1998-10-08 Eli Lilly And Company Glucagon-like peptide-1 analogs
CA2236519C (en) 1997-05-02 2011-09-13 1149336 Ontario Inc. Methods of enhancing functioning of the large intestine
ZA984697B (en) 1997-06-13 1999-12-01 Lilly Co Eli Stable insulin formulations.
CA2306024C (en) * 1997-10-01 2011-04-26 Flemington Pharmaceutical Corporation Buccal, polar and non-polar spray or capsule
DE69813599T2 (en) 1997-10-24 2004-04-08 Genentech, Inc., South San Francisco CLEANING MOLECULES
CA2312190A1 (en) 1997-12-05 1999-06-17 Eli Lilly And Company Glp-1 formulations
MY120063A (en) 1997-12-09 2005-08-30 Lilly Co Eli Stabilized teriparatide solutions
US6380357B2 (en) 1997-12-16 2002-04-30 Eli Lilly And Company Glucagon-like peptide-1 crystals
AU3247799A (en) 1998-02-27 1999-09-15 Novo Nordisk A/S Glp-1 derivatives of glp-1 and exendin with protracted profile of action
AU2610699A (en) 1998-02-27 1999-09-15 Novo Nordisk A/S Derivatives of glp-1 analogs
AU2610899A (en) 1998-02-27 1999-09-15 Novo Nordisk A/S N-terminally modified glp-1 derivatives
EP1061946B1 (en) 1998-02-27 2004-04-28 Novo Nordisk A/S Glp-1 derivatives with helix-content exceeding 25 %, forming partially structured micellar-like aggregates
WO1999043705A1 (en) 1998-02-27 1999-09-02 Novo Nordisk A/S N-terminally truncated glp-1 derivatives
CA2343268A1 (en) 1998-09-17 2000-03-23 Eli Lilly And Company Protein formulations
EP1140148B1 (en) * 1998-12-22 2005-10-26 Eli Lilly And Company Shelf-stable solution formulation of glucagon-like peptide-1
PT1140145E (en) 1999-01-14 2005-11-30 Amylin Pharmaceuticals Inc NEW FORMULATIONS OF EXENDINA AGONISTS AND METHODS FOR ITS ADMINISTRATION
US6444788B1 (en) 1999-03-15 2002-09-03 Novo Nordisk A/S Ion exchange chromatography of GLP-1, analogs and derivatives thereof
HUP0200297A3 (en) 1999-03-17 2002-09-30 Novo Nordisk As Method for acylating peptides and the glutaminic acid derivatives as acylating agents
WO2001000223A2 (en) 1999-06-25 2001-01-04 Minimed Inc. Multiple agent diabetes therapy
EP1076066A1 (en) 1999-07-12 2001-02-14 Zealand Pharmaceuticals A/S Peptides for lowering blood glucose levels
CA2383574A1 (en) 1999-09-20 2001-03-29 Eli Lilly And Company Method for reducing the risk of cancer
IL150129A0 (en) 1999-12-16 2002-12-01 Lilly Co Eli Polypeptide compositions with improved stability
US7022674B2 (en) 1999-12-16 2006-04-04 Eli Lilly And Company Polypeptide compositions with improved stability
GB9930882D0 (en) 1999-12-30 2000-02-23 Nps Allelix Corp GLP-2 formulations
JP2003519664A (en) 2000-01-11 2003-06-24 ノボ ノルディスク アクティーゼルスカブ Transepithelial delivery of GLP-1 derivatives
US20010012829A1 (en) * 2000-01-11 2001-08-09 Keith Anderson Transepithelial delivery GLP-1 derivatives
WO2001052937A1 (en) 2000-01-24 2001-07-26 Medtronic Minimed, Inc. Mixed buffer system for stabilizing polypeptide formulations
EP1396499A3 (en) 2000-01-27 2004-12-29 Eli Lilly And Company Process for solubilizing glucagon-like peptide 1 (GLP-1) compounds
PT1257577E (en) 2000-01-27 2004-08-31 Lilly Co Eli METHOD FOR SOLUBILIZING GLUCAGON TYPE 1 PEPTIDE COMPOUNDS
US6569901B2 (en) * 2000-01-28 2003-05-27 Novo Nordisk A/S Alkynyl-substituted propionic acid derivatives, their preparation and use
US6844321B2 (en) 2000-01-31 2005-01-18 Novo Nordisk A/S Crystallization of a GLP-1 analogue
AU2001248277A1 (en) 2000-04-06 2001-10-23 Novo-Nordisk A/S Shock heat treatment of polypeptides
DE60124710T2 (en) 2000-06-16 2007-09-13 Eli Lilly And Co., Indianapolis ANALOG OF GLUCAGON SIMILAR PEPTIDE-1
JP4798833B2 (en) 2000-10-24 2011-10-19 一般財団法人化学及血清療法研究所 Method for producing human serum albumin including heat treatment step
DE60139430D1 (en) 2000-12-07 2009-09-10 Lilly Co Eli GLP-1 fusion proteins
EP1390061A2 (en) 2000-12-13 2004-02-25 Eli Lilly And Company Chronic treatment regimen using glucagon-like insulinotropic peptides
US7199217B2 (en) 2000-12-13 2007-04-03 Eli Lilly And Company Amidated glucagon-like peptide-1
US20020151467A1 (en) * 2000-12-21 2002-10-17 Leung Frank K. Methods and compositions for oral insulin delivery
GB2371227A (en) * 2001-01-10 2002-07-24 Grandis Biotech Gmbh Crystallisation - resistant aqueous growth hormone formulations
ATE396202T1 (en) 2001-02-16 2008-06-15 Conjuchem Biotechnologies Inc LONG ACTING GLUCAGONE-LIKE PEPTIDE-2 FOR THE TREATMENT OF GASTROINTESTINAL DISEASES AND DISORDERS
US6573237B2 (en) 2001-03-16 2003-06-03 Eli Lilly And Company Protein formulations
US7678554B2 (en) * 2001-03-19 2010-03-16 President And Fellows Of Harvard College Nucleic acid shuffling
JP5052736B2 (en) 2001-05-30 2012-10-17 中外製薬株式会社 Protein preparation
DK1412384T3 (en) 2001-06-28 2008-04-28 Novo Nordisk As Stable formulation of modified GLP-1
US6872705B2 (en) 2001-07-13 2005-03-29 Allergan, Inc. Use of antimicrobial peptides as preservatives in ophthalmic preparations, including solutions, emulsions, and suspensions
CN1335182A (en) * 2001-08-08 2002-02-13 华中科技大学 Insulin spray for oral cavity and its prepn process
WO2003020201A2 (en) 2001-08-28 2003-03-13 Eli Lilly And Company Pre-mixes of glp-1 and basal insulin
CA2463908A1 (en) 2001-10-18 2003-04-24 Bristol-Myers Squibb Company Human glucagon-like-peptide-1 mimics and their use in the treatment of diabetes and related conditions
CN1571676A (en) 2001-10-19 2005-01-26 伊莱利利公司 Biphasic mixtures of GLP-1 and insulin
DK1344533T3 (en) 2002-03-15 2007-01-08 Natimmune As Pharmaceutical compositions comprising mannose-binding lectin
WO2003084563A1 (en) 2002-04-04 2003-10-16 Novo Nordisk A/S Glp-1 agonist and cardiovascular complications
ES2308029T3 (en) 2002-09-25 2008-12-01 Novo Nordisk A/S PURIFICATION PROCESS THAT INCLUDES A MICROFILTRATION AT HIGH TEMPERATURES.
US6969702B2 (en) 2002-11-20 2005-11-29 Neuronova Ab Compounds and methods for increasing neurogenesis
WO2004089985A1 (en) * 2003-04-11 2004-10-21 Novo Nordisk A/S Stable pharmaceutical compositions
ES2425221T3 (en) 2003-05-30 2013-10-14 Amylin Pharmaceuticals, Llc New methods and compositions for enhanced transmucosal delivery of peptides and proteins
KR101293507B1 (en) 2003-06-03 2013-08-06 노보 노르디스크 에이/에스 Stabilized pharmaceutical peptide compositions
JP4800959B2 (en) * 2003-11-13 2011-10-26 ノヴォ ノルディスク アー/エス Soluble pharmaceutical composition for parenteral administration comprising GLP-1 peptide and short-acting insulin peptide for the treatment of diabetes and bulimia
US20060287221A1 (en) 2003-11-13 2006-12-21 Novo Nordisk A/S Soluble pharmaceutical compositions for parenteral administration comprising a GLP-1 peptide and an insulin peptide of short time action for treatment of diabetes and bulimia
SI1687019T1 (en) 2003-11-20 2018-04-30 Novo Nordisk A/S Propylene glycol-containing peptide formulations which are optimal for production and for use in injection devices
US20060286129A1 (en) * 2003-12-19 2006-12-21 Emisphere Technologies, Inc. Oral GLP-1 formulations
WO2006051103A2 (en) * 2004-11-12 2006-05-18 Novo Nordisk A/S Stable formulations of peptides
GB0704846D0 (en) * 2007-03-13 2007-04-18 Futura Medical Dev Ltd Topical pharmaceutical formulation
SG192620A1 (en) * 2011-02-04 2013-09-30 Biocopea Ltd Compostions and methods for treating chronic inflammation and inflammatory diseases
CN102579350B (en) * 2012-03-02 2013-04-24 海南灵康制药有限公司 Pidotimod liposome solid preparation

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US11752198B2 (en) 2017-08-24 2023-09-12 Novo Nordisk A/S GLP-1 compositions and uses thereof
US11318191B2 (en) 2020-02-18 2022-05-03 Novo Nordisk A/S GLP-1 compositions and uses thereof

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