FGF21 compound / GLP-1R agonist combination with optimized activity ratio

Optimizing the activity ratio of FGF21 and GLP-1R agonists in a combination therapy addresses adverse effects, enhancing therapeutic efficacy for obesity and diabetes treatment by balancing plasma concentration requirements.

JP7756671B2Active Publication Date: 2025-10-20SANOFI SA(FR)
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Patent Information

Application Number
JP2023035130
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2016-12-22
Filing Date
2023-03-08
Publication Date
2025-10-20
Estimated Expiration
2037-12-22

AI Technical Summary

Technical Problem

Existing combinations of FGF21 compounds and GLP-1R agonists for treating obesity and diabetes face challenges in achieving beneficial effects while minimizing adverse effects such as nausea and vomiting, due to differing plasma concentration requirements and potential GLP-1-mediated side effects.

Method used

A combination of FGF21 and GLP-1R agonists with optimized activity ratios, where the GLP-1R agonist activity is 9- to 531-fold lower than native GLP-1(7-36), ensuring FGF21 activity remains similar to native FGF21, to balance therapeutic benefits and minimize adverse effects.

Benefits of technology

The optimized ratio achieves significant reductions in body weight, blood glucose, and plasma lipids, improving insulin sensitivity and glycemic control while reducing gastrointestinal adverse effects like nausea and vomiting.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an optimal GLP-1R (glucagon-like peptide-1 receptor) agonist / FGF21 (fibroblast growth factor 21) compound activity ratio that achieves beneficial effects while avoiding potential adverse effects, as well as corresponding combinations, pharmaceutical compositions, and fusion molecules with the optimal activity ratio. [Solution] A combination comprising an FGF21 compound and a GLP-1R agonist, wherein the FGF21 compound has FGF21 activity that is the same as or substantially the same as the FGF21 activity of native FGF21, and the GLP-1R agonist has GLP-1R agonist activity that is 9 to 531 times lower than the GLP-1R agonist activity of native GLP-1(7-36).
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Description

[Technical Field]

[0001] The present invention relates to combinations, pharmaceutical compositions, and fusion molecules comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist, with an optimized GLP-1R agonist / FGF21 compound activity ratio. The present invention further relates to their use as pharmaceuticals, particularly for the treatment of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and / or atherosclerosis. [Background technology]

[0002] Administration of fibroblast growth factor 21 (FGF21) compounds, such as recombinantly produced FGF21 polypeptides, results in significant reductions in body weight, blood glucose, and plasma lipids, as well as improved insulin sensitivity, as demonstrated, for example, by non-patent literature 1 and non-patent literature 2. Glucagon-like peptide-1 receptor (GLP-1R) agonists provide effective glucose and body weight reduction in humans, as demonstrated, for example, by non-patent literature 3 and non-patent literature 4. The combination of the beneficial effects of FGF21 administration and the glucose-lowering effect of GLP-1 receptor agonists surprisingly resulted in a synergistic effect that provided a more comprehensive treatment of diseases / disorders, such as obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and / or atherosclerosis (see, for example, patent literature 1 and patent literature 2).

[0003] For example, a combination of an FGF21 compound and a GLP-1R agonist, for example in the form of a fusion protein, can be used to improve glycemic control in overweight versus obese dyslipidemic patients with, for example, type 2 diabetes.

[0004] In particular, FGF21 and GLP-1 (as primary GLP-1R agonist) produce pharmacological effects at different plasma concentrations. More specifically, FGF21 effects are more effective at higher plasma levels than GLP-1 effects. Furthermore, at higher levels, GLP-1 is known to have adverse effects, such as nausea and vomiting. Taken together, this implies the potential risk of GLP-1-mediated adverse effects when administering the combination of FGF21 compound and GLP-1R agonist, for example, in the form of fusion protein. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] WO2011 / 089203A1 [Patent Document 2] WO2014 / 037373A1 [Non-patent literature]

[0006] [Non-Patent Document 1] Gaich et al. (2013) Cell Metab 18(3): pp. 333-340 [Non-patent document 2] Dong et al. (2015) Br J Clin Pharmacol 80(5):1051~1063 [Non-patent document 3] Astrup et al. (2012) Int J Obes (Lond) 36(6):843-854 [Non-patent document 4] Nauck et al. (2013) Diabetes Obes Metab 15(3):204-212 Summary of the Invention [Problem to be solved by the invention]

[0007] Therefore, an object of the present invention was to determine the optimal GLP-1R agonist / FGF21 compound activity ratio to achieve beneficial effects while avoiding potential adverse effects (e.g., nausea and vomiting).A further object of the present invention was to provide corresponding combinations, pharmaceutical compositions, and fusion molecules with optimal GLP-1R agonist / FGF21 compound activity ratios. [Means for solving the problem]

[0008] In one aspect, the present invention provides a combination comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist, the FGF21 compound has an FGF21 activity that is the same as or substantially the same as the FGF21 activity of native FGF21; The GLP-1R agonist relates to a combination having a GLP-1R agonist activity that is 9- to 531-fold (or 9.449- to 531.0-fold) lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0009] In one embodiment, FGF21 activity refers to activation of the FGF21 receptor. In one embodiment, the term refers to in vitro activity. In one embodiment, FGF21 receptor activation is determined by measuring the autophosphorylation of the FGF21 receptor in contact with an FGF21 compound in vitro. In one embodiment, FGF21 activity is determined using an in-cell Western (ICW) assay, for example, essentially as described in Example 3.

[0010] In one embodiment, GLP-1R agonist activity refers to the activation of GLP-1 receptor. In one embodiment, the term refers to in vitro agonist activity. In one embodiment, the activation of GLP-1 receptor is determined by measuring the cAMP response of cells stably expressing GLP-1 receptor in contact with an agonist in vitro. In one embodiment, the activation of GLP-1 receptor is determined essentially as described in Example 4.

[0011] In one embodiment, the GLP-1R agonist has a GLP-1R agonist activity that is 9-fold to 482-fold (or 9.449-fold to 482.396-fold) or 9-fold to 319-fold (or 9.449-fold to 319.311-fold) or 9-fold to 121-fold (or 9.449-fold to 121.189-fold) less than the GLP-1R agonist activity of native GLP-1(7-36).

[0012] In one embodiment, the GLP-1R agonist has a GLP-1R agonist activity that is 9- to 319-fold lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0013] In one embodiment, the GLP-1R agonist has GLP-1R agonist activity that is at least 9.4-fold less, or at least 9.45-fold less, or at least 9.5-fold less, than the GLP-1R agonist activity of native GLP-1(7-36).

[0014] In one embodiment, the GLP-1R agonist has a GLP-1R agonist activity that is at least 10-fold lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0015] In one embodiment, the GLP-1R agonist has GLP-1R agonist activity that is up to 482.4-fold or up to 482.35-fold less than the GLP-1R agonist activity of native GLP-1(7-36).

[0016] In one embodiment, the GLP-1R agonist has GLP-1R agonist activity that is up to 482-fold less than the GLP-1R agonist activity of native GLP-1(7-36).

[0017] In one embodiment, the GLP-1R agonist has GLP-1R agonist activity that is 10- to 482-fold lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0018] In one embodiment, the GLP-1R agonist has GLP-1R agonist activity that is 10- to 319-fold lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0019] In one embodiment, the GLP-1R agonist has a GLP-1R agonist activity that is 90 to 100 times lower than that of native GLP-1(7-36).

[0020] In one embodiment, the GLP-1R agonist has a GLP-1R agonist activity that is at least 18-fold (or at least 18.268-fold) less than the GLP-1R agonist activity of native GLP-1(7-36).

[0021] In one embodiment, the GLP-1R agonist has a GLP-1R agonist activity that is 18- to 501-fold (or 18.268- to 500.686-fold) or 18- to 469-fold (or 18.268- to 468.679-fold) or 18- to 313-fold (or 18.268- to 313.214-fold) or 18- to 123-fold (or 18.268- to 123.466-fold) less than the GLP-1R agonist activity of native GLP-1(7-36).

[0022] In one embodiment, the GLP-1R agonist has GLP-1R agonist activity that is 18- to 313-fold lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0023] In one embodiment of the above, the GLP-1R agonist has GLP-1R agonist activity that is at least 18.2-fold or at least 18.3-fold less than the GLP-1R agonist activity of native GLP-1(7-36).

[0024] In one embodiment, the FGF21 compound is native FGF21 or an FGF21 variant having at least 80%, or at least 90%, or at least 95% amino acid sequence identity to the amino acid sequence of native FGF21.

[0025] In one embodiment, the GLP-1R agonist has the amino acid sequence HGEGTFTSDX 10 -SX 12 -QX 14 -X 15 -EEX 18 -VX 20 -X 21 -FIEWLX 27 -X 28 -X 29 -X 30 (SEQ ID NO: 37), (where, X 10 is L or K; X 12 is K or I; X 14 is L or M; X 15 is E or D; X 18 is A or R; X 20 is R or Q; X 21 is L or E; X 27 is L, E, K, or V; X 28 is A, N, or K; X 29 is T or G; X 30 is G or R; optionally, the amino acid sequence comprises at least one additional amino acid residue at its N-terminus; Optionally, the amino acid sequence includes a peptide extension of up to 12, 11, or 10 amino acid residues at its C-terminus. Comprises or consists of.

[0026] In one embodiment, the GLP-1R agonist comprises or consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 9, 10, 12, 14, 15, 16, 17, 19, and 20.

[0027] In another aspect, the present invention provides a pharmaceutical composition comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist, together with a pharmaceutically acceptable carrier and / or excipient, comprising: the FGF21 compound has an FGF21 activity that is the same as or substantially the same as the FGF21 activity of native FGF21; The GLP-1R agonist relates to a pharmaceutical composition having a GLP-1R agonist activity that is 9- to 531-fold (or 9.449- to 531.0-fold) lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0028] In one embodiment, the GLP-1R agonist and / or FGF21 compound are as defined above.

[0029] In yet another aspect, the present invention provides a fusion molecule comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist, The FGF21 compounds have FGF21 activity that is the same as or substantially the same as the FGF21 activity of native FGF21. The GLP-1R agonist relates to a fusion molecule that has a GLP-1R agonist activity that is 9- to 531-fold (or 9.449- to 531.0-fold) lower than the GLP-1R agonist activity of native GLP-1(7-36).

[0030] In one embodiment, the GLP-1R agonist and / or FGF21 compound are as defined above.

[0031] In another aspect, the present invention relates to a nucleic acid molecule encoding a fusion molecule as defined above.

[0032] In another aspect, the present invention relates to a host cell containing a nucleic acid molecule as defined above.

[0033] In another aspect, the present invention relates to a kit comprising a combination as defined above, a pharmaceutical composition as defined above, a fusion molecule as defined above, a nucleic acid molecule as defined above, or a host cell as defined above.

[0034] In another aspect, the present invention relates to a combination as defined above, a pharmaceutical composition as defined above, a fusion molecule as defined above, a nucleic acid molecule as defined above, or a host cell as defined above, for use as a medicament.

[0035] In another aspect, the present invention relates to a combination as defined above, a pharmaceutical composition as defined above, a fusion molecule as defined above, a nucleic acid molecule as defined above, or a host cell as defined above for use in the treatment of a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis.

[0036] In one embodiment, the disease or disorder is diabetes. In one embodiment, the diabetes is type 1 diabetes or type 2 diabetes.

[0037] In another aspect, the present invention relates to the use of a combination as defined above, a pharmaceutical composition as defined above, a fusion molecule as defined above, a nucleic acid molecule as defined above, or a host cell as defined above in the manufacture of a medicament for the treatment of a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis.

[0038] In one embodiment, the disease or disorder is diabetes. In one embodiment, the diabetes is type 1 diabetes or type 2 diabetes.

[0039] In another aspect, the present invention relates to a method for treating a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis, comprising administering to a subject in need thereof a combination as defined above, a pharmaceutical composition as defined above, a fusion molecule as defined above, a nucleic acid molecule as defined above, or a host cell as defined above.

[0040] In one embodiment, the disease or disorder is diabetes, hi one embodiment, the diabetes is type 1 diabetes or type 2 diabetes.

[0041] In another aspect, the present invention relates to GLP-1R agonists having GLP-1R agonist activity that is 9- to 531-fold (or 9.449- to 531.0-fold) less than the GLP-1R agonist activity of native GLP-1(7-36).

[0042] In one embodiment, the GLP-1R agonist is as defined above.

[0043] In one embodiment, the GLP-1R agonist has the amino acid sequence HGEGTFTSDX 10 -SX 12 -QX 14 -X 15 -EEX 18 -VX 20 -X 21 -FIEWLX 27 -X 28 -X 29 -X 30 (SEQ ID NO: 37), (where, X 10 is L or K; X 12 is K or I; X 14 is L or M; X 15 is E or D; X 18 is A or R; X 20 is R or Q; X 21 is L or E; X 27 is L, E, K, or V; X 28 is A, N, or K; X 29 is T or G; X 30 is G or R; optionally, the amino acid sequence comprises at least one additional amino acid residue at its N-terminus; Optionally, the amino acid sequence includes a peptide extension of up to 12, 11, or 10 amino acid residues at its C-terminus. Comprises or consists of.

[0044] In one embodiment, the GLP-1R agonist comprises or consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 9, 10, 12, 14, 15, 16, 17, 19, and 20.

[0045] In another aspect, the present invention relates to a nucleic acid molecule encoding a GLP-1R agonist as defined above.

[0046] In another aspect, the present invention relates to a host cell containing a nucleic acid molecule as defined above.

[0047] In another embodiment, the present invention relates to a pharmaceutical composition or a kit comprising a GLP-1R agonist as defined above, a nucleic acid molecule as defined above, or a host cell as defined above.

[0048] In another aspect, the present invention relates to a GLP-1R agonist as defined above, a pharmaceutical composition as defined above, a nucleic acid molecule as defined above, or a host cell as defined above, for use as a medicament.

[0049] In another aspect, the present invention relates to a GLP-1R agonist as defined above, a pharmaceutical composition as defined above, a nucleic acid molecule as defined above, or a host cell as defined above, for use in the treatment of a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis.

[0050] In one embodiment, the disease or disorder is diabetes, hi one embodiment, the diabetes is type 1 diabetes or type 2 diabetes.

[0051] In another aspect, the present invention relates to a GLP-1R agonist as defined above, a pharmaceutical composition as defined above, a nucleic acid molecule as defined above, or a host cell as defined above in the manufacture of a medicament for the treatment of a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis. Regarding use.

[0052] In one embodiment, the disease or disorder is diabetes. In one embodiment, the diabetes is type 1 diabetes or type 2 diabetes.

[0053] In another aspect, the present invention relates to a method for treating a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis, comprising administering to a subject in need thereof a GLP-1R agonist as defined above, a pharmaceutical composition as defined above, a nucleic acid molecule as defined above, or a host cell as defined above.

[0054] In one embodiment, the disease or disorder is diabetes. In one embodiment, the diabetes is type 1 diabetes or type 2 diabetes. [Brief explanation of the drawings]

[0055] [Figure 1]Figure 1 shows the EC50s for adverse effects (gastric emptying (GE) rate) and pharmacodynamic effects (i.e., HbA1c, triglycerides, fatty acids, non-HDL, fat mass) as a function of GLP-1 attenuation factor (12-month simulation): At GLP-1 attenuation factors greater than 9.449 (which can be rounded to 9), the EC50 for GLP-1-mediated gastrointestinal adverse effects (gastric emptying rate: GE rate) exceeded the EC50 for pharmacodynamic effects (i.e., HbA1c, fat mass, non-HDL, fatty acids, triglycerides); The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate), normalized by the broadening of the FGF21-mediated effect (lipids) and the GLP-1-mediated effect (HbA1c), was 121.189; that is, the maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate) at the minimum distance between the GLP-1-mediated effect (HbA1c) and the mean FGF21-mediated effect (i.e., fat mass, non-HDL, fatty acids, triglycerides) is 121.189 (rounded to 121) (see Figure 2); The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate) was 319.311 (rounded to 319); The maximum distance between the mean pharmacodynamic effect (i.e., HbA1c, fat mass, non-HDL, fatty acids, triglycerides) and the adverse effect (GE rate) was 482.396 (see Figure 2; can be rounded to 482); the maximum value of gastric emptying rate was 531.0 (all: vertical lines). [Figure 2]Graphs showing the EC50 of gastric emptying (GE) rate and mean pharmacodynamic effect (i.e., HbA1c, triglycerides, fatty acids, non-HDL, fat mass) as a function of GLP-1 attenuation factor (12-month simulation): · The maximum distance between the mean pharmacodynamic effect (i.e., HbA1c, fat mass, non-HDL, fatty acids, triglycerides) and the adverse effect (GE rate) was 482.396 (right vertical line; can be rounded to 482); · The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate), normalized by the broadening of the FGF21-mediated effect (lipids) and GLP-1-mediated effect (HbA1c), was 121.189 (left vertical line; can be rounded to 121). The curve "(Max-GE Rate) / Range" represents the ratio between the maximum distance between HbA1c and GE rate and the minimum distance between HbA1c and the average FGF21-mediated effect (i.e., fat mass, non-HDL, fatty acids, triglycerides). At the minimum of the "(Max-GE Rate) / Range" curve (i.e., 121.189), there is the maximum distance between the maximum of the pharmacodynamic effect (HbA1c) and the adverse effect (GE rate) at the minimum distance between the GLP-1-mediated effect (HbA1c) and the FGF21-mediated effect (i.e., fat mass, non-HDL, fatty acids, triglycerides). [Figure 3]Figure 1 shows the EC50s of adverse effects (gastric emptying (GE) rate) and pharmacodynamic effects (HbA1c, triglycerides, fatty acids, non-HDL, fat mass) as a function of GLP-1 attenuation factor (3-month simulation): At GLP-1 attenuation factors greater than 18.268 (which can be rounded to 18), the EC50 of GLP-1-mediated gastrointestinal adverse effect (gastric emptying: GE rate) exceeded the EC50 of pharmacodynamic effects (i.e., HbA1c, fat mass, non-HDL, fatty acids, triglycerides); The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate), normalized by the broadening of the FGF21-mediated effect (lipids) and GLP-1-mediated effect (HbA1c), was 123.466; that is, the maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate) at the minimum distance between the GLP-1-mediated effect (HbA1c) and the mean FGF21-mediated effect (i.e., fat mass, non-HDL, fatty acids, triglycerides) is 123.466 (rounded to 123) (see Figure 4); The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate) was 313.214 (rounded to 313); The maximum distance between the mean pharmacodynamic effect (i.e., HbA1c, fat mass, non-HDL, fatty acids, triglycerides) and the adverse effect (GE rate) was 468.679 (see Figure 4; can be rounded to 469); the maximum value of gastric emptying rate at 500.686 (can be rounded to 501). (All: vertical lines) [Figure 4]Graphs showing the EC50 of gastric emptying (GE) rate and mean pharmacodynamic effect (i.e., HbA1c, triglycerides, fatty acids, non-HDL, fat mass) as a function of GLP-1 attenuation factor (3-month simulation): · The maximum distance between the mean pharmacodynamic effect (i.e., HbA1c, fat mass, non-HDL, fatty acids, triglycerides) and the adverse effect (GE rate) was 468.679 (right vertical line; can be rounded to 469); · The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect (GE rate), normalized by the broadening of the FGF21-mediated effect (lipids) and GLP-1-mediated effect (HbA1c), was 123.466 (left vertical line; can be rounded to 123). The curve "(Max-GE Rate) / Range" represents the ratio between the maximum distance between HbA1c and GE rate and the minimum distance between HbA1c and the average FGF21-mediated effect (i.e., fat mass, non-HDL, fatty acids, triglycerides). At the minimum of the "(Max-GE Rate) / Range" curve (i.e., at 123.466), there is the maximum distance between the maximum of the pharmacodynamic effect (HbA1c) and the adverse effect (GE rate), at the minimum distance between the GLP-1-mediated effect (HbA1c) and the FGF21-mediated effect (i.e., fat mass, non-HDL, fatty acids, triglycerides). [Figure 5] 1 shows dose-response curves of (A) FGFR autophosphorylation or (B) ERK1 / 2-phosphorylation in CHO cells overexpressing human FGFR1c and beta-klotho after stimulation with mature human FGF21 (SEQ ID NO: 2), as measured by in-cell Western. DETAILED DESCRIPTION OF THE INVENTION

[0056] The present invention will be described in detail below, but it should be understood that the present invention is not limited to the specific methods, protocols, and reagents described herein, as these may vary. It should also be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to limit the scope of the present invention, which is limited only by the appended claims. Unless otherwise specified, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art.

[0057] In the following, certain elements of the present invention are described. While these elements are recited in terms of specific embodiments, it should be understood that they can be combined in any manner and in any number to create additional embodiments. The variously described examples and preferred embodiments are intended to be illustrative and not restrictive of the present invention, and are not intended to be limiting unless expressly stated. It should not be construed as limiting the invention. This description should be understood to support and encompass embodiments that combine any explicitly described embodiment with any number of disclosed and / or preferred elements. Furthermore, any order and combination of all described elements in this application should be construed as disclosed by the description of this application unless the context clearly dictates otherwise.

[0058] The terms used herein are defined as set forth in "A multilingual glossary of biotechnological terms: (IUPAC Recommendations)", edited by H.G.W. Leuenberger, B. Nagel, and H. Kolbl, Helvetica Chimica Acta, CH-4010 Basel, Switzerland, (1995).

[0059] The practice of the present invention will employ, unless otherwise indicated, conventional methods in chemistry, biochemistry, cell physiology, immunology, and recombinant DNA technology as described in the art (Sambrook, J. et al. (2001) Molecular Cloning: A Laboratory Manual, 3rd ed., Cold Spring Harbor Laboratory Press, Cold Spring Harbor, NY).

[0060] Throughout the following specification and claims, unless the context otherwise requires, the word "comprise" and variations thereof, such as "comprises" and "comprising," imply the inclusion of not only the stated member, integer, or step, but also any other member, integer, or step, or group of members, integers, or steps; however, it should also be understood that in some embodiments, such other member, integer, or step, or group of members, integers, or steps, may be excluded, i.e., the subject matter consists of the inclusion of the stated member, integer, or step, or group of members, integers, or steps. The terms "a," "an," and "the" and similar referents used in the context of describing the invention (particularly in the context of the claims) should be construed to cover both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. Recitation of ranges of values ​​herein merely serves as a shorthand method of individually referring to each separate value falling within the range. Unless otherwise indicated herein, each individual value is incorporated herein as if it were individually recited herein. All methods described herein can be performed in any suitable order unless otherwise indicated herein or clearly contradicted by context. The use of any and all examples or exemplary language (e.g., "such as") provided herein is intended merely to better illustrate the invention and does not impose limitations on the scope of the invention unless otherwise asserted. No language in the specification should be construed as indicating any non-claimed element as essential to the practice of the invention.

[0061] Several documents are cited throughout the text of this specification. Each document cited herein (including all patents, patent applications, scientific publications, manufacturer's specifications, instruction manuals, etc.), whether supra or infra, is hereby incorporated by reference in its entirety. Nothing herein should be construed as an admission that the disclosure is not entitled to antedate such disclosure by virtue of prior invention.

[0062] Key components of GLP-1 receptor signaling and F in relation to diabetic pathophysiology By using a systems pharmacology approach integrating G21 production and action, we were able to determine the optimal GLP-1R agonist / FGF21 compound activity ratio to achieve the beneficial effects of both active agents (e.g., in terms of body weight, lipid, and glycemic control) while avoiding potential adverse effects (e.g., nausea and vomiting).

[0063] The term "combination" as used herein includes any means that allows the administration of a combination comprising an FGF21 compound and a GLP-1R agonist to a patient by separate administration of the FGF21 compound and the GLP-1R agonist, or in the form of a combination product comprising the FGF21 compound and the GLP-1R agonist, for example, in a single pharmaceutical composition or in the form of a fusion molecule / protein. When administered separately, administration can be simultaneous or sequential, and in any order. The amounts of the FGF21 compound and the GLP-1R agonist and the relative timing of administration will be selected to achieve the desired combined therapeutic effect. The administration of the combination may be simultaneous: (1) in a single pharmaceutical composition containing all active pharmaceutical ingredients; or (2) in separate pharmaceutical compositions, each containing at least one active pharmaceutical ingredient. Alternatively, the combination may be administered sequentially, with one therapeutic agent being administered first and the other agent being administered second, or vice versa. Such sequential administration may be close in time or distant in time. In one embodiment, the combination is provided in the form of a kit, such as a kit as defined herein.

[0064] The term "fibroblast growth factor 21" or "FGF21" as used herein refers to any FGF21 protein known in the art, and in particular to human FGF21. In one embodiment, human FGF21 has the amino acid sequence of SEQ ID NO: 1.

[0065] The term "FGF21 compound," as used herein, generally refers to a compound that has FGF21 activity.

[0066] In one embodiment, the FGF21 compound is a peptidic compound, ie, a peptide or protein.

[0067] The term "peptide," as used herein, refers to a polymeric form of amino acids of any length, including, for example, two or more, or three or more, or four or more, or six or more, or eight or more, or nine or more, or ten or more, or thirteen or more, or sixteen or more, or twenty-one or more amino acids covalently linked by peptide bonds. Peptides can consist of, for example, up to 100 amino acids. The term "polypeptide" refers to large peptides, preferably peptides having more than 100 amino acid residues. The terms "polypeptide" and "protein" are used interchangeably herein.

[0068] In one embodiment, the FGF21 compound is native FGF21 or an FGF21 variant having at least 80%, or at least 90%, or at least 91%, or at least 92%, or at least 93%, or at least 94%, or at least 95%, or at least 96%, or at least 97%, or at least 98% amino acid sequence identity to the amino acid sequence of native FGF21.

[0069] The term "native FGF21", as used herein, refers to naturally occurring FGF21, for example, human wild-type FGF21 having the amino acid sequence of SEQ ID NO: 1 (also referred to as "full-length human wild-type FGF21"). The term "native FGF21", as used herein, refers to mature FGF21, i.e., FGF21 that contains the native signal sequence (signal peptide In one embodiment, the native FGF21 is mature human wild-type FGF21 lacking amino acids 1 to 28 (M1 to A28) of SEQ ID NO:1, and is represented by SEQ ID NO:2.

[0070] The " sequence identity " between two amino acid sequences indicates the percentage of amino acids that are identical between sequences.The optimized alignment of the sequences for comparison can be produced by Smith and Waterman, 1981, Ads App.Math.2, 482 local homology algorithm, Neddleman and Wunsch, 1970, J.Mol.Biol.48, 443 local homology algorithm, Pearson and Lipman, 1988, Proc.Natl Acad.Sci.USA 85, 2444 similarity search method, or by computer programs that use these algorithms (GAP, BESTFIT, FASTA, BLASTP, BLASTN and TFASTA in Wisconsin Genetics Software Package, Genetics Computer Group, 575 Science Drive, Madison, Wis.).

[0071] FGF21 variants may be based on the deletion, addition, and / or substitution of at least one amino acid residue in / to native FGF21 (eg, SEQ ID NO: 1 or 2).

[0072] Such deletions, additions, and / or substitutions may contribute to increased stability, e.g., proteolytic stability and / or thermal stability, of the variant compared to native FGF21 (e.g., SEQ ID NO: 1 or 2), achieved, for example, by prevention of protease cleavage at or near the substituted amino acid or by formation of one or more additional disulfide bridges.

[0073] The term "amino acid" or "amino acid residue," as used herein, refers to naturally occurring amino acids, unnatural amino acids, amino acid analogs, and amino acid mimetics that function in a manner similar to the naturally occurring amino acids, including all of their D and L stereoisomers, where their structure allows for such stereoisomeric forms. Amino acids are referred to herein by either their names or their commonly known three-letter symbols, or by the one-letter symbols recommended by the IUPAC-IUB Biochemical Nomenclature Commission.

[0074] The term "naturally occurring" when used in reference to amino acids means the 20 conventional amino acids (i.e., alanine (A), cysteine ​​(C), aspartic acid (D), glutamic acid (E), phenylalanine (F), glycine (G), histidine (H), isoleucine (I), lysine (K), leucine (L), methionine (M), asparagine (N), proline (P), glutamine (Q), arginine (R), serine (S), threonine (T), valine (V), tryptophan (W), and tyrosine (Y)), as well as selenocysteine, pyrrolysine (PYL), and pyrroline-carboxylysine (PCL).

[0075] The term "unnatural amino acid," as used herein, refers to an amino acid that is not naturally encoded or found in the genetic code of any organism. They may, for example, be purely synthetic compounds. Examples of unnatural amino acids include, but are not limited to, hydroxyproline, gamma-carboxyglutamate, O-phosphoserine, azetidinecarboxylic acid, 2-aminoadipic acid, 3-aminoadipic acid, 4-aminoadipic acid, 5-aminoadipic acid, 6-aminoadipic acid, 7-aminoadipic acid, 8-aminoadipic acid, 9-aminoadipic acid, 10-aminoadipic acid, 11-aminoadipic acid, 12-aminoadipic acid, 13-aminoadipic acid, 14-aminoadipic acid, 15-aminoadipic acid, 16-aminoadipic acid, 17-aminoadipic acid, 18-aminoadipic acid, 19-aminoadipic acid, 20-aminoadipic acid, 21-aminoadipic acid, 22-aminoadipic acid, 23-aminoadipic acid, 24-aminoadipic acid, 25-aminoadipic acid, 26-aminoadipic acid, 27-aminoadipic acid, 28-aminoadipic acid, 29-aminoadipic acid, 30-aminoadipic acid, 31-aminoadipic acid, 32-aminoadipic acid, 33-aminoadipic acid, 34-aminoadipic acid, 35-aminoadipic acid, 36-aminoadipic acid, 37-aminoadipic acid, 38-aminoadipic acid, 39 ... Aminoadipic acid, beta-alanine, aminopropionic acid, 2-aminobutyric acid, 4-aminobutyric acid, 6-aminocaproic acid, 2-aminoheptanoic acid, 2-aminoisobutyric acid, 3-aminoisobutyric acid, 2-aminopimelic acid, tert-butylglycine, 2,4-diaminoisobutyric acid, desmosine, 2,2'-diaminopimelic acid, 2,3-diaminopropionic acid, N-ethylglycine, N-methylglycine, N-ethylasparagine, homoproline, hydroxylysine lysine, allo-hydroxylysine, 3-hydroxyproline, 4-hydroxyproline, isodesmosine, allo-isoleucine, N-methylalanine, N-methylglycine, N-methylisoleucine, N-methylpentylglycine, N-methylvaline, naphthalanine, norvaline, norleucine, ornithine, D-ornithine, D-arginine, p-aminophenylalanine, pentylglycine, pipecolic acid, and thioproline.

[0076] The term "amino acid analog" as used herein refers to a compound that has the same basic chemical structure as a naturally occurring amino acid. Amino acid analogs include natural and unnatural amino acids that are reversibly or irreversibly chemically blocked or chemically modified at their C-terminal carboxyl group, their N-terminal amino group, and / or their side chain functional groups. Such analogs include, but are not limited to, methionine sulfoxide, methionine sulfone, S-(carboxymethyl)-cysteine, S-(carboxymethyl)-cysteine ​​sulfoxide, S-(carboxymethyl)-cysteine ​​sulfone, aspartic acid-(beta-methyl ester), N-ethylglycine, alanine carboxamide, homoserine, norleucine, and methionine methylsulfonium.

[0077] The term "amino acid mimetic," as used herein, refers to a chemical compound that has a structure that is different from the general chemical structure of an amino acid, but that functions in a manner similar to a naturally occurring amino acid.

[0078] In some embodiments, the variant comprises at least one additional amino acid at its N-terminus. In one embodiment, the at least one additional amino acid is selected from naturally occurring amino acids, non-natural amino acids, amino acid analogs, and amino acid mimetics, excluding proline. In one embodiment, the at least one additional amino acid is selected from the group consisting of G, A, N, and C. In a specific embodiment, the at least one additional amino acid is G.

[0079] FGF21 variants suitable for use in the present invention are described, for example, in PCT / EP2016 / 079551, which is incorporated herein by reference.

[0080] In one embodiment, the FGF21 compound is an FGF21 variant comprising or consisting of an amino acid sequence selected from the group consisting of SEQ ID NOs: 3, 4, 5, and 6.

[0081] The FGF21 compounds contained in the combinations, pharmaceutical compositions, and fusion molecules of the present invention exhibit the same or substantially the same FGF21 activity as native FGF21 (e.g., SEQ ID NO: 2). In one embodiment, FGF21 activity refers to the FGF21 activity of the FGF21 compound when it is not contained in a fusion molecule (when it is not a component of a fusion molecule) and / or when it is not further modified (see below) as defined herein.

[0082] The term "substantially the same" as used herein refers to FGF21 activity that is in the range of 50% to 150%, or 60% to 140%, or 65% to 135% of the FGF21 activity of native FGF21 (e.g., SEQ ID NO: 2).

[0083] In one embodiment, the term "FGF21 activity" (or "FGF21 potency") as used herein refers to activation of an FGF21 receptor (FGFR, e.g., FGFR1c). In one embodiment, the FGF21 receptor is a human FGF21 receptor. In one embodiment, the term refers to in vitro activity / potency. In another embodiment, the term refers to in vivo activity / potency. In one embodiment, activation of an FGF21 receptor is determined by measuring autophosphorylation of the FGF21 receptor upon contact with an FGF21 compound in vitro. In one embodiment, FGF21 activity / potency is determined by using an In-Cell Western (ICW) assay. In one embodiment, activity / potency is quantified to determine an EC50 value.

[0084] The term "In-Cell Western (ICW) assay" as used herein refers to an immunocytochemical assay, more specifically, a quantitative immunofluorescence assay, usually performed in a microplate (e.g., 96-well or 384-well format). It combines the specificity of Western blot with the reproducibility and throughput of ELISA (see, for example, Aguilar HN et al. (2010) PLoS ONE 5(4):e9965). Suitable ICW assay systems are commercially available (e.g., LI-COR Biosciences, USA). In one embodiment, anti-pFGFR and / or anti-pERK are used in ICW assay. In one embodiment, pFGFR ICW assay is performed. In one embodiment, ICW assay is performed essentially as described in Example 3.

[0085] In one embodiment, an FGF21 compound having the same or substantially the same FGF21 activity as that of natural FGF21 is defined by its EC50 value of FGF21 receptor activation. For example, an FGF21 compound having an FGF21 activity ranging from 50% to 150%, or 60% to 140%, or 65% to 135% of that of natural FGF21 (e.g., SEQ ID NO: 2), also referred to herein as an FGF21 compound, activates the FGF21 receptor with an EC50 of 2.40 nmol / L to 7.20 nmol / L, or 2.88 nmol / L to 6.72 nmol / L, or 3.12 nmol / L to 6.48 nmol / L, respectively, in a pFGFR ICW assay, as essentially described in Example 3. In one embodiment, the EC50 value is given as EC50 ± SD. In one embodiment, SD is the assay-dependent standard deviation. In one embodiment, the EC50 is 2.40±SD to 7.20±SD nmol / L, or 2.88±SD to 6.72±SD nmol / L, or 3.12±SD to 6.48±SD nmol / L, respectively, in a pFGFR ICW assay essentially as described, e.g., in Example 3. In one embodiment, the SD is 1.8 nmol / L.

[0086] According to the present invention, the FGF21 compound is further modified, e.g., fused / conjugated to another entity / molecule, such as a polymer (e.g., PEG), or a peptide / polypeptide, such as human serum albumin (HSA) or the Fc region / domain of an immunoglobulin or variant thereof, as further described below. In one embodiment, the FGF21 activity of the FGF21 compound referred to herein is the FGF21 activity of an FGF21 compound without such further modifications, also referred to herein as a "pure FGF21 compound."

[0087] The term "fused" as used herein particularly refers to genetic fusion, for example, by recombinant DNA techniques. The amino acid sequence of the (poly)peptide half-life extension module can be introduced at any position within the amino acid sequence of the variant, for example, It may take the form of a loop within the loaded protein structure or may be fused to the N- or C-terminus.

[0088] The term "conjugated to," as used herein, particularly refers to chemical and / or enzymatic conjugation that results in a stable covalent bond between a (poly)peptide and another molecule, such as, for example, a variant and a half-life extension module. Such conjugation may occur at the N-terminus or C-terminus of the (poly)peptide or at a particular side chain, for example, at a lysine, cysteine, tyrosine, or unnatural amino acid residue.

[0089] The term "GLP-1R agonist" (abbreviated: "GLP-1RA"), as used herein, generally refers to a compound that binds to and activates the GLP-1 receptor, such as GLP-1 (as a primary GLP-1 agonist).

[0090] In one embodiment, the GLP-1R agonist is a peptidic compound, i.e., a peptide or protein. In another embodiment, the GLP-1R agonist is a small molecule, i.e., an organic compound having a molecular weight of less than 900 Da.

[0091] The GLP-1R agonist contained in the combinations, pharmaceutical compositions, and fusion molecules of the present invention exhibits reduced GLP-1R agonist activity compared to that of native GLP-1(7-36) as defined herein. The value "x" in the expression "x-fold" as used herein is referred to herein as an "attenuation factor" or "reduction factor." In one embodiment, reduced GLP-1R agonist activity compared to that of native GLP-1(7-36) as defined herein is exhibited when the GLP-1R agonist is a component of a fusion molecule as defined herein.

[0092] The term "native GLP-1(7-36)" as used herein refers to a peptide having the amino acid sequence of SEQ ID NO: 7, optionally including an amide group at its C-terminus.

[0093] In one embodiment, the term "GLP-1R agonist activity" (or "GLP-1R agonist efficacy"), as used herein, refers to activation of the GLP-1 receptor. In one embodiment, the term refers to in vitro agonist activity / efficacy. In another embodiment, the term refers to in vivo agonist activity / efficacy. In one embodiment, activation of the GLP-1 receptor is determined in vitro by measuring the cAMP response of cells stably expressing the GLP-1 receptor upon contact with an agonist. In one embodiment, the cells are derived from the HEK-293 cell line. In one embodiment, the GLP-1 receptor is a human GLP-1 receptor. In one embodiment, activation of the GLP-1 receptor is determined essentially as described in Example 4. In one embodiment, activity / efficacy is quantified by determining the EC50 value.

[0094] In one embodiment, a GLP-1R agonist having reduced GLP-1R agonist activity compared to the GLP-1R agonist activity of native GLP-1(7-36) is defined in terms of its EC50 value of GLP-1 receptor activation, e.g., as shown in Table 4. For example, a GLP-1R agonist having GLP-1R agonist activity that is 9- to 531-fold lower than the GLP-1R agonist activity of native GLP-1(7-36) is also referred to herein as a GLP-1R agonist, and activates the GLP-1 receptor with an EC50 of 6.93 to 408.87 pmol / L, etc. In one embodiment, the EC50 value is determined as described above. In one embodiment, the EC50 value is determined in terms of an EC50 value. Values ​​are given as 0±SD. In one embodiment, SD is the assay-dependent standard deviation.

[0095] Suitable GLP-1R agonists having reduced GLP-1R agonist activity relative to that of native GLP-1(7-36) can be identified by assays described herein for determining GLP-1R agonist activity, such as those described in Example 4, or in Xiao et al. (2001) Biochemistry. 40(9):2860-9 or Gault et al. (2013) J Biol Chem. 288(49):35581-91, such as analysis of GLP-1R agonist-induced production of cytosolic cAMP, beta-cell preservation (apoptosis), or glucose-stimulated insulin secretion (GSIS). They can be identified, for example, by generating variants of a known peptidic GLP-1R agonist, such as native GLP-1(7-36), for example, by random or site-directed mutagenesis or chemical synthesis (see, e.g., Example 5), followed by determining their GLP-1R agonist activity as described herein, using native GLP-1(7-36) as a control. Alternatively, they can be identified by screening small molecule libraries for GLP-1R agonist activity using native GLP-1(7-36) as a control. All of these assays can be performed in the form of high-throughput assays.

[0096] Variants of known peptidic GLP-1R agonists (e.g., native GLP-1(7-36)) may be based on the deletion, addition, and / or substitution of at least one amino acid residue in / to the amino acid sequence of the known peptidic GLP-1R agonist.

[0097] In one embodiment, the variant comprises substitutions of up to 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, or 5 amino acid residues.

[0098] In one embodiment, the GLP-1R agonist is a variant of native GLP-1(7-36) comprising substitutions of up to 15, 14, 13, 12, 11, 10, 9, 8, 7, 6, or 5 amino acid residues in the sequence of native GLP-1(7-36). In one embodiment, the substitutions comprise or are selected from the group consisting of A8G, V16L, V16K, S18K, S18I, Y19Q, L20M, E21D, G22E, Q23E, A24R, A25V, K26R, K26Q, E27L, A30E, V33K, V33L, V33E, K34N, K34A, G35T, and R36G, and / or substitutions as listed in Table 5 (see description of SEQ ID NOs: 8-20).

[0099] In some embodiments, the variant comprises at least one additional amino acid residue at its N-terminus. In one embodiment, the at least one additional amino acid residue is selected from naturally occurring amino acids, excluding proline, unnatural amino acids, amino acid analogs, and amino acid mimetics. In one embodiment, the at least one additional amino acid residue is selected from the group consisting of G, A, N, and C. In a specific embodiment, the at least one additional amino acid residue is a (single) G.

[0100] In some embodiments, the variant comprises a peptide extension at its C-terminus. The peptide extension can consist of, for example, 12, 11, or up to 10 amino acid residues. In one embodiment, the peptide extension has an amino acid sequence selected from the group consisting of PSSGAPPPS (SEQ ID NO: 38), PVSGAPPPS (SEQ ID NO: 39), PSSGEPPPES (SEQ ID NO: 40), PSSGEPPPE (SEQ ID NO: 41), PKKQRLS (SEQ ID NO: 42), and PKKIRYS (SEQ ID NO: 43).

[0101] In one embodiment, the GLP-1R agonist having reduced GLP-1R agonist activity compared to that of native GLP-1(7-36) as defined herein has the amino acid sequence HGEGTFTSDX 10 -SX12 -QX 14 -X 15 -EEX 18 -VX 20 -X 21 -FIEWLX 27 -X 28 -X 29 -X 30 (SEQ ID NO: 37) (where, X 10 is any amino acid, e.g., L or K; X 12 is any amino acid, e.g., K or I; X 14 is any amino acid, e.g., L or M; X 15 is any amino acid, e.g., E or D; X 18 is any amino acid, e.g., A or R; X 20 is any amino acid, e.g., R or Q; X 21 is any amino acid, e.g., L or E; X 27 is any amino acid, e.g., L, E, K, or V; X 28 is any amino acid, e.g., A, N, or K; X 29 is any amino acid, e.g., T or G; X 30 is any amino acid, e.g., G or R; optionally, the amino acid sequence comprises at least one additional amino acid residue at its N-terminus; Optionally, the amino acid sequence includes a peptide extension of up to 12, 11, or 10 amino acid residues at its C-terminus. Comprises or consists of.

[0102] In one embodiment, X 27 is L, E, or V, e.g., L. In one embodiment, X28 is A or K, for example, A.

[0103] In one embodiment, the at least one additional amino acid residue is selected from the group consisting of G, A, N, and C. In a particular embodiment, the at least one additional amino acid residue is a (single) G.

[0104] In one embodiment, the peptide extension has an amino acid sequence selected from the group consisting of PSSGAPPPS (SEQ ID NO: 38), PVSGAPPPS (SEQ ID NO: 39), PSSGEPPPES (SEQ ID NO: 40), PSSGEPPPE (SEQ ID NO: 41), PKKQRLS (SEQ ID NO: 42), and PKKIRYS (SEQ ID NO: 43).

[0105] Modifications disclosed herein, such as the introduction of G at the N-terminus or X 12 =I etc. result in a suitable reduction in GLP-1R agonist activity.

[0106] In one embodiment, the GLP-1R agonist having reduced GLP-1R agonist activity compared to that of native GLP-1(7-36) as defined herein comprises or consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 9, 10, 12, 14, 15, 16, 17, 19, and 20.

[0107] According to the present invention, the GLP-1R agonist may be further modified, for example, as described above in connection with the FGF21 compound.

[0108] Pharmaceutical compositions according to the present invention comprise one or more carriers and / or excipients, all of which are pharmaceutically acceptable. The term "pharmaceutically acceptable" is used herein to mean When used, it preferably means non-toxicity of materials that do not interact with the action of the active agent of the pharmaceutical composition.

[0109] The term "carrier" refers to a natural or synthetic organic or inorganic component that is combined with an active ingredient to facilitate, enhance, or enable application. According to the present invention, the term "carrier" also includes one or more compatible solid or liquid fillers, diluents, or encapsulating substances that are suitable for administration to a subject.

[0110] Possible carrier materials for parenteral administration are, for example, sterile water, Ringer's solution, lactated Ringer's solution, physiological saline, bacteriostatic saline (e.g., saline containing 0.9% benzyl alcohol), phosphate-buffered saline (PBS), Hank's solution, polyalkylene glycols, hydrogenated naphthalenes, and, inter alia, biocompatible lactide polymers, lactide / glycolide copolymers, or polyoxyethylene / polyoxy-propylene copolymers.

[0111] The term "excipient," as used herein, is intended to include all substances that are not active ingredients but may be present in a pharmaceutical composition, such as, for example, salts, binders (e.g., lactose, dextrose, sucrose, trehalose, sorbitol, mannitol), fillers, lubricants, thickeners, surfactants, preservatives, emulsifiers, buffer substances, flavorings, or coloring agents, etc.

[0112] Pharmaceutically unacceptable salts may be used to prepare pharmaceutically acceptable salts and are included in the present invention. Pharmaceutically acceptable salts of this type include, but are not limited to, those prepared from the following acids: hydrochloric acid, hydrobromic acid, sulfuric acid, nitric acid, phosphoric acid, maleic acid, acetic acid, salicylic acid, citric acid, formic acid, malonic acid, succinic acid, etc. Pharmaceutically acceptable salts can also be prepared as alkali metal salts or alkaline earth metal salts, such as sodium salts, potassium salts, or calcium salts. Salts can be added to adjust ionic strength or tonicity.

[0113] Suitable preservatives for use in the pharmaceutical compositions include antioxidants, citric acid, sodium citrate, benzalkonium chloride, chlorobutanol, cysteine, methionine, parabens, thimerosal, phenol, cresol, and mixtures thereof.

[0114] Suitable buffering substances for use in pharmaceutical compositions include acetic acid in a salt, citric acid in a salt, boric acid in a salt, phosphoric acid in a salt, and tris(hydroxymethyl)aminomethane (Tris, THAM, trometamol).

[0115] The pharmaceutical composition according to the present invention is preferably a sterile composition.The pharmaceutical composition can usually be provided in a uniform dosage form and is prepared in a manner known per se.The pharmaceutical composition may be, for example, in the form of a solution or suspension.

[0116] The pharmaceutical compositions may also be formulated as stable lyophilized products to be reconstituted with a suitable diluent, optionally containing one or more excipients as defined above.

[0117] The pharmaceutical composition according to the invention may further comprise at least one other active pharmaceutical ingredient.

[0118] The term "active pharmaceutical ingredient" (API), as used herein, refers to any pharmaceutically active chemical or biological compound that provides some pharmacological effect and is used, for example, to treat or prevent a condition, such as a disease or disorder, as defined herein. The present invention includes the use of pharmaceutically acceptable salts of compounds of the present invention, as well as any pharmaceutically acceptable salts thereof, and any mixtures thereof. Exemplary pharmaceutically acceptable salts include hydrochloric acid, sulfuric acid, nitric acid, phosphoric acid, hydrobromic acid, maleic acid, malic acid, ascorbic acid, citric acid, tartaric acid, pamoic acid, lauric acid, stearic acid, palmitic acid, oleic acid, myristic acid, lauryl sulfuric acid, naphthalenesulfonic acid, linoleic acid, linolenic acid, and the like. As used herein, the terms "active pharmaceutical ingredient," "active agent," "active ingredient," "active substance," "therapeutically active compound," and "drug" are intended to be synonymous, i.e., have the same meaning.

[0119] In accordance with the present invention, the active pharmaceutical ingredient is optionally selected from: - all drugs mentioned in the Rote Liste 2014, such as all antidiabetic drugs mentioned in Rote Liste 2014, chapter 12, all weight loss or appetite suppressants mentioned in Rote Liste 2014, chapter 06, all lipid-lowering drugs mentioned in Rote Liste 2014, chapter 58, Rote Liste 2014 chapter 17, all nephroprotective drugs mentioned in the Rote Liste, or all diuretics mentioned in Rote Liste 2014 chapter 36; - insulin and insulin derivatives, for example: insulin glargine (e.g. Lantus®), insulin glargine concentrated to more than 100 U / mL, for example 270-330 U / mL insulin glargine or 300 U / mL insulin glargine (disclosed in EP 2387989), insulin glulisine (e.g. Apidra®), insulin detemir (e.g. Levemir®), insulin lispro (e.g. Humalog®, Liprolo®), g®), insulin degludec (e.g., DegludecPlus®, IdegLira (NN9068)), insulin aspart and aspart formulations (e.g., NovoLog®), basal insulins and analogs (e.g., LY2605541, LY2963016, NN1436), pegylated insulin lispro (e.g., LY-275585), long-acting insulins (e.g., NN1436, Insumera (PE0139), AB-101, AB-102, Sensulin LLC), intermediate-acting insulins (e.g., Humulin® N, Novolin® N), rapid- and short-acting insulins (e.g., Humulin® R, Novolin® R, Linjeta® (VIAject®), PH20 insulin, NN1218, HinsBet®), premixed insulin, SuliXen®, NN1045, insulin + Symlin®, PE-0139, ACP-002 insulin Hydrogel insulins, and oral, inhalable, transdermal, and buccal or sublingual insulins (e.g., Exubera®, Nasulin®, Afrezza®, insulin tregopil, TPM-02 insulin, Capsulin®, Oral-lyn®, Cobalamin®, oral insulin, ORMD-0801, Oshadi oral insulin, NN1953, NN1954, NN1956, VIAtab®). Derivatives of these insulins linked to albumin or other proteins by bifunctional linkers are also suitable; - glucagon-like peptide 1 (GLP-1), GLP-1 analogues, and GLP-1 receptor agonists, such as: GLP-1(7-37), GLP-1(7-36)amide, lixisenatide (e.g., Lyxumia®), exenatide (e.g., exendin-4, rexendin-4, Byetta®, Bydureon®, exenatide NexP), exenatide-LAR, liraglutide (e.g., Victoza®), semaglutide, taspoglutide, albiglutide, dulaglutide, albumon, oxyntomodulin, geniproside, ACP-003, CJC-1131, CJC-1134-PC, GSK-2374697, PB-1023, T TP-054, langrenatide (HM-11260C), CM-3, GLP-1 Eligen, AB-201, ORMD-0901, NN9924, NN9926, NN9927, Nodexen, Viador-GLP-1, CVX-096, ZYOG-1, ZYD-1, ZP-3022, CAM-2036, DA-3091, DA-15864, ARI-2651, ARI-2255, exenatide-XTEN (VRS-859), exenatide-XTEN + glucagon-XTEN (VRS-859 + AMX-808), and polymer-bound GLP-1 and GLP-1 analogs; - dual GLP-1 / GIP agonists (e.g., RG-7697 (MAR-701), MAR-709, BHM081, BHM089, BHM098); dual GLP-1 / glucagon receptor agonists (e.g., BHM-034, OAP-189 (PF-05212389, TKS-1225), TT-401 / 402, ZP2929, LAPS-HMOXM25, MOD-6030); - Dual GLP-1 / gastrin agonists (e.g., ZP-3022); - gastrointestinal peptides, such as peptide YY3-36 (PYY3-36) or an analog thereof and pancreatic polypeptide (PP) or an analog thereof; - glucagon receptor agonists or antagonists, glucose-dependent insulinotropic polypeptide (GIP) receptor agonists or antagonists, ghrelin antagonists or inverse agonists, xenin and its analogs; - dipeptidyl peptidase-IV (DPP-4) inhibitors, for example: alogliptin (e.g. Nesina®, Kazano®), linagliptin (e.g. Ondero®, Trajenta®, Tradjenta®, Trayenta®), saxagliptin (e.g. Onglyza®, Komboglyze XR®), sitagliptin (e.g. Januvia®, Xelevia®, Tesavel®, Janumet®, Velmetia®, Juvisync®, Janumet®), XR®), anagliptin, teneligliptin (e.g., Tenelia®), trelagliptin, vildagliptin (e.g., Galvus®, Galvumet®), gemigliptin, omarigliptin, evogliptin, dutogliptin, DA-1229, MK-3102, KM-223, KRP-104, PBL-1427, pinoxacin hydrochloride, and Ari-2243; - sodium-dependent glucose transporter 2 (SGLT-2) inhibitors, such as: canagliflozin, dapagliflozin, remogliflozin, remogliflozin etabonate, sergliflozin, empagliflozin, ipragliflozin, tofogliflozin, luseogliflozin, ertugliflozin, EGT-0001442, LIK-066, SBM-TFC-039, and KGA-3235 (DSP-3235); - Dual inhibitors of SGLT-2 and SGLT-1 (e.g., LX-4211, LIK066). - anti-obesity drugs, for example SGLT-1 inhibitors (e.g. LX-2761, KGA-3235) or SGLT-1 inhibitors in combination with ileal bile acid transporter (IBAT) inhibitors (e.g. GSK-1614235+GSK-2330672); - Biguanides (e.g. metformin, buformin, phenformin); - thiazolidinediones (e.g., pioglitazone, rosiglitazone), glitazone analogues (e.g., lobeglitazone); - peroxisome proliferator-activated receptor (PPAR-) (alpha, gamma, or alpha / gamma) agonists or modulators (e.g., saroglitazar (e.g., Lipaglyn®), GFT-505), or PPAR gamma partial agonists (e.g., Int-131); sulfonylureas (e.g., tolbutamide, glibenclamide, glimepiride, Amaryl®, glipizide) and meglitinides (e.g., nateglinide, levothyroxine ... paglinide, mitiglinide); - alpha-glucosidase inhibitors (e.g., acarbose, miglitol, voglibose); - amylin and amylin analogues (e.g., pramlintide, Symlin®); - G protein-coupled receptor 119 (GPR119) agonists (e.g., GSK-1292263, PSN-821, MBX-2982, APD-597, ARRY-981, ZYG-19, DS-8500, HM-47000, YH-Chem1); - GPR40 agonists (e.g., TUG-424, P-1736, P-11187, JTT-851, GW9508, CNX-011-67, AM-1638, AM-5262); - GPR120 agonists and GPR142 agonists; - systemic or poorly absorbed TGR5 (GPBAR1 = G protein-coupled bile acid receptor 1) agonists (e.g., INT-777, XL-475, SB756050); - diabetes immunotherapy, for example: oral CC chemokine receptor type 2 (CCR-2) antagonists (e.g., CCX-140, JNJ-41443532), interleukin-1 beta (IL-1β) antagonists (e.g., AC-201), or oral monoclonal antibodies (MoA) (e.g., methazolamide, VVP808, PAZ-320, P-1736, PF-05175157, PF-04937319); - anti-inflammatory agents for the treatment of metabolic syndrome and diabetes, such as: nuclear factor kappa B inhibitors (e.g. Triolex®); - adenosine monophosphate-activated protein kinase (AMPK) stimulators, such as: Imeglimin (PXL-008), Debio-0930 (MT-63-78), R-118; - inhibitors of 11-beta-hydroxysteroid dehydrogenase 1 (11-beta-HSD-1) (e.g., LY2523199, BMS770767, RG-4929, BMS816336, AZD-8329, HSD-016, BI-135585); - glucokinase activators (e.g., PF-04991532, TTP-399 (GK1-399), GKM-001 (ADV-1002401), ARRY-403 (AMG-151), TAK-329, TMG-123, ZYGK1); - inhibitors of diacylglycerol O-acyltransferase (DGAT) (e.g., pradigastat (LCQ-908)), inhibitors of protein tyrosine phosphatase 1 (e.g., trodusquemine), inhibitors of glucose-6-phosphatase, inhibitors of fructose-1,6-bisphosphatase, inhibitors of glycogen phosphorylase, inhibitors of phosphoenolpyruvate carboxykinase, inhibitors of glycogen synthase kinase, inhibitors of pyruvate dehydrogenase kinase; - Glucose transporter-4 modulators, somatostatin receptor 3 agonists (e.g., MK-4256); - one or more lipid-lowering agents are also suitable as combination partners, for example: 3-hydroxy-3-methylglutaryl-coenzyme-A-reductase (HMG-CoA-reductase) inhibitors, for example simvastatin (e.g. Zocor®, Inegy®, Simcor®), atorvastatin (e.g. Sortis®, Caduet®), rosuvastatin (e.g. Crestor®), pravastatin (e.g. Lipostat®), , Selipran®), fluvastatin (e.g., Lescol®), pitavastatin (e.g., Livazo®, Livalo®), lovastatin (e.g., Mevacor®, Advicor®), mevastatin (e.g., Compactin®), rivastatin, cerivastatin (Lipobay®), fibrates, e.g., bezafibrate (e.g., Cedur®, Retard), ciprofibrate (e.g., Hy perlipen®), fenofibrate (e.g., Antara®, Lipofen®, Lipanthyl®), gemfibrozil (e.g., Lopid®, Gevilon®), etofibrate, simfibrate, lonifibrate, clinofibrate, clofibrate, nicotinic acid and its derivatives (e.g., niacin, e.g., sustained-release preparations of niacin), nicotinic acid receptor 1 agonists agonists (e.g., GSK-256073), PPAR-delta agonists, acetyl-CoA-acetyltransferase (ACAT) inhibitors (e.g., avasimibe), cholesterol absorption inhibitors (e.g., ezetimibe, Ezetrol®, Zetia®, Liptruzet®, Vytorin®, S-556971), bile acid binders (e.g., cholestyramine, colesevelam), ileal bile acid transport (IBAT) inhibitors (e.g., e.g., GSK-2330672, LUM-002), microsomal triglyceride transfer protein (MTP) inhibitors (e.g., lomitapide (AEGR-733), SLx-4090, granotapide), proprotein convertase subtilisin / kexin type 9 (PCSK9) modulators (e.g., alirocumab (REGN727 / SAR236553), AMG-145, LGT-209, PF-04950615, MPSK3169A, LY3015014, ALD -306, ALN-PCS, BMS-962476, SPC5001, ISIS-394814, 1B20, LGT-210, 1D05, BMS-PCSK9Rx-2, SX-PCK9, RG7652), LDL receptor upregulators, e.g., liver-selective thyroid hormone receptor beta agonists (e.g., eprotirom (KB-2115), MB07811, sobetirom (QRX-431), VIA-3196, ZYT1), HDL-raising compoundscompounds), such as: cholesteryl ester transfer protein (CETP) inhibitors (e.g., anacetrapib (MK0859), dalcetrapib, evacetrapib, JTT-302, DRL-17822, TA-8995, R-1658, LY-2484595, DS-1442), or dual CETP / PCSK9 inhibitors (e.g., K-312), ATP-binding cassette (ABC1) regulators, lipid metabolism modulators (e.g., BMS-823778, TAP-301, DRL-21994, DRL-21995), phospholipase A2 (PLA2) inhibitors (e.g., dalcetrapib, evacetrapib, JTT-302, DRL-17822, TA-8995, R-1658, LY-2484595, DS-1442), lapladib, Tyrisa®, varespladib, rilapladib), ApoA-I enhancers (e.g., RVX-208, CER-001, MDCO-216, CSL-112), cholesterol synthesis inhibitors (e.g., ETC-1002), lipid metabolism modulators (e.g., BMS-823778, TAP-301, DRL-21994, DRL-21995), and omega-3 fatty acids and their derivatives (e.g., ethyl icosapentate (AMR101), Epanova®, AKR-063, NKPL-66, PRC-4016, CAT-2003); Bromocriptine (e.g., Cyclotet®, Parlodel®), phentermine and phentermine formulations or combinations (e.g., Adipex-P, Ionamin, Qsymia®), benzphetamine (e.g., Didrex®), diethylpropion (e.g., Tenuate®), phendimetrazine (e.g., Adipost®, Bontril®), bupropion and combinations (e.g., Zyban®, Wellbutrin®), XL®, Contrave®, Empatic®), sibutramine (e.g., Reductil®, Meridia®), topiramate (e.g., Topamax®), zonisamide (e.g., Zonegran®), tesofensine, opioid antagonists such as naltrexone (e.g., Naltrexin®, naltrexone + bupropion), cannabinoid receptor 1 (CB1) antagonists (e.g., TM-38837), melanin-concentrating hormone (MCH-1) antagonists (e.g., BMS-830216, ALB-127158(a)), MC4 receptor agonists and partial agonists (e.g., AZD-2820, RM-493), neuropeptide Y5 (NPY 5) or NPY2 antagonists (e.g., velneperit, S-234462), NPY4 agonists (e.g., PP-1420), beta-3-adrenergic receptor agonists, leptin or leptin mimetics, agonists of the 5-hydroxytryptamine 2c (5HT2c) receptor (e.g., lorcaserin, Belviq®), pramlintide / metreleptin, lipase inhibitors, e.g., cetilistat (e.g., Cametor®), orlistat (e.g., Xenical®, Calobalin®), angiogenesis inhibitors (e.g., ALS-L1023), beta-histidine and histamine H3 antagonists (e.g., HPP-404), AgRP (agouti-related receptor antagonist), protein inhibitors (e.g., TTP-435), serotonin reuptake inhibitors, such as fluoxetine (e.g., Fluctine®), duloxetine (e.g., Cymbalta®), dual or triple monoamine uptake inhibitors (dopamine, norepinephrine, and serotonin reuptake) such as sertraline (e.g., Zoloft®), tesofensine, methionine aminopeptidase-2 (MetAP2) inhibitors (e.g., beloranib), and antisense oligonucleotides against the production of fibroblast growth factor receptor 4 (FGFR4) (e.g., ISIS-FGFR4Rx) or prohibitin targeting peptide-1 (e.g., Adipotide®); nitrate oxide donors, AT1 antagonists or angiotensin II (AT2) receptor antagonists, such as telmisartan (e.g., Kinzal®, Micardis®), candesartan (e.g., Atacand®, Blopress®), valsartan (e.g., Diovan®, Co-Diovan®), losartan (e.g., Cosaar®), eprosartan (e.g., Teveten®), irbesartan (e.g., For example, Aprovel®, CoAprovel®), olmesartan (e.g., Votum®, Olmetec®), tasosartan, azilsartan (e.g., Edarbi®), dual angiotensin receptor blockers (dual ARBs), angiotensin-converting enzyme (ACE) inhibitors, ACE-2 activators, renin inhibitors, prorenin inhibitors, endothelin-converting enzyme (ECE) inhibitors, endothelin receptor (ET1 / ETA) blockers, endothelin antagonists, diuretics, aldo steroid antagonists, aldosterone synthase inhibitors, alpha-blockers, alpha-2 adrenoceptor antagonists, beta-blockers, mixed alpha / beta-blockers, calcium antagonists, calcium channel blockers (CCBs), intranasal calcium channel blocker diltiazem (e.g., CP-404), dual mineralocorticoids / CCBs, centrally acting antihypertensives, inhibitors of neutral endopeptidase, aminopeptidase A inhibitors, vasopeptide inhibitors, dual vasopeptide inhibitors, e.g., neprilysin Suitable drugs include ACE inhibitors or neprilysin-ECE inhibitors, dual-acting AT1 receptor-neprilysin inhibitors, dual AT1 / ETA antagonists, advanced glycation end products (AGE) degraders, recombinant renalase, blood pressure vaccines, e.g., anti-RAAS (renin-angiotensin-aldosterone-system) vaccines, AT1- or AT2-vaccines, hypertension pharmacogenomics-based drugs, e.g., modulators of genetic polymorphisms with antihypertensive responses, thrombocyte aggregation inhibitors, and others or combinations thereof.

[0120] The term "fusion molecule" generally refers to a molecule created by linking, especially covalently linking, two or more different molecules (e.g., proteins and / or peptides) resulting in a single molecule possessing functional properties derived from each original molecule. In the case of proteins and / or peptides, the fusion molecule is called a "fusion protein." Fusion molecules can be created by genetic fusion (e.g., by recombinant DNA technology) or by chemical and / or enzymatic conjugation. The two or more different molecules may be linked by a suitable linker molecule, such as a peptide linker or a non-peptide polymer, such as polyethylene glycol (PEG).

[0121] Generally, peptide linkers are designed to provide flexibility and protease resistance. In one embodiment, the peptide linker has a length of 1 to 30, 1 to 25, or 1 to 20 amino acid residues. In one embodiment, the peptide linker contains at least five amino acid residues. In one embodiment, the peptide linker is a glycine-serine-rich linker, in which at least 50%, preferably at least 60%, more preferably at least 70%, more preferably at least 80%, and even more preferably at least 85% of the amino acids are glycine or serine residues, respectively. In one embodiment, the peptide linker contains an alanine residue at its C-terminus. In another embodiment, the amino acids are selected from glycine and serine, i.e., the peptide linker is composed exclusively of glycine and serine (referred to as a glycine-serine linker). In one embodiment, the peptide linker comprises or consists of the amino acid sequence of SEQ ID NO: 22 or SEQ ID NO: 23. The peptide linker may further comprise one or more specific protease cleavage sites.

[0122] In one embodiment, the fusion molecule is a fusion protein. In one embodiment, the fusion protein further comprises an Fc region / domain of an immunoglobulin (e.g., IgG1 or IgG4) or a variant thereof. In one embodiment, the Fc region / domain variant comprises up to 5, 4, or 3 mutations compared to the wild-type sequence of the Fc region / domain. In one embodiment, the mutations are selected from the group consisting of amino acid substitutions and deletions, e.g., N-terminal or C-terminal deletions. In one embodiment, the IgG4 Fc region / domain variant (also referred to as "IgG4 Fc variant") comprises or consists of the amino acid sequence of SEQ ID NO: 21. In one embodiment, the FGF21 compound and the GLP-1R agonist are linked via the structure L1-Fc-L2, where L1 and L2 are peptide linkers (L1 and L2 are the same or different), and Fc is an immunoglobulin Fc region / domain or a variant thereof.

[0123] In one embodiment, the fusion protein comprises or consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 25, 26, 28, 30, 31, 32, 33, 35, and 36.

[0124] Further features of the fusion proteins according to the invention are described, for example, in WO2014 / 037373A1 and WO2017 / 093465A1, which are incorporated herein by reference.

[0125] A "nucleic acid molecule" according to the present invention is preferably deoxyribonucleic acid (DNA) or ribonucleic acid (RNA). A nucleic acid molecule according to the present invention is in the form of a molecule that is single-stranded or double-stranded, and that is linear or covalently closed to form a circle.

[0126] The term "DNA" refers to a molecule comprising deoxyribonucleotide residues, preferably a molecule composed entirely or substantially of deoxyribonucleotide residues. "Deoxyribonucleotide" refers to a nucleotide lacking a hydroxyl group at the 2' position of the beta-D-ribofuranosyl group. The term "DNA" includes isolated DNA, e.g., partially or completely purified DNA, essentially pure DNA, synthetic DNA, and DNA produced by genetic recombination, and also includes modified DNA that differs from naturally occurring DNA by the addition, deletion, substitution, and / or modification of one or more nucleotides. Such modifications can include the addition of non-nucleotide material, e.g., to one or more nucleotides of the DNA, such as at the end or within the DNA. Nucleotides in a DNA molecule can also include non-standard nucleotides, e.g., non-naturally occurring nucleotides or chemically synthesized nucleotides. These modified DNAs can be analogs or derivatives of naturally occurring nucleotides. The term "naturally occurring" when used in conjunction with nucleotides refers to the bases adenine (A), cytosine (C), guanine (G), thymine (T), and uracil (U).

[0127] The term "RNA" refers to a molecule containing ribonucleotide residues, preferably a molecule composed entirely or substantially of ribonucleotide residues. "Ribonucleoti" refers to a nucleotide having a hydroxyl group at the 2' position of a beta-D-ribofuranosyl group. The term "RNA" includes isolated RNA, e.g., partially or completely purified RNA, essentially pure RNA, synthetic RNA, and recombinantly produced RNA, including modified RNA that differs from naturally occurring RNA by the addition, deletion, substitution, and / or modification of one or more nucleotides. Such modifications can include the addition of non-nucleotide material, for example, at one or more nucleotides of the RNA, such as at the end or within the RNA. Nucleotides in RNA molecules can also include non-standard nucleotides, such as non-naturally occurring or chemically synthesized nucleotides or deoxynucleotides. These modified RNAs can be referred to as analogs or analogs of naturally occurring RNA. According to the present invention, "RNA" refers to single-stranded or double-stranded RNA. In one embodiment, the RNA is mRNA, e.g., in vitro transcribed RNA (IVT RNA), or synthetic RNA. The RNA can be modified, for example, by one or more modifications that increase the stability (e.g., half-life) of the RNA. Such modifications are known to those skilled in the art and include, for example, a 5'-cap or a 5'-cap analog.

[0128] The nucleic acid molecule according to the present invention can be contained in a vector. As used herein, the term "vector" includes all vectors known to those skilled in the art, including plasmid vectors, cosmid vectors, phage vectors (e.g., lambda phage), viral vectors (e.g., adenovirus or baculovirus vectors), or artificial chromosome vectors (e.g., bacterial artificial chromosomes (BACs), yeast artificial chromosomes (YACs), or P1 artificial chromosomes (PACs)). These vectors include expression vectors and cloning vectors. Expression vectors include plasmids and viral vectors and generally contain a desired coding sequence and appropriate DNA sequences required for expression of the operably linked coding sequence in a specific host organism (e.g., bacteria, yeast, plants, insects, or mammals) or in an in vitro expression system. Cloning vectors are generally used to design and amplify a specific desired DNA fragment and may lack functional sequences required for expression of the desired DNA fragment.

[0129] Alternatively, the nucleic acid molecule according to the invention may be integrated into a genome, for example the genome of a host cell. Means and methods for integrating particular nucleic acid molecules into a genome are known to those skilled in the art.

[0130] The term "cell" or "host cell" preferably relates to a complete cell, i.e., a cell with an intact membrane that has not released its normal intracellular components, such as enzymes, organelles, or genetic material. A complete cell is preferably a viable cell, i.e., a living cell that is capable of carrying out its normal metabolic functions. Preferably, the term relates to any cell that can be transfected or transformed by an exogenous nucleic acid according to the present invention. Cells transfected or transduced with an exogenous nucleic acid and transferred to a recipient are preferably capable of expressing the nucleic acid in the recipient. The term "cell" includes prokaryotic cells, such as bacterial cells, and eukaryotic cells, such as yeast cells, fungal cells, or mammalian cells. Suitable bacterial cells include gram-negative bacterial strains, such as Escherichia coli, Proteus, and Pseudomonas bacterial strains, and gram-positive bacterial strains, such as Suitable fungal cells include cells from the genera Bacillus, Streptomyces, Staphylococcus, and Lactococcus. Suitable fungal cells include cells from species of Trichoderma, Neurospora, and Aspergillus. Suitable yeast cells include cells derived from Saccharomyces species (e.g., Saccharomyces cerevisiae), Schizosaccharomyces species (e.g., Schizosaccharomyces pombe), Pichia species (e.g., Pichia pastoris and Pichia methanolica), and Hansenula species. Suitable mammalian cells include, for example, CHO cells, BHK cells, HeLa cells, COS cells, HEK293 cells, and the like. In one embodiment, HEK293 cells are used. However, amphibian cells, insect cells, plant cells, and any other cells used in the art for the expression of heterologous proteins can also be used. Mammalian cells are particularly preferred for adoptive transfer, including cells from humans, mice, hamsters, pigs, goats, and primates. These cells can be derived from many tissue types and include primary cells and cell lines, such as cells of the immune system, particularly antigen-presenting cells, such as dendritic cells and T cells, stem cells, such as hematopoietic stem cells and mesenchymal stem cells, and other cell types. Antigen-presenting cells are cells that display antigens in the context of major histocompatibility complexes on their surface. T cells can recognize this complex using their T cell receptors (TCRs). A "cell" or "host cell" may be isolated or part of a tissue or organism, particularly a "non-human body."

[0131] The term "non-human" as used herein is meant to include non-human primates or other animals, particularly mammals, such as cows, horses, pigs, sheep, goats, dogs, cats, rabbits, or rodents, such as mice, rats, guinea pigs, and hamsters.

[0132] As used herein, the term "kit of parts" (briefly: kit) refers to a product comprising one or more containers and, optionally, a data carrier. The one or more containers are filled with one or more of the agents (reagents) mentioned above. The kit may also include additional containers containing, for example, diluents, buffers, and additional reagents. The data carrier may be a non-electronic data carrier, such as a graphic data carrier, e.g., an information leaflet, information sheet, bar code, or access code, or an electronic data carrier, e.g., a compact disc (CD), a digital versatile disc (DVD), a microchip, or another semiconductor-based electronic data carrier. The access code allows access to a database, e.g., an internet database, a centralized database, a distributed database, etc. The data carrier may contain instructions for use of the agents of the present invention, e.g., combinations, pharmaceutical compositions, and fusion molecules, as well as related agents, e.g., the nucleic acid molecules and host cells described herein.

[0133] The agents and compositions described herein can be administered by any conventional route, for example, orally, via the lungs, by inhalation, or parenterally by injection or infusion.In one embodiment, parenteral administration is used intravenously, intraarterially, subcutaneously, intradermally, or intramuscularly.The agents and compositions described herein can also be administered by sustained release administration.

[0134] Pharmaceutical compositions suitable for parenteral administration preferably comprise sterile aqueous or non-aqueous preparations of active substances, which are usually isotonic with the blood of the recipient. Examples of compatible carriers / solvents / diluents include sterile water, Ringer's solution, lactated Ringer's solution, physiological saline, bacteriostatic saline (e.g., physiological saline containing 0.9% benzyl alcohol), phosphate-buffered saline (PBS), and Hank's solution. In addition, sterile, non-volatile oils can usually be used as a solution or suspension medium.

[0135] The agents and compositions described herein are typically administered in a therapeutically effective amount. A "therapeutically effective amount" preferably refers to an amount that achieves a desired therapeutic response or desired therapeutic effect, alone or together with further doses, without causing unacceptable side effects. In the case of the treatment of a specific disease or a specific condition, the desired response preferably relates to the inhibition of the course of the disease. This includes slowing down the progression of the disease, and particularly halting or reversing the progression of the disease. The desired response in the treatment of a disease or condition may also be the delay or prevention of the onset of the disease or condition. The effective amount of the agents and compositions described herein will depend on the condition being treated, the severity of the disease, individual parameters of the subject, such as age, physiological condition, size, and weight, the duration of treatment, the type of concomitant therapy (if any), the specific route of administration, and similar factors. Therefore, the administered dose of the agents described herein depends on various such parameters. If the response in the subject is not sufficient with the initial dose, a higher dose (or a higher dose effectively achieved by another, more localized route of administration) can be used.

[0136] According to the present invention, the term "disease or disorder" refers to any pathological or unhealthy condition, in particular obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and / or atherosclerosis.

[0137] The term "obesity" refers to a medical condition in which excess body fat has accumulated to an extent that can have negative effects on health. For human (adult) subjects, obesity is defined as a weight gain greater than 30 kg / m 2 Body mass index (BMI) or higher (BMI ≥ 30 kg / m 2 ) can be defined as

[0138] The term "overweight" refers to a medical condition in which the amount of body fat exceeds that which is optimally healthy. With respect to human (adult) subjects, "overweight" is defined as being overweight or overweight above 25 kg / m 2 Body mass index (BMI) of 25 kg / m or more (e.g., 25 kg / m 2 BMI < 30 kg / m 2 ) can be defined as

[0139] BMI is a simple measure of weight-to-height ratio commonly used to classify overweight and obesity in adults. It is defined as a person's weight in kilograms divided by the square of their height in meters (kg / m 2 ).

[0140] "Metabolic syndrome" can be defined as a clustering of at least three of the following medical conditions: abdominal (central) obesity (e.g., waist circumference ≥ 94 cm for Caucasian men and ≥ 80 cm for Caucasian women, with other groups defined as having ethnic-specific values), high blood pressure (e.g., ≥ 130 / 85 mmHg), high fasting plasma glucose (e.g., at least 100 mg / dL), high serum triglycerides (at least 150 mg / dL), and low high-density lipoprotein (HDL) levels (e.g., < 40 mg / dL for men and < 50 mg / dL for women).

[0141] "Diabetes mellitus" (simply "diabete" Diabetes mellitus (also referred to as "insulin-dependent diabetes") refers to a group of metabolic diseases characterized by high levels of glucose in the blood resulting from defects in insulin production, insulin action, or both. In one embodiment, the diabetes is selected from the group consisting of type 1 diabetes, type 2 diabetes, gestational diabetes, slow-onset autoimmune diabetes in adults (LADA), maturity-onset diabetes of the young (MODY), and other types of diabetes resulting from certain genetic conditions, drugs, malnutrition, infections, and other illnesses.

[0142] The current WHO diagnostic criteria for diabetes are as follows: fasting plasma glucose ≥ 7.0 mmol / l (126 mg / dL) or 2-hour plasma glucose ≥ 11.1 mmol / l (200 mg / dL).

[0143] "Type 1 diabetes" (also known as "insulin-dependent diabetes mellitus (IDDM)" or "juvenile diabetes") is a condition characterized by high blood glucose levels caused by a complete lack of insulin. It occurs when the body's immune system attacks and destroys insulin-producing beta cells in the pancreas. The pancreas produces little or no insulin. Pancreas removal or pancreatic disease can also result in a deficiency of insulin-producing beta cells. Type 1 diabetes accounts for between 5% and 10% of diabetes cases.

[0144] "Type 2 diabetes" (also known as "non-insulin-dependent diabetes mellitus (NIDDM)" or "adult-onset diabetes") is a condition characterized by excessively high circulating glucose levels as a result of excessive glucose production regardless of insulin availability and inadequate glucose clearance (insulin action). Type 2 diabetes accounts for approximately 90 to 95% of all diagnosed cases of diabetes.

[0145] "Gestational diabetes" is a condition in which women without previously diagnosed diabetes have high blood glucose levels during pregnancy, particularly in the third trimester. Gestational diabetes affects 3-10% of pregnancies, depending on the population studied.

[0146] "Slow-onset autoimmune diabetes in adults (LADA)" (also called "late-onset type 1 diabetes") is a form of type 1 diabetes that occurs in adults and often has a slower onset course.

[0147] "Maturity-onset diabetes of the young (MODY)" refers to a genetic form of diabetes caused by mutations in autosomal dominant genes that interfere with insulin production.

[0148] "Diabetic retinopathy" is an eye disease caused by metabolic derangements that occur in diabetic patients, leading to progressive vision loss.

[0149] The term "hyperglycemia" refers to excess sugar (glucose) in the blood.

[0150] The term "dyslipidemia" refers to a disorder of lipoprotein metabolism, including lipoprotein overproduction (hyperlipidemia) or deficiency (hypolipidemia). Dyslipidemia is manifested by elevated blood total cholesterol, low-density lipoprotein (LDL) cholesterol and / or triglyceride levels, and / or decreased high-density lipoprotein (HDL) cholesterol levels.

[0151] Nonalcoholic steatohepatitis (NASH) is a liver disease characterized by the accumulation of fat (lipid droplets) accompanied by inflammation and degeneration of liver cells. Once affected, this disease is associated with a high risk of cirrhosis, a condition in which liver function is altered and can progress to liver failure. NASH often progresses to liver cancer.

[0152] "Atherosclerosis" is a vascular disease characterized by irregularly distributed lipid deposits, called plaques, in the intima of large and medium-sized arteries, which can cause narrowing of the arterial lumen and progress to fibrosis and calcification. The lesions are usually localized and progress slowly and intermittently. Occasionally, plaque rupture occurs, causing impaired blood flow and consequent tissue death distal to the obstruction. Blood flow restriction is the primary cause of most clinical symptoms, which vary depending on the distribution and severity of the obstruction.

[0153] The term "medicament" as used herein refers to a substance / composition used in therapy, i.e., in the treatment of diseases and disorders.

[0154] "Treatment" means administering a compound or composition or combination of compounds or compositions to a subject to prevent or eliminate a disease or disorder; to halt or slow the disease or disorder in the subject; to inhibit or slow the development of new diseases or disorders in the subject; to reduce the frequency or severity and / or recurrence of symptoms in a subject who currently or previously has a disease or disorder; and / or to prolong, i.e., increase, the longevity of the subject.

[0155] In particular, the term "treating / treatment of a disease or disorder" includes curing, shortening the duration, amelioration, prevention, slowing or inhibiting the progression or deterioration, or preventing or delaying the onset of a disease or disorder or symptoms thereof.

[0156] The term "subject," as used herein, means a subject for treatment, particularly an affected subject (also called a "patient"), such as a human, non-human primate, or other animal, particularly a mammal, such as a cow, horse, pig, sheep, goat, dog, cat, rabbit, or rodent, such as a mouse, rat, guinea pig, and hamster. In one embodiment, the subject / patient is a human.

[0157] The present invention will now be further described by reference to the following examples, which are intended to be illustrative and not to limit the scope of the invention. [Example]

[0158] Determining the optimal GLP-1RA / FGF21 activity ratio through systems pharmacology modeling To identify the optimal GLP-1RA / FGF21 potency ratio, we used an improved mechanistic system pharmacology model to explain the effects of GLP-1RA / FGF21 fusion proteins on glucose, lipid, and energy metabolism in humans (Cuevas-Ramos et al. (2009) Curr Diabetes Rev 5(4):216-220; Deacon et al. (2011) Rev Diabet Stud 8(3):293-306; Kim et al. (2008) Pharmacol Rev 60(4):470-512; Kharitonenkov et al. (2014) Mol Metab 3(3):221-229).

[0159] The model represented relevant pathways for the effects of GLP-1 and FGF21. To assess the therapeutic response to simulated drug treatments (e.g., GLP-1RA / FGF21 fusion protein, liraglutide, and the FGF21 analog LY2405319), glycemic control (i.e., HbA1c, fasting plasma glucose, and postprandial glucose), lipid parameters (i.e., plasma triglycerides, fatty acids, and cholesterol), and energy balance (i.e., body weight, food intake, and energy expenditure) were obtained. LY24 Regarding 05319, see Kharitonenkov et al. (2013) PLoS ONE 8(3):e58575.

[0160] The model included key aspects of glucose homeostasis controlled by the hormones insulin, glucagon, and incretins (GLP-1, GIP). The primary model endpoint for glycemic control was HbA1c. HbA1c is a common clinical endpoint used to estimate mean plasma glucose concentrations over the previous several months. HbA1c was estimated within the model using the linear correlation between mean plasma glucose and HbA1c, as reported by Nathan et al. (2008) Diabetes Care 31(8):1473-1478.

[0161] The model incorporated triglyceride and fatty acid metabolism at a level appropriate for handling basic lipid metabolism, including cholesterol representation. HDL and non-HDL, i.e., LDL and VLDL cholesterol, are circulating lipoproteins. Representation of lipid metabolism allowed for simulation of the effects of FGF21 compounds on lipids and their interaction with statins. FGF21 compounds had significant effects on lipid concentrations (Gaich et al. (2013) Cell Metab 18(3):333-340; Fisher et al. (2011) Endocrinology 152(8):2996-3004).

[0162] Weight loss or weight gain in the model was measured as the change in body fat mass. There was a direct relationship between fat mass and body weight (Broyles et al. (2011) Br J Nutr 105(8):1272-1276). Food intake was based on basal metabolic rate and resting metabolic rate (Amirkalali et al. (2008) Indian J Med Sci 62(7):283-290). When energy expenditure was equal to calorie intake, body fat mass remained constant. The effect of treatment on food intake was modeled using the formula (Gobel et al. (2014) Obesity (Silver Spring) 22(10):2105-2108).

[0163] Food was considered to be carbohydrates (glucose equivalents), fats (fatty acid equivalents), and proteins (amino acid equivalents). All nutrients entered the stomach, passed through the delayed node, and then passed through the three-compartment gastrointestinal tract. The design of the gastrointestinal tract was based on work done by Bastianelli et al. (1996) J Anim Sci 74(8):1873-1887; Worthington (1997) Med Inform (Lond) 22(1):35-45.

[0164] Nutrients, hormones, drugs, and disease states can cause delayed gastric emptying. Under healthy conditions, the rate of gastric emptying depends on the size of the meal, its energy density, and the amount of nutrients in the stomach (Achour et al. (2001) Eur J Clin Nutr 55(9):769-772; Fouillet et al. (2009) Am J Physiol Regul Integr Comp Physiol 297(6):R1691-1705). Individuals with diabetes often have a delay in glucose absorption seen in oral glucose tolerance tests or meal tests (Bharucha et al. (2009) Clin Endocrinol (Oxf) 70(3):415-420; Chang et al. (2012) Diabetes Care 35(12):2594-2596). This delay is thought to be the result of a slowdown in gastric emptying. To account for delayed gastric emptying in diabetic subjects, delays between the stomach and small intestine were added to the model. Drugs and hormones (GLP-1) can affect gastric vagal tone, which reduces mechanical mixing and / or peristalsis, which also slows gastric emptying (Jelsing et al. (2012) Diabetes Obes Metab 14(6):531-538; Little et al. (2006) J Clin Endocrinol Metab 91(5):1916-1923; Nauck et al. (2011) Diabetes 60(5): pp. 1561-1565; van Can et al. (2013) Int J Obes (Lond) 38(6): pp. 784-93).

[0165] One of the goals of this study was to prevent adverse effects associated with GLP-1, namely nausea and vomiting (Lean et al. (2014) Int J Obes (Lond) 38(5):689-697). The degree of gastric emptying provided an estimate of adverse events such as nausea and vomiting, which are correlated with slower gastric emptying. Therefore, the marker for gastric adverse events in the model was the sum of gastric emptying rates.

[0166] Various virtual patients were run through the model platform representing healthy and type 2 diabetes patients at different stages of the disease. Additionally, the virtual patients encompassed various degrees of obesity and dyslipidemia. The virtual patients represented the variability in disease severity and the variability in pathophysiology and phenotype observed in the clinic.

[0167] Several treatments were implemented in the model: GLP-1RA / FGF21 fusion protein, liraglutide, the FGF21 analog LY2405319, metformin, atorvastatin, sitagliptin, and human insulin. These treatments could be switched on or off in the simulation. Virtual patients were assumed to be on a background of metformin and atorvastatin when administered with the GLP-1RA / FGF21 fusion protein.

[0168] A hypothetical GLP-1RA / FGF21 fusion protein was run through the model. The fusion protein contained both FGF21 and GLP-1 agonist activity, and it had the same effect as both FGF21 and GLP-1 receptor agonists. The pharmacokinetic profile of the hypothetical fusion protein was assumed to be similar to that of dulaglutide (Geiser et al. (2016) Clin Pharmacokinet 55(5):625-34).

[0169] The model was validated by comparison with a number of data sets. Simulation results were based on relevant data and knowledge, e.g., Hellerstein et al. (1997) J Clin Invest 100(5):1305-1319; Muscelli et al. (2008) Diabetes 57(5):1340-1348, which were qualitatively consistent. The model is based on relevant quantitative test data, e.g., Aschner et al. (2006) Diabetes Care 29(12):2632-2637; Dalla Man, Caumo et al. (2005) Am J Physiol Endocrinol Metab 289(5):E909-914; Dalla Man et al. (2005) Diabetes 54(11):3265-3273; Fiallo-Scharer (2005) J Clin Endocrinol Metab 90(6):3387-3391; Hahn et al. (2011) Theor Biol Med Model 8: 12; Herman et al. (2005) Clin Pharmacol Ther 78(6):675-688; Herman et al. (2006) J Clin Pharmacol 46(8):876-886 and J Clin Endocrinol Metab 91(11):4612-4619; Hojlund et al. (2001) Am J Physiol Endocrinol Metab 280(1):E50-58; Monauni et al. (2000) Diabetes 49(6):926-935; Nauck et al. (2009) Diabetes Care 32(1):84-90; Nauck et al. (1993) J Clin Invest 91(1):301-307; Nauck et al. (2004) Regul Pept 122(3):209-217; Tzamaloukas et al. (1989) West J Med 150(4):415-419; Sikaris (2009) J Diabetes Sci Technol 3(3):42 9-438; Vicini and Cobelli (2001) Am J Physiol Endocrinol Metab 280(1):E179-186; Vollmer et al. (2008) Diabetes 57(3):678-687.

[0170] For direct comparison, existing treatments, including an FGF21 analog and a GLP-1 receptor agonist, were implemented in the model. The effects of the FGF21 analog were validated with clinical data (e.g., Gaich et al. 2013).The GLP-1 receptor agonist liraglutide is a direct competitor to the target and its performance is supported by various clinical data, e.g., Jacobsen et al. (2009) Br J Clin Pharmacol 68(6):898-905; Elbrond et al. (2002) Diabetes Care 25(8):1398-1404; Chang et al. (2003) Diabetes 52(7):1786-1791; Kolterman et al. (2003) J Clin Endocrinol Metab 88(7):3082-3089; Degn et al. (2004) Diabetes 53(5):1187-1194; Kolterman et al. (2005) Am J Health Syst Pharm 62(2):173-181; Vilsboll et al. (2008) Diabet Med 25(2):152-156; Buse et al. (2009) Lancet 374(9683):39-47; Jelsing et al. (2012) Diabetes Obes Metab 14(6):531-538; Hermansen et al. (2013) Diabetes Obes Metab 15(11):1040-1048; Suzuki et al. (2013) Intern Med 52(10):1029-1034; van Can et al. (2013) Int J Obes(Lond) 38(6):784-93; Zinman et al. (2009) Diabetes Care 32(7):1224-1230; Russell-Jones et al. (2009) Diabetologia 52(10):2046-2055; Pratley et al. (2011) Int J Clin Pract 65(4):397-407; Nauck et al. (2013) Diabetes Obes Metab 15(3):204-212; Flint et al. (2011) Adv Ther 28(3):213-226; Kapitza et al. (2011) Adv Ther 28(8):650-660; Astrup et al. (2012) Int J Obes(Lond)36(6):843-854.

[0171] The model platform allowed for simulation of the beneficial and adverse effects of hypothetical GLP-1RA / FGF21 fusion proteins at various activity ratios. The effective FGF21-mediated EC50 values ​​were set to constants derived from Gaich et al. (2013) Cell Metab 18(3):333-340. The effective GLP-1-mediated EC50 values ​​ranged from 2- to 600-fold reductions in 1-fold increments relative to endogenous GLP-1 (Table 1).

[0172] [Table 1]

[0173] For each hypothetical fusion protein, exposure-response relationships were simulated for relevant pharmacodynamic endpoints: HbA1c, triglycerides, fatty acids, non-HDL cholesterol, and fat mass. Gastric emptying rate was used as a marker for GLP-1-mediated adverse events. A 52-week treatment of an average obese, dyslipidemic hypothetical patient with type 2 diabetes with GLP-1RA / FGF21 fusion protein was simulated over a wide dose range. After 52 weeks of treatment, all relevant pharmacodynamic endpoints were expected to reach steady state. For each endpoint, the 50% maximal effective concentration (EC50 value) was determined from the exposure-response curve. Specifically, for the primarily GLP-1-mediated endpoints HbA1c and gastric emptying rate, EC50 values ​​varied with activity ratio. Figure 1 shows the dependence of EC50 values ​​on GLP-1 fold attenuation. Increased GLP-1 fold attenuation indicates a reduction in GLP-1R agonist activity.

[0174] This approach allowed the identification of relevant activity ratios in which adverse effects began at higher plasma concentrations compared to the pharmacodynamic effects. For GLP-1 attenuation folds greater than 9, the EC50 of GLP-1-mediated gastrointestinal adverse effects exceeded the EC50 of the pharmacodynamic effects. Thus, gastric adverse effects began at higher plasma levels than the pharmacodynamic effects. It is possible to find a dose that provides all the desired pharmacodynamic effects while avoiding GLP-1-mediated gastrointestinal adverse effects. Therefore, activity ratios below 1:10 were not relevant.

[0175] The maximum EC50 value for gastric emptying rate was achieved at an attenuation factor of 531. The maximum distance between adverse effects and the mean pharmacodynamic effect was achieved at an attenuation factor of 482 (Figure 2). Thus, activity ratios greater than 1:482 were irrelevant. The maximum distance between the maximum pharmacodynamic effect (HbA1c) and adverse effects was 319. The maximum distance between the maximum pharmacodynamic effect (HbA1c) and adverse effects, normalized by the amplitudes of the FGF21-mediated effects (lipids) and GLP-1-mediated effects (HbA1c), was 121.

[0176] GLP-1RA / FGF21 fusion proteins with potency ratios between 1:10 and 1:482 were predicted to be most beneficial in improving lipid profiles, body weight, and glucose metabolism, and likely to avoid significant adverse events based on gastric emptying responses. Lower potency ratios were likely not good candidates based on the predicted strong inhibition of gastric emptying and potential for adverse events. Higher potency ratios were unlikely to be sufficiently effective and therefore not competitive.

[0177] Moreover, HbA1c, a primarily GLP-1 mediated parameter, was clinically significant after 12 weeks of treatment. Since steady state was reached in , 12 weeks of treatment of an average obese, dyslipidemic type 2 diabetic hypothetical patient with GLP-1RA / FGF21 fusion protein was simulated over a wide dose range.

[0178] Figure 3 shows the EC50 values ​​depending on the GLP-1 attenuation factor for a 12-week simulation. For GLP-1 attenuation factors greater than 18, the EC50 for GLP-1-mediated adverse gastrointestinal effects exceeded the EC50 for pharmacodynamic effects. The maximum EC50 value for gastric emptying rate was achieved at an attenuation factor of 501. The maximum distance between the adverse effect and the mean pharmacodynamic effect was achieved at an attenuation factor of 469 (Figure 4). The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect was 313. The maximum distance between the maximum pharmacodynamic effect (HbA1c) and the adverse effect, normalized by the amplitude expansion of the FGF21-mediated effect (lipids) and the GLP-1-mediated effect (HbA1c), was 123.

[0179] The efficacy and potential for adverse events for GLP-1RA / FGF21 fusion proteins with various activity ratios were investigated using the described systems pharmacology approach. Fusion proteins with calculated, potentially ideal potency ratios were identified and predicted to be beneficial in improving lipid profiles, body weight, and glycemic control, without potentially causing significant GLP-1RA-related adverse effects based on gastric emptying response. Therefore, selected compounds with model-informed potency ratios were predicted to offer favorable efficacy-risk profiles. [Example]

[0180] Expression of GLP1RA-FGF21 fusion protein in HEK293 cells The FGF21 protein of SEQ ID NO: 2 was either directly fused to GLP1RA or a linker sequence was inserted between the GLP1RA and FGF21 sequences. In all constructs, the FGF21 construct was fused to the GLP1RA sequence at the C-terminus. When a linker was inserted, GLP1RA was fused to the linker sequence at the N-terminus, and FGF21 was fused to the linker sequence at the C-terminus. The DNA sequence of the GLP1RA-FGF21 fusion protein was fused to the IL2 signal sequence at the N-terminus, followed by a histidine-rich sequence (His tag) and a Tev cleavage site. The GLP1RA-FGF21 fusion protein was produced by transient transfection of HEK293 cells. The signal sequence was required for secretion of the desired fusion protein into the culture medium. The desired fusion protein was purified from the culture supernatant using immobilized metal ion affinity chromatography (IMAC). After elution from the IMAC column, the N-terminal His tag was cleaved by adding Tev protease. For construct screening purposes, the His tag was cleaved by adding Tev protease directly to the incubation medium for the GLP1RA activity assay. To ensure complete cleavage of the His tag, the incubation time before starting the assay was 10 to 60 minutes. Constructs with GLP1RA activity in the desired range were generated on a larger scale. GLP1RA-Fc-FGF21 fusion proteins were produced by transient transfection in HEK293 cells. The desired fusion proteins were purified from the culture supernatant using IMAC with cOmplete His tag purification resin (Roche). After cleavage of the His tag, the cleavage reaction solution was passed twice through an IMAC column (cOmplete™ His tag purification resin (Roche)), and the flow-through (without the His tag) was collected. The fusion protein was further purified using a gel filtration column with phosphate-buffered saline (PBS, Gibco) as the running buffer. Fractions containing the desired fusion protein were collected, pooled, concentrated, and stored at -80°C until further use. [Example]

[0181] In vitro cell assay for the efficacy of human FGF21 receptor in CHO cells ( In-Cell Western The cellular in vitro efficacy of mature human FGF21 (SEQ ID NO: 2) or FGF21 mutants was measured using a specific and highly sensitive in-cell Western (ICW) assay. ICW assays are immunocytochemical assays typically performed in a microplate format. For FGF21 receptor autophosphorylation assays using in-cell Western (Aguilar HN et al. (2010) PLoS ONE 5(4):e9965), CHO Flp-In cells (Invitrogen, Darmstadt, Germany) stably expressing human FGFR1c (FGF receptor 1c isoform) together with human beta-Klotho (KLB) were used. To determine the receptor autophosphorylation level or downstream activity of MPA kinase ERK1 / 2, 2 × 10 4Cells per well were seeded into 96-well plates and cultured for 48 hours. Cells were serum-starved for 3-4 hours in serum-free Ham's F-12 Nutrient Mix with GlutaMAX (Gibco, Darmstadt, Germany). Subsequently, cells were treated with increasing concentrations of either mature human FGF21 (SEQ ID NO: 2) for 5 hours at 37°C. After incubation, the medium was discarded, and cells were fixed in 3.7% freshly prepared paraformaldehyde for 20 minutes. Cells were permeabilized with 0.1% Triton-X-100 in PBS for 20 minutes. Blocking was performed with Odyssey blocking buffer (LICOR, Bad Homburg, Germany) for 2 hours at room temperature. Primary antibodies (anti-pFGFR Tyr653 / 654 (New England Biolabs, Frankfurt, Germany) or anti-pERK phospho-p44 / 42 MAP kinase Thr202 / Tyr204 (Cell Signaling)) were added and incubated overnight at 4°C. After primary antibody incubation, cells were washed with PBS + 0.1% Tween 20. Secondary anti-mouse 800CW antibody (LICOR, Bad Homburg, Germany) was incubated for 1 hour at room temperature. Subsequently, cells were washed again with PBS + 0.1% Tween 20, and the infrared dye signal was quantified using an Odyssey imager (LICOR, Bad Homburg, Germany). Results were normalized by DNA quantification using TO-PRO3 dye (Invitrogen, Karlsruhe, Germany). Data were obtained as arbitrary units (AU), and EC50 values ​​were obtained from dose-response curves and are summarized in Table 2. FIG. 5 shows the results of ICW using CHO cells overexpressing human FGFR1c+KLB.

[0182] [Table 2] [Example]

[0183] In vitro cellular assay of human GLP-1 receptor efficacy The agonism of compounds for the human glucagon-like peptide-1 (GLP-1) receptor was determined by a functional assay measuring the cAMP response in a HEK-293 cell line stably expressing the human GLP-1 receptor.

[0184] The cellular cAMP content was measured using a Cisbi method based on HTRF (Homogeneous Time Resolved Fluorescence). The cell density was determined using a kit from Sigma-Aldrich Corp. (Cat. No. 62AM4PEC). For preparation, cells were split into T175 culture flasks and grown overnight to near confluence in medium (DMEM / 10% FBS). The medium was then removed, and the cells were washed with PBS lacking calcium and magnesium, followed by proteinase treatment with accutase (Sigma-Aldrich Cat. No. A6964). The detached cells were washed and resuspended in assay buffer (1x HBSS; 20mM HEPES, 0.1% BSA, 2mM IBMX), and the cell density was determined. They were then diluted to 4x10 5 The cells were diluted to 1000 cells / mL, and 25 μL aliquots were dispensed into wells of a 96-well plate. For measurement, 25 μL of test compound in assay buffer was added to the wells, followed by incubation at room temperature for 30 minutes. After adding HTRF reagent diluted in lysis buffer (a component of the kit), the plate was incubated for 1 hour, followed by measurement of the fluorescence ratio at 665 / 620 nm. The in vitro potency of the agonist was quantified by determining the concentration that produced 50% activation of the maximum response (EC50). The results are summarized in Table 3.

[0185] [Table 3]

[0186] [Table 4] [Example]

[0187] Synthesis of peptide compounds The fusion proteins were produced by recombinant methods (see Example 2), whereas the isolated peptide GLP-1R agonists were chemically synthesized.

[0188] More specifically, the peptide was synthesized using the following manual synthesis procedure: 0.3 g (0.66 mmol / g) of dried Rink amide MBHA resin was placed in a polyethylene container equipped with a polypropylene filter. The resin was swollen in DCM (15 ml) for 1 hour and in DMF (15 ml) for 1 hour. The Fmoc group on the resin was deprotected by treating it twice with a 20% (v / v) piperidine / DMF solution for 5 minutes and 15 minutes. The resin was washed with DMF / DCM / DMF (6:6:6 times, respectively). The Kaiser test (quantitative method) was used to confirm the removal of Fmoc from the solid support. The C-terminal Fmoc-amino acid (5 equivalents in excess of the resin loading) in dry DMF was added to the deprotected resin, and the coupling of the next Fmoc-amino acid was initiated with 5 equivalents of DIC and HOBT in DMF. The concentration of each reactant in the reaction mixture was approximately 0.4 M. The mixture was rotated on a rotor at room temperature for 2 hours. The resin was filtered and washed with DMF / DCM / DMF (6:6:6 times, respectively). A Kaiser test on an aliquot of the peptide resin at the completion of coupling was negative (no coloration on the resin). After coupling of the first amino acid, any unreacted amino groups on the resin, if any, were capped using acetic anhydride / pyridine / DCM (1:8:8) for 20 minutes to avoid any loss of sequence. After capping, the resin was washed with DCM / DMF / DCM / DMF (6 / 6 / 6 / 6 times, respectively). The Fmoc group on the C-terminal amino acid attached to the peptidyl resin was deprotected by treatment with 20% (v / v) piperidine / DMF solution twice for 5 and 15 minutes. The resin was washed with DMF / DCM / DMF (6:6:6 times, respectively). A Kaiser test on an aliquot of the peptide resin at the completion of Fmoc-deprotection was positive.

[0189] The remaining amino acids in the target sequence on the Rink amide MBHA resin were sequentially coupled using the Fmoc AA / DIC / HOBt method, with a 5-equivalent excess corresponding to the resin loading in DMF. The concentration of each reactant in the reaction mixture was approximately 0.4 M. The mixture was rotated on a rotor at room temperature for 2 hours. The resin was filtered and washed with DMF / DCM / DMF (6:6:6 times, respectively). After each coupling step and Fmoc deprotection step, a Kaiser test was performed to confirm the completeness of the reaction. After the linear sequence was completed, the ε-amino group of lysine used as a branching or modification point was deprotected twice using 2.5% hydrazine hydrate in DMF for 15 minutes and washed with DMF / DCM / DMF (6:6:6 times, respectively). The γ-carboxyl terminus of glutamic acid was coupled to the ε-amino group of Lys using Fmoc-Glu(OH)-OtBu in DMF by the DIC / HOBt method (5 equivalents excess relative to resin loading). The mixture was rotated on a rotor at room temperature for 2 hours. The resin was filtered and washed with DMF / DCM / DMF (6 times, 30 ml each). The Fmoc group on glutamic acid was deprotected by treating with 20% (v / v) piperidine / DMF solution twice for 5 and 15 minutes (25 ml each). The resin was washed with DMF / DCM / DMF (6:6:6 times, respectively). A Kaiser test on an aliquot of the peptide resin upon completion of Fmoc deprotection was positive.

[0190] If the side chain branch contained another γ-glutamic acid, a second Fmoc-Glu(OH)-OtBu was used for coupling to the free amino group of γ-glutamic acid by the DIC / HOBt method (5 equivalents in excess relative to the resin loading) in DMF. The mixture was rotated on a rotor for 2 hours at room temperature. The resin was filtered and washed with DMF / DCM / DMF (6 times, 30 ml each). The Fmoc group on γ-glutamic acid was deprotected by treating with 20% (v / v) piperidine / DMF solution twice for 5 and 15 minutes (25 ml each). The resin was washed with DMF / DCM / DMF (6:6:6 times, respectively). Upon completion of Fmoc deprotection, a Kaiser test on an aliquot of the peptide resin was positive.

[0191] Final cleavage of the peptide from the resin: Manually synthesized peptidyl resin was washed with DCM (6 x 10 ml), MeOH (6 x 10 ml), and ether (6 x 10 ml) and dried overnight in a vacuum oven. Cleavage of the peptide from the solid support was achieved by treating the peptide resin with a reagent cocktail (80% TFA / 5% thioanisole / 5% phenol / 2.5% EDT / 2.5% DMS / 5% DCM) at room temperature for 3 hours. The cleavage mixture was collected by filtration, and the resin was washed with TFA (2 ml) and DCM (2 x 5 ml). Excess TFA and DCM were concentrated to a small volume under nitrogen, and a small amount of DCM (5-10 ml) was added to the residue and evaporated under nitrogen. This process was repeated 3-4 times to remove most of the volatile impurities. The residue was cooled to 0 °C, and anhydrous ether was added to precipitate the peptide. The precipitated peptide was centrifuged, the ether in the supernatant was removed, fresh ether was added to the peptide, and the mixture was centrifuged again. The crude sample was purified by preparative HPLC and lyophilized. The identity of the peptide was confirmed by LCMS.

[0192] [Table 5]

[0193]

Table 6

[0194]

Table 7

[0195]

Table 8

[0196]

Table 9

[0197]

Table 10

Claims

1. A combination comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist, the FGF21 compound has an FGF21 activity that is the same as or in the range of 50% to 150% of the FGF21 activity of native FGF21; the GLP-1R agonist has a GLP-1R agonist activity that is 9- to 531-fold lower than the GLP-1R agonist activity of native GLP-1(7-36); GLP-1R agonists have the amino acid sequence H-G-E-G-T-F-T-S-D-X 10 -S-X 12 -Q-X 14 -X 15 -E-E-X 18 -V-X 20 -X 21 -F-I-E-W-L-X 27 -X 28 -X 29 -X 30 (SEQ ID NO: 37) [where: X 10 is L or K; X 12 is K or I; X 14 is L; X 15 is E or D; X 18 is A or R; X 20 is R or Q; X 21 is L or E; X 27 is L, E, K, or V; X 28 is A; X 29 is T or G; X 30 is G or R; optionally, the amino acid sequence comprises at least one additional amino acid residue at its N-terminus; Optionally, the amino acid sequence includes a peptide extension of 12, 11, or up to 10 amino acid residues at its C-terminus. comprising or consisting of The combination.

2. The GLP-1R agonist suppresses the GLP-1R agonist activity of natural GLP-1(7-36). has 9 to 482 fold, or 9 to 319 fold, or 9 to 121 fold less GLP-1R agonist activity than the control; or 2. The combination of claim 1, wherein the GLP-1R agonist has a GLP-1R agonist activity that is 18-fold to 501-fold, or 18-fold to 469-fold, or 18-fold to 313-fold, or 18-fold to 123-fold lower than the GLP-1R agonist activity of native GLP-1(7-36).

3. 3. The combination of claim 1 or 2, wherein the FGF21 compound is a native FGF21 or an FGF21 variant having at least 90%, or at least 95%, amino acid sequence identity to the amino acid sequence of native FGF21.

4. The combination according to any one of claims 1 to 3, wherein the GLP-1R agonist comprises or consists of an amino acid sequence selected from the group consisting of SEQ ID NOs: 9, 10, 12, 14, 16, 17, 19, and 20.

5. A pharmaceutical composition comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist together with a pharmaceutically acceptable carrier and / or excipient, the FGF21 compound has an FGF21 activity that is the same as or in the range of 50% to 150% of the FGF21 activity of native FGF21; the GLP-1R agonist has a GLP-1R agonist activity that is 9- to 531-fold lower than the GLP-1R agonist activity of native GLP-1(7-36); GLP-1R agonists have the amino acid sequence H-G-E-G-T-F-T-S-D-X 10 -S-X 12 -Q-X 14 -X 15 -E-E-X 18 -V-X 20 -X 21 -F-I-E-W-L-X 27 -X 28 -X 29 -X 30 (SEQ ID NO: 37) [where: X 10 is L or K; X 12 is K or I; X 14 is L; X 15 is E or D; X 18 is A or R; X 20 is R or Q; X 21 is L or E; X 27 is L, E, K, or V; X 28 is A; X 29 is T or G; X 30 is G or R; optionally, the amino acid sequence comprises at least one additional amino acid residue at its N-terminus; Optionally, the amino acid sequence includes a peptide extension of 12, 11, or up to 10 amino acid residues at its C-terminus. comprising or consisting of The pharmaceutical composition.

6. A fusion molecule comprising an FGF21 (fibroblast growth factor 21) compound and a GLP-1R (glucagon-like peptide-1 receptor) agonist, the FGF21 compound has an FGF21 activity that is the same as or in the range of 50% to 150% of the FGF21 activity of native FGF21; the GLP-1R agonist has a GLP-1R agonist activity that is 9- to 531-fold lower than the GLP-1R agonist activity of native GLP-1(7-36); GLP-1R agonists have the amino acid sequence H-G-E-G-T-F-T-S-D-X 10 -S-X 12 -Q-X 14 -X 15 -E-E-X 18 -V-X 20 -X 21 -F-I-E-W-L-X 27 -X 28 -X 29 -X 30 (SEQ ID NO: 37) [where: X 10 is L or K; X 12 is K or I; X 14 is L; X 15 is E or D; X 18 is A or R; X 20 is R or Q; X 21 is L or E; X 27 is L, E, K, or V; X 28 is A; X 29 is T or G; X 30 is G or R; optionally, the amino acid sequence comprises at least one additional amino acid residue at its N-terminus; Optionally, the amino acid sequence includes a peptide extension of 12, 11, or up to 10 amino acid residues at its C-terminus. comprising or consisting of The fusion molecule.

7. The pharmaceutical composition of claim 5 or the fusion molecule of claim 6, wherein the GLP-1R agonist and / or the FGF21 compound is as defined in any one of claims 2 to 4.

8. A nucleic acid molecule encoding the fusion molecule of claim 6 or 7.

9. A host cell containing the nucleic acid molecule of claim 8.

10. A kit comprising the combination according to any one of claims 1 to 4, the pharmaceutical composition according to claim 5 or 7, the fusion molecule according to claim 6 or 7, the nucleic acid molecule according to claim 8, or the host cell according to claim 9.

11. A combination according to any one of claims 1 to 4, a pharmaceutical composition according to claim 5 or 7, a fusion molecule according to claim 6 or 7, a nucleic acid molecule according to claim 8, or a host cell according to claim 9, for use as a medicament.

12. 10. The combination of any one of claims 1 to 4, the pharmaceutical composition of claim 5 or 7, the fusion molecule of claim 6 or 7, the nucleic acid molecule of claim 8, or the host cell of claim 9, for use in the treatment of a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis.

13. Use of the combination according to any one of claims 1 to 4, the pharmaceutical composition according to claim 5 or 7, the fusion molecule according to claim 6 or 7, the nucleic acid molecule according to claim 8, or the host cell according to claim 9 in the manufacture of a medicament for the treatment of a disease or disorder selected from the group consisting of obesity, overweight, metabolic syndrome, diabetes, diabetic retinopathy, hyperglycemia, dyslipidemia, non-alcoholic steatohepatitis (NASH), and atherosclerosis.

14. The combination, pharmaceutical composition, fusion molecule, nucleic acid molecule, or host cell of claim 12, wherein the diabetes is type 1 diabetes or type 2 diabetes.

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