insulin derivatives

Novel insulin derivatives with albumin binding residues and specific linking groups address the need for less frequent insulin administration by enhancing efficacy and stability, offering improved duration of action and receptor-binding ability.

JP2023510219A5Active Publication Date: 2026-01-21GAN & LEE PHARM CO LTD
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Patent Information

Application Number
JP2022540871
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-09-29
Filing Date
2020-12-29
Publication Date
2026-01-21
Estimated Expiration
2040-12-29

AI Technical Summary

Technical Problem

Current basal insulin products require daily subcutaneous injections, and there is a need for insulin derivatives or analogs with improved efficacy, longer duration of action, less frequent administration, and better physicochemical properties than commercially available insulins like insulin degludec.

Method used

Development of novel insulin derivatives comprising a parent insulin linked with an albumin binding residue through a specific hydrophilic linking group, enhancing insulin receptor-binding ability and providing improved efficacy, potency, longer duration of action, and better stability compared to existing insulins.

Benefits of technology

The novel insulin derivatives exhibit significantly improved efficacy, potency, longer in vivo half-life, better bioavailability, and enhanced physical and chemical stability, reducing the frequency of injections.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a novel acylated insulin, its pharmaceutical formulation, pharmaceutical composition with a long-acting GLP-1 compound, and the medical use of said acylated insulin, pharmaceutical formulation, and pharmaceutical composition. The novel acylated insulin has unexpectedly significantly increased efficacy, a longer duration of action, a longer in vivo half-life, good bioavailability, and more favorable physical and chemical stability compared to insulin degludec or other insulin derivatives.
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Description

[Technical Field]

[0001] The present invention relates to the field of therapeutic peptides, and in particular to a novel insulin derivative, its pharmaceutical formulation, pharmaceutical composition thereof with a long-acting GLP-1 compound, pharmaceutical composition thereof with a fast-acting insulin, and the medical uses of the insulin derivative, pharmaceutical formulation and pharmaceutical composition. [Background technology]

[0002] Insulin is a polypeptide hormone secreted by pancreatic beta cells. It consists of two polypeptide chains, designated A and B, which are linked by two interchain disulfide bonds. In human, porcine, and bovine insulin, the A and B chains contain 21 and 30 amino acid residues, respectively. However, the amino acid residues present at different positions in the two chains vary among species. The widespread application of genetic engineering allows for the preparation of analogs of naturally occurring insulin by substitution, deletion, or addition of one or more amino acid residues.

[0003] Insulin can be used to treat diabetes and related or resulting diseases, and is necessary for maintaining normal metabolic regulation. However, natural insulins such as human insulin have a short duration of action, which requires frequent injections, causing patients a lot of discomfort due to the injections. Therefore, efforts have been made to obtain insulin derivatives or analogs that have better efficacy, longer duration of action, and require less frequent injections, so as to alleviate the inconvenience and discomfort caused by frequent insulin injections.

[0004] Patent Document 1 discloses insulin detemir, a commercially available long-acting insulin, whose molecular structure is characterized by the removal of the threonine at position 30 of the human insulin B chain and the linkage of a 14-carbon aliphatic monoacid to the lysine residue at position 29 of the B chain. Patent Document 2 discloses insulin degludec, another commercially available long-acting insulin. Insulin degludec is a novel, ultra-long-acting insulin with a longer duration of action than insulin detemir. Its molecular structure is characterized by the removal of the threonine at position 30 of the human insulin B chain and the linkage of a 16-carbon aliphatic diacid side chain to the lysine residue at position B29 via a single glutamic acid molecule. Patent Documents 3 and 4 disclose insulins elongated by PEG (PEGylation), which have a longer duration of action than conventional unmodified insulin. Patent Documents 5 and 6 disclose acylated derivatives of long-acting human insulin analogs. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] International Publication No. 1995 / 007931 [Patent Document 2] International Publication No. 2005 / 012347 [Patent Document 3] Chinese Patent No. 101573133 [Patent Document 4] International Publication No. 2009 / 010428 [Patent Document 5] International Publication No. 2013 / 086927 [Patent Document 6] International Publication No. 2018 / 024186 Summary of the Invention [Problem to be solved by the invention]

[0006] However, to date, no basal insulin product has yet been approved for marketing at a frequency lower than once-daily subcutaneous injection. Therefore, there remains a need for insulin derivatives or analogs that have better efficacy or potency, longer duration of action, less frequent administration, and better physicochemical properties than commercially available insulins (e.g., insulin degludec) or known insulin derivatives. [Means for solving the problem]

[0007] The present invention provides novel insulin derivatives (e.g., acylated insulins). Through extensive testing, the inventors have unexpectedly discovered that the novel insulin derivatives (e.g., acylated insulins) have significantly improved efficacy, potency, or potency, longer duration of action, longer in vivo half-life, better bioavailability, and better safety, as well as more favorable physical stability, chemical stability, and solubility, compared to commercially available insulin degludec (trade name "Tresiba") or several other insulin derivatives.

[0008] In one aspect, the present invention provides an insulin derivative comprising a parent insulin, an albumin binding residue and a linking group Lin, wherein the parent insulin is a naturally occurring insulin or an insulin analogue, and the albumin binding residue is linked to the parent insulin via a linking group Lin, with the proviso that: the linking group Lin is a hydrophilic linking group having at least 20, preferably at least 30, preferably at least 40, preferably at least 50, preferably at least 65, preferably 20 to 200, preferably 30 to 180, preferably 61 to 180, preferably 66 to 180, preferably 72 to 120 carbon atoms, or the linking group Lin comprises at least 11 neutral amino acid residues containing alkylene glycol, preferably the linking group Lin comprises at least 12 neutral amino acid residues containing alkylene glycol, preferably the linking group Lin comprises 12 to 20 neutral amino acid residues containing alkylene glycol, or the linking group Lin comprises an alkylene glycol having at least 20, preferably at least 30, preferably at least 42, preferably 15 to 120, preferably 30 to 100, preferably 42 to 80 carbon atoms, and The albumin binding residue comprises 20 to 40 carbon atoms, preferably the albumin binding residue comprises a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably the albumin binding residue is a fatty acid or aliphatic diacid comprising 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid comprising 20 to 24 carbon atoms), provided that in form the hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the carboxy group of the aliphatic diacid.

[0009] Through extensive experiments, the inventors have unexpectedly discovered that by combining an albumin-binding residue of a certain length with a hydrophilic linking group of a certain length in the insulin derivatives of the present invention, the insulin derivatives of the present invention have comparable or longer durations of action compared to existing insulin derivatives, as well as significantly improved efficacy beyond expectations, and that in the presence of albumin, the effect of albumin on the insulin receptor-binding ability is significantly reduced, resulting in significantly improved insulin receptor-binding ability.

[0010] In some embodiments, the parent insulin comprises at least one lysine residue and the albumin binding residue is linked to the lysine residue or the amino group of the N-terminal amino acid residue of the parent insulin via a linking group Lin.

[0011] In some embodiments, the insulin derivative further comprises one or more linking groups II, which are acidic amino acid residues and which are linked between the albumin binding residue and the linking group Lin and / or between the linking group Lin and the insulin parent, preferably between the albumin binding residue and the linking group Lin.

[0012] In another aspect of the invention, there is provided an insulin derivative which is an acylated insulin, wherein the parent insulin of the acylated insulin is a naturally occurring insulin or insulin analogue and comprises at least one lysine residue, and the acyl moiety of the acylated insulin is linked to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin, and the acyl moiety has the formula (A), i.e. III-(II) m -(I) n - (A) however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n is an integer of 11 or more, preferably an integer of 11 to 30; I is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is a fatty acid or aliphatic diacid containing 20 to 26 (preferably 20 to 24) carbon atoms, provided that, in form, a hydroxy group has already been removed from one of the carboxy groups of said aliphatic diacid; III, II and I are connected by an amide bond, and The order of appearance of II and I in formula (A) is independently interchangeable; Or, The acyl group moiety is represented by formula (A'), i.e., III-(II) m -(I') n’ - (A') however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n' is an integer; I' is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is a fatty acid or aliphatic diacid containing 20 to 26 (preferably 20 to 24) carbon atoms, provided that, in form, a hydroxy group has been removed from one of the carboxy groups of the fatty acid and the carboxy group of the aliphatic diacid; III, II and I' are connected by an amide bond, The order of appearance of II and I' in formula (A') is independently interchangeable, and (I') n’ The total number of carbon atoms is 20 to 200, preferably 30 to 180, preferably 42 to 180, preferably 61 to 180, preferably 66 to 180, preferably 72 to 120.

[0013] In another aspect of the invention, there is provided an insulin derivative which is an acylated insulin, wherein the parent insulin of the acylated insulin is a naturally occurring insulin or insulin analogue and comprises at least one lysine residue, and the acyl moiety of the acylated insulin is linked to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin, and the acyl moiety has the formula (A), i.e. III-(II) m -(I) n - (A) however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n is an integer of 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20; I is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is an aliphatic diacid containing 20 to 26 (preferably 20 to 24) carbon atoms, provided that, in form, a hydroxy group has already been removed from one of the carboxy groups of said aliphatic diacid; III, II and I are connected by an amide bond, and The order of appearance of II and I in formula (A) is independently interchangeable; Or, The acyl group moiety is represented by formula (A'), i.e., III-(II) m -(I') n’ - (A') however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n' is an integer; I' is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is an aliphatic diacid containing 20 to 26 (preferably 20 to 24) carbon atoms, provided that, in form, a hydroxy group has already been removed from one of the carboxy groups of said aliphatic diacid; III, II and I' are connected by an amide bond, The order of appearance of II and I' in formula (A') is independently interchangeable, and (I') n’ The total number of carbon atoms is 42 to 180, preferably 61 to 180, preferably 66 to 180, and preferably 72 to 120.

[0014] In some embodiments, n is 11, 12, 13, 14, 15, 16, 17, or 18, preferably n is 11, 12, 13, 14, 15, or 16, preferably n is 11, 12, 13, 14, or 15; and / or m is an integer from 1 to 6, preferably m is 1, 2, 3 or 4, preferably m is 1 or 2, preferably m is 1, and / or III is an aliphatic diacid containing 20 to 26 (preferably 20 to 23) carbon atoms, preferably III is an aliphatic diacid containing 20, 21 or 22 carbon atoms, provided that in form, a hydroxy group has already been removed from one of the carboxy groups of said aliphatic diacid; and / or The insulin parent contains one lysine residue.

[0015] In some embodiments, I is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-CH2-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)3-O-CH2-CO-, or -HN-(CH2)4-O-(CH2)4-O-CH2-CO-, preferably, I is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, or, I’ is -HN-(CH2-CH2-O) 20 -CH2-CO-, -HN-(CH2-CH2-O) 22 -CH2-CO-, -HN-(CH2-CH2-O) 24 -CH2-CO-, -HN-(CH2-CH2-CH2-O) 15 -CH2-CO-, and / or II is an amino acid residue selected from γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp or α-D-Asp, preferably II is selected from γGlu or βAsp, and / or III is HOOC-(CH2) 18 -CO-, HOOC-(CH2) 19 -CO-, HOOC-(CH2) 20 -CO-, HOOC-(CH2) 21 -CO-, HOOC-(CH2) 22 -CO- or HOOC-(CH2) 24 -CO-, and preferably III is HOOC-(CH) 18 -CO-, HOOC-(CH2) 19 -CO-, HOOC-(CH2) 20 -CO-, HOOC-(CH2) 21 -CO- or HOOC-(CH2) 22 -CO-, and preferably III is HOOC-(CH) 18 -CO-, HOOC-(CH2) 20 -CO- or HOOC-(CH2) 22 -CO-.

[0016] In some embodiments, formula (A) is linked via the C-terminus of I to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin, or formula (A') is linked via the C-terminus of I' to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin. In some embodiments, the acyl moiety is linked to the epsilon amino group of a lysine residue of the insulin parent. In some embodiments, the parent insulin lysine residue is located at position B29.

[0017] In some embodiments, the insulin parent is selected from the group consisting of desB30 human insulin (SEQ ID NO: 1 and SEQ ID NO: 2, representing the A and B chains, respectively), A14E, B16H, B25H, desB30 human insulin (SEQ ID NO: 3 and SEQ ID NO: 4, representing the A and B chains, respectively), A14E, B16E, B25H, desB30 human insulin (SEQ ID NO: 5 and SEQ ID NO: 6, representing the A and B chains, respectively), human insulin (SEQ ID NO: 7 and SEQ ID NO: 8, representing the A and B chains, respectively), A21G human insulin (SEQ ID NO: 9 and SEQ ID NO: 10, representing the A and B chains, respectively), A21G, desB30 human insulin (SEQ ID NO: 11 and SEQ ID NO: 12, representing the A and B chains, respectively), or B28D human insulin (SEQ ID NO: 13 and SEQ ID NO: 14, representing the A and B chains, respectively), preferably the insulin parent is desB30 human insulin, A14E, B16H, B25H, desB30 human insulin, or A14E, B16E, B25H, desB30 human insulin.

[0018] In some embodiments, the acylated insulin is B29K(N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand HeydesB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand HeydesB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosanoid Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-heteroglycoside) Ne Ikosanji Hey desB30 human insulin, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, B29K (N(ε)-trichosan Hey desB30 human insulin, B29K (N(ε)-trichosan Hey desB30 human insulin, B29K (N(ε)-trichosan Hey desB30 human insulin, B29K (N(ε)-trichosan Hey desB30 human insulin, B29K (N(ε)-tetracosand) Hey desB30 human insulin, B29K (N(ε)-tetracosand) HeydesB30 human insulin, B29K (N(ε)-tetracosand) Hey desB30 human insulin, B29K (N(ε)-tetracosand) Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, or B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid), Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid), Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid HeyHuman insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid), desB30, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid), Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoid Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin Phosphorus, A14E, B16H, B25H, B29K(N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Heyhuman insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid), desB30, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid), Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-trichosan Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-trichosan), Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-trichosan Hey Human insulin, A14E, B16H, B25H, B29K (N(ε)-trichosan), Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-tetracosane Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-tetracosane Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-tetracosane Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-tetracosane Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, or A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid), desB30, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid), HeyHuman insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid), desB30, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid), Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey Ru- αGlu-αGlu-11xOEG), desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand HeydesB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-docosandine), desB30, A14E, B16E, B25H, B29K (N(ε)-docosandine), Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin (A14E, B16E, B25H, B29K (N(ε)-docosandine) Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-trichosan Hey Human insulin, A14E, B16E, B25H, B29K (N(ε)-trichosan), Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-trichosan Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-trichosan Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-tetracosane Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-tetracosane Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-tetracosane Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-tetracosane Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey The insulin is selected from the group consisting of insulins such as desB30 human insulin, insulin-γGlu-24xOEG, and desB30 human insulin.

[0019] In some embodiments, the acylated insulin is B29K(N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand HeydesB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand HeydesB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand HeydesB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey The insulin is selected from the group consisting of insulins such as desB30 human insulin, insulin-γGlu-24xOEG, and desB30 human insulin.

[0020] In some embodiments, the acylated insulin is B29K(N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand HeydesB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, 14E, B16E, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16E, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, or A14E, B16E, B25H, B29K (N(ε)-docosand Hey The insulin is selected from insulins such as desB30 human insulin, desB30 human insulin, and desB30 human insulin.

[0021] In another aspect of the invention, there is provided an insulin derivative which is an acylated insulin, wherein the parent insulin of said acylated insulin is A14E, B16H, B25H, desB30 human insulin or A14E, B16E, B25H, desB30 human insulin, and the acyl moiety of said acylated insulin is linked to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin, said acyl moiety having formula (D), i.e. W1-(W2) m2 -(W3) n2 - indicated by (D), however, m2 is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n2 is 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20; W3 is a neutral amino acid residue containing alkylene glycol, W2 is an acidic amino acid residue, W1 is an aliphatic diacid containing 20 to 24 carbon atoms, provided that, in form, a hydroxy group has been removed from one of the carboxy groups of the aliphatic diacid; W1, W2 and W3 are connected by an amide bond, and The order of appearance of W2 and W3 in formula (D) is independently interchangeable; Or, The acyl group moiety is represented by formula (D'), i.e., W1-(W2) m2 -(W3') n2’ - (D') however, m2 is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n2' is an integer; W3' is a neutral amino acid residue containing alkylene glycol; W2 is an acidic amino acid residue, W1 is an aliphatic diacid containing 20 to 24 carbon atoms, provided that, in form, a hydroxy group has been removed from one of the carboxy groups of the aliphatic diacid; W1, W2 and W3 are connected together by an amide bond, The order of appearance of W2 and W3 in formula (D) is independently interchangeable, and (W3') n2’ The total number of carbon atoms is 30 to 180, 42 to 180, preferably 61 to 180, preferably 66 to 180, and preferably 72 to 120.

[0022] In some embodiments, n2 is 11, 12, 13, 14, 15, 16, 17, 18, or 19, preferably n2 is 11, 12, 13, 14, 15, 16, 17, or 18, preferably n2 is 11, 12, 13, 14, 15, or 16, preferably n2 is 11, 12, 13, 14, or 15; and / or m2 is an integer from 1 to 6, preferably m2 is 1, 2, 3 or 4, preferably m2 is 1 or 2, preferably m2 is 1, and / or W1 is an aliphatic diacid containing 20 to 23 carbon atoms, preferably W1 is an aliphatic diacid containing 20, 21, or 22 carbon atoms, provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the aliphatic diacid.

[0023] In some embodiments, W3 is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-CH2-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)3-O-CH2-CO-, or -HN-(CH2)4-O-(CH2)4-O-CH2-CO-, preferably, W3 is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, or, W3’ is --HN-(CH2-CH2-O) 20 -CH2-CO-, -HN-(CH2-CH2-O) 22 -CH2-CO-, -HN-(CH2-CH2-O) 24 -CH2-CO-, -HN-(CH2-CH2-CH2-O) 15 -CH2-CO-, and / or W2 is an amino acid residue selected from γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp or α-D-Asp, preferably W2 is selected from γGlu or βAsp, and / or W1 is HOOC-(CH2) 18 -CO-, HOOC-(CH2) 19 -CO-, HOOC-(CH2) 20 -CO-, HOOC-(CH2) 21 -CO- or HOOC-(CH2) 22 -CO-, and preferably W1 is HOOC-(CH2) 18 -CO-, HOOC-(CH2) 20 -CO- or HOOC-(CH2) 22 -CO-.

[0024] In some embodiments, formula (D) is linked via the C-terminus of W3 to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin, or formula (D') is linked via the C-terminus of W3' to the amino group of a lysine residue or the N-terminal amino acid residue of the parent insulin. In some embodiments, the acyl moiety is linked to the epsilon amino group of a lysine residue of the insulin parent.

[0025] In some embodiments, the insulin derivative is A14E, B16H, B25H, B29K (N(ε)-eicosandwich). Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-heteroglycoprotein), Ne Ikosanji HeydesB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-trichosan Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-tetracosane Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey The insulin is selected from insulins such as desB30 human insulin, desB30 human insulin, and desB30 human insulin.

[0026] In another aspect of the present invention, there is provided a pharmaceutical composition comprising an insulin derivative of the present invention as described above, and one or more pharmaceutically acceptable excipients.

[0027] In some embodiments, the pharmaceutical composition comprises at least 1.5 moles of zinc ions / 6 moles of insulin derivative, preferably at least 2.2 moles of zinc ions / 6 moles of insulin derivative, preferably at least 3.5 moles of zinc ions / 6 moles of insulin derivative, preferably at least 4.5 moles of zinc ions / 6 moles of insulin derivative, preferably 2.2-12 moles of zinc ions / 6 moles of insulin derivative, more preferably 4.5-10 moles of zinc ions / 6 moles of insulin derivative, more preferably 4.5-8 moles of zinc ions / 6 moles of insulin derivative, more preferably 4.5-7.5 moles of zinc ions / 6 moles of insulin derivative, more preferably 4.5-7.0 moles of zinc ions / 6 moles of insulin derivative, more preferably 4.5-6.5 moles of zinc ions / 6 moles of insulin derivative; and / or In some embodiments, the pH of the drug composition is 6.5 to 8.5, preferably 6.8 to 8.2, preferably 7.0 to 8.2, preferably 7.2 to 7.6, and more preferably 7.4 or 7.6.

[0028] In some embodiments, the drug composition further comprises glycerin, phenol, m-cresol, NaCl, and / or NaHPO, preferably, the drug composition further comprises glycerin, phenol, and NaCl, preferably, the drug composition further comprises glycerin, phenol, m-cresol, and NaCl, preferably, the drug composition further comprises glycerin, phenol, NaCl, and NaHPO, more preferably, the drug composition further comprises glycerin, phenol, m-cresol, NaCl, and NaHPO. In some embodiments, the glycerin content is no more than about 2.5% (wt / wt), preferably no more than about 2% (wt / wt), preferably about 0.3% to about 2% (wt / wt), preferably about 0.5% to about 1.8% (wt / wt), preferably about 0.7% to about 1.8% (wt / wt), more preferably about 1% to about 1.8% (wt / wt), and / or the phenol content is about 16 to 80 mM, preferably about 25 to 75 mM, preferably about 30 to 70 mM, preferably about 45 to 70 mM, preferably about 45 to 65 mM, and preferably about 45 mM, about 46 mM, about 47 mM, about 48 mM, about 49 mM, 50 mM, about 51 mM, about 52 mM, about 53 mM, about 54 mM, about 55 mM, about 56 mM, about 57 mM, about 58 mM, about 59 mM, about 60 mM, about 61 mM, about 62 mM, about 63 mM, about 64 mM, or about 65 mM; and / or the content of m-cresol is about 0 to 35 mM, preferably about 0 to 19 mM, preferably about 0 to 15 mM, and preferably about 0 mM, about 1 mM, about 2 mM, about 3 mM, about 4 mM, about 5 mM, about 6 mM, about 7 mM, about 8 mM, about 9 mM, about 10 mM, about 11 mM, about 12 mM, about 13 mM, about 14 mM, or about 15 mM; and / or The NaCl content is about 0 to 150 mM, preferably about 5 to 120 mM, preferably about 10 to 120 mM, preferably about 10 to 100 mM, more preferably about 10 to 75 mM, more preferably about 10 to 50 mM, more preferably about 10 to 30 mM, and / or the NaHPO content is about 0 to 75 mM, preferably about 5 to 60 mM, preferably less than about 50 mM, more preferably less than about 25 mM, more preferably less than about 15 mM, and / or The content of the acylated insulin is greater than about 0.3 mM, preferably greater than about 0.6 mM, preferably about 0.3 to 12 mM, preferably about 0.6 to 9.0 mM, preferably about 0.6 to 8.4 mM, preferably about 0.6 to 7.2 mM, preferably about 0.6 to 6.0 mM, preferably about 0.6 to 4.2 mM, preferably about 0.6 to 3.6 mM, preferably about 0.6 to 3.0 mM, preferably about 0.6 to 2.4 mM, preferably about 0.6 to 2.1 mM, preferably about 0.6 to 1.2 mM. In some embodiments, the insulin derivative is B29K(N(ε)-eicosandwich). Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid HeydesB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, and preferably the acylated insulin is A14E, B16H, B25H, B29K (N(ε)-eicosanediol). Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey le-γGlu-12xOEG), desB30 human insulin.

[0029] In another aspect of the present invention, there is provided a pharmaceutical composition comprising about 0.6 to 4.2 mM of the insulin derivative of the present invention, about 1% to about 1.8% (w / w) glycerin, about 45 to 65 mM phenol, about 4.5 to 6.5 moles of zinc ions per 6 moles of insulin derivative, about 10 to 120 mM sodium chloride, and about 0 to 15 mM m-cresol, and having a pH value of about 7.0 to 8.2, preferably wherein the insulin derivative is B29K(N(ε)-eicosand). Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey le-γGlu-12xOEG), desB30 human insulin.

[0030] In another aspect of the present invention, there is provided a pharmaceutical composition comprising about 0.6 mM or 1.2 mM of the insulin derivative of the present invention, 1.7% (w / w) glycerin, about 45 mM phenol, about 10 mM m-cresol, about 6.5 moles of zinc ions / 6 moles of insulin derivative, and about 20 mM sodium chloride, and having a pH value of about 7.0 to 8.0, and preferably the insulin derivative is selected from the group consisting of A14E, B16H, B25H, B29K (N(ε)-eicosand). HeydesB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey le-γGlu-12xOEG), desB30 human insulin.

[0031] In another aspect of the present invention, there is provided a pharmaceutical composition comprising about 0.6 mM to 4.2 mM of the insulin derivative of the present invention, about 1% to about 2% (preferably about 1.5% to 1.7%) (weight / weight) of glycerin, about 15 mM to 60 mM (preferably about 30 mM to 60 mM, more preferably about 45 mM to 60 mM) of phenol, about 0 to 25 mM (preferably about 0 to 10 mM) of m-cresol, about 1.5 to 7.0 (preferably about 2.2 to 4.5) moles of zinc ion / 6 moles of insulin derivative, and about 10 to 120 mM (preferably about 20 to 50 mM) of sodium chloride, and having a pH value of about 7.0 to 8.0, wherein preferably the insulin derivative is B29K(N(ε)-eicosand). Hey desB30 human insulin, B29K (N(ε)-eicosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, B29K (N(ε)-docosand Hey desB30 human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-docosand Hey human insulin, A14E, B16H, B25H, B29K (N(ε)-eicosanoic acid HeydesB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey le-γGlu-12xOEG), desB30 human insulin.

[0032] In another aspect of the present invention, there is provided a pharmaceutical composition comprising about 1.2 mM to 1.5 mM of the insulin of the present invention, about 1.5% to 1.7% (weight / weight) of glycerin, about 45 mM to 60 mM of phenol, about 0 to 10 mM of m-cresol, about 2.2 to 2.5 moles of zinc ions / 6 moles of insulin derivative, and about 20 mM of sodium chloride, and having a pH value of about 7.0 to 8.0, preferably wherein the insulin derivative is selected from the group consisting of A14E, B16H, B25H, B29K (N(ε)-eicosand). Hey desB30 human insulin, or A14E, B16H, B25H, B29K (N(ε)-docosand Hey le-γGlu-12xOEG), desB30 human insulin.

[0033] In some embodiments, the pharmaceutical composition further comprises an insulinotropic GLP-1 compound, and preferably, the pharmaceutical composition further comprises an N-ε 26 -(17-carboxyheptadecanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -(17-carboxyheptadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(17-carboxyheptadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Aib8, Arg34]GLP-1-(7-37) peptide, N-ε 26The invention further includes an insulinotropic GLP-1 compound selected from -[2-(2-[2-(2-[2-(2-[4-(17-carboxyheptadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide.

[0034] In some embodiments, the drug composition has formula (B), i.e., [Acy-(L1) r -(L2) q ]-G1 (B) or a pharmaceutically acceptable salt, amide or ester thereof, where G1 is a GLP-1 analog with Arg at position 34 and Ala or Gly at position 8, corresponding to GLP-1(7-37) (SEQ ID NO: 15), and [Acy-(L1) r -(L2) q is a substituent linked to the epsilon amino group of the Lys residue at position 26 of the GLP-1 analog, with the proviso that r is an integer of 1 to 10, q is 0 or an integer of 1 to 10, Acy is an aliphatic diacid containing 20 to 24 carbon atoms, provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the aliphatic diacid; L1 is an amino acid residue selected from γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp, or α-D-Asp; L2 is a neutral alkylene glycol-containing amino acid residue, Acy, L1 and L2 are connected by an amide bond, and The order of appearance of L1 and L2 in formula (B) is independently interchangeable. In some embodiments, G1 is a [Gly8, Arg34]GLP-1-(7-37) peptide (SEQ ID NO: 16) or a [Arg34]GLP-1-(7-37) peptide (SEQ ID NO: 17), preferably a [Gly8, Arg34]GLP-1-(7-37) peptide; and / or r is 1, 2, 3, 4, 5 or 6, preferably r is 1, 2, 3 or 4, preferably r is 1 or 2, preferably r is 1, and / or q is 0, 1, 2, 3, 4, 5, 6, 7 or 8, preferably q is 0, 1, 2, 3 or 4, more preferably q is 0, 1 or 2, and / or Acy is an aliphatic diacid containing 20 to 23 carbon atoms, preferably Acy is an aliphatic diacid containing 20, 21 or 22 carbon atoms, provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the aliphatic diacid.

[0035] In some embodiments, L2 is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2- O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-C O-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH 2)2-O-(CH2)2-O-CH2-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(C H2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2 -O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)3-O-CH2-CO- or -HN-(CH2)4-O-(CH2)4-O-CH2-CO-, preferably L2 is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, and / or L1 is selected from γGlu or βAsp, preferably L1 is γGlu, and / or Acy is HOOC-(CH2) 18 -CO-, HOOC-(CH2) 19 -CO-, HOOC-(CH2) 20 -CO-, HOOC-(CH2) 21 -CO- or HOOC-(CH2) 22 -CO-, and preferably Acy is HOOC-(CH2) 18 -CO-, HOOC-(CH2) 20 -CO- or HOOC-(CH2) 22 -CO-.

[0036] In some embodiments, in formula (B), Acy, L1 and L2 are sequentially linked by an amide bond, and the C-terminus of L2 is linked to the ε-amino group of the Lys residue at position 26 of the GLP-1 analog.

[0037] In some embodiments, the insulinotropic GLP-1 compound is N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[21-carboxyheneicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(23-carboxytricosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[23-carboxytricosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(23-carboxytricosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(21-carboxyheneicosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[21-carboxyheneicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(23-carboxytricosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[23-carboxytricosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -(23-carboxytricosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -(21-carboxyheneicosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(20-carboxyeicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[20-carboxyeicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(22-carboxydocosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[22-carboxydocosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(20-carboxyeicosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26-(22-carboxydocosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(20-carboxyeicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[20-carboxyeicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(22-carboxydocosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[22-carboxydocosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -(20-carboxyeicosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, or N-ε 26 -(22-carboxydocosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide. In some embodiments, the insulinotropic GLP-1 compound is N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, or N-ε 26 -[2-(2-[2-(4-[21-carboxyheneicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, Preferably, the insulinotropic GLP-1 compound is N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8, Arg34]GLP-1-(7-37) peptide, or N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide.

[0038] In some embodiments, the drug composition further comprises a fast-acting insulin. In some embodiments, the fast-acting insulin is Asp B28 Human insulin, Lys B28 Pro B29 Human insulin, Lys B3 Glu B29 Preferably, the fast-acting insulin is selected from one or more of human insulin, human insulin and desB30 human insulin, and the fast-acting insulin is selected from one or more of Asp B28 Human insulin, Lys B28 Pro B29 Human insulin, Lys B3 Glu B29 Human insulin, human insulin or desB30 human insulin.

[0039] The inventors have unexpectedly discovered that a pharmaceutical composition or combined preparation of an insulin derivative (e.g., an acylated insulin) and an insulin secretion-enhancing GLP-1 compound according to the first aspect of the present invention not only does not reduce the physical stability of the acylated insulin, but also that the combined preparation has superior physical stability to single-drug preparations. Compared with combined preparations of other long-acting insulin derivatives (e.g., insulin degludec and liraglutide), the physical stability of the combined preparation of the present invention is greater than expected. Furthermore, the combined preparation further improves the chemical stability of the acylated insulin compared to single-drug preparations.

[0040] In another embodiment, the above insulin derivative or pharmaceutical composition of the present invention is used as a medicament. In another embodiment, the above insulin derivative or the above pharmaceutical composition of the present invention is used as a drug for treating or preventing diabetes, hyperglycemia, and / or impaired glucose tolerance. In another embodiment, the above insulin derivative or the above pharmaceutical composition of the present invention is used for the treatment or prevention of diabetes, hyperglycemia, and / or impaired glucose tolerance.

[0041] In another aspect, there is provided a use of the insulin derivative of the present invention or the pharmaceutical composition as described above in the preparation of a drug, preferably the drug being used for the treatment or prevention of diabetes, hyperglycemia, and / or impaired glucose tolerance. In some embodiments, the drug is used to treat diabetes, and the insulin derivative is administered to the same patient every other day or less frequently, and no more frequently than that for an average period of at least one month, six months, or one year.

[0042] In some embodiments, the drug is used to treat diabetes, and the insulin derivative is administered twice a week or less frequently, and the insulin derivative is not administered more frequently to the same patient for an average period of at least one month, six months, or one year.

[0043] In some embodiments, the drug is used to treat diabetes, and the insulin derivative is administered once a week or less frequently, and the insulin derivative is not administered more frequently to the same patient for an average period of at least one month, six months, or one year.

[0044] In another aspect, the present invention provides a method for treating or preventing diabetes, hyperglycemia, and / or impaired glucose tolerance, comprising administering a therapeutically effective amount of the above-mentioned insulin derivative of the present invention or the above-mentioned pharmaceutical composition.

[0045] The inventors have unexpectedly discovered that the insulin derivatives of the present invention (e.g., acylated insulins) have long pharmacokinetic (hereinafter also referred to as PK) profiles that allow for twice-weekly, once-weekly or even less frequent subcutaneous treatment in diabetic patients.

[0046] In another aspect, the present invention provides a method for improving the binding ability of an insulin derivative to an insulin receptor in the presence of albumin, said method comprising linking albumin binding residues to naturally occurring insulin or an insulin analogue via linking groups Lin to obtain said insulin derivative, wherein said linking groups Lin are at least 20, preferably at least 30, preferably at least 40, preferably at least 50, preferably at least 65, preferably between 20 and 200, preferably between 30 and 180, preferably between 61 and 180, preferably between 15 and 200, is a hydrophilic linking group having 66 to 180, preferably 72 to 120, carbon atoms, and the albumin binding residue comprises 20 to 40 carbon atoms, preferably the albumin binding residue comprises a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably the albumin binding residue is a fatty acid or aliphatic diacid containing 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid containing 20 to 24 carbon atoms), provided that in form a hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the carboxy group of the aliphatic diacid; or modifying a naturally occurring insulin or insulin analogue according to formula (A) or formula (A') to obtain said insulin derivative, Formula (A) is III-(II) m -(I) n - (A) wherein m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n is 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20; I is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is an albumin-binding residue comprising a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably III is a fatty acid or aliphatic diacid comprising 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid comprising 20 to 24 carbon atoms), provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the aliphatic diacid; III, II and I are connected by an amide bond, and The order of appearance of II and I in formula (A) is independently interchangeable; (A') is III-(II) m -(I') n’ - (A'), however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n' is an integer; I' is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is an albumin-binding residue comprising a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably III is a fatty acid or aliphatic diacid comprising 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid comprising 20 to 24 carbon atoms), provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the aliphatic diacid; III, II and I' are connected by an amide bond, The order of appearance of II and I' in formula (A') is independently interchangeable, and (I') n’ The total number of carbon atoms is 20 to 200, preferably 30 to 180, preferably 42 to 180, preferably 61 to 180, preferably 66 to 180, preferably 72 to 120.

[0047] In another aspect, the present invention provides a method for improving the potency of an insulin derivative, said method comprising linking albumin binding residues to naturally occurring insulin or an insulin analogue via linking groups Lin to obtain said insulin derivative, wherein said linking groups Lin are at least 20, preferably at least 30, preferably at least 40, preferably at least 50, preferably at least 65, preferably 20-200, preferably 30-180, preferably 61-180, preferably 66-180, or a hydrophilic linking group having 72 to 120 carbon atoms, the albumin binding residue comprising 20 to 40 carbon atoms, preferably the albumin binding residue comprising a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably the albumin binding residue being a fatty acid or aliphatic diacid comprising 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid comprising 20 to 24 carbon atoms), provided that in form a hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the carboxy group of the aliphatic diacid; modifying a naturally occurring insulin or insulin analogue according to formula (A) or formula (A') to obtain said insulin derivative, Formula (A) is III-(II) m -(I) n - (A) wherein m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n is an integer from 11 to 30, preferably 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20; I is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is an albumin-binding residue comprising a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably III is a fatty acid or aliphatic diacid comprising 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid comprising 20 to 24 carbon atoms), provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the aliphatic diacid; III, II and I are connected by an amide bond, and The order of appearance of II and I in formula (A) is independently interchangeable; (A') is III-(II) m -(I') n’ - (A'), however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n' is an integer; I' is a neutral alkylene glycol-containing amino acid residue, II is an acidic amino acid residue, III is an albumin-binding residue comprising a linear or branched lipophilic group having 20 to 40 carbon atoms, preferably III is a fatty acid or aliphatic diacid comprising 20 to 26 carbon atoms (more preferably a fatty acid or aliphatic diacid comprising 20 to 24 carbon atoms), provided that in form, a hydroxy group has already been removed from one of the carboxy groups of the fatty acid and the aliphatic diacid; III, II and I' are connected by an amide bond, The order of appearance of II and I' in formula (A') is independently interchangeable, and (I') n’ The total number of carbon atoms is 20 to 200, preferably 30 to 180, preferably 42 to 180, preferably 61 to 180, preferably 66 to 180, preferably 72 to 120.

[0048] In some embodiments, the naturally occurring insulin or insulin analog contains at least one lysine residue, and a linking group Lin, Formula (A) or Formula (A') is linked to the amino group of the lysine residue or the N-terminal amino acid residue of the parent insulin.

[0049] In some embodiments, n is 11, 12, 13, 14, 15, 16, 17, or 18, preferably n is 11, 12, 13, 14, 15, or 16, preferably n is 11, 12, 13, 14, or 15; and / or m is an integer from 1 to 6, preferably m is 1, 2, 3 or 4, preferably m is 1 or 2, preferably m is 1, and / or III is an aliphatic diacid containing 20 to 26 (preferably 20 to 23) carbon atoms, preferably III is an aliphatic diacid containing 20, 21 or 22 carbon atoms, provided that in form, a hydroxy group has already been removed from one of the carboxy groups of said aliphatic diacid; and / or The insulin parent contains one lysine residue.

[0050] In some embodiments, I is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-O-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)4-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-CH2-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-(CH2)2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-(CH2)2-CO-, -HN-(CH2)2-O-(CH2)2-O-(CH2)2-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)2-O-(CH2)2-O-(CH2)3-NH-CO-CH2-O-CH2-CO-, -HN-(CH2)3-O-(CH2)3-O-CH2-CO-, or -HN-(CH2)4-O-(CH2)4-O-CH2-CO-, preferably, I is -HN-(CH2)2-O-(CH2)2-O-CH2-CO-, or, I’ is -HN-(CH2-CH2-O) 20 -CH2-CO-, -HN-(CH2-CH2-O) 22 -CH2-CO-, -HN-(CH2-CH2-O) 24 -CH2-CO-, -HN-(CH2-CH2-CH2-O) 15 -CH2-CO-, and / or II is an amino acid residue selected from γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp or α-D-Asp, preferably II is selected from γGlu or βAsp, and / or III is HOOC-(CH2) 18 -CO-, HOOC-(CH2) 19 -CO-, HOOC-(CH2) 20 -CO-, HOOC-(CH2) 21 -CO-, HOOC-(CH2) 22 -CO- or HOOC-(CH2) 24 -CO-, and preferably III is HOOC-(CH) 18 -CO-, HOOC-(CH2) 20 -CO- or HOOC-(CH2) 22 -CO-. In some embodiments, Formula (A) or Formula (A') is linked via the C-terminus of I to the amino group of a lysine residue or the N-terminal amino acid residue of said native insulin or insulin analog.

[0051] In some embodiments, Formula (A) or Formula (A') is linked to the epsilon amino group of a lysine residue in the parent insulin. In some embodiments, the lysine residue of the native insulin or insulin analog is located at position B29. In some embodiments, the naturally occurring insulin or insulin analog is selected from the group consisting of desB30 human insulin, A14E, B16H, B25H, desB30 human insulin, A14E, B16E, B25H, desB30 human insulin, human insulin, A21G human insulin, A21G, desB30 human insulin, and B28D human insulin, and preferably the parent insulin is desB30 human insulin or A14E, B16H, B25H, desB30 human insulin. [Brief explanation of the drawings]

[0052] [Figure 1a]1 shows the hypoglycemic effect of the compounds of Examples 1 and 2 of the present invention, insulin degludec, and the vehicle on db / db mice. [Figure 1b] 1a, the AUC of the hypoglycemic effect of the compounds of Examples 1 and 2 of the present invention, insulin degludec, and the vehicle on db / db mice is shown. [Figure 2a] 1 shows the hypoglycemic effect of the compounds of Examples 1 and 2 of the present invention, the compound of Control Example 2, and the solvent on db / db mice. [Figure 2b] Corresponding to FIG. 2a, the AUC of the hypoglycemic effect of the compounds of Examples 1 and 2 of the present invention, the compound of Control Example 2, and the solvent on db / db mice is shown. [Figure 3a] 1 shows the hypoglycemic effect and duration of action of the compounds of Examples 1 to 3 of the present invention and the solvent in db / db mice. [Figure 3b] FIG. 3 corresponds to FIG. 3a and shows the AUC of the hypoglycemic effect of the compounds of Examples 1 to 3 of the present invention and the solvent on db / db mice. [Figure 4a] 1 shows the hypoglycemic effect and duration of action of the compound of Example 2 of the present invention, the compound of Control Example 3, and the solvent in db / db mice. [Figure 4b] FIG. 4A corresponds to FIG. 4A and shows the AUC of the hypoglycemic effect of the compound of Example 2 of the present invention, the compound of Control Example 3, and the solvent on db / db mice. [Figure 5a] 1 shows the hypoglycemic effect and duration of action of the compounds of Control Examples 3 and 4 of the present invention and the solvent in db / db mice. [Figure 5b] FIG. 5A corresponds to FIG. 5A and shows the AUC of the hypoglycemic effect of the compounds of Control Examples 3 and 4 of the present invention and the solvent on db / db mice. [Figure 6a] 1 shows the hypoglycemic effect of the title compounds of Control Example 5, Examples 13 and 14 of the present invention, and the solvent on STZ-induced type 1 diabetes mellitus (T1DM) rats. [Figure 6b] FIG. 6A corresponds to FIG. 6A and shows the AUC of the hypoglycemic effect of the title compounds of Control Example 5, Examples 13 and 14 of the present invention, and the solvent on STZ-induced type 1 diabetes mellitus (T1DM) rats. [Figure 7a] 1 shows the hypoglycemic effect of the compound of Example 2 of the present invention, control compound 5, and the solvent on streptozotocin (STZ)-induced type 1 diabetes mellitus (T1DM) female rats. [Figure 7b] FIG. 7a corresponds to FIG. 7a and shows the AUC of the hypoglycemic effect of the compound of Example 2 of the present invention, the control compound 5, and the solvent on streptozotocin (STZ)-induced type 1 diabetes mellitus (T1DM) female rats. [Figure 8a] 1 shows the status of the binding ability of compound 15 of the present invention and control compound 5 to the insulin receptor in the presence of 2% HSA and 0% HSA. [Figure 8b] 1 shows the status of the binding ability of compound 15 of the present invention and control compound 5 to the insulin receptor in the presence of 2% HSA and 0% HSA. [Figure 9] 1 shows the status of the binding ability of compound 17 of the present invention and control compound 2 to the insulin receptor in the presence of 2% HSA and 0% HSA. [Figure 10a] 1 shows the status of the binding ability of Compound 16 of the present invention, Compound 18 and Control Compound 5 to the insulin receptor in the presence of 2% HSA and 0% HSA. [Figure 10b] 1 shows the status of the binding ability of Compound 16 of the present invention, Compound 18 and Control Compound 5 to the insulin receptor in the presence of 2% HSA and 0% HSA. DETAILED DESCRIPTION OF THE INVENTION

[0053] definition Here, the term insulin includes naturally occurring insulin, such as human insulin, as well as insulin analogues and insulin derivatives thereof. The term insulin analogue formally includes polypeptides having a molecular structure derivable from that of naturally occurring insulin (e.g., human insulin) by deficiency and / or substitution (replacement) of one or more amino acid residues present in natural insulin and / or by addition of one or more amino acid residues. The added and / or substituted amino acid residues may be codable amino acid residues, or other naturally occurring amino acid residues, or purely synthetic amino acid residues. Preferably, the added and / or substituted amino acid residues are codable amino acid residues.

[0054] Here, the term "insulin derivative" refers to a naturally occurring insulin or insulin analogue that has been chemically modified, which modification may be, for example, the introduction of a side chain at one or more positions of the insulin skeleton, or the oxidation or reduction of a group of an amino acid residue on the insulin, or the conversion of a free carboxy group to an ester group, or the acylation of a free amino or hydroxy group. The acylated insulin of the present invention belongs to the insulin derivatives.

[0055] The term "parent insulin" refers to the insulin portion of an insulin derivative or acylated insulin (also referred to herein as parent insulin), e.g., in the present invention, the portion of an insulin derivative or acylated insulin that is not linked to a side chain or has no additional acyl group. The parent insulin may be a naturally occurring insulin, such as human insulin or porcine insulin. Alternatively, the parent insulin may be an insulin analog.

[0056] Here, the term "amino acid residue" includes amino acids in which a hydrogen atom has been removed from an amino group, and / or a hydroxy group has been removed from a carboxy group, and / or a hydrogen atom has been removed from a sulfhydryl group. Amino acid residues may be referred to imprecisely as amino acids.

[0057] Unless otherwise specified, all amino acids referred to herein are L-amino acids.

[0058] The term "albumin-binding residue" refers to a residue capable of non-covalently binding to human serum albumin. Albumin-binding residues linked to insulin typically have a binding affinity for human serum albumin of, for example, less than about 10 μM, or even less than about 1 μM. Albumin binding can be measured by surface plasmon resonance as described in J. Biol. Chem. 277(38), 35035-35042, (2002).

[0059] As used herein, a "hydrophilic linking group" is a linking group that separates the parent insulin from the albumin binding residue by a chemical moiety that contains at least six non-hydrogen atoms, 30-50% of which are N or O.

[0060] "Lipophilic" refers to the group's ability to dissolve in fats, oils, lipids, and lipophilic non-polar solvents (e.g., hexane or toluene). Lipophilic groups include, but are not limited to, fats, fatty acids, aliphatic diacids, and the like, and generally have a "lipid tail." The lipid tail present in these lipophilic groups may be saturated or unsaturated, depending on whether the lipid tail contains a double bond. Lipid tails may include a variety of lengths, such as tails having 7 to 12 carbons (e.g., C 7-12 Alkyl group or C 7-12 alkenyl groups), tails with 13 to 22 carbons (e.g., C 13-22 Alkyl group or C 13-22 alkenyl groups), or tails with 23 to 30 carbons (e.g., C 23-30 Alkyl group or C 23-30 alkenyl group).

[0061] Here, the term alkylene glycol includes oligo / polyalkylene glycol moieties and monoalkylene glycol moieties. Monoalkylene glycols and polyalkylene glycols include, for example, chains based on monoethylene glycol and polyethylene glycol, chains based on monopropylene glycol and polypropylene glycol, and chains based on monobutylene glycol and polybutylene glycol, i.e., chains based on the repeating units -CH2CHO-, -CH2CH2CHO-, or -CH2CH2CH2CHO-. The alkylene glycol moiety may be monodisperse (having a clearly defined length / molecular weight) or polydisperse (having an ill-defined length / average molecular weight). The monoalkylene glycol moiety includes -OCH2CHO-, -OCH2CH2CHO-, or -OCH2CH2CH2CHO-, each containing a different group at its end.

[0062] The term "fatty acid" includes straight- or branched-chain aliphatic carboxylic acids having at least two carbon atoms and being saturated or unsaturated. Non-limiting examples of fatty acids are, for example, myristic acid, palmitic acid, stearic acid, and eicosanoic acid.

[0063] Here, the term "aliphatic diacid" includes straight or branched chain aliphatic dicarboxylic acids having at least two carbon atoms and being saturated or unsaturated. Non-limiting examples of aliphatic diacids are adipic acid, suberic acid, sebacic acid, dodecanedioic acid, tetradecanedioic acid, hexadecanedioic acid, heptadecanedioic acid, octadecanedioic acid, eicosane diacid, docosane diacid, and tetracosane diacid.

[0064] As used herein, fast-acting insulin includes fast-acting naturally occurring insulins, insulin analogs, and insulin derivatives. Fast-acting insulins generally begin to act within, for example, 1-20 minutes, peak after about 1 hour, and continue to act for 3-5 hours.

[0065] The term "basal insulin" refers to insulin that has a longer duration of action than regular or normal human insulin.

[0066] As used herein, the term "chemical stability" refers to the insulin derivatives of the present invention being sufficiently chemically stable in the desired formulation; i.e., only amounts of chemical degradation products are formed that do not impair the shelf life of the final drug product. Chemical degradation products include deamidation products, isoaspartic acid ester formation, dimer formation, racemization products, products resulting from dehydration processes, etc. Chemical stability can be measured by HPLC analysis of aged samples or formulations.

[0067] In this application, the term "binding ability to insulin receptor" refers to the interaction between insulin and insulin receptor, and the magnitude or strength of such interaction can be measured, for example, by surface plasmon resonance (SPR). For example, when measuring by SPR, when a solution containing insulin flows through a chip coated with insulin receptor, the interaction between insulin and insulin receptor changes the deflection angle of SPR, and such a change is usually expressed as a relative response value. Generally, a larger relative response value indicates a higher binding ability to insulin receptor.

[0068] High physical stability means that the fibrillation tendency is less than 50% of that of human insulin. Fibrillation can be described by the lag time before fibrils start to form under given conditions.

[0069] A polypeptide having insulin receptor and IGF-1 receptor affinity refers to a polypeptide that can interact with the insulin receptor and the human IGF-1 receptor in suitable binding assays, which are well known in the art.

[0070] As used herein, "drug efficacy" or "efficacy" refers to the ability of a drug or active compound to produce a certain action or effect (e.g., blood glucose lowering). For example, when administered at the same dose, the insulin derivatives of the present invention produce a higher blood glucose lowering effect or effect than insulin degludec or other existing insulin derivatives.

[0071] The term "diabetes" includes type 1 diabetes, type 2 diabetes, gestational diabetes (during pregnancy), and other conditions that cause hyperglycemia. The term is used to describe a metabolic disorder in which the pancreas produces insufficient insulin or the body's cells fail to respond properly to insulin, preventing cells from absorbing glucose. As a result, glucose builds up in the blood.

[0072] Type 1 diabetes, also known as insulin-dependent diabetes mellitus (IDDM) and juvenile-onset diabetes, is caused by the destruction of β-cells and generally results in absolute insulin deficiency. Type 2 diabetes, also known as non-insulin-dependent diabetes mellitus (NIDDM) and adult-onset diabetes, is associated with primary insulin resistance and thus relative insulin deficiency and / or a primary insulin secretory disorder with insulin resistance.

[0073] As used herein, the term "GLP-1 analog" or "analog of GLP-1" refers to a peptide or compound that is a variant of human glucagon-like peptide-1 (GLP-1(7-37)), in which one or more amino acid residues of GLP-1(7-37) have been substituted, and / or one or more amino acid residues have been deleted, and / or one or more amino acid residues have been added. Specifically, the sequence of GLP-1(7-37) is set forth in SEQ ID NO: 15 in the Sequence Listing. The peptide having the sequence set forth in SEQ ID NO: 15 may be referred to as "native" GLP-1 or "native" GLP-1(7-37).

[0074] In the sequence listing, the first amino acid residue (histidine) of SEQ ID NO: 15 is numbered 1. However, hereinafter, in accordance with established convention in the art, the histidine residue will be numbered 7, and subsequent amino acid residues will be numbered accordingly, culminating in glycine numbered 37. Therefore, in general, the amino acid residue numbering or position numbering of the GLP-1(7-37) sequence referred to in this application is the sequence starting with His at position 7 and ending with Gly at position 37.

[0075] The [Gly8, Arg34]GLP-1-(7-37) peptide is a GLP-1 analog having Gly and Arg at positions corresponding to positions 8 and 34 of GLP-1(7-37) (SEQ ID NO: 15), respectively. The [Arg34]GLP-1-(7-37) peptide is a GLP-1 analog having Arg at position corresponding to position 34 of GLP-1(7-37) (SEQ ID NO: 15). Specifically, the amino acid sequences of the [Gly8, Arg34]GLP-1-(7-37) peptide and the [Arg34]GLP-1-(7-37) peptide are set forth in SEQ ID NO: 16 and SEQ ID NO: 17, respectively, in the Sequence Listing.

[0076] In the context of a GLP-1 peptide or analog thereof, the term "derivative" as used herein refers to a chemically modified GLP-1 peptide or analog in which one or more substituents, which may also be referred to as side chains, have been covalently attached to said peptide.

[0077] In this application, insulin or GLP-1 compounds are named according to the following principles: they are named according to mutations and modifications (e.g., acylation) of human insulin or natural GLP-1(7-37). The acyl moiety is named according to the IUPAC nomenclature and, in other cases, according to the peptide nomenclature. For example, the following acyl moieties are named:

[0078] [ka] For example, "Eiko Sanji Hey "Glu-γGlu-OEG-OEG", "Eicosanji Hey "Glu-γGlu-2xOEG" or "Eicosanoid Hey The acyl moiety can be named "19-carboxynonadecanoyl-γGlu-2xOEG" or "19-carboxynonadecanoyl-γGlu-OEG-OEG," where OEG is an abbreviation for the group -NH(CH)O(CH)OCHCO- (i.e., 2-[2-(2-aminoethoxy)ethoxy]acetyl), and γGlu (and gGlu) is an abbreviation for the amino acid γ-glutamic acid in the L-configuration. Alternatively, the acyl moiety can be named according to IUPAC nomenclature (OpenEye, IUPAC style). In accordance with this nomenclature, the acyl group moiety of the present invention is referred to as [2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl] or [2-[2-[2-[2-[2-[2-[(4S)-4-carboxy-4-(19-carboxynonadecanoylamino)butyryl]-amino]-ethoxy]-ethoxy]acetyl]amino]ethoxy]ethoxy]acetyl].

[0079] For example, Control Example 2 insulin of the present invention (having the sequence / structure shown below) is "B29K(N(ε)-eicosandwich" Hey desB30 human insulin, B29K(N ε -Eiko Sanji Hey desB30 human insulin," or "B29K(N ε -Eiko Sanji Hey The amino acid K at position B29 in human insulin is already attached to the ε nitrogen (N) of the lysine residue at B29. ε or (called N(ε)) where N is the residue eicosanoid HeyIt indicates that the insulin is modified by acylation with Glu-2xOEG and lacks the amino acid T at position B30 in human insulin. For example, the insulin of Control Example 5 (having the sequence / structure shown below) has the following amino acids: A14E, B16H, B25H, B29K (N ε Eiko Sanji Hey human insulin" or "A14E, B16H, B25H, B29K (N(ε)-eicosane Hey The amino acid Y at position A14 in human insulin has been mutated to E, the amino acid Y at position B16 in human insulin has been mutated to H, the amino acid F at position B25 in human insulin has been mutated to H, and the amino acid K at position B29 in human insulin has been mutated to the ε-nitrogen (N) of the lysine residue at B29. ε (called eicosanoid residue) Hey Glu-2xOEG and is modified by acylation with Glu-2xOEG, and is missing the amino acid T at position B30 in human insulin.

[0080] [ka] In this application, "nxPEG" refers to -NH(CH2CH2O) n The term "20xPEG" refers to the group -NH(CHCHO) 20 This represents the group CH2CO-.

[0081] Insulin is a polypeptide hormone secreted by β-cells in the pancreas and consists of two polypeptide chains, A and B, which are linked by two interchain disulfide bonds. The A chain is also characterized by having one intrachain disulfide bond.

[0082] There are three main methods for preparing human insulin in microorganisms. Two involve Escherichia coli. One involves expressing a fusion protein in the cytoplasm (Frank et al. (1981) in Peptides: Proceedings of the 7th American Peptide Chemistry Symposium (Rich & Gross, eds.), Pierce Chemical Co., Rockford, IL, pp. 729-739). Another uses a signal peptide to allow secretion into the periplasmic space (Chan et al. (1981) PNAS 78:5401-5404). The third method uses Saccharomyces cerevisiae, where the insulin precursor is secreted into the culture medium (Thim et al. (1986) PNAS 83:6766-6770). The prior art is replete with methods for expressing insulin precursors in E. coli or Saccharomyces cerevisiae, see for example US Pat. No. 5,962,267, WO95 / 16708, EP0055945, EP0163529, EP0347845 and EP0741188.

[0083] The construction of vectors, expression, processing, and purification of insulin analogs can be carried out by techniques known to those skilled in the art. For example, the insulin analogs can be prepared by expressing a DNA sequence encoding the target insulin analog in a suitable host cell by known techniques disclosed in U.S. Pat. No. 6,500,645. For example, insulin analogs may be prepared by the methods reported in the following documents: Glendorf T, et al., (outside 1) TIFF2021136296000003.tif9119 Nishimura E, Pettersson I, & Kjeldsen T: Importance of the solvent-exposed residues of the insulin B chain α-helix for receptor binding, Biochemistry 2008 47 4743-4751. In this paper, mutations are introduced into an insulin-encoding vector by overlap extension PCR. The insulin analog is expressed in the Saccharomyces cerevisiae strain MT663 as a pre-insulin-like fusion protein with an Ala-Ala-Lys small C-peptide. The single-chain precursor is enzymatically converted to the double-chain desB30 analog by hydrolytic A. lyticus endoprotease.

[0084] The isolated insulin analogs can be acylated at the desired position by acylation methods known in the art, and examples of such insulin analogs are described, for example, in Chinese patent applications with publication numbers CN1029977C, CN1043719A, and CN1148984A.

[0085] The nucleic acid sequence encoding each insulin analog polypeptide can be prepared synthetically by established standard methods, such as those described by Beaucage et al. (1981) Tetrahedron Letters 22:1859-1869 or Matthes et al. (1984) EMBO Journal 3:801-805.

[0086] The term "excipient" broadly refers to any ingredient other than the active therapeutic ingredient. An excipient may be an inactive, non-active, and / or non-pharmaceutically active substance. Excipients may be used for a variety of purposes depending on the drug composition, e.g., as carriers, solvents, diluents, tableting aids, and / or to improve administration and / or absorption of an active agent. Examples of excipients include, but are not limited to, diluents, buffers, preservatives, tension adjusting agents (also called tonicity agents or isotonicity agents), chelating agents, surfactants, protease inhibitors, wetting agents, emulsifiers, antioxidants, bulking agents, metal ions, oily solvents, proteins and / or zwitterions, and stabilizers.

[0087] Drug compositions of pharmaceutically active ingredients and various excipients are known in the art, see, for example, Remington: The Science and Practice of Pharmacy (e.g., 19th Edition (1995) and any subsequent versions).

[0088] It is assumed that, for the patient's convenience, the patient prefers that the time interval (time delay) between administration of an acylated insulin of this invention and the next administration of an acylated insulin of this invention be the same or approximately the same length in days. It may further be expected that the patient prefers to administer the acylated insulin once a week, i.e., on the same day of the week, such as every Sunday. Averaging over a period of one month, six months, or one year, this amounts to administering the acylated insulin every sixth day, and no more frequently. For some patients, it may be necessary to administer the acylated insulin every fifth day, or approximately every fifth day, and no more frequently, averaging over a period of one month, six months, or one year. For other patients, it may be necessary to administer the acylated insulin every fourth day, or approximately every fourth day, and no more frequently, averaging over a period of one month, six months, or one year. For other patients, it may be necessary to administer the acylated insulin every third day, or approximately every third day, and no more frequently, averaging over a period of one month, six months, or one year. Still other patients may find it advantageous to administer acylated insulin twice a week, for example, with about 3-4 days between each administration, when averaged over a period of one month, six months, or one year. For some patients, it may be necessary to administer acylated insulin every other day, or about every other day, when averaged over a period of one month, six months, or one year, and no more frequently. For other patients, it may be necessary to administer acylated insulin every other day, or about every other day, when averaged over a period of one month, six months, or one year, and no more frequently. For some patients, it may be necessary to administer acylated insulin every seventh day, or about every seventh day, when averaged over a period of one month, six months, or one year, and no more frequently. Still other patients may not administer acylated insulin at exactly the same length of time intervals (number of days) every week, month, or year. Averaging over a period of one month, six months, or one year, some patients may be able to administer acylated insulin at time intervals of every 5 to 7 days, and no more frequently than this.Other patients may optionally administer acylated insulin at time intervals of every 4 to 6 days, and no more frequently, averaged over a period of one month, six months, or one year. Further, other patients may optionally administer acylated insulin at time intervals of every 3 to 7 days, and no more frequently, averaged over a period of one month, six months, or one year.

[0089] The primary target diseases and conditions of this invention are diabetes (type 1 or type 2) or other conditions characterized by hyperglycemia, but generally are metabolic diseases and conditions in which the metabolic effects of insulin have clinical relevance or benefit, such as prediabetes, impaired glucose tolerance, metabolic syndrome, obesity, cachexia, in vivo β-cell damage / death, hyperphagia, and inflammation. All of these types of conditions are known or believed to benefit from a stable metabolic state in subjects suffering from the disease or condition. In any event, any method of treatment involving the administration of insulin can be modified by practicing the teachings of this invention, meaning that such treatments include the administration of long-acting insulins as provided herein. Example The following examples are offered by way of illustration and not by way of limitation. The abbreviations used in this application are as follows: OEG is the amino acid residue -NH(CH2)2O(CH2)2OCH2CO-. OSu is succinimid-1-yloxy-2,5-dioxo-pyrrolidin-1-yloxy. OtBu is oxy-tert-butyl. HCl is hydrogen chloride. γGlu or gGlu is a γL-glutamyl group. NHS is N-hydroxysuccinimide. DCC is dicyclohexylcarbodiimide. AEEA is 2-(2-(2-aminoethoxy)ethoxy)acetic acid. OH is the hydroxyl radical. CH3CN is acetonitrile. Gly is glycine. Arg is arginine. TFA is trifluoroacetic acid. HbA1c is glycosylated hemoglobin. AUC is the area under the time-blood glucose curve. RU is a response unit. The following examples and general methods are directed to intermediate compounds and final products as determined by the specification and synthetic schemes. The following examples illustrate the preparation of compounds of the present invention in detail, but the chemical reactions described are disclosed with general applicability to the preparation of compounds of the present invention. In some cases, the above reactions may not be applicable to all compounds within the scope of the present invention as described above. Those skilled in the art can easily identify compounds for which this occurs. In these cases, the above reactions can be successfully carried out with routine modifications known to those skilled in the art, i.e., by appropriate protection of interfering groups, by changing to other routine reagents, or by routine modification of reaction conditions. In all preparation methods, all raw materials are known or can be easily prepared using known raw materials. All temperatures are given in degrees Celsius, and unless otherwise specified, when referring to yields, all parts and percentages are given by weight, and when referring to solvents and eluents, all parts are given by volume. [Example]

[0090] B29K(N(ε)-Eikosanji Hey desB30 human insulin (compound 1)

[0091] [ka] 1. Synthesis of des(B30) human insulin des(B30) human insulin is patented in China CN1056618C It is prepared according to the method described in Example 11 of the present invention.

[0092] 2. Preparation of target insulin DesB30 human insulin (5 g, 0.876 mmol) was dissolved in 100 mM NaHPO aqueous solution (150 mL), acetonitrile (100 mL) was added, and the pH was adjusted to 10-12.5 with 1 N NaOH. Hey Leu-γGlu-(5xOEG-OSu)-OtBu (1.36 g, 0.964 mmol) was dissolved in acetonitrile (50 mL) and slowly added to the insulin solution. The pH was maintained between 10 and 12.5. After 120 min, the reaction mixture was added to water (150 mL) and the pH was adjusted to 5.0 with 1N aqueous HCl. The precipitate was separated by centrifugation and lyophilized. The crude product was added to a mixture of trifluoroacetic acid (60 mL) and dichloromethane (60 mL) and stirred at room temperature for 30 min. The mixture was concentrated to approximately 30 mL and poured into ice-cold n-heptane (300 mL). The precipitated product was separated by filtration and washed twice with n-heptane. After drying in vacuo, the product was purified by ion exchange chromatography (Resource Q, 0.25% to 1.25% ammonium acetate gradient in 42.5% ethanol, pH 7.5) and reverse-phase chromatography (acetonitrile, water, TFA). The purified fractions were combined, the pH was adjusted to 5.2 with 1 N HCl, and the precipitate was isolated and lyophilized to give the title compound 1. LC-MS (electrospray): m / z = 1377.53 [M+5H] 5+ 3. Preparation of intermediate tert-butyleicosandioyl-γGlu-(5xOEG-OSu)-OtBu 3.1 tert-Butyl eicosanoid Hey Lu-OSu Under nitrogen gas protection, mono-tert-butyl eicosanedioate (20 g, 50.17 mmol) and NHS (5.77 g, 50.17 mmol) were mixed in dichloromethane, triethylamine (13.95 mL) was added, and the resulting cloudy mixture was stirred at room temperature. DCC (11.39 g, 55.19 mmol) was added and further stirred overnight. After filtration, the resulting filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 minutes, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried in vacuo overnight to obtain 24.12 g (97% yield) of tert-butyl eicosanedioate. Hey Le-OSu was obtained. LC-MS(Scie×100API): m / z=496.36(M+1) + 3.2 tert-Butyl eicosanoid Hey Le-γGlu-OtBu tert-Butyl eicosanoid Hey 1-OSu (24.12 g, 48.66 mmol) was dissolved in dichloromethane (250 mL) and stirred. H-Glu-OtBu (10.88 g, 53.53 mmol), triethylamine (12.49 mL), and water were added in this order. The mixture was heated to obtain a clear solution, which was then stirred at room temperature for 4 hours. 10% aqueous citric acid (200 mL) was then added, and the mixture was separated. The lower organic phase was washed with saturated brine. After separation, the lower organic phase was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 27.27 g (96% yield) of tert-butyl eicosane dihydrate was obtained. Hey Glu-γGlu-OtBu was obtained. LC-MS(Scie×100API): m / z=584.44(M+1) + 3.3 tert-Butyl eicosanoid Hey Leu-γGlu-(OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Heyγ-Glu-OtBu (27.27 g, 46.71 mmol) was dissolved in dichloromethane (300 mL), triethylamine (11.99 mL) was added, and the mixture was stirred for 10 min. NHS (5.38 g, 50.17 mmol) and DCC (10.60 g, 51.38 mmol) were then added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 min, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated to near dryness under reduced pressure. Methyl tert-butyl ether was added, stirred for 30 min, and suction filtered. The filter cake was dried overnight in vacuo to give 25.76 g (81% yield) of tert-butyl eicosane. Hey Glu-γGlu-(OSu)-OtBu was obtained. LC-MS(Scie×100API): m / z=681.46(M+1) + 3.4 tert-Butyl eicosanoid Hey Leu-γGlu-(2xOEG-OH)-OtBu tert-Butyl eicosanoid Hey γGlu-(OSu)-OtBu (25.76 g, 37.83 mmol) was dissolved in dichloromethane (250 mL) and stirred. 2xAEEA (11.66 g, 37.83 mmol), triethylamine (9.71 mL), and water (25 mL) were added in that order and heated to obtain a clear solution. The solution was stirred at room temperature for 4 hours. Next, 10% aqueous citric acid (200 mL) was added, and the layers were separated. The lower organic layer was washed with saturated brine. After separation, the lower organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 30.75 g (93% yield) of tert-butyl eicosane dihydrate was obtained. Hey The resulting product was γ-Glu-(2xOEG-OH)-OtBu. LC-MS(Scie×100API): m / z=874.59(M+1) + 3.5 tert-butyl eicosanoid Hey Leu-γGlu-(2xOEG-OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Hey γ-Glu-(2xOEG-OH)-OtBu (30.75 g, 35.18 mmol) was dissolved in dichloromethane (300 mL), triethylamine (9.03 mL) was added, and the mixture was stirred for 10 min. NHS (4.05 g, 35.18 mmol) and DCC (7.98 g, 38.70 mmol) were added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 min, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated to near dryness under reduced pressure and dried overnight in vacuo to give 31.09 g (91% yield) of tert-butyl eicosane. Hey The resulting product was γ-Glu-(2xOEG-OSu)-OtBu. LC-MS(Scie×100API): m / z=971.61(M+1) + 3.6 tert-Butyl eicosanoid Hey Leu-γGlu-(5xOEG-OH)-OtBu tert-Butyl eicosanoid Hey γGlu-(2xOEG-OSu)-OtBu (31.09 g, 32.01 mmol) was dissolved in dichloromethane (350 mL) and stirred. 3xAEEA (14.52 g, 32.01 mmol), triethylamine (8.90 mL), and water (25 mL) were added in that order and heated to obtain a clear solution. The solution was stirred at room temperature for 4 hours. Next, 10% aqueous citric acid (200 mL) was added, and the layers were separated. The lower organic layer was washed with saturated brine. After separation, the lower organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 38.99 g (93% yield) of tert-butyl eicosane dihydrate was obtained. Hey Glu-γGlu-(5xOEG-OH)-OtBu was obtained. LC-MS(Scie×100API): m / z=1309.81(M+1) + 3.7 tert-Butyl eicosanoid Hey Leu-γGlu-(5xOEG-OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Hey γ-Glu-(5xOEG-OH)-OtBu (38.99 g, 29.77 mmol) was dissolved in dichloromethane (400 mL), triethylamine (8.28 mL) was added, and the mixture was stirred for 10 min. NHS (3.43 g, 29.77 mmol) and DCC (6.76 g, 32.75 mmol) were added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 min, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated to near dryness under reduced pressure and dried overnight in vacuo to give 38.11 g (91% yield) of tert-butyl eicosane. Hey The resulting product was 5xOEG-γGlu-(5xOEG-OSu)-OtBu. LC-MS(Scie×100API): m / z=1406.83(M+1) + [Example]

[0093] B29K(N(ε)-Eikosanji Hey desB30 human insulin (compound 2)

[0094] [ka] Compound 2 was prepared following a procedure similar to that of Example 1, Part 2. LC-MS (electrospray): m / z=1406.28 [M+5H] 5+ Intermediates tert-Butyl eicosanoidioyl-γGlu-(6xOEG-OSu)-OtBu was prepared according to steps similar to those in Example 1, Part 3. LC-MS(Scie×100API): m / z=1551.90(M+1) + [Example]

[0095] B29K(N(ε)-Eikosanji Hey desB30 human insulin (compound 3)

[0096] [ka] Compound 3 was prepared following a procedure similar to that of Example 1, Part 2. LC-MS (electrospray): m / z = 1464.30 [M+5H] 5+ Intermediates tert-Butyl eicosanoidioyl-γGlu-(8xOEG-OSu)-OtBu was prepared according to steps similar to those in Example 1, Part 3. LC-MS(Scie×100API): m / z=1814.02(M+1) + [Example]

[0097] B29K(N(ε)-Docosand Hey desB30 human insulin (compound 4)

[0098] [ka] Compound 4 was prepared following a procedure similar to that of Example 1, Part 2. LC-MS (electrospray): m / z = 1411.88 [M+5H] 5+ Intermediates tert-Butyldocosandioyl-γGlu-(6xOEG-OSu)-OtBu was prepared according to steps similar to those in Example 1, Part 3. LC-MS(Scie×100API): m / z=1579.94(M+1) + Control Example 1 B29K(N(ε)-Hexadecandi Hey desB30 human insulin (insulin degludec, reference compound 1) The control compound, insulin degludec, was prepared according to Example 4 of patent CN105820233A.

[0099] Control Example 2 B29K(N(ε)-Eikosanji Hey desB30 human insulin (control compound 2)

[0100] [ka] Control Compound 2 was prepared following steps similar to those in Example 1, Part 2. LC-MS (electrospray): m / z = 1290.22 [M+5H] 5+ Intermediates tert-Butyl eicosanoidioyl-γGlu-(2xOEG-OSu)-OtBu was prepared according to steps similar to those in Example 1, Part 3. LC-MS(Scie×100API): m / z=971.61(M+1) + Control Example 3 B29K(N(ε)-octadecanedi Hey le-γGlu-2xOEG), desB30 human insulin (control compound 3)

[0101] [ka] Control compound 3 was prepared following similar steps as in Example 1, Part 2. LC-MS (electrospray): m / z = 1284.61 [M+5H] 5+ Control Example 4 B29K(N(ε)-octadecanedi Hey le-γGlu-6xOEG), desB30 human insulin (control compound 4)

[0102] [ka] Control compound 4 was prepared following similar steps as in Example 1, Part 2. LC-MS (electrospray): m / z = 1400.68 [M+5H] 5+ [Example]

[0103] Pharmacodynamic studies in db / db mice This study aims to confirm the blood glucose (BG) regulating effect of the acylated insulin of the present invention in cases of diabetes. The acylated insulins of Examples 1-3 and the control compounds of Control Examples 1-4 were tested in a single-dose study in an obese diabetic mouse model (db / db mice). The hypoglycemic effects of the acylated insulins were tested at different doses of 9 U / kg or 10 U / kg.

[0104] Eight- to nine-week-old male db / db (BKS / Lepr) mice were housed in appropriately designed breeding boxes in a barrier environment, with free access to standard chow and purified water. The environmental conditions were controlled at a relative humidity of 40% to 60% and a temperature of 22°C to 24°C. After an acclimation period of 1 to 2 weeks, the mice were used in the experiments.

[0105] Before the start of the experiment, basal blood glucose was assessed at time -1 / 1 h (9:30 AM) and mice were weighed. Mice were randomly assigned to vehicle or treatment groups based on blood glucose and body weight, and treated with either vehicle or acylated insulin (9 U / kg or 10 U / kg) subcutaneously. The vehicle contained 19.6 mg / mL glycerin, 1.5 mg / mL phenol, and 1.72 mg / mL m-cresol, with a zinc ion concentration of 55 μg / mL and a pH of 7.6.

[0106] The acylated insulin was dissolved in a solvent to a dose concentration of 1.8 or 2 U / mL, and the dose volume was 5 mL / kg (i.e., 50 μL / 10 g body weight). A single subcutaneous injection was administered into the dorsal neck. The acylated insulin was administered at approximately 10:30 AM (time 0). During the administration period, the animals were fasted but allowed water access. Blood glucose levels were assessed in mice 3, 6, 9, 12, and 15 hours after administration. To simulate feeding, an oral glucose tolerance test (OGTT) was initiated after blood glucose detection at 15 hours. Blood glucose levels were measured 30, 60, 120, and 180 minutes after intragastric administration of a glucose solution (100 mg / mL, 10 mL / kg). Three consecutive OGTT experiments were performed. Preliminary results indicated that the efficacy of the test compound was nearly eliminated in the final OGTT, and the experiment was terminated after 30 hours of blood glucose assessment.

[0107] The rats' tails were cleaned with an alcohol swab, and a drop of blood was collected from the tail with a disposable blood collection needle and measured using a blood glucose meter and attached test strips (Roche). A blood glucose-time dose-response curve was constructed for each single dose of acylated insulin.

[0108] To describe the effect of the acylated insulins of the present invention on blood glucose, the area under the blood glucose-time curve (AUC) from 0 to the monitoring endpoint was calculated for each individual dose-response curve. A smaller AUC value indicates a better blood glucose lowering effect and better efficacy.

[0109] Test results: The blood glucose lowering effects of the acylated insulin of the present invention and the control compound in db / db mice are shown in Figures 1a to 5b and Table 1. Specifically, Figures 1a and 1b show that the hypoglycemic effect of the acylated insulins of the present invention, such as Compound 1 and Compound 2, in db / db mice is significantly superior to that of insulin degludec, and the effective duration of action is longer than that of insulin degludec.

[0110] Figures 2a and 2b show that the hypoglycemic effect of the acylated insulins of the present invention, such as Compound 1 and Compound 2, on db / db mice was significantly superior to that of the control Compound 2, and the efficacy of Compound 1 and Compound 2 of the present invention was increased by 39.5% and 45.1%, respectively, within 0 to 16.5 hours of administration compared to the control Compound 2, as shown in Table 1.

[0111] [Table 1] Percentage increase in efficacy relative to Control Compound 2 = [(AUC(test compound) - AUC(solvent)) / ((AUC(Control Compound 2) - AUC(solvent)) - 1] * 100%, where test compound refers to an acylated insulin of the present invention.

[0112] Figures 3a-3b show that Compounds 1, 2 and 3 of the present invention all have excellent efficacy and remain effective in db / db mice when monitored for up to 30 hours, demonstrating a significantly extended duration of hypoglycemic action.

[0113] 4a to 5b show that the hypoglycemic effect of the acylated insulin of the present invention, such as Compound 2, on db / db mice was significantly superior to that of Control Compounds 3 and 4. [Example]

[0114] N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide (compound 6)

[0115] [ka] 1, N-ε 26 Preparation of -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide [Gly8, Arg34]GLP-1-(7-37) peptide was prepared using a standard recombinant protein expression method (see Molecular Cloning: A Laboratory Manual (Fourth Edition), Michael R. Green, Cold Spring Harbor Press, 2012, for specific methods). [Gly8, Arg34]GLP-1-(7-37) peptide (5 g, 1.48 mmol) was dissolved in 100 mM NaHPO aqueous solution (150 mL), acetonitrile (100 mL) was added, and the pH was adjusted to 10-12.5 with 1 N NaOH. tert-Butyl eicosandine was added. Hey Leu-γGlu(2xOEG-OSu)-OtBu (1.59 g, 1.63 mmol) was dissolved in acetonitrile (50 mL) and slowly added to the [Gly8,Arg34]GLP-1-(7-37) peptide solution. The pH was maintained between 10 and 12.5. After 120 min, the reaction mixture was added to water (150 mL) and the pH was adjusted to 5.0 with 1N aqueous HCl. The precipitate was separated by centrifugation and lyophilized. The crude product was added to a mixture of trifluoroacetic acid (60 mL) and dichloromethane (60 mL) and stirred at room temperature for 30 min. The mixture was concentrated to approximately 30 mL and poured into ice-cold n-heptane (300 mL). The precipitated product was separated by filtration and washed twice with n-heptane. After drying in vacuo, the product was purified by ion exchange chromatography (Resource Q, 0.25% to 1.25% ammonium acetate gradient in 42.5% ethanol, pH 7.5), reverse phase chromatography (acetonitrile, water, TFA), the purified fractions were combined, the pH was adjusted to 5.2 with 1 N HCl, the precipitate was isolated, and lyophilized to give the title compound. LC-MS (electrospray): m / z = 1028.79 [M+4H] 4+ 2. Preparation of intermediate tert-butyleicosandioyl-γGlu-(2xOEG-OSu)-OtBu 2.1 tert-Butyl eicosanoid Hey Lu-OSu Under nitrogen gas protection, mono-tert-butyl eicosanedioate (20 g, 50.17 mmol) and NHS (5.77 g, 50.17 mmol) were mixed in dichloromethane (400 mL), triethylamine (13.95 mL) was added, and the resulting cloudy mixture was stirred at room temperature. DCC (11.39 g, 55.19 mmol) was added, and the mixture was further stirred overnight. After filtration, the resulting filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 minutes, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried in vacuo overnight to obtain 24.12 g (97% yield) of tert-butyl eicosanedioate. Hey Le-OSu was obtained. LC-MS(Scie×100API): m / z=496.36(M+1) + 2.2 tert-Butyl eicosanoid Hey Le-γGlu-OtBu tert-Butyl eicosanoid Hey 1-OSu (24.12 g, 48.66 mmol) was dissolved in dichloromethane (250 mL) and stirred. H-Glu-OtBu (10.88 g, 53.53 mmol), triethylamine (12.49 mL), and water (25 mL) were added in this order and heated to obtain a clear solution. The solution was stirred at room temperature for 4 hours. 10% aqueous citric acid (200 mL) was then added, and the layers were separated. The lower organic layer was washed with saturated brine. After separation, the lower organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 27.27 g (96% yield) of tert-butyl eicosane dihydrate was obtained. Hey Glu-γGlu-OtBu was obtained. LC-MS(Scie×100API): m / z=584.44(M+1) + 2.3 tert-Butyl eicosanoid Hey Leu-γGlu(OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Heyγ-Glu-OtBu (27.27 g, 46.71 mmol) was dissolved in dichloromethane (300 mL), triethylamine (11.99 mL) was added, and the mixture was stirred for 10 minutes. NHS (5.38 g, 50.17 mmol) and DCC (10.60 g, 51.38 mmol) were added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 minutes, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness. Methyl tert-butyl ether was added, stirred for 30 minutes, and suction filtered. The filter cake was dried overnight in vacuo to give 25.76 g (81% yield) of tert-butyl eicosane. Hey Glu-γGlu-(OSu)-OtBu was obtained. LC-MS(Scie×100API): m / z=681.46(M+1) + 2.4 tert-Butyl eicosanoid Hey Leu-γGlu-(2xOEG-OH)-OtBu tert-Butyl eicosanoid Hey γGlu-(OSu)-OtBu (25.76 g, 37.83 mmol) was dissolved in dichloromethane (250 mL) and stirred. 2xAEEA (11.66 g, 37.83 mmol), triethylamine (9.71 mL), and water (25 mL) were added in this order and heated to obtain a clear solution. The solution was stirred at room temperature for 4 hours. Next, 10% aqueous citric acid (200 mL) was added, and the layers were separated. The lower organic layer was washed with saturated brine. After separation, the lower organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 30.75 g (93% yield) of tert-butyl eicosane dihydrate was obtained. Hey The resulting product was γ-Glu-(2xOEG-OH)-OtBu. LC-MS(Scie×100API): m / z=874.59(M+1) + 2.5 tert-butyl eicosanoid Hey Leu-γGlu-(2xOEG-OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Hey γ-Glu-(2xOEG-OH)-OtBu (30.75 g, 35.18 mmol) was dissolved in dichloromethane (300 mL), triethylamine (9.03 mL) was added, and the mixture was stirred for 10 min. NHS (4.05 g, 35.18 mmol) and DCC (7.98 g, 38.70 mmol) were added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 min, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to near dryness and dried in vacuo overnight to give 31.09 g (91% yield) of tert-butyl eicosane. Hey The resulting product was γ-Glu-(2xOEG-OSu)-OtBu. LC-MS(Scie×100API): m / z=971.61(M+1) + [Example]

[0116] N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8, Arg34]GLP-1-(7-37) peptide (compound 7)

[0117] [ka] Following steps similar to those in Part 1 of Example 6, N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8, Arg34]GLP-1-(7-37) peptide was prepared. LC-MS (electrospray): m / z = 992.52 [M+4H] 4+ Intermediates tert-Butyl eicosanoidioyl-γGlu-(OEG-OSu)-OtBu was prepared following steps similar to those in Example 6, Part 2. LC-MS(Scie×100API): m / z=826.54(M+1) + [Example]

[0118] N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide (compound 8)

[0119] [ka] Following steps similar to those in Part 1 of Example 6, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide was prepared. LC-MS (electrospray): m / z = 956.25 [M+4H] 4+ Intermediates tert-Butyl eicosanoidioyl-γGlu-(OSu)-OtBu was prepared following steps similar to those in Example 6, Part 2. LC-MS(Scie×100API): m / z=681.46(M+1) + [Example]

[0120] N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide (compound 9)

[0121] [ka] Following steps similar to those in Part 1 of Example 6, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide was prepared. LC-MS (electrospray): m / z = 959.75 [M+4H] 4+ Intermediates tert-Butyl eicosanoidioyl-γGlu-(OSu)-OtBu was prepared following steps similar to those in Example 6, Part 2. LC-MS(Scie×100API): m / z=681.46(M+1) + [Example]

[0122] N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(17-carboxyheptadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide (compound 10)

[0123] [ka] Following steps similar to those in Part 1 of Example 6, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(17-carboxyheptadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide was prepared. LC-MS (electrospray): m / z = 1021.78 [M+4H] 4+ [Example]

[0124] N-ε 26 -(17-carboxyheptadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide (compound 11)

[0125] [ka] Following steps similar to those in Part 1 of Example 6, N-ε 26 -(17-carboxyheptadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide was prepared. LC-MS (electrospray): m / z = 949.24 [M+4H] 4+ Intermediates tert-Butyloctadecanediol-γGlu-(OSu)-OtBu was prepared following steps similar to those in Example 6, Part 2. LC-MS(Scie×100API): m / z=653.43 (M+1) + [Example]

[0126] N-ε 26-[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide (compound 12)

[0127] [ka] Following steps similar to those in Part 1 of Example 6, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8, Arg34]GLP-1-(7-37) peptide was prepared. LC-MS (electrospray): m / z = 1035.80 [M+4H] 4+ Intermediates tert-Butyldocosandioyl-γGlu-(2xOEG-OSu)-OtBu was prepared following steps similar to those in Example 6, Part 2. LC-MS(Scie×100API): m / z=999.64(M+1) + Control Example 5 A14E, B16H, B25H, B29K(N(ε)-eicosanji Hey desB30 human insulin (control compound 5)

[0128] [ka] 1, A14E, B16H, B25H, B29K(N(ε)-Eicosanji Hey Preparation of desB30 human insulin (γGlu-2xOEG) A14E, B16H, B25H, and desB30 human insulin were prepared by conventional methods for preparing insulin analogs (see Glendorf T, (outside 2) (See TIFF2021136296000020.tif7119 Nishimura E, Pettersson I, & Kjeldsen T: Importance of the Solvent-Exposed Residues of the Insulin B Chain α-Helix for Receptor Binding, Biochemistry 2008 47 4743-4751.) A14E, B16H, B25H, and desB30 human insulin (5 g, 0.888 mmol) were dissolved in 100 mM aqueous NaHPO, 100 mL of acetonitrile was added, and the pH was adjusted to 10-12.5 with 1 N NaOH. tert-Butyl eicosand was added. Hey Leu-γGlu-(2xOEG-OSu)-OtBu (0.948 g, 0.976 mmol) was dissolved in acetonitrile (50 mL) and slowly added to the insulin solution. The pH was maintained between 10 and 12.5. After 120 min, the reaction mixture was added to water (150 mL) and the pH was adjusted to 5.0 with 1N aqueous HCl. The precipitate was separated by centrifugation and lyophilized. The lyophilized crude product was added to a mixture of trifluoroacetic acid (60 mL) and dichloromethane (60 mL) and stirred at room temperature for 30 min. The mixture was concentrated to approximately 30 mL and poured into ice-cold n-heptane (300 mL). The precipitated product was separated by filtration and washed twice with n-heptane. After drying under vacuum, the product was purified by ion exchange chromatography (Resource Q, 0.25% to 1.25% ammonium acetate gradient in 42.5% ethanol, pH 7.5) and reverse phase chromatography (acetonitrile, water, TFA). The purified fractions were combined, the pH was adjusted to 5.2 with 1N HCl, and the precipitate was isolated and lyophilized to obtain reference compound 5. LC-MS (electrospray): m / z = 1063.6852 [M+6H] 6+ 2. Preparation of the intermediate tert-butyleicosandioyl-γGlu-(2xOEG-OSu)-OtBu was carried out following steps similar to those in Part 3 of Example 1.

[0129] 2.1 tert-Butyl eicosanoid Hey Lu-OSu Under nitrogen gas protection, mono-tert-butyl eicosanedioate (20 g, 50.17 mmol) and NHS (5.77 g, 50.17 mmol) were mixed in dichloromethane, triethylamine (13.95 mL) was added, and the resulting cloudy mixture was stirred at room temperature. DCC (11.39 g, 55.19 mmol) was added and further stirred overnight. After filtration, the resulting filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 minutes, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried in vacuo overnight to obtain 24.12 g (97% yield) of tert-butyl eicosanedioate. Hey Le-OSu was obtained. LC-MS(Scie×100API): m / z=496.36(M+1) + 2.2 tert-Butyl eicosanoid Hey Le-γGlu-OtBu tert-Butyl eicosanoid Hey 1-OSu (24.12 g, 48.66 mmol) was dissolved in dichloromethane (250 mL) and stirred. H-Glu-OtBu (10.88 g, 53.53 mmol), triethylamine (12.49 mL), and water were added in this order. The mixture was heated to obtain a clear solution, which was then stirred at room temperature for 4 hours. 10% aqueous citric acid (200 mL) was then added, and the mixture was separated. The lower organic phase was washed with saturated brine. After separation, the lower organic phase was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 27.27 g (96% yield) of tert-butyl eicosane dihydrate was obtained. Hey Glu-γGlu-OtBu was obtained. LC-MS(Scie×100API): m / z=584.44(M+1) + 2.3 tert-Butyl eicosanoid Hey Leu-γGlu-(OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Heyγ-Glu-OtBu (27.27 g, 46.71 mmol) was dissolved in dichloromethane (300 mL), triethylamine (11.99 mL) was added, and the mixture was stirred for 10 min. NHS (5.38 g, 50.17 mmol) and DCC (10.60 g, 51.38 mmol) were added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 min, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated to near dryness under reduced pressure. Methyl tert-butyl ether was added, stirred for 30 min, and suction filtered. The filter cake was dried overnight in vacuo to give 25.76 g (81% yield) of tert-butyl eicosane. Hey Glu-γGlu-(OSu)-OtBu was obtained. LC-MS(Scie×100API): m / z=681.46(M+1) + 2.4 tert-Butyl eicosanoid Hey Leu-γGlu-(2xOEG-OH)-OtBu tert-Butyl eicosanoid Hey γGlu-(OSu)-OtBu (25.76 g, 37.83 mmol) was dissolved in dichloromethane (250 mL) and stirred. 2xAEEA (11.66 g, 37.83 mmol), triethylamine (9.71 mL), and water (25 mL) were added in that order and heated to obtain a clear solution. The solution was stirred at room temperature for 4 hours. Next, 10% aqueous citric acid (200 mL) was added, and the layers were separated. The lower organic layer was washed with saturated brine. After separation, the lower organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to near dryness and dried overnight in vacuo. 30.75 g (93% yield) of tert-butyl eicosane dihydrate was obtained. Hey The resulting product was γ-Glu-(2xOEG-OH)-OtBu. LC-MS(Scie×100API): m / z=874.59(M+1) + 2.5 tert-butyl eicosanoid Hey Leu-γGlu-(2xOEG-OSu)-OtBu Under nitrogen gas protection, tert-butyl eicosanoid Hey γ-Glu-(2xOEG-OH)-OtBu (30.75 g, 35.18 mmol) was dissolved in dichloromethane (300 mL), triethylamine (9.03 mL) was added, and the mixture was stirred for 10 min. NHS (4.05 g, 35.18 mmol) and DCC (7.98 g, 38.70 mmol) were added. The mixture was stirred overnight at room temperature. After filtration, the filtrate was concentrated to near dryness. The residue was mixed with cold water and ethyl acetate, stirred for 20 min, and the layers were separated. The upper organic layer was washed with saturated brine. After separation, the upper organic layer was dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated to near dryness under reduced pressure and dried overnight in vacuo to give 31.09 g (91% yield) of tert-butyl eicosane. Hey The resulting product was γ-Glu-(2xOEG-OSu)-OtBu. LC-MS(Scie×100API): m / z=971.61(M+1) + [Example]

[0130] A14E, B16H, B25H, B29K(N(ε)-eicosanji Hey Glu-γGlu-12xOEG), desB30 human insulin (compound 15)

[0131] [ka] Following a procedure similar to that of Part 1 of Control Example 5, compounds A14E, B16H, B25H, B29K (N(ε)-eicosanoids) were synthesized. Hey Human insulin (de-γGlu-12xOEG) and desB30 were prepared. LC-MS (electrospray): m / z = 1305.4716 [M+6H] 6+ Intermediate tert-butyl eicosanoid Hey The preparation of 12xOEG-γGlu-(12xOEG-OSu)-OtBu was carried out following steps similar to those in Control Example 5, Part 2. LC-MS(Scie×100API): m / z=2423.35(M+1) + [Example]

[0132] A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin (compound 16)

[0133] [ka] Compounds A14E, B16H, B25H, B29K (N(ε)-docosandine) were synthesized according to a procedure similar to that of Part 1 of Control Example 5. Hey Human insulin (de-γGlu-12xOEG) and desB30 were prepared. LC-MS (electrospray): m / z = 1310.1425 [M+6H] 6+ Intermediate tert-butyl docosanol Hey The preparation of 12xOEG-γGlu-(12xOEG-OSu)-OtBu was carried out following steps similar to those in Control Example 5, Part 2. LC-MS(Scie×100API): m / z=2451.38(M+1) + . [Example]

[0134] Pharmacodynamic study in streptozotocin (STZ)-induced type 1 diabetes mellitus (T1DM) rats Eight-week-old SD rats (half female and half male) weighing 180–220 g were housed in appropriate breeding boxes (5 rats / box) in a barrier environment. They were provided with standard chow and purified water ad libitum. The environmental conditions were controlled at 40–60% relative humidity and 22–24°C. After a 4-day acclimation period and a 12-h fast, the rats were intraperitoneally injected with 60 mg / kg streptozotocin (Sigma) solution (10 mg / mL in 0.1 M citrate buffer). After 3 days of streptozotocin administration, random blood glucose monitoring was performed, and rats with blood glucose levels of 20 mmol / L or higher were selected as T1DM model rats for subsequent studies.

[0135] The test was started 14 days after modeling. Before the start of the experiment, basal blood glucose was evaluated at time -1 / 1 hour (9:30 AM) and rats' weights were measured. According to random blood glucose and weight, rats were assigned to a vehicle group or a treatment group, and treated by subcutaneous injection of the vehicle or the title compounds of Control Example 5, Examples 13 and 14 (i.e., Control Compound 5, Compound 15, Compound 16), respectively, at a dose of 25 U / kg. The vehicle contained phenol 5.65 mg / mL, glycerin 15 mg / mL, disodium hydrogen phosphate 0.708 mg / mL, and sodium chloride 0.585 mg / mL, and the pH value of the vehicle was 7.6.

[0136] The acylated insulin was dissolved in a solvent to a concentration of 25 U / mL, with a dose volume of 1 mL / kg (i.e., 0.1 mL / 100 g body weight). SD rats were administered subcutaneously in the dorsal neck, four times every four days. The rats were allowed to eat ad libitum throughout the study. Acylated insulin was administered between approximately 9:30 and 10:00 AM (time 0). Blood glucose levels were monitored 3, 6, 9, 24, 48, 72, and 96 h after the first dose, followed by 6 h and once every 24 h after each dose.

[0137] A blood glucose-time dose-response curve was constructed for each single dose of acylated insulin. To describe the effect of acylated insulin on blood glucose, the area under the blood glucose-time curve (AUC) from 0 to the monitoring endpoint was calculated for each single dose-response curve.

[0138] [Table 2] Percentage increase in efficacy relative to control compound 5 = [(AUC(test compound) - AUC(solvent)) / ((AUC(control compound 5) - AUC(solvent)) - 1] * 100%, where test compound refers to an acylated insulin of the present invention.

[0139] As shown in Figures 6a-6b and Table 2, compared with the control compound 5, the acylated insulin of the present invention has an unexpectedly improved hypoglycemic effect in type 1 diabetic (T1DM) rats after administration, and the hypoglycemic effects of both compounds 15 and 16 are significantly superior to those of the control compound 5. [Example]

[0140] This experiment was designed to determine the chemical stability of the acylated insulin formulations of this invention. Acylated insulin preparations Compound 4, the title compound of Example 4, was dissolved in 0.1% NaOH solution to a final concentration of 4.8 mM (pH value of approximately 10-11), and phenol, m-cresol, zinc acetate, glycerin, and sodium chloride were added in that order according to the amounts of each component in the table below to produce an acylated insulin preparation with a final insulin concentration of 1.2 mM (200 U / mL or 8.46 mg / mL), where the Zn content is expressed as Zn / 6 moles of acylated insulin (abbreviated as "Zn / 6ins"). In this example, the chemical stability of the formulation may be shown by the change in high molecular weight protein (HMWP) relative to day 0 after 14 and 20 days of storage at 25°C and 37°C, and also by the change in the amount of related substances after 14 and 20 days of storage at 25°C and 37°C.

[0141] Measurement of high molecular weight proteins (HMWPs) By high performance liquid chromatography (HPLC) High molecular weight proteins (HMWPs) The content was measured using a Waters Xbride BEH 200A (7.8 x 300 mm), 5 μm column with a column temperature of 30°C and a sample cell temperature of 5°C, using a mobile phase containing 600 mL of 0.1% arginine solution, 150 mL of glacial acetic acid, and 250 mL of acetonitrile at a flow rate of 0.5 mL / min. The detection wavelength was 276 nm, and the sample injection volume was 10 μL. Table 3 shows the increase in HMWP concentration on days 14 and 20 compared to day 0 at 25°C and 37°C.

[0142] [Table 3] The table above shows that the amount of HMWP in the acylated insulin preparations of this invention increases very slowly over time, demonstrating the excellent chemical stability of all the acylated insulin preparations. In particular, the increase in HMWP content is slower in the 6.5Zn / 6ins preparation than in the 5.5Zn / 6ins preparation.

[0143] Measurement of the amount of related substances The content of insulin-related substances was measured by high-performance liquid chromatography (HPLC) using a Waters Kromasil 300A-5μm-C8 (4.6*250mm) column at a flow rate of 1.0mL / min, with the column temperature at 40℃ and the sample cell temperature at room temperature. Elution was performed with the following mobile phase: Phase A contained 0.1 M anhydrous sodium sulfate, 0.1 M sodium dihydrogen phosphate dihydrate, 10% acetonitrile (v / v), and the pH value was adjusted to 5.0 with NaOH. Phase B was 50% acetonitrile (v / v). Gradient: Linear change from 45% / 55% A / B to 35% / 65% A / B from 0 to 45 min, linear change to 20% / 80% A / B from 45 to 50 min, isocratic gradient to 20% / 80% A / B from 50 to 60 min, linear change to 45% / 55% A / B from 60 to 60.1 min, isocratic gradient to 45% / 55% A / B from 60.1 to 70 min. Table 4 shows the increase in the amount of related substances on days 14 and 20 relative to day 0 at 37°C.

[0144] [Table 4] From the above table, it can be seen that the amount of insulin-related substances in the acylated insulin preparations of the present invention also increases very slowly over time, demonstrating that the acylated insulin preparations are very stable. [Example]

[0145] The purpose of this experiment was to determine the chemical stability of the acylated insulin formulations of the present invention. The acylated insulin formulations in Tables 5 to 7 were prepared using the amounts of each component listed in Tables 5 to 7, following a process similar to that of Example 16. The changes in HMWP and related substances were also measured following a process similar to that of Example 16. Tables 5 to 7 below show the changes in HMWP and related substances for acylated insulin formulations using different formulation methods.

[0146] [Table 5]

[0147] [Table 6]

[0148] [Table 7] The above table shows that the amounts of HMWP and related substances in the acylated insulin preparations of this invention both increased slowly over time, and that the increases in HMWP and related substances were particularly slow as the Zn ion content increased or NaHPO was added, demonstrating the excellent chemical stability of the acylated insulin preparations of this invention. [Example]

[0149] The purpose of this experiment was to determine the chemical stability of the acylated insulin formulations of the present invention. The acylated insulin formulations in Table 8 were prepared using the amounts of each component in Table 8, following a process similar to that of Example 16. The changes in HMWP and related substances were also measured following a process similar to that of Example 16. The table below shows the changes in HMWP and related substances for acylated insulin formulations using different formulation methods.

[0150] [Table 8] The above table shows that the amount of HMWP and related substances in the acylated insulin preparations of this invention both increase slowly over time, demonstrating the excellent chemical stability of all acylated insulin preparations of this invention. [Example]

[0151] This experiment was designed to determine the chemical stability of the acylated insulin formulations of this invention.

[0152] Acylated insulin preparations Compound 4 was dissolved in 0.03% NaOH solution to a concentration of 2.4 mM, and the pH was adjusted to 7.4 with 4% NaOH solution. Phenol, m-cresol, glycerin, and sodium chloride were mixed according to the amounts of each component in the table below and added to the solution of Compound 4 to adjust the pH to 7.4. Zinc acetate was then added to the solution of Compound 4 in an average of three portions according to the amounts in the table below to adjust the pH to the final value. An acylated insulin preparation with a final insulin concentration of 1.2 mM (200 U / mL or 8.46 mg / mL) was prepared, where the Zn content is expressed as Zn / 6 moles of acylated insulin (abbreviated as "Zn / 6ins"). In this example, the chemical stability of the formulation may be demonstrated by the change in high molecular weight protein (HMWP) relative to day 0 after 14 and 21 days of storage at 25°C and 37°C, and by the change in the amount of related substances after 21 days of storage at 37°C.

[0153] Measurement of high molecular weight proteins (HMWPs) The high molecular weight protein (HMWP) content was measured by high-performance liquid chromatography (HPLC) using a Shodex™ PROTEIN KW-802.5 (8.0 mm x 300 mm) column at a flow rate of 0.5 mL / min, with a column temperature of 30°C and a sample cell temperature of 5°C, using a mobile phase containing 3 L of 0.1% arginine solution, 750 mL of glacial acetic acid, and 1250 mL of acetonitrile. The detection wavelength was 276 nm, and the sample injection volume was 10 μL. Table 9 shows the increase in HMWP on days 14 and 21 relative to day 0 at 25°C and 37°C.

[0154] [Table 9] The above table shows that the amount of HMWP in the acylated insulin preparations of this invention increases very slowly over time within the above pH range, demonstrating that the acylated insulin preparations of this invention have excellent chemical stability across the above pH range.

[0155] Measurement of the amount of related substances The content of insulin-related substances was measured by high performance liquid chromatography (HPLC) and tested on a Waters Kromasil 100A-3.5μm-C8 (4.6*250mm) column at a flow rate of 1.0mL / min with an elution phase at a column temperature of 40℃ and a sample cell temperature of 10℃. Elution was performed with the following mobile phase: Phase A contained 0.1 M anhydrous sodium sulfate, 0.1 M sodium dihydrogen phosphate dihydrate, 10% acetonitrile (v / v), and the pH value was adjusted to 3.0 with concentrated phosphoric acid. Phase B was 60% acetonitrile (v / v). Gradient: isocratic gradient of 41.3% / 58.7% A / B from 0 to 40 min, linear change to 0% / 100% A / B from 40 to 50 min, linear change to 41.3% / 58.7% A / B from 50 to 51 min, isocratic gradient to 41.3% / 58.7% A / B from 51 to 65 min. Table 10 shows the increase in related substances on day 21 relative to day 0 at 37°C.

[0156] [Table 10] The above table shows that the amount of related substances in the acylated insulin preparations of this invention changes very slowly over time in the above pH range, demonstrating that all of the above acylated insulin preparations of this invention have excellent chemical stability. [Example]

[0157] The purpose of this experiment was to determine the chemical stability of the acylated insulin formulations of the present invention. The acylated insulin formulations in Tables 11 and 12 were prepared using the amounts of each component in Tables 11 and 12, following a process similar to that of Example 19. The changes in HMWP and related substances were also measured following a process similar to that of Example 19. Tables 11 and 12 below show the changes in HMWP and related substances for acylated insulin formulations using different formulation methods.

[0158] [Table 11]

[0159] [Table 12] The above table shows that the amount of HMWP and related substances in the acylated insulin preparations of this invention both increase slowly over time, demonstrating the excellent chemical stability of all acylated insulin preparations of this invention. [Example]

[0160] This experiment was designed to determine the chemical stability of the acylated insulin formulations of this invention.

[0161] Acylated insulin preparations Compound 16 was dissolved in 0.08% NaOH solution to a final insulin concentration twice that of the original solution, and the pH was adjusted to 7.45 with 4% NaOH solution. Phenol, m-cresol, glycerin, and sodium chloride were added to the solution of Compound 16 according to the amounts of each component in the table below, and the resulting mixture was added to the solution of Compound 16 to adjust the pH to 7.4. Next, zinc acetate was added to the solution of Compound 16 in three portions on average according to the amounts in the table below, and the pH was adjusted to 7.4. Acylated insulin preparations with final insulin concentrations of 1.2 mM (9.43 mg / mL) or 1.5 mM (11.74 mg / mL) were prepared.

[0162] In this example, the chemical stability of the formulation may be demonstrated by the change in high molecular weight protein (HMWP) relative to day 0 after 14 and 21 days of storage at 25°C and 37°C, and also by the change in the amount of related substances after 14 and 21 days of storage at 25°C and 37°C.

[0163] Measurement of high molecular weight proteins (HMWPs) The amount of HMWP was measured according to a procedure similar to that in Example 19. Tables 13 to 15 show the increase in the amount of HMWP on days 14 and 21 relative to day 0 at 25°C and 37°C.

[0164] [Table 13]

[0165] [Table 14]

[0166] [Table 15] The above table shows that the amount of HMWP in the acylated insulin preparations of this invention increases very slowly over time, demonstrating that all of the acylated insulin preparations of this invention have excellent chemical stability.

[0167] Measurement of the amount of related substances The content of insulin-related substances was measured by high performance liquid chromatography (HPLC) and tested on a Waters Kromasil 300A-5μm-C4 (4.6*150mm) column at a flow rate of 1.0mL / min with an elution phase at a column temperature of 40℃ and a sample cell temperature of 10℃. Elution was performed with the mobile phase consisting of: Phase A contains 0.18 M anhydrous sodium sulfate, 10% acetonitrile (v / v), and is adjusted to a pH of 2.3 with 85% phosphoric acid. Phase B was 75% acetonitrile (v / v). Gradient: isocratic gradient of 48% / 52% A / B from 0 to 40 min, linear change to 0% / 100% A / B from 40 to 51 min, linear change to 48% / 52% A / B from 51 to 65 min. Tables 16 and 17 show the increase in the amount of related substances on days 14 and / or 21 relative to day 0 at 25°C and / or 37°C.

[0168] [Table 16]

[0169] [Table 17]

[0170] [Table 18] From the above table, it can be seen that the amount of insulin-related substances in the acylated insulin preparations of the present invention also increases very slowly over time, demonstrating that the acylated insulin preparations are very stable. [Example]

[0171] This experiment was designed to determine the chemical stability of the acylated insulin formulations of this invention.

[0172] Acylated insulin preparations Compound 16 was dissolved in a 10 mM, 50% final volume solution of disodium hydrogen phosphate to obtain a final insulin concentration twice the original concentration. The pH was then adjusted to the final value with 4% NaOH. Phenol, m-cresol, glycerin, and sodium chloride were mixed according to the amounts of each component in the table below, and added to the solution of Compound 16 to adjust the pH to the final value. Next, zinc acetate was added to the solution of Compound 16 in three portions on average according to the amounts in the table below, and the pH was adjusted to the final value. An acylated insulin preparation with a final insulin concentration of 1.5 mM (11.74 mg / mL) was prepared.

[0173] Additionally, HMWP was measured according to a procedure similar to that in Example 19, and changes in related substances were measured according to a procedure similar to that in Example 21. Tables 19 and 20 below show the changes in HMWP and related substances for acylated insulin preparations with different formulation methods.

[0174] [Table 19]

[0175] [Table 20] The above table shows that the amount of HMWP and related substances in the acylated insulin preparations of this invention both increase slowly over time, demonstrating the excellent chemical stability of all acylated insulin preparations of this invention. [Example]

[0176] Pharmacodynamic study in streptozotocin (STZ)-induced type 1 diabetes mellitus (T1DM) rats Eight-week-old female rats weighing 180–220 g were housed in appropriately designed enclosures (5 rats / box) in a barrier environment. They were provided with standard chow and purified water ad libitum. The environmental conditions were controlled at 40–60% relative humidity and 22–24°C. After a 4-day acclimation period, the rats were fasted for 12 h and then intraperitoneally injected with 60 mg / kg of streptozotocin (Sigma) solution (10 mg / mL in 0.1 M citrate buffer). After administration, glucose (20%) was appropriately supplemented in the drinking water to prevent sudden hypoglycemia. The supplementation was discontinued 12 h later. After 4 days of streptozotocin administration, random blood glucose monitoring was performed. Those with blood glucose levels above 20 mmol / L were selected as T1DM model rats for subsequent studies.

[0177] Before the start of the experiment, basal blood glucose was assessed at time -1 hour (9:30 AM) and rats were weighed. According to random blood glucose and body weight, rats were assigned to a vehicle group or a treatment group, and treated by subcutaneous injection of the vehicle or the title compound of Control Example 5 or Example 2 (Compound 2), respectively, at a dose of 67 U / kg. The vehicle contained phenol 60 mM, glycerin 15 mg / mL, disodium hydrogen phosphate 15 mM, and sodium chloride 10 mM, and the pH of the vehicle was 7.6.

[0178] The acylated insulin was dissolved in the solvent to a concentration of 67 U / mL, with a dose volume of 1 mL / kg (i.e., 0.1 mL / 100 g body weight). A single subcutaneous dose (sc) was administered subcutaneously in the dorsal neck. The acylated insulin was administered between approximately 9:30 and 10:00 AM (time 0), and blood glucose levels were monitored at 3, 6, 9, 24, 48, 72, 96, and 120 h after administration.

[0179] Time-blood glucose dose-response curves were constructed for each single dose of acylated insulin (control compound 5, compound 2). To explain the effect of acylated insulin on blood glucose, the area under the blood glucose-time curve (AUC) from 0 to the monitoring endpoint was calculated for each single dose-response curve. A smaller AUC value indicates a better blood glucose-lowering effect and better drug efficacy.

[0180] The experimental results, as shown in Figures 7a and 7b, indicate that the control compound 5 had a superior hypoglycemic effect to the acylated insulin compound 2 in female rats with type 1 diabetes mellitus (T1DM). [Example]

[0181] B29K(N(ε)-Docosand Hey le-γGlu-12xOEG), desB30 human insulin (compound 17)

[0182] [ka] Compound B29K (N(ε)-docosandy) was prepared according to a procedure similar to that of Part 2 of Example 1. Hey Human insulin (de-γGlu-12xOEG), desB30, and desB30 were prepared. LC-MS (electrospray): m / z = 1585.98 [M+5H] 5+ Intermediates tert-Butyldocosandioyl-γGlu-(12xOEG-OSu)-OtBu was prepared according to steps similar to those in Example 1, Part 3. LC-MS(Scie×100API): m / z=2451.38(M+1)+ [Example]

[0183] A14E, B16H, B25H, B29K (N(ε)-docosand Hey Glu-γGlu-18xOEG), desB30 human insulin (compound 18)

[0184] [ka] Compounds A14E, B16H, B25H, B29K (N(ε)-docosandine) were synthesized according to a procedure similar to that of Part 1 of Control Example 5. Hey (γGlu-18xOEG), desB30 human insulin was prepared. LC-MS (electrospray): m / z = 1247.47 [M+7H] 7+ Intermediate tert-butyl docosanol Hey The preparation of 18xOEG-γGlu-(18xOEG-OSu)-OtBu was carried out following steps similar to those in Control Example 5, Part 2. LC-MS(Scie×100API): m / z=3320.83(M+1) + [Example]

[0185] A14E, B16H, B25H, B29K (N(ε)-docosand Hey desB30 human insulin (compound 19)

[0186] [ka] Compounds A14E, B16H, B25H, B29K (N(ε)-docosandine) were synthesized according to a procedure similar to that of Part 1 of Control Example 5. Hey Human insulin (de-γGlu-24xOEG) and desB30 were prepared. LC-MS (electrospray): m / z = 873.35 [M+11H] 11+ Intermediate tert-butyl docosanol Hey The preparation of ru-γGlu-(24xOEG-OSu)-OtBu was carried out following steps similar to those in Control Example 5, Part 2. LC-MS(Scie×100API): m / z=4192.27(M+1) + [Example]

[0187] Receptor binding ability of the insulin derivatives of the present invention This test aims to demonstrate the ability of the insulin derivatives of the present invention to bind to the insulin receptor. Surface plasmon resonance (SPR) analysis was performed to test the binding ability of compound 15 and control compound 5 to the His-tagged insulin receptor A extracellular domain (IRA, Sino Biological) in the absence and presence of human serum albumin (HSA), respectively. Compound 15 and control compound 5 were diluted with running buffer (Cytiva) or running buffer containing 2.0% HSA to achieve injection concentrations of 12,800 nM and 25,600 nM, respectively. An NTA sensor chip (Cytiva) was selected, and SPR analysis was performed on a Biacore T200 (Cytiva) at 25°C. 0.5 M NiCl2 (Cytiva) was injected at a flow rate of 10 μL / min for 60 s, followed by washing with HBS-EP buffer (Cytiva). To allow the IRA receptor to bind to the chip surface, 3 μg / mL of IRA receptor was injected for 180 s at a flow rate of 5 μL / min. The insulin derivative sample to be tested was then injected at a flow rate of 30 μL / min for 60 s, followed by a 60 s dissociation period. After each injection, the chip was regenerated by injecting 350 mM EDTA (Cytiva) at a flow rate of 10 μL / min for 60 s, and finally washed with HBS-P buffer (Cytiva) to detect the next sample. The response value 4 s before sample dissociation was selected as the receptor binding strength test result. The test was repeated three times for each sample, and the measurement results are shown in Figures 8a and 8b.

[0188] Figures 8a and 8b show the receptor binding ability of Compound 15 and Control Compound 5 in the presence of 2% HSA (simulating physiological conditions) compared to the case of 0% HSA. As can be seen from Figures 8a and 8b, in the presence of 2% HSA, Compound 15 has a significantly improved receptor binding ability compared to Control Compound 5, which is unexpected, and the effect of albumin on the receptor binding ability of the insulin derivative Compound 15 of the present invention is significantly reduced compared to Control Compound 5. [Example]

[0189] Receptor binding ability of the insulin derivatives of the present invention This test aims to demonstrate the ability of the insulin derivatives of the present invention to bind to the insulin receptor. The binding ability test between compound 17 and control compound 2 and IRA was carried out in the absence and presence of 2% human serum albumin (HSA) by a method similar to that in Example 27, except that the injection concentrations of the samples of compound 17 and control compound 2 were both 400 nM. The measurement results are shown in Figure 9.

[0190] Figure 9 shows the receptor binding ability of Compound 17 and Control Compound 2 in the presence of 2% HSA (simulating physiological conditions) compared to the case of 0% HSA. As can be seen from Figure 25, in the presence of 2% HSA, Compound 17 has significantly improved receptor binding ability compared to Control Compound 2, and the effect of albumin on the receptor binding ability of the insulin derivative Compound 17 of the present invention is significantly reduced compared to Control Compound 2.

[0191] This demonstrates that in the presence of albumin, insulin derivatives of the present invention, such as compound 17, have significantly improved receptor binding ability compared to control compound 2, which is unexpected. In other words, the effect of albumin on the receptor binding ability of the insulin derivatives of the present invention is significantly reduced compared to control compound 2. [Example]

[0192] Receptor binding ability of the insulin derivatives of the present invention This test aims to demonstrate the ability of the insulin derivatives of the present invention to bind to the insulin receptor. Using a method similar to that described in Example 27, the insulin derivatives Compound 16 and Compound 18 of the present invention and the control Compound 5 were tested for their IRA binding ability in the absence and presence of human serum albumin (HSA), respectively. The results are shown in Figures 10a and 10b.

[0193] Figures 10a and 10b show the receptor binding abilities of Compounds 16, 18, and Control Compound 5 in the presence of 2% HSA (simulating physiological conditions) compared to 0% HSA. As can be seen from Figures 10a and 10b, in the presence of 2% HSA, Compounds 16 and 18 have significantly improved receptor binding abilities compared to Control Compound 5, which is unexpected, and the effect of albumin on the receptor binding ability of the insulin derivatives of the present invention is significantly reduced compared to Control Compound 5.

[0194] Although the present invention has been described with reference to the above embodiments, it should be understood that the above embodiments are merely for illustrative and explanatory purposes and are not intended to limit the present invention to the scope of the described embodiments. Furthermore, those skilled in the art will understand that the present invention is not limited to the above embodiments, and that many further variations and modifications can be made based on the teachings of the present invention, and that all of these variations and modifications are included within the scope of the claims of the present invention. The scope of the claims of the present invention is limited by the scope of the appended claims and their equivalents.

[0195] array SEQ ID NO:1: DesB30 human insulin A chain: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Tyr Gln Leu Glu Asn Tyr Cys Asn SEQ ID NO:2: DesB30 human insulin B chain: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu Tyr Leu Val Cys Gly Glu Arg Gly Phe Phe Tyr Thr Pro Lys Allocation number 3: A14E, B16H, B25H, desB30ヒトインスリンA lock: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Glu Gln Leu Glu Asn Tyr Cys Asn Allocation number 4: A14E, B16H, B25H, desB30ヒトインスリンB lock: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu His Leu Val Cys Gly Glu Arg Gly Phe His Tyr Thr Pro Lys Allocation number 5: A14E, B16E, B25H, desB30ヒトインスリンA lock: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Glu Gln Leu Glu Asn Tyr Cys Asn Allocation number 6: A14E, B16E, B25H, desB30ヒトインスリンB lock: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu Glu Leu Val Cys Gly Glu Arg Gly Phe His Tyr Thr Pro Lys Allocation number 7: ヒトインスリンA lock: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Tyr Gln Leu Glu Asn Tyr Cys Asn Allocation number 8: ヒトインスリンB lock: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu Tyr Leu Val Cys Gly Glu Arg Gly Phe Phe Tyr Thr Pro Lys Thr Allocation number 9: A21G ヒトインスリンA lock: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Tyr Gln Leu Glu Asn Tyr Cys Gly Allocation number 10: A21G ヒトインスリンB lock: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu Tyr Leu Val Cys Gly Glu Arg Gly Phe Phe Tyr Thr Pro Lys Thr Allocation number 11: A21G、desB30ヒトインスリンA lock: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Tyr Gln Leu Glu Asn Tyr Cys Gly Allocation number 12: A21G、desB30ヒトインスリンB lock: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu Tyr Leu Val Cys Gly Glu Arg Gly Phe Phe Tyr Thr Pro Lys Allocation number 13: B28D ヒトインスリンA lock: Gly Ile Val Glu Gln Cys Cys Thr Ser Ile Cys Ser Leu Tyr Gln Leu Glu Asn Tyr Cys Asn Allocation number 14: B28D ヒトインスリンB lock: Phe Val Asn Gln His Leu Cys Gly Ser His Leu Val Glu Ala Leu Tyr Leu Val Cys Gly Glu Arg Gly Phe Phe Tyr Thr Asp Lys Thr Picture 15: GLP-1-(7-37)ペプチド His Ala Glu Gly Thr Phe Thr Ser Asp Val Ser Ser Tyr Leu Glu Gly Gln Ala Ala Lys Glu Phe Ile Ala Trp Leu Val Lys Gly Arg Gly Picture 16: [Gly8、Arg34]GLP-1-(7-37)ペプチド His Gly Glu Gly Thr Phe Thr Ser Asp Val Ser Ser Tyr Leu Glu Gly Gln Ala Ala Lys Glu Phe Ile Ala Trp Leu Val Arg Gly Arg Gly Picture 17: [Arg34]GLP-1-(7-37)ペプチド His Ala Glu Gly Thr Phe Thr Ser Asp Val Ser Ser Tyr Leu Glu Gly Gln Ala Ala Lys Glu Phe Ile Ala Trp Leu Val Arg Gly Arg Gly

Claims

1. 1. An insulin derivative comprising a parent insulin, an albumin binding residue, and a linking group Lin, wherein the albumin binding residue is linked to the parent insulin via the linking group Lin, The linking group Lin comprises 11 to 30 neutral alkylene glycol-containing amino acid residues, wherein the neutral alkylene glycol-containing amino acid residues are selected from the group consisting of: -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-, -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-, -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-, -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -COO-,-HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-(CH 2 ) 2 -COO-,-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-CH 2 -O-CH 2 -COO-,-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-(CH 2 ) 2 -COO-,-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -COO-,-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -NH-CO-(CH 2 ) 2 -COO-,-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -NH-CO-CH 2 -O-CH 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 3 -O-CH 2 -CO-, or -HN-(CH 2 ) 4 -O-(CH 2 ) 4 -O-CH 2 -CO-, and the albumin binding residue is a fatty acid or aliphatic diacid containing 20 to 26 carbon atoms, provided that in form, a hydroxy group has been removed from one of the carboxy groups of the fatty acid and the carboxy group of the aliphatic diacid; the insulin parent is selected from the group consisting of desB30 human insulin; A14E, B16H, B25H, desB30 human insulin; A14E, B16E, B25H, desB30 human insulin; human insulin; A21G human insulin; A21G, desB30 human insulin; and B28D human insulin; the parent insulin comprises at least one lysine residue at position B29, and the albumin binding residue is linked to the lysine residue at position B29 of the parent insulin or to the amino group of the N-terminal amino acid residue via the linking group Lin; Insulin derivatives.

2. 2. The insulin derivative of claim 1, further comprising one or more linking groups II, wherein the linking group II is an acidic amino acid residue and the linking group II is connected between the albumin binding residue and the linking group Lin and / or between the linking group Lin and the insulin parent, and the acidic amino acid residue is selected from the group consisting of γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp and α-D-Asp.

3. The insulin derivative of claim 1, wherein the linking group Lin comprises 12 to 30 neutral amino acid residues containing alkylene glycol.

4. The insulin derivative of claim 1, wherein the linking group Lin comprises 12 to 20 neutral amino acid residues containing alkylene glycol.

5. an acylated insulin, wherein the insulin parent of the acylated insulin contains at least one lysine residue at position B29 and is selected from the group consisting of desB30 human insulin; A14E, B16H, B25H, desB30 human insulin; A14E, B16E, B25H, desB30 human insulin; human insulin; A21G human insulin; A21G, desB30 human insulin; and B28D human insulin; The acyl moiety of the acylated insulin is linked to the lysine residue at position B29 of the parent insulin or to the amino group of the N-terminal amino acid residue, and the acyl moiety of the acylated insulin has formula (A), i.e., III-(II) m -(I) n - (A) however, m is 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, or 10, and n is an integer from 11 to 30; I is the neutral amino acid residue containing alkylene glycol, and is one of the following: -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-, -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-, -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-, -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -COO-,-HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-(CH 2 ) 2 -COO-,-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-CH 2 -O-CH 2 -COO-,-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-(CH 2 ) 2 -COO-,-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -COO-,-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -NH-CO-(CH 2 ) 2 -COO-,-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -NH-CO-CH 2 -O-CH 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 3 -O-CH 2 -CO-, or -HN-(CH 2 ) 4 -O-(CH 2 ) 4 -O-CH 2 -CO- and II is an acidic amino acid residue and is selected from the group consisting of γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp and α-D-Asp. III is a fatty acid or aliphatic diacid containing 20 to 26 carbon atoms, provided that, in form, a hydroxy group has been removed from one of the carboxy groups of the aliphatic diacid; III, II and I are connected by an amide bond, and The order of appearance of II and I in formula (A) is independently interchangeable; The insulin derivative according to any one of claims 1 to 4.

6. n is an integer of 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20, and 6. The insulin derivative of claim 5, wherein III is an aliphatic diacid containing 20 to 26 carbon atoms.

7. Insulin derivative according to claims 1, 5 and 6, wherein the fatty acid or the fatty diacid contains 20 to 24 carbon atoms.

8. n is 11, 12, 13, 14, 15, 16, 17 or 18, and / or m is 1, 2, 3 or 4, and / or III is an aliphatic diacid containing 20, 21 or 22 carbon atoms, provided that, in form, a hydroxy group has already been removed from one of the carboxy groups of the aliphatic diacid; and / or The insulin parent contains one lysine residue.

7. The insulin derivative according to claim 5 or 6.

9. 9. The insulin derivative of claim 8, wherein n is 11, 12, 13, 14 or 15.

10. 9. The insulin derivative of claim 8, wherein m is 1.

11. I is -HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-, and / or II is γGlu and βAsp, and / or III is HOOC-(CH 2 ) 18 -CO-, HOOC-(CH 2 ) 19 -CO-, HOOC-(CH 2 ) 20 -CO-, HOOC-(CH 2 ) 21 -CO-, HOOC-(CH 2 ) 22 -CO- or HOOC-(CH 2 ) 24 -CO-. The insulin derivative according to any one of claims 5 to 10.

12. 12. The insulin derivative of claim 5, wherein formula (A) is linked via the C-terminus of I to the amino group of a lysine residue or the N-terminal amino acid residue of the insulin parent.

13. 13. The insulin derivative of claim 5, wherein the acyl moiety is linked to the ε-amino group of a lysine residue in the parent insulin.

14. 14. The insulin derivative according to any one of claims 1 to 13, wherein the parent insulin is desB30 human insulin; A14E, B16H, B25H, desB30 human insulin; or A14E, B16E, B25H, desB30 human insulin.

15. The acylated insulins include B29K(N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-γGlu-11xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-γGlu-12xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-11xOEG-γGlu), desB30 human insulin; B29K(N(ε)-eicosandioyl-12xOEG-γGlu), desB30 human insulin; B29K (N(ε)-eicosandioyl-12xOEG-γGlu-γGlu), desB30 human insulin; B29K (N(ε)-eicosandioyl-11xOEG-γGlu-γGlu), desB30 human insulin; B29K (N(ε)-eicosandioyl-βAsp-11xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-βAsp-12xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αGlu-11xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αGlu-12xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αGlu-αGlu-11xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αGlu-αGlu-12xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αAsp-11xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αAsp-12xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-13xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-γGlu-13xOEG), desB30 human insulin;B29K(N(ε)-eicosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-13xOEG-γGlu), desB30 human insulin; B29K(N(ε)-eicosandioyl-14xOEG-γGlu), desB30 human insulin; B29K(N(ε)-eicosandioyl-14xOEG-γGlu-γGlu), desB30 human insulin; B29K(N(ε)-eicosandioyl-13xOEG-γGlu-γGlu), desB30 human insulin; B29K(N(ε)-eicosandioyl-βAsp-13xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-βAsp-14xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-αGlu-13xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-αGlu-14xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-αGlu-αGlu-13xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-αGlu-αGlu-14xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-αAsp-13xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-αAsp-14xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-γGlu-11xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-γGlu-12xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-11xOEG-γGlu), desB30 human insulin; B29K (N(ε)-docosandioyl-12xOEG-γGlu), desB30 human insulin; B29K (N(ε)-docosandioyl-12xOEG-γGlu-γGlu), desB30 human insulin;B29K(N(ε)-docosandioyl-11xOEG-γGlu-γGlu), desB30 human insulin; B29K(N(ε)-docosandioyl-βAsp-11xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-βAsp-12xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-αGlu-11xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-αGlu-12xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-αGlu-αGlu-11xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αGlu-αGlu-12xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αAsp-11xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αAsp-12xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-13xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-γGlu-13xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-13xOEG-γGlu), desB30 human insulin; B29K(N(ε)-docosandioyl-14xOEG-γGlu), desB30 human insulin; B29K(N(ε)-docosandioyl-14xOEG-γGlu-γGlu), desB30 human insulin; B29K(N(ε)-docosandioyl-13xOEG-γGlu-γGlu), desB30 human insulin; B29K(N(ε)-docosandioyl-βAsp-13xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-βAsp-14xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αGlu-13xOEG), desB30 human insulin;B29K (N(ε)-docosandioyl-αGlu-14xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αGlu-αGlu-13xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αGlu-αGlu-14xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αAsp-13xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-αAsp-14xOEG), desB30 human insulin; B29K (N(ε)-heneicosandioyl-γGlu-11xOEG), desB30 human insulin; B29K (N(ε)-heneicosandioyl-γGlu-12xOEG), desB30 human insulin; B29K (N(ε)-heneicosandioyl-γGlu-13xOEG), desB30 human insulin; B29K (N(ε)-heneicosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-tricosandioyl-γGlu-11xOEG), desB30 human insulin; B29K (N(ε)-tricosandioyl-γGlu-12xOEG), desB30 human insulin; B29K (N(ε)-tricosandioyl-γGlu-13xOEG), desB30 human insulin; B29K (N(ε)-tricosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-tetracosandioyl-γGlu-11xOEG), desB30 human insulin; B29K (N(ε)-tetracosandioyl-γGlu-12xOEG), desB30 human insulin; B29K (N(ε)-tetracosandioyl-γGlu-13xOEG), desB30 human insulin; B29K (N(ε)-tetracosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-15xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-16xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-15xOEG), desB30 human insulin;or B29K (N(ε)-docosandioyl-γGlu-16xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-11xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-12xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-12xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-11xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-βAsp-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-βAsp-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-11xOEG), de; sB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αAsp-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αAsp-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-13xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-14xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-14xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-13xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-βAsp-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-βAsp-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-14xOEG), desB30 human insulin;A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αAsp-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-αAsp-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-11xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-12xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-12xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-11xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-βAsp-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-βAsp-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-11xOEG), desB30 human insulin;A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αAsp-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αAsp-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-13xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-14xOEG-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-14xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-13xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-βAsp-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-βAsp-14xOEG), desB30 human insulin;A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αAsp-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-αAsp-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-heneicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-heneicosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-heneicosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-heneicosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tricosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tricosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tricosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tricosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tetracosandioyl-γGlu-11xOEG), desB30 human insulin;A14E, B16H, B25H, B29K (N(ε)-tetracosanedioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tetracosanedioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-tetracosanedioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docossanedioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-11xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-12xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-12xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-11xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-βAsp-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-βAsp-12xOEG), desB30 human insulin; A14E, B16E, B25H, B; 29K (N(ε)-eicosandioyl-αGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αAsp-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αAsp-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-13xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-14xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-14xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-13xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-βAsp-13xOEG), desB30 human insulin;A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-βAsp-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αGlu-αGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αAsp-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-αAsp-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-11xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-12xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-12xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-11xOEG-γGlu-γGlu), desB30 human insulin;A14E, B16E, B25H, B29K (N(ε)-docosandioyl-βAsp-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-βAsp-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αAsp-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αAsp-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-13xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-14xOEG-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-14xOEG-γGlu-γGlu), desB30 human insulin;A14E, B16E, B25H, B29K (N(ε)-docosandioyl-13xOEG-γGlu-γGlu), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-βAsp-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-βAsp-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αGlu-αGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αAsp-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-αAsp-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-heneicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-heneicosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-heneicosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-heneicosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tricosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tricosandioyl-γGlu-12xOEG), desB30 human insulin;A14E, B16E, B25H, B29K (N(ε)-tricosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tricosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tetracosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tetracosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tetracosanedioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-tetracosanedioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosanedioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docossanedioyl-γGlu-15xOEG), desB30 human insulin; selected from the following insulins: A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-18xOEG), desB30 human insulin; or A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-24xOEG), desB30 human insulin; The insulin derivative according to claim 5.

16. The acylated insulins include B29K(N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-13xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-13xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-14xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-15xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-14xOEG), desB30 human insulin;A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-13xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-14xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-15xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-15xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-16xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-17xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-16xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-17xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-18xOEG), desB30 human insulin;B29K (N(ε)-eicosandioyl-γGlu-19xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-18xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-19xOEG), desB30 human insulin; B29K (N(ε)-eicosandioyl-γGlu-20xOEG), desB30 human insulin; B29K (N(ε)-docosandioyl-γGlu-20xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-16xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-17xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-16xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-17xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-18xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-19xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-18xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-19xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-20xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-20xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-16xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-17xOEG), desB30 human insulin;A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-16xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-17xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-18xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-19xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-18xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-19xOEG), desB30 human insulin; A14E, B16E, B25H, B29K (N(ε)-eicosandioyl-γGlu-20xOEG), desB30 human insulin; 7. The insulin derivative according to claim 5 or 6, selected from the group consisting of A14E, B16E, B25H, B29K (N(ε)-docosandioyl-γGlu-20xOEG), desB30 human insulin; or A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-24xOEG), desB30 human insulin.

17. A pharmaceutical composition comprising an insulin derivative according to any one of claims 1 to 16 and one or more pharmaceutically acceptable excipients, wherein: containing at least 1.5 moles of zinc ions per 6 moles of insulin derivative, and / or The pH is 6.5 to 8.5, where: Glycerin, phenol, m-cresol, NaCl, and / or Na 2 HPO 4 and wherein: the glycerin content does not exceed 2.5% (w / w), and / or the phenol content is between 16 and 80 mM, and / or the m-cresol content is 0 to 35 mM; and / or the NaCl content is between 0 and 150 mM; and / or The Na 2 HPO 4 and / or The content of the insulin derivative is greater than 0.3 mM; Drug composition.

18. 0.6-4.2 mM of an insulin derivative according to any one of claims 1-16, 1%-1.8% (w / w) glycerin, 45-65 mM phenol, 4.5-6.5 moles of zinc ions / 6 moles of insulin derivative, 10-120 mM sodium chloride, and about 0-15 mM m-cresol, at a pH of 7.0-8.2; 0.6 mM or 1.2 mM of an insulin derivative according to any one of claims 1 to 16, 1.7% (w / w) glycerin, 45 mM phenol, 10 mM m-cresol, 6.5 moles of zinc ions / 6 moles of insulin derivative, and 20 mM sodium chloride, at a pH of 7.0 to 8.0; 17. A pharmaceutical composition comprising 0.6 mM to 4.2 mM of an insulin derivative according to any one of claims 1 to 16, 1% to 2% (w / w) of glycerin, 15 mM to 60 mM of phenol, 0 to 25 mM of m-cresol, 1.5 to 7.0 moles of zinc ions per 6 moles of insulin derivative, and 10 to 120 mM of sodium chloride, and having a pH value of 7.0 to 8.

0.

19. 19. The pharmaceutical composition of claim 18, comprising 1.2 mM to 1.5 mM of the insulin derivative of any one of claims 1 to 16, 1.5% to 1.7% (w / w) of glycerin, 45 mM to 60 mM of phenol, 0 to 10 mM of m-cresol, 2.2 to 2.5 moles of zinc ions per 6 moles of the insulin derivative, and 20 mM of sodium chloride, with a pH value of 7.0 to 8.

0.

20. 19. The pharmaceutical composition of claim 18, comprising 0.6 mM to 4.2 mM of the insulin derivative of any one of claims 1 to 16, 1.5% to 1.7% (w / w) of glycerin, 45 mM to 60 mM of phenol, 0 to 10 mM of m-cresol, 2.2 to 4.5 moles of zinc ions per 6 moles of insulin derivative, and 20 to 50 mM of sodium chloride, with a pH value of 7.0 to 8.

0.

21. The insulin derivatives include B29K(N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; B29K(N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; B29K(N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin; A14E, B16H, B25H, B29K(N(ε)-eicosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-11xOEG), desB30 human insulin; A14E, B16H, B25H, B29K (N(ε)-eicosandioyl-γGlu-12xOEG), desB30 human insulin; or A14E, B16H, B25H, B29K (N(ε)-docosandioyl-γGlu-12xOEG), desB30 human insulin. The pharmaceutical composition according to any one of claims 17 to 20.

22. The pharmaceutical composition according to any one of claims 17 to 21, further comprising an insulinotropic GLP-1 compound.

23. Formula (B), i.e., [Acy-(L1) r -(L2) q ]-G1 (B) or a pharmaceutically acceptable salt, amide or ester thereof, where G1 is a GLP-1 analog with Arg at position 34 and Ala or Gly at position 8, corresponding to GLP-1(7-37) (SEQ ID NO: 15), and [Acy-(L1) r -(L2) q is a substituent linked to the epsilon amino group of the Lys residue at position 26 of said GLP-1 analog, with the proviso that r is an integer from 1 to 10, q is 0 or an integer from 1 to 10, Acy is an aliphatic diacid containing 20 to 24 carbon atoms, provided that, in form, a hydroxy group has already been removed from one of the carboxy groups of the aliphatic diacid; L1 is an amino acid residue selected from γGlu, αGlu, βAsp, αAsp, γ-D-Glu, α-D-Glu, β-D-Asp, and α-D-Asp; L2 is the neutral alkylene glycol-containing amino acid residue; Acy, L1 and L2 are linked by an amide bond, and The order of appearance of L1 and L2 in formula (B) is independently interchangeable.

23. The pharmaceutical composition of claim 22.

24. G1 is [Gly8,Arg34]GLP-1-(7-37) peptide (SEQ ID NO: 16) or [Arg34]GLP-1-(7-37) peptide (SEQ ID NO: 17), and / or r is 1, 2, 3, 4, 5 or 6, and / or q is 0, 1, 2, 3, 4, 5, 6, 7 or 8, and / or Acy is an aliphatic diacid containing 20 to 23 carbon atoms; 24. The pharmaceutical composition of claim 23.

25. L2は-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-、-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-、-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-、-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -CO-、-HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-、-HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -COO-、-HN-(CH 2 ) 3 -O-(CH 2 ) 4 -O-(CH 2 ) 3 -NH-CO-(CH 2 ) 2 -COO-、-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-CH 2 -CO-CH 2 -O-CH 2 -COO-、-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-(CH 2 ) 2 -COO-、-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 -NH-CO-CH 2 -O-CH 2 -COO-、-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -NH-CO-(CH 2 ) 2 -COO-、-HN-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -NH-CO-CH 2 -O-CH 2 -COO-、-HN-(CH 2 ) 3 -O-(CH 2 ) 2 -O-(CH 2 ) 2 -O-(CH 2 ) 3 —NH—CO—CH 2 -O-CH 2 -CO-, -HN-(CH 2 ) 3 -O-(CH 2 ) 3 -O-CH 2 -CO-, or -HN-(CH 2 ) 4 -O-(CH 2 ) 4 -O-CH 2 -CO-, and / or L1 is selected from γGlu or βAsp, and / or Acy is HOOC-(CH 2 ) 18 -CO-, HOOC-(CH 2 ) 19 -CO-, HOOC-(CH 2 ) 20 -CO-, HOOC-(CH 2 ) 21 -CO- or HOOC-(CH 2 ) 22 -CO-.

25. The pharmaceutical composition of claim 23 or 24.

26. The pharmaceutical composition according to any one of claims 23 to 25, wherein in formula (B), Acy, L1 and L2 are linked in order by an amide bond, and the C-terminus of L2 is linked to the ε-amino group of the Lys residue at position 26 of the GLP-1 analogue.

27. The insulinotropic GLP-1 compound comprises N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[21-carboxyheneicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(23-carboxytricosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[23-carboxytricosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(23-carboxytricosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(21-carboxyheneicosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(19-carboxynonadecanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[19-carboxynonadecanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(21-carboxyheneicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[21-carboxyheneicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(23-carboxytricosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[23-carboxytricosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -(23-carboxytricosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -(19-carboxynonadecanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -(21-carboxyheneicosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(20-carboxyeicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[20-carboxyeicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(22-carboxydocosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[22-carboxydocosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(20-carboxyeicosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -(22-carboxydocosanoylamino)-4(S)-carboxybutyryl-[Gly8,Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(20-carboxyeicosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[20-carboxyeicosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(2-[2-(2-[4-(22-carboxydocosanoylamino)-4(S)-carboxybutyrylamino]ethoxy)ethoxy]acetylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -[2-(2-[2-(4-[22-carboxydocosanoylamino]-4(S)-carboxybutyrylamino)ethoxy]ethoxy)acetyl][Arg34]GLP-1-(7-37) peptide, N-ε 26 -(20-carboxyeicosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, or N-ε 26 -(22-carboxydocosanoylamino)-4(S)-carboxybutyryl-[Arg34]GLP-1-(7-37) peptide, The pharmaceutical composition according to any one of claims 22 to 26.

28. An insulin derivative according to any one of claims 1 to 16 or a pharmaceutical composition according to any one of claims 17 to 27 for use in the treatment or prevention of diabetes, hyperglycemia, and / or impaired glucose tolerance.

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