Solid Compositions of GLP-1 Receptor Agonists

JP2024535134A5Pending Publication Date: 2025-10-06HANGZHOU ZHONGMEI HUADONG PHARMACEUTICAL CO LTD +1
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Patent Information

Application Number
JP2024542230
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2021-09-28
Filing Date
2022-09-27
Publication Date
2025-10-06

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Abstract

The present invention provides a pharmaceutical composition of a small molecule GLP-1R receptor agonist suitable for oral administration. More specifically, the present invention relates to a pharmaceutical composition containing (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propanoic acid ("OAD2") and its pharma- ceutical acceptable salts, and a method for preparing the same. The pharmaceutical composition may contain a low level of one or more oxidative decomposition substances or have a low level of reactive oxygen species. The pharmaceutical composition provided in the present invention has a low content of oxidative decomposition impurity B and a low content of total impurities, and therefore can be stably stored for more than 12 months under normal temperature and humidity. The present invention further relates to methods for treating Type II diabetes and indications related to inadequate glycemic control using such pharmaceutical compositions.
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Description

[Technical field]

[0001] The present invention relates to pharmaceutical compositions of small molecule GLP-1R receptor agonists suitable for oral administration, more specifically, pharmaceutical compositions comprising (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinoline-8-formylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propanoic acid ("OAD2") or a pharma- ceutically acceptable salt thereof, and methods for preparing the same. The present invention is also directed to methods of using such pharmaceutical compositions to treat indications related to type II diabetes mellitus and poor glycemic control. [Background technology]

[0002] Type II diabetes can be characterized by metabolic disorders and their disease progression, including one or more of the following: insulin resistance in peripheral tissues, hyperglycemia, compensation of islet b cells, hyperinsulinemia, dyslipidemia, increased hepatic gluconeogenesis, and finally impaired b cell population and b cell function.The pathophysiological effects of abnormal glucose metabolism and lipid metabolism are toxic to organs such as kidney, eye, peripheral nerve cells, vasculature, and heart.Therefore, there is a need for a drug that can slow down the progression of diseases associated with type II diabetes, thereby improving glycemic control and improving b cell population and b cell function.

[0003] Glucagon-like peptide-1 (GLP-1) is a kind of brain-gut peptide secreted by ileal endocrine cells, and is currently mainly used as the target of action of type II diabetes drugs. The important function of GLP-1 is to activate receptors on the b cells of the islets of Langerhans, and its favorable metabolic benefits include, but are not limited to, inhibition of excessive glucagon production, delayed gastric emptying time, and improvement of b cell population and b cell function. The favorable effects of GLP-1 on b cell population and b cell function may be provided, such that GLP-1-like therapy can delay early disease progression. In addition, GLP-1 agonists may also be used in combination therapy, such as in combination with insulin in type II diabetes patients.

[0004] (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinoline-8-formylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propanoic acid dihydrochloride (hereinafter referred to as "OAD2 dihydrochloride") is a C 50 H 49 It has the formula Cl4N3O6, molecular weight 929.76 and has the following chemical formula:

[0005] [ka] OAD2 dihydrochloride is a non-peptide, oral glucagon-like peptide-1 receptor (GLP-1r) agonist.

[0006] Although WO 2010 / 114824 discloses the free base structure of OAD2, the composition of OAD2 or its pharma- ceutically acceptable salts has not been systematically studied.

[0007] As with any small molecule drug, there is a need to identify formulations that reduce or eliminate the growth of impurities under various storage conditions so that the formulation can be stored for long periods or at low cost. Summary of the Invention

[0008] (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid ("OAD2") is a small molecule non-peptide glucagon-like peptide 1 (GLP-1) receptor agonist in development for the treatment of diabetes and other related indications. OAD2 has a molecular weight (MW) of 856 and is disclosed in WO 2010 / 114824. OAD2 dihydrochloride has the following chemical structure:

[0009] [ka]

[0010] The present invention provides pharmaceutical compositions comprising OAD2 or a pharma- ceutically acceptable salt thereof, methods for their preparation, and methods of their use in treating conditions in which modulation of the human GLP-1 receptor is beneficial, such as diabetes.

[0011] The present invention also provides a pharmaceutical composition with low levels of impurity B through compatibility studies of auxiliary raw materials and screening of auxiliary materials.

[0012] The present invention provides pharmaceutical compositions with low levels of reactive oxygen species (ROS) by reducing the structural components of oxides, peroxides, superoxides, and other oxides or reactive oxygen species in the auxiliary ingredients.

[0013] The present invention also provides pharmaceutical compositions having low levels of total impurities. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0014] Research shows that related substances, specifically oxidative degradation impurity B, can rapidly grow in the solid form and / or solid preparation of OAD2 dihydrochloride under room temperature conditions. The oxidative degradation impurity B increases the druggability risk of the preparation, while the high growth rate of the oxidative degradation impurity makes the storage conditions of the pharmaceutical composition or preparation strict. Therefore, in order to reduce the drug administration risk after the pharmaceutical composition is formulated, it is necessary to control the limit value of the oxidative degradation impurity B and the whole related substances by optimizing the auxiliary materials.

[0015] In the process of investigating the cause of impurity proliferation, the researchers found that OAD2 dihydrochloride reacts easily with some solubilizers under acidic conditions, resulting in the proliferation of related substances. In this regard, the researchers screened the compatibility of auxiliary raw materials based on their own formula, reevaluated the auxiliary materials, specifically solubilizers and disintegrants, and controlled the limit value of related substances by selecting solubilizers and disintegrants that are less likely to react with OAD2 dihydrochloride.

[0016] The present invention provides a pharmaceutical composition of OAD2 dihydrochloride that has good solubility, good formability, and process reproducibility.

[0017] The present invention provides pharmaceutical compositions of OAD2 dihydrochloride that are low in related substances, including the oxidative degradation impurity B.

[0018] The pharmaceutical composition provided by the present invention has the advantages of a stable manufacturing process and high reproducibility, and the prepared pharmaceutical composition of OAD2 dihydrochloride has good solubility, low content of oxidative degradation impurity B, and low content of related substances.

[0019] The pharmaceutical composition provided by the present invention can effectively control the proliferation of related substances, so that the composition can be stored at room temperature, while at the same time reducing the probability of side effects of the formulation composition and ensuring the safety of the drug.

[0020] Pharmaceutical Compositions of OAD2 and Pharmaceutically Acceptable Salts Thereof The present invention provides a pharmaceutical composition comprising OAD2, or a pharma- ceutically acceptable salt thereof, and one or more pharma- ceutically acceptable adjuvant ingredients.

[0021] The composition of the present invention comprises OAD2 or a pharma- ceutically acceptable salt thereof in combination with one or more pharma- ceutically acceptable excipients or carrier materials suitable for oral administration. The composition of the present invention may comprise a required amount of OAD2 or a pharma- ceutically acceptable salt thereof mixed with one or more of a disintegrant, a binder, a filler, and a surfactant. The composition may also comprise one or more of a lubricant, a glidant, an acidifier, and an absorption enhancer. The composition may also optionally comprise one or more antioxidants.

[0022] In one embodiment, such compositions are tableted or encapsulated for ease of administration in the form of an immediate release capsule or tablet.

[0023] The present invention provides a pharmaceutical composition comprising OAD2, or a pharma- ceutically acceptable salt thereof, and at least one solubilizing agent.

[0024] In some embodiments, the mass percent content of the active ingredient is 1-60%.

[0025] In some embodiments, the mass percent content of the active ingredient is 5% to 40%.

[0026] In some embodiments, the mass percent content of the active ingredient is 10-20%.

[0027] In one specific embodiment, the mass percentage content of the active ingredient is 1-5%, 2-6%, 3-7%, 4-8%, 5-9%, 6-10%, 11-15%, 12-16%, 13-17%, 14-18%, 15-19%, 16-20%, 21-25%, 22-26%, 23-27%, 24-28%, 25-29%, 26-30%, 27-31%, 28-32%, 29-40%, 30-33%, 31-34%, 32-35%, 33-36%, 34-37%, 35-38%, 36-39%, 37-40%, 38-41%, 39-42%, 42-43%, 43-44%, 44-45%, 45-46%, 47-48%, 48-49%, 49-50%, 50-51%, 51-52%, 52-53%, 53-54%, 54-55%, 55-56%, 57-58%, 58-59%, 59-60%, 60-61%, 61-62%, 62-63%, 63-64%, 64-65%, 65-66%, 66-67%, 67-68%, 68-69%, 69-70%, 70-71%, 71-72%, 72-73%, 73-74%, 75-75%, 76-77%, 77-78%, 78-80%, 79-81%, 80-82%, 81-83%, 82-84%, 83-85%, 84-85%, 85-86%, 87- 9%, 26-30%, 31-35%, 32-36%, 33-37%, 34-38%, 35-39%, 36-40%, 41-45%, 42-46%, 43-47%, 44-48%, 45-49%, 46-50%, 51-55%, 52-56%, 53-57%, 54-58%, 55-59%, 56-60%.

[0028] In one specific embodiment, the mass percentage content of the active ingredient is 4±2%, 6±2%, 8±2%, 10±2%, 12±2%, 14±2%, 16±2%, 18±2%, 20±2%, 22±2%, 24±2%, 26±2%, 28±2%, 30±2%, 32±2%, 34±2%, 36±2%, 40±2%, 42±2%, 44±2%, 46±2%, 48±2%, 50±2%. In one specific embodiment, the mass of the active ingredient in the pharmaceutical composition is 1 to 600 mg, 5 to 300 mg, 10 to 150 mg, 20 to 75 mg, or 15 to 25 mg, 30 to 40 mg, 45 to 55 mg, 60 to 70 mg, 75 to 85 mg, 90 to 100 mg, 105 to 115 mg, 120 to 130 mg, 135 to 145 mg, 150 to 160 mg. g, 165-175 mg, 180-190 mg, 200-210 mg, 220-230 mg, 240-250 mg, 260-270 mg, 280-290 mg, 300-310 mg, 320-330 mg, 340-350 mg, 360-370 mg, 380-390 mg, 400-410 mg, 420-430 mg, 440-450 mg.

[0029] In one specific embodiment, the mass of the active ingredient in the pharmaceutical composition is 10±2.5 mg, 15±2.5 mg, 20±2.5 mg, 25±2.5 mg, 30±2.5 mg, 35±2.5 mg, 40±2.5 mg, 45±2.5 mg, 50±2.5 mg, 55±2.5 mg, 60±2.5 mg, 65±2.5 mg, 70±2.5 mg, 75±2.5 mg, 80±2.5 mg, 85 ... mg, 80±2.5mg, 85±2.5mg, 90±2.5mg, 95±2.5mg, 100±2.5mg, 105±2.5mg, 110±2.5mg, 115±2.5m g, 120±2.5mg, 125±2.5mg, 130±2.5mg, 135±2.5mg, 140±2.5mg, 145±2.5mg, 150±2.5mg, 155±2. 5mg, 160±2.5mg, 165±2.5mg, 170±2.5mg, 175±2.5mg, 180±2.5mg, 185±2.5mg, 190±2.5mg, 195±2.5mg, 200±2.5mg, 205±2.5mg, or 210±5mg, 220±5mg, 230±5mg, 240±5mg, 250±5mg, 260±5mg, 270±5mg, 280±5mg, 290±5mg, 300±5mg, 310±5mg, 320±5mg, 330±5mg, 340±5mg, 350±5mg, 360±5mg, 370±5mg, 380±5mg, 390±5mg, 400±5mg, 410±5mg, 420±5mg, 430±5mg, 440±5mg, 450±5mg.

[0030] 1. Solubilizer In the pharmaceutical composition provided by the present invention, the mass percentage content of the solubilizer is selected from 0.1% to 10%.

[0031] In some embodiments, the mass percentage content of the solubilizer is 0.2% to 5%.

[0032] In one specific embodiment, the mass percentage content of the solubilizer is 0.1-0.6%, 0.2-0.7%, 0.3-0.8%, 0.4-0.9%, 0.5-1.0%, 1.1-1.6%, 1.2-1.7%, 1.3-1.8%, 1.4-1.9%, 1.5-2.0%, 2.1-2.6%, 2.2-2.7%, 2.3-2.8%, 2.4-2.9%, 2.5-3.0%, 3.1-3.6%, 3.2-3.7%, 3.3-3.8%, 3.4-3.9%, 4.5-5.0%, 5.1-5.6%, 6.0-6.0%, 7.0-7.0%, 8.0-8.0%, 9.0-9.0%, 10.0-10.0%, 11.0-11.0%, 12.0-12.0%, 13.0-14.0%, 15.0-16.0%, 17.0-18.0%, 18.0-19.0%, 19.0-20.0%, 20.0-21.0%, 21.0-22.0%, 22.0-23.0%, 23.0-24.0%, 24.0-25.0%, 25.0-26.0%, 26.0-27.0%, 27.0-28.0%, 28.0-29.0%, 29.0-30.0%, 30.0-31.0%, 31.0-32.0%, 32.0-33.0%, 33.0-34.0%, 34.0-35.0%, 35.0-36.0%, 36.0- %, 5.2-5.7%, 5.3-5.8%, 5.4-5.9%, 5.5-6.0%, 6.1-6.6%, 6.2-6.7%, 6.3-6.8%, 6.4-6.9%, 6.5-7.0%, 7.1-7.6%, 7.2-7.7%, 7.3-7.8%, 7.4-7.9%, 7.5-8.0%, 8.1-8.6%, 8.2-8.7%, 8.3-8.8%, 8.4-8.9%, 8.5-9.0%, 9.1-9.6%, 9.2-9.7%, 9.3-9.8%, 9.4-9.9%, 9.5-10.0%.

[0033] In one specific embodiment, the mass of the solubilizer in the pharmaceutical composition is 0.5 to 50 mg, 1 to 30 mg, 2 to 20 mg, or 2 to 5 mg, 6 to 9 mg, 10 to 14 mg, 15 to 19 mg, 20 to 24 mg, 25 to 29 mg, 30 to 34 mg, 35 to 39 mg, 40 to 44 mg, or 45 to 49 mg.

[0034] In one specific embodiment, the mass of the solubilizer in the pharmaceutical composition is 3±1 mg, 6±1 mg, 9±1 mg, 12±1 mg, 15±1 mg, 18±1 mg, 21±1 mg, 24±1 mg, 27±1 mg, 30±1 mg, 33±1 mg, 36±1 mg, 39±1 mg, 42±1 mg, 45±1 mg, 48±1 mg.

[0035] In some embodiments, the solubilizer is selected from one or more of HS15, RH40, hydroxypropyl beta cyclodextrin, SoluPlus, polyoxyl 35 castor oil, polyethylene glycol cetostearyl ether 12.

[0036] In one specific embodiment, the solubilizer is HS15.

[0037] In one specific embodiment, the solubilizer is RH40.

[0038] In one specific embodiment, the solubilizer is hydroxypropyl beta-cyclodextrin.

[0039] In one specific embodiment, the solubilizer is SoluPlus.

[0040] 2. OAD2 and its pharma- ceutically acceptable salts In some embodiments, OAD2, or a pharma- ceutically acceptable salt thereof, is the only active ingredient in the pharmaceutical compositions provided by the present invention.

[0041] In some embodiments, the pharma- ceutically acceptable salt is selected from one of the following salts: hydrochloride, dihydrochloride, p-toluenesulfonate, sulfate, hydrobromide, tartrate, citrate, glycolate, methanesulfonate.

[0042] In a specific embodiment, the pharma- ceutically acceptable salt is a dihydrochloride salt.

[0043] In some embodiments, the active ingredient is one of OAD2 hydrochloride, OAD2 dihydrochloride, OAD2 p-toluenesulfonate, OAD2 sulfate, OAD2 hydrobromide, OAD2 tartrate, OAD2 citrate, OAD2 glycolate, and OAD2 methanesulfonate.

[0044] In one specific embodiment, the active ingredient is OAD2 dihydrochloride.

[0045] In one specific embodiment, the active ingredient is present in the pharmaceutical composition in the form of free OAD2.

[0046] In one specific embodiment, the active ingredient is present in the pharmaceutical composition in the form of the OAD2 dihydrochloride salt.

[0047] The pharma- ceutically acceptable salts of OAD2 described in this invention are formed from OAD2 and a pharma- ceutically acceptable acid.

[0048] In some embodiments, the pharma- ceutically acceptable acid is selected from the group consisting of 1-hydroxy-2-naphthoic acid, 4-aminosalicylic acid, adipic acid, L-aspartic acid, benzenesulfonic acid, benzoic acid, trans-cinnamic acid, citric acid, fumaric acid, galactonic acid, gentisic acid, gluconic acid, glutamic acid, glutaric acid, glycolic acid, caproic acid, hippuric acid, hydrobromic acid, hydrochloric acid, L-lactic acid, maleic acid, L-malic acid, malonic acid, R-mandelic acid, methanesulfonic acid, naphthalenesulfonic acid, nicotinic acid, oxalic acid, palmitic acid, phosphoric acid, propionic acid, saccharin, salicylic acid, stearic acid, succinic acid, sulfuric acid, L-tartaric acid, p-toluenesulfonic acid, vanillic acid, and vanillin.

[0049] In some embodiments, the pharma- ceutically acceptable acid is selected from the group consisting of hydrobromic acid, hydrochloric acid, p-toluenesulfonic acid, tartaric acid, citric acid, glycolic acid, methanesulfonic acid, and sulfonic acid.

[0050] The total amount of the active ingredient (OAD2 or a pharma- ceutically acceptable salt thereof) in a pharmaceutical composition or dosage form of the present invention is not limited.

[0051] In one embodiment, the content of the active ingredient is in the range of 0.01-80% by weight, or 0.1-50% by weight, or 10-40% by weight, based on the total weight of the dosage form. In one embodiment, the content of the active ingredient is 1-4% by weight, or 2-5% by weight, or 3-6% by weight, or 4-7% by weight, or 5-8% by weight, or 6-9% by weight, or 7-10% by weight, or 8-11% by weight, or 9-12% by weight, or 10-13% by weight, or 11-14% by weight, or 12-15% by weight, or 13-16% by weight, or 14-17% by weight, or 15-18% by weight, or 16-19% by weight, or 17-20% by weight, or 18-21% by weight, or 19-22% by weight. %, or 20-23% by weight, or 21-24% by weight, or 22-25% by weight, or 23-26% by weight, or 24-27% by weight, or 25-28% by weight, or 26-29% by weight, or 27-30% by weight, or 28-31% by weight, or 29-32% by weight, or 30-33% by weight, or 31-24% by weight, or 32-35% by weight, or 33-36% by weight, or 34-37% by weight, or 35-38% by weight, or 36-39% by weight, or 37-40% by weight. In one embodiment, the content of the active ingredient is in the range of 28-32% by weight, or 10-14% by weight.

[0052] In another embodiment, the content of the active ingredient is 4±2.5% by weight, 6±2.5% by weight, 8±2.5% by weight, 10±2.5% by weight, or 12±2.5% by weight, or 14±2.5% by weight, or 16±2.5% by weight, or 18±2.5% by weight, or 20±2.5% by weight, or 22±2.5% by weight, or 24±2.5% by weight, or 26±2.5% by weight, based on the total weight of the dosage form. 2.5% by weight, or 28±2.5% by weight, or 30±2.5% by weight, or 32±2.5% by weight, or 34±2.5% by weight, or 36±2.5% by weight, or 38±2.5% by weight, or 40±2.5% by weight, or 42±2.5% by weight, or 44±2.5% by weight, or 46±2.5% by weight, or 48±2.5% by weight, or 50±2.5% by weight. In one embodiment, the content of the active ingredient is 30±2.5% by weight, or 12±2.5% by weight.

[0053] In another embodiment, the dosage form contains an amount of active ingredient in the range of 1-500 mg, or 10-250 mg, or 25-200 mg, or 20-60 mg, or 40-80 mg, or 60-100 mg, or 80-140 mg, or 100-160 mg, or 120-180 mg, or 140-200 mg, or 160-220 mg, or 180-240 mg, or 200-260 mg.

[0054] In another embodiment, the dosage form contains 25 mg±5 mg, or 30 mg±5 mg, or 40 mg±5 mg, or 50 mg±5 mg, or 60 mg±5 mg, or 75 mg±5 mg, or 80 mg±5 mg, or 90 mg±5 mg, or 100 mg±5 mg, or 110 mg±5 mg, or 120 mg±5 mg, or 125 mg±5 mg, or 130 mg±5 mg, or 140 mg±5 mg, or 150 mg±5 mg, or 160 mg±5 mg, or 170 mg±5 mg, or 175 mg±5 mg, or 180 mg±5 mg, or 190 mg±5 mg, or 200 mg±5 mg, or 225 mg±5 mg, or 250 mg±5 mg. In another embodiment, the dosage form contains 25 mg ± 5 mg, or 50 mg ± 5 mg, or 75 mg ± 5 mg, or 100 mg ± 5 mg, or 125 mg ± 5 mg. In another embodiment, the dosage form contains 25 mg ± 2.5 mg, or 50 mg ± 2.5 mg, or 75 mg ± 2.5 mg, or 100 mg ± 2.5 mg, or 125 mg ± 2.5 mg.

[0055] In another embodiment, the active ingredient in the composition or dosage form is OAD2 dihydrochloride, the dosage form is adapted for oral administration once daily or twice daily, and the dosage form contains 25 mg ± 2.5 mg, 50 mg ± 2.5 mg, 75 mg ± 2.5 mg, or 100 mg ± 2.5 mg of OAD2 dihydrochloride.

[0056] In one embodiment, after 4 weeks of storage at 40° C. and 75% relative humidity, the content of the active ingredient (preferably OAD2 dihydrochloride) in the composition or dosage form reaches at least 90%, or at least 98.0%, or at least 98.5%, or at least 99.0%, or at least 99.2%, or at least 99.4%, or at least 99.6%, or at least 99.8% of the original content before storage.

[0057] In another embodiment, after storage for 6 months at 40°C±2°C and 75%±5% relative humidity, the content of the active ingredient (preferably OAD2 dihydrochloride) in the composition or dosage form reaches at least 90%, or at least 98.0%, or at least 98.5%, or at least 99.0%, or at least 99.2%, or at least 99.4%, or at least 99.6%, or at least 99.8% of the original content before storage.

[0058] In another embodiment, after storage for 6 months at 30°C±2°C and 65%±5% relative humidity, the content of the active ingredient (preferably OAD2 dihydrochloride) in the composition or dosage form reaches at least 90%, or at least 98.0%, or at least 98.5%, or at least 99.0%, or at least 99.2%, or at least 99.4%, or at least 99.6%, or at least 99.8% of the original content before storage.

[0059] In another embodiment, after storage for 12 months at 40°C±2°C and 65%±5% relative humidity, or at 25°C±2°C and 60%±5% relative humidity, the content of the active ingredient (preferably OAD2 dihydrochloride) in the composition or dosage form reaches at least 90%, or at least 98.0%, or at least 98.5%, or at least 99.0%, or at least 99.2%, or at least 99.4%, or at least 99.6%, or at least 99.8% of the original content before storage.

[0060] Suitable methods for determining the content of active ingredient in a dosage form are well known to those of skill in the art, some of which are described in the Examples section below.

[0061] 3. Fillers (also called diluents) The pharmaceutical compositions provided by the present invention may also contain, in addition to OAD2 or a pharma- ceutically acceptable salt thereof, one or more pharma- ceutically acceptable auxiliary materials, which may be disintegrants, fillers, binders, lubricants, wetting agents, glidants, acidifiers, surfactants, or absorption enhancers.

[0062] In addition to OAD2 or a pharma- ceutical acceptable salt thereof, the pharmaceutical composition provided by the present invention may also contain a disintegrant, a filler, a binder, a lubricant, a wetting agent, a glidant, an acidifier, a surfactant, or an absorption enhancer.

[0063] In some embodiments, the compositions of the invention optionally, but preferably, include one or more pharma- ceutically acceptable fillers as carrier materials. In some embodiments, the pharmaceutical compositions provided by the invention include a filler in addition to OAD2 or a pharma- ceutically acceptable salt thereof.

[0064] In some embodiments, the filler is selected from at least one of microcrystalline cellulose, lactose, sucrose, mannitol, corn starch, pregelatinized starch, dextrin, sorbitol, inorganic calcium salts, cellulose acetate, glucose, ethyl cellulose, and glyceryl palmitostearate.

[0065] The mass percentage content of the filler in the pharmaceutical composition provided by the present invention is 10-75%.

[0066] In some embodiments, the filler is preferably selected from one or more of microcrystalline cellulose, lactose, mannitol, and pregelatinized starch.

[0067] In some embodiments, the filler is selected from a combination of microcrystalline cellulose and lactose.

[0068] In some embodiments, the mass percentage content of the filler is 20-60%.

[0069] In one specific embodiment, the mass percentage content of the filler in the pharmaceutical composition of the present invention is 15-19%, 16-20%, 21-25%, 22-26%, 23-27%, 24-28%, 25-29%, 26-30%, 31-35%, 32-36%, 33-37%, 34-38%, 35-39%, 36-40%, 41-45%, 42-46%, 43-47%, 44-48%, 45-49%, 46-50%, 51-55%, 52-56%, 53-57%, 54-58%, 55-59%, or 56-60%.

[0070] In one specific embodiment, the mass of the filler in the pharmaceutical composition of the present invention is 50±2.5 mg, 55±2.5 mg, 60±2.5 mg, 65±2.5 mg, 70±2.5 mg, 75±2.5 mg, 80±2.5 mg, 85±2.5 mg, 90±2.5 mg, 95±2.5 mg, 100±2.5 mg, 105±2.5 mg, 110±2.5 mg, 120±2.5 mg, 130±2.5 mg, 140±2.5 mg, 150±2.5 mg, 160±2.5 mg, 170±2.5 mg, 180±2.5 mg, 190±2.5 mg, 200±2.5 mg, 210±2.5 mg, 220±2.5 mg, 230±2.5 mg, 240±2.5 mg, 250±2.5 mg, 260±2.5 mg, 270±2.5 mg, 280±2.5 mg, 290±2.5 mg, 300±2.5 mg, 310±2.5 mg, 320±2.5 mg, 330±2.5 mg, 340±2.5 mg, 350±2.5 mg, 360±2.5 mg, 370±2.5 mg, 380±2.5 mg, 390±2.5 mg, 400±2.5 mg, 410±2.5 mg, 420±2.5 mg, 430±2.5 mg, 440±2.5 mg, 450±2.5 mg, 460±2.5 mg, 470±2.5 mg, 480±2.5 mg, 2.5mg, 115±2.5mg, 120±2.5mg, 125±2.5mg, 130±2.5mg, 135±2.5mg, 140±2.5mg, 145±2.5m g, 150±2.5mg, 155±2.5mg, 160±2.5mg, 165±2.5mg, 170±2.5mg, 175±2.5mg, 180±2.5mg, 185 ±2.5mg, 190±2.5mg, 195±2.5mg, 200±2.5mg, 205±2.5mg, or 210±5mg, 220±5mg, 230±5mg, 240±5mg, 250±5mg, 260±5mg, 270±5mg, 280±5mg, 290±5mg, 300±5mg, 310±5mg, 320±5mg, 330 ±5mg, 340±5mg, 350±5mg, 360±5mg, ±5mg, 370±5mg, 380±5mg, 390±5mg, 400±5mg, 410±5mg, 420±5mg, 430±5mg, 440±5mg, 450±5mg, 460±5mg, 470±5mg, 480±5mg, 490±5mg, 500±5mg.

[0071] 4. Disintegrants The pharmaceutical compositions provided by the present invention can optionally include a disintegrant, and in some embodiments, particularly in the case of tablet formulations, preferably include one or more pharma- ceutically acceptable disintegrants as carrier materials.

[0072] In some embodiments, the disintegrant is selected from at least one of microcrystalline cellulose, crospovidone, sodium carboxymethyl starch, croscarmellose sodium, low-substituted hydroxypropyl cellulose, dry starch, and calcium carboxymethyl cellulose.

[0073] The mass percentage content of the disintegrant in the pharmaceutical composition provided by the present invention is 5 to 40%.

[0074] In some embodiments, the disintegrant is preferably selected from one or more of microcrystalline cellulose, crospovidone, low-substituted hydroxypropyl cellulose, croscarmellose sodium.

[0075] In some embodiments, the disintegrant is a combination of microcrystalline cellulose and any one selected from the group consisting of crospovidone, low-substituted hydroxypropyl cellulose, and croscarmellose sodium.

[0076] In some embodiments, the mass percentage content of the disintegrant is 10-30%.

[0077] In one specific embodiment, the mass percentage content of the disintegrant in the pharmaceutical composition of the present invention is 5-9%, 6-10%, 11-15%, 12-16%, 13-17%, 14-18%, 15-19%, 16-20%, 21-25%, 22-26%, 23-27%, 24-28%, 25-29%, 26-30%, 31-35%, 32-36%, 33-37%, 34-38%, 35-39%, or 36-40%.

[0078] In one specific embodiment, the mass of the disintegrant in the pharmaceutical composition of the present invention is 30±2.5 mg, 35±2.5 mg, 40±2.5 mg, 45±2.5 mg, 50±2.5 mg, 55±2.5 mg, 60±2.5 mg, 65±2.5 mg, 70±2.5 mg, 75±2.5 mg, 80±2.5 mg, 85±2.5 mg, 90±2.5 mg, 95±2.5 mg, 100±2.5 mg, 105±2.5 mg, 110±2.5 mg, 115±2.5 mg, 120±2.5 mg, 125±2.5 mg, 130±2.5 mg, 135±2.5 mg, 140±2.5 mg, 145 ... ±2.5mg, 140±2.5mg, 145±2.5mg, 150±2.5mg, 155±2.5mg, 160±2.5mg, 165±2.5mg, 170±2.5mg, 175±2.5mg, 180±2.5mg, 185±2.5mg, 190±2.5mg, 195±2.5mg, 200±2.5mg, 205±2.5mg, or 210±5mg, 220±5mg, 230±5mg, 240±5mg, 250±5mg, 260±5mg, 270±5mg, 280±5mg, 290±5mg, 300±5mg.

[0079] In some embodiments, the disintegrant is low-substituted hydroxypropyl cellulose, and the low-substituted hydroxypropyl cellulose has a hydroxypropoxyl content of 5-12%.

[0080] 5. Binder The pharmaceutical compositions provided by the present invention can optionally contain a binder, and in some embodiments, particularly in the case of tablet formulations, preferably contain one or more pharma- ceutically acceptable binders as carrier materials. Such binders ideally impart sufficient cohesion to the tableting powder to allow for normal processing operations such as granulation, lubrication, compression, and packaging, while still allowing disintegration of the tablet upon ingestion and absorption of the composition.

[0081] In one embodiment, the binder is selected from pregelatinized starch, starch, lactose, methylcellulose, ethylcellulose, povidone, copovidone, hydroxypropylcellulose, hydroxypropylmethylcellulose, sodium carboxymethylcellulose, polyethylene glycol, polyvinylpyrrolidone, gelatin, sucrose, sodium alginate, carobbean gum, chitosan, dextrin, and glyceryl behenate.

[0082] The mass percentage content of the binder in the pharmaceutical composition provided by the present invention is selected from the range of 5 to 40%.

[0083] In some embodiments, the binder is preferably selected from one or more of pregelatinized starch, lactose, hypromellose.

[0084] In some embodiments, the mass percentage content of the binder is 10-30%.

[0085] In one specific embodiment, the mass percentage of the binder is 11-15%, 12-16%, 13-17%, 14-18%, 15-19%, 16-20%, 21-25%, 22-26%, 23-27%, 24-28%, 25-29%, 26-30%.

[0086] In one specific embodiment, the mass of the binder in the pharmaceutical composition of the present invention is 30±2.5 mg, 35±2.5 mg, 40±2.5 mg, 45±2.5 mg, 50±2.5 mg, 55±2.5 mg, 60±2.5 mg, 65±2.5 mg, 70±2.5 mg, 75±2.5 mg, 80±2.5 mg, 85±2.5 mg, 90±2.5 mg, 95±2.5 mg, 100±2.5 mg, 105±2.5 mg, 110±2.5 mg, 115±2.5 mg, 120±2.5 mg, 125±2.5 mg, 130±2.5 mg, 135±2.5 mg, 140±2.5 mg, 145±2.5 mg, 146±2.5 mg, 147±2.5 mg, 148±2.5 mg, 149±2.5 mg, 150±2.5 mg, 155±2.5 mg, 156±2.5 mg, 157±2.5 mg, 158±2.5 mg, 159±2.5 mg, 160±2.5 mg, 161±2.5 mg, 162±2.5 mg, 163±2.5 mg, 164±2.5 mg, 165±2.5 mg, 166±2.5 mg, 167±2.5 mg, 168±2.5 mg, 169±2.5 mg, 170±2.5 mg, 175±2.5 mg, 176±2.5 mg, 177±2.5 mg, 178±2.5 mg, 179±2.5 mg, 180±2 ±2.5mg, 140±2.5mg, 145±2.5mg, 150±2.5mg, 155±2.5mg, 160±2.5mg, 165±2.5mg, 170±2.5mg, 175±2.5mg, 180±2.5mg, 185±2.5mg, 190±2.5mg, 195±2.5mg, 200±2.5mg, 205±2.5mg, or 210±5mg, 220±5mg, 230±5mg, 240±5mg, 250±5mg, 260±5mg, 270±5mg, 280±5mg, 290±5mg, 300±5mg.

[0087] 6. Lubricants In some embodiments, the compositions of the present invention optionally include one or more pharma- ceutically acceptable lubricants as carrier materials.

[0088] In one embodiment, the lubricant is selected from stearic acid, magnesium stearate, sodium stearyl fumarate, glyceryl behenate, silica gel fine powder, talcum powder, polyethylene glycol, hydrogenated vegetable oils, sodium lauryl sulfate, and glyceryl monostearate.

[0089] The mass percentage content of the lubricant in the pharmaceutical composition provided by the present invention is selected from the range of 0.1 to 10%.

[0090] In some embodiments, the lubricant is preferably selected from one or more of magnesium stearate, silica gel fine powder, and talcum powder.

[0091] In some embodiments, the mass percentage content of the lubricant is 0.2% to 5%.

[0092] In one specific embodiment, the mass percentage content of the lubricant is 0.1-0.6%, 0.2-0.7%, 0.3-0.8%, 0.4-0.9%, 0.5-1.0%, 1.1-1.6%, 1.2-1.7%, 1.3-1.8%, 1.4-1.9%, 1.5-2.0%, 2.1-2.6%, 2.2-2.7%, 2.3-2.8%, 2.4-2.9%, 2.5-3.0%, 3.1-3.6%, 3.2-3.7%, 3.3-3.8%, 3.4-3.9%, 4.5-5.0%, 5.1-5.6%. , 5.2-5.7%, 5.3-5.8%, 5.4-5.9%, 5.5-6.0%, 6.1-6.6%, 6.2-6.7%, 6.3-6.8%, 6.4-6.9%, 6.5-7.0%, 7.1-7.6%, 7.2-7.7%, 7.3-7.8%, 7.4-7.9%, 7.5-8.0%, 8.1-8.6%, 8.2-8.7%, 8.3-8.8%, 8.4-8.9%, 8.5-9.0%, 9.1-9.6%, 9.2-9.7%, 9.3-9.8%, 9.4-9.9%, 9.5-10.0%.

[0093] In one specific embodiment, the mass of the lubricant in the pharmaceutical composition of the present invention is 0.1 to 40 mg, 0.2 to 30 mg, 0.3 to 20 mg, 0.4 to 15 mg, 0.5 to 10 mg, or 1 to 6 mg, 2 to 7 mg, 3 to 8 mg, 4 to 9 mg, 5 to 10 mg, 11 to 16 mg, 12 to 17 mg, 13 to 18 mg, 14 to 19 mg, 15 to 20 mg, 21 to 26 mg, 22 to 27 mg, 23 to 28 mg, 24 to 29 mg, or 25 to 30 mg.

[0094] In one specific embodiment, the mass of the lubricant in the pharmaceutical composition of the present invention is 1±0.5 mg, 2±0.5 mg, 3±0.5 mg, 4±0.5 mg, 5±0.5 mg, 6±0.5 mg, 7±0.5 mg, 8±0.5 mg, 9±0.5 mg, 10±0.5 mg, 11±0.5 mg, 12±0.5 mg, 13±0.5 mg, 14±0.5 mg, 15±0.5 mg, 16±0.5 mg, 17±0.5 mg, 18±0.5 mg, 19±0.5 mg, or 20±0.5 mg.

[0095] 7. Wetting agents The pharmaceutical compositions provided by the present invention may also optionally contain a wetting agent.

[0096] In some embodiments, the humectant is selected from ethanol, glycerol, and Tween.

[0097] The mass percentage content of the wetting agent in the pharmaceutical composition provided by the present invention is selected from the range of 0.1 to 10%.

[0098] In some embodiments, the humectant is preferably Tween™ 80.

[0099] In some embodiments, the mass percentage content of the wetting agent is 1% to 10%.

[0100] In one specific embodiment, the mass percentage content of the wetting agent is 0.1-0.6%, 0.2-0.7%, 0.3-0.8%, 0.4-0.9%, 0.5-1.0%, 1.1-1.6%, 1.2-1.7%, 1.3-1.8%, 1.4-1.9%, 1.5-2.0%, 2.1-2.6%, 2.2-2.7%, 2.3-2.8%, 2.4-2.9%, 2.5-3.0%, 3.1-3.6%, 3.2-3.7%, 3.3-3.8%, 3.4-3.9%, 4.5-5.0%, 5.1-5.6%, 5.2-5.7%, 5.3-5.8%, 5.4-5.9%, or 5.5-6.0%.

[0101] In a specific embodiment, the mass of the wetting agent in the pharmaceutical composition of the present invention is 0.5 to 50 mg, 1 to 30 mg, 2 to 20 mg, or 2 to 5 mg, 6 to 9 mg, 10 to 14 mg, 15 to 19 mg, 20 to 24 mg, 25 to 29 mg, 30 to 34 mg, 35 to 39 mg, 40 to 44 mg, or 45 to 49 mg.

[0102] In one specific embodiment, the mass of the wetting agent in the pharmaceutical composition of the present invention is 3±1 mg, 6±1 mg, 9±1 mg, 12±1 mg, 15±1 mg, 18±1 mg, 21±1 mg, 24±1 mg, 27±1 mg, 30±1 mg, 33±1 mg, 36±1 mg, 39±1 mg, 42±1 mg, 45±1 mg, 48±1 mg.

[0103] 8. Lubricants In some embodiments, the compositions of the present invention optionally include one or more pharma- ceutically acceptable lubricants as carrier materials.

[0104] In some embodiments, the lubricant is selected from silica gel fine powder, talcum powder, colloidal silicon dioxide.

[0105] The mass percentage content of the lubricant in the pharmaceutical composition provided by the present invention is selected from the range of 0.1 to 10%.

[0106] In some embodiments, the lubricant is preferably a fine powder of silica gel, or colloidal silicon dioxide.

[0107] In some embodiments, the mass percentage content of the lubricant is 0.2% to 5%.

[0108] In one specific embodiment, the mass percentage content of the lubricant is 0.1-0.6%, 0.2-0.7%, 0.3-0.8%, 0.4-0.9%, 0.5-1.0%, 1.1-1.6%, 1.2-1.7%, 1.3-1.8%, 1.4-1.9%, 1.5-2.0%, 2.1-2.6%, 2.2-2.7%, 2.3-2.8%, 2.4-2.9%, 2.5-3.0%, 3.1-3.6%, 3.2-3.7%, 3.3-3.8%, 3.4-3.9%, 4.5-5.0%, 5.1-5.6%. , 5.2-5.7%, 5.3-5.8%, 5.4-5.9%, 5.5-6.0%, 6.1-6.6%, 6.2-6.7%, 6.3-6.8%, 6.4-6.9%, 6.5-7.0%, 7.1-7.6%, 7.2-7.7%, 7.3-7.8%, 7.4-7.9%, 7.5-8.0%, 8.1-8.6%, 8.2-8.7%, 8.3-8.8%, 8.4-8.9%, 8.5-9.0%, 9.1-9.6%, 9.2-9.7%, 9.3-9.8%, 9.4-9.9%, 9.5-10.0%.

[0109] In one specific embodiment, the mass of the lubricant in the pharmaceutical composition of the present invention is 0.1 to 40 mg, 0.2 to 30 mg, 0.3 to 20 mg, 0.4 to 15 mg, 0.5 to 10 mg, or 1 to 6 mg, 2 to 7 mg, 3 to 8 mg, 4 to 9 mg, 5 to 10 mg, 11 to 16 mg, 12 to 17 mg, 13 to 18 mg, 14 to 19 mg, 15 to 20 mg, 21 to 26 mg, 22 to 27 mg, 23 to 28 mg, 24 to 29 mg, or 25 to 30 mg.

[0110] In one specific embodiment, the mass of the lubricant in the pharmaceutical composition of the present invention is 1±0.5 mg, 2±0.5 mg, 3±0.5 mg, 4±0.5 mg, 5±0.5 mg, 6±0.5 mg, 7±0.5 mg, 8±0.5 mg, 9±0.5 mg, 10±0.5 mg, 11±0.5 mg, 12±0.5 mg, 13±0.5 mg, 14±0.5 mg, 15±0.5 mg, 16±0.5 mg, 17±0.5 mg, 18±0.5 mg, 19±0.5 mg, or 20±0.5 mg.

[0111] 9. Acidifiers In some embodiments, the pharmaceutical compositions of the present invention optionally include one or more acidifying agents as carrier materials.

[0112] In some embodiments, the acidifying agent is selected from tartaric acid, citric acid, propionic acid, phosphoric acid, malic acid, lactic acid, and hydrochloric acid.

[0113] The mass percentage content of the acidifying agent in the pharmaceutical composition provided by the present invention is selected from the range of 1% to 40%.

[0114] In some embodiments, the acidifying agent is preferably selected from citric acid or anhydrous citric acid.

[0115] In some embodiments, the mass percentage content of the acidifying agent is 5% to 20%.

[0116] 10. Absorption enhancers The pharmaceutical compositions of the present invention optionally include one or more absorption enhancers.

[0117] In some embodiments, the absorption enhancer is selected from oleic acid, laurocapram, menthol, vitamin E-TPGS, propylene glycol, beta-cyclodextrin, hydroxypropyl-beta-cyclodextrin, sodium lauryl sulfate, N-methyl-2-pyrrolidone, dimethylsulfoxide, ethanol, ethylene glycol, ethoxydiglycol, bisabolol, liposomes, azone, piperine, sodium caprylate, sodium caprate, sodium caproate, decanoylcarnitine, sucrose esters, and chitosan.

[0118] The mass percentage content of the absorption enhancer in the pharmaceutical composition provided by the present invention is selected from the range of 0.1% to 10%.

[0119] In some embodiments, the absorption enhancer is preferably selected from one or more of vitamin E, oleic acid, propylene glycol, hydroxypropyl-β-cyclodextrin.

[0120] In some embodiments, the mass percentage content of the absorption enhancer is 0.5-5%.

[0121] 11. Surfactants The pharmaceutical compositions of the invention optionally, but preferably, include one or more pharma- ceutically acceptable surfactants as carrier materials, preferably selected to keep the OAD2 or a pharma- ceutically acceptable salt thereof tightly bound to water.

[0122] In some embodiments, the surfactant is selected from lecithin, fatty acid glycerides, sucrose fatty acid esters, Span, Tween, Myrij, Brij, poloxamer, sodium dodecyl sulfate, sodium hexadecyl sulfate, sodium octadecyl sulfate, sodium dioctyl sulfosuccinate, sodium dihexyl sulfosuccinate, sodium dodecylbenzenesulfonate, benzyl benzoate, and docusate sodium.

[0123] In some embodiments, the mass percentage content of the surfactant is selected from 0.2% to 20%.

[0124] 12. Antioxidants The compositions of the present invention optionally include one or more antioxidants. The term "antioxidant" refers to an ingredient in a composition that can prevent and / or inhibit the formation of unacceptable amounts of oxidative decomposition products in the composition after a certain period of shelf life. In some embodiments, the antioxidant can react with oxygen that would otherwise damage the composition by forming impurities in the composition. The oxygen can originate from the environment of the composition or from the composition itself. For example, oxygen can originate from residual oxygen present in the head space of a vial containing the composition. In some embodiments, the oxidative degradants include impurity B, and the antioxidant may limit the formation of oxidative degradants (such as impurity B) in the composition to less than about 5%, or less than about 4%, or less than about 3%, or less than about 2.5%, or less than about 2%, or less than about 1.5%, or less than about 1%, or less than about 0.9%, or less than about 0.8%, or less than about 0.7%, or less than about 0.6%, or less than about 0.5%, or less than about 0.4%, or less than about 0.3%, or less than about 0.2%, or less than about 0.1%, or less than about 0.05%, or less than about 0.04%, or less than about 0.03%, or less than about 0.02%, or less than about 0.01%, after a period of shelf life.

[0125] In some embodiments, the antioxidant may be present at a minimum concentration that will inhibit and / or prevent the composition from undergoing an unacceptable physical change. In some embodiments, the antioxidant may be present at a minimum concentration that will inhibit and / or prevent unacceptable oxidation of the components of the composition.

[0126] In some embodiments, the antioxidant is selected from sulfites, ascorbic acid, thiourea, cysteine, ascorbyl palmitate, α-tocopherol, dibutyl cresol, dibutyl thiodiacetate, tartaric acid, citric acid, edetate disodium, tocopheryl polyethylene glycol succinate, vitamin E and its derivatives, and the like.

[0127] In some embodiments, the mass percentage content of the antioxidant is selected from 0.5% to 10%.

[0128] For the pharmaceutical composition of the present invention, the mass percentage content refers to the percentage of the total weight of the drug, where the total weight of the drug does not include the weight of the coating agent. For one specific dosage form, this is, for example, the weight of the tablet core or granules.

[0129] The mass percentage of each component in the pharmaceutical composition of OAD2 or a pharma- ceutically acceptable salt thereof provided by the present invention is as follows:

[0130] [Table 1]

[0131] The mass percentage of each component in the pharmaceutical composition of OAD2 or a pharma- ceutically acceptable salt thereof provided by the present invention is as follows:

[0132] [Table 2]

[0133] The mass percentage of each component in the pharmaceutical composition of OAD2 or a pharma- ceutically acceptable salt thereof provided by the present invention is as follows:

[0134] [Table 3]

[0135] Suitable fillers (single or in combination) also include lactose USP, lactose USP anhydrous, lactose USP spray dried, starch USP, pregelatinized starches (e.g., National 1511, and Starch 1500), directly compressible starches, mannitol USP, sorbitol, dextrose monohydrate, microcrystalline cellulose NF, calcium hydrogen phosphate dihydrate NF, sucrose-based fillers, powdered sugar (confectioner's sugar), monobasic calcium sulfate monohydrate, calcium sulfate dihydrate NF, calcium lactate trihydrate granules NF, dextrates, inositol, hydrolyzed grain solids such as Maltron and Mor-Rex, amylase, Rexcel, powdered cellulose (e.g., Elcema®), calcium carbonate, glycine, bentonite, polyvinylpyrrolidone, and the like. Such fillers, if present, comprise in total about 5% to about 99%, or about 10% to about 85%, or about 20% to about 60%, or about 10% to about 40%, or about 15% to about 30%, or about 10% to about 20%, or about 15% to about 25%, or about 20% to about 30%, or about 25% to about 35%, or about 30% to about 40% by weight of the total weight of the composition. The filler or fillers selected preferably exhibit suitable flow properties and, where tablets are required, compressibility.

[0136] In further embodiments, lactose, pregelatinized starch, and microcrystalline cellulose (alone or in combination) are preferred fillers. In another embodiment, the filler comprises microcrystalline cellulose and / or pregelatinized starch in an amount ranging from 20% to 60% by weight of the total weight of the composition. In another embodiment, the filler comprises microcrystalline cellulose in an amount ranging from 20% to 40% by weight of the total weight of the composition. In another embodiment, the filler comprises a total of about 5%, 10%, 15%, 20%, 25%, or 30% ± 2.5% by weight of the total weight of the composition.

[0137] Suitable disintegrants (alone or in combination) also include starch, sodium starch glycolate, clays (such as Veegum HV), celluloses (such as purified cellulose, methylcellulose, sodium carboxymethylcellulose, and carboxymethylcellulose), alginates, pregelatinized corn starch (e.g., National 1551 and National 1550), crospovidone USP NF, and gums (e.g., agar, guar, locust bean gum, carrageenan, pectin, and tragacanth). Disintegrants may be added at any suitable step during the preparation of the composition, specifically as extragranular excipients before granulation or compression. Such disintegrants, if present, constitute, in total, about 0.2% to about 30%, or about 0.2% to about 10%, or about 0.2% to about 5% by weight of the total weight of the composition. In another embodiment, the disintegrants comprise, in total, about 5%, 10%, 15%, 20%, 25%, or 30%±2.5% by weight of the total weight of the composition.

[0138] Crospovidone (cross-linked polyvinylpyrrolidone) is the preferred disintegrant for disintegration of tablets or capsules, and when present, comprises about 0.1% to about 20%, or about 0.2% to about 10%, or about 0.2% to about 6%, or about 0.2% to about 5%, or about 1% to about 5% by weight of the total weight of the composition. In another embodiment, the crospovidone comprises a total of about 2%, 5%, 10%, 15%, 20%, 25%, or 30% ± 1.5% by weight based on the total weight of the composition. The crospovidone (European Pharmacopoeia (Ph.Eur.), United States Pharmacopoeia-National Formulary (USP-NF), Japanese Pharmacopoeia (JP)) used in the pharmaceutical composition can be of European Pharmacopoeia Crospovidone Monograph Class A or Class B quality. In another embodiment, the amount of peroxide in the crospovidone as measured by the method of the European Pharmacopoeia Crospovidone Monograph Class A does not exceed 50 ppm, or 45 ppm, or 40 ppm, or 35 ppm, or 30 ppm, or 25 ppm, or 20 ppm, or 15 ppm, or 10 ppm. In another embodiment, the amount of peroxide in the crospovidone as measured by the method of the European Pharmacopoeia Crospovidone Monograph Type B does not exceed 125 ppm, or 100 ppm, or 75 ppm, or 50 ppm, or 25 ppm. In another embodiment, the quality of the crospovidone is equivalent to that of grades "Ultra" or "Ultra-10", available from Ashland under the trade name Polyplasdone™ Ultra. In another embodiment, the typical average particle size of the crospovidone is between 110 and 140 microns, or between 25 and 40 microns.

[0139] Binders may also include (alone or in combination) cellulosic materials, including but not limited to gum arabic, gum tragacanth, sucrose, gelatin, glucose, starch, methylcellulose and sodium carboxymethylcellulose (e.g., Tylose), alginic acid and alginates, magnesium aluminum silicate, polyethylene glycol, guar gum, polysaccharide acids, bentonite, polyvinylpyrrolidone, copovidone (a copolymer of vinylpyrrolidone and vinyl acetate), polymethacrylic acid, hydroxypropylmethylcellulose (HPMC), hydroxypropylcellulose (Klucel), ethylcellulose (Ethocel), pregelatinized starch (such as National 1511, and Starch 1500). Such binders, if present, in total, comprise from about 0.1% to about 20%, or from about 0.75% to about 15%, or from about 1% to about 10%, or from about 1% to about 5% by weight of the total weight of the composition.

[0140] Crospovidone is a preferred binder for disintegration of tablets or capsules and, when present, comprises from about 0.1% to about 10%, or from about 0.2% to about 5%, or from about 0.3% to about 4%, or from about 0.4% to about 3%, or from about 0.5% to about 1% by weight of the total weight of the composition. In another embodiment, the amount of crospovidone present in the composition is about 0.5%, 1.0%, 1.5%, 2.0%, 2.5%, 3.0%, 3.5%, 4.0%, 4.5%, or 5.0% ±0.5% by weight of the total weight of the composition.

[0141] Suitable lubricants (single or in combination) also include glyceryl betaine (Compritol 888), stearates (magnesium, calcium, and sodium), stearic acid, hydrogenated vegetable oils (e.g., Sterotex), talcum powder, wax, Stearone, boric acid, sodium benzoate, sodium acetate, sodium fumarate, sodium chloride, DL-leucine, polyethylene glycols (e.g., Carbowax 4000, and Carbowax 6000), sodium oleate, sodium lauryl sulfate, and magnesium lauryl sulfate. Such lubricants, if present, in total, comprise from about 0.1% to about 10%, from about 0.2% to about 8%, or from about 0.25% to about 5% by weight of the total weight of the composition.

[0142] In some embodiments, magnesium stearate is the preferred lubricant and is present in an amount of 0.25% to about 1.5% by weight of the total weight of the composition.

[0143] Suitable lubricants (alone or in combination) also include magnesium trisilicate, powdered cellulose, starch, talcum powder, tricalcium phosphate, stearic acid and colloidal silicon dioxide, the preferred lubricant being colloidal silicon dioxide. If present, such lubricants constitute, in total, about 0.1% to about 10% by weight, or about 0.2% to about 8% by weight, preferably about 0.25% to about 5% by weight of the total weight of the composition.

[0144] In one embodiment, the lubricant comprises colloidal silicon dioxide and is present in an amount of 0.25% to about 1.5% by weight of the total weight of the composition.

[0145] Suitable acidifying agents (alone or in combination) include acetic acid, amino acids, citric acid, nitric acid, fumaric acid, and other alpha-hydroxy acids, hydrochloric acid, ascorbic acid, and nitric acid, as well as other acids known to those skilled in the art. In a preferred embodiment, the acidifying agent is citric acid.

[0146] Such acidifying agents, if present, may comprise, in total, from about 0.1% to about 50% by weight, from about 1% to about 50% by weight, from about 1% to about 10% by weight, from about 5% to about 15% by weight, from about 10% to about 20% by weight, from about 15% to about 25% by weight, from about 20% to about 30% by weight, or from about 25% to about 35% by weight of the total weight of the composition.

[0147] In one embodiment, the acidifying agent comprises citric acid, hi another embodiment, the acidifying agent is citric acid and is present in an amount ranging from 5% to 15% or from 25% to 35% by weight of the total weight of the composition.

[0148] Absorption enhancers can also be surfactants that function as both solubility enhancers and uptake enhancers. Solubility enhancers can improve the solubility of the active ingredient in the aqueous environment into which it is initially released, in the lipophilic environment of the mucus layer lining the intestinal wall, or both. Transit (uptake) enhancers (the same surfactants that are typically used as solubility enhancers) facilitate the passage of the active ingredient through the intestinal wall.

[0149] One or more absorption enhancers may perform only one function (e.g., dissolution) or one or more absorption enhancers may perform only another function (e.g., uptake). It is also possible to have a mixture of several compounds, some of which enhance solubility, some of which enhance uptake, and / or some of which perform both functions.

[0150] Surfactants can be used as solubility enhancers and uptake enhancers. Non-limiting examples of absorption enhancers include salicylates such as sodium salicylate, 3-methoxysalicylate, 5-methoxysalicylate, and homovanilate, cholic acids such as taurocholic acid, taurodeoxycholic acid, and deoxycholic acid, polyoxyethylene ethers, pt-octylphenoxypolyoxyethylene ethers, nonylphenoxypolyoxyethylene ethers, polyoxyethylene sorbitan esters (e.g., Tween-20, Tween-80, etc.), d-alpha tocopheryl polyethylene glycol 1000 succinate (vitamin E TPGS), anionic surfactants such as dioctyl sodium sulfosuccinate, lysophospholipids such as lysophosphatidylcholine and lysophosphatidylethanolamine, acylcarnitines such as lauroylcarnitine, lauroylcholine, and cetyllysine, acylcholines, and acylamino acids, mono-, di-, and triglycerides of medium-chain length fatty acids (such as caprylic acid, capric acid, and lauric acid), fatty acid derivatives of polyethylene glycols (such as caprylocaproyl macrogolglyceride (Labrasol), caprylic acid triglyceride (Labrafac™)), and medium-chain glycerides that are mixtures containing alkyl sugars (such as lauroyl maltoside, lauroyl sucrose, myristoyl sucrose, and palmitoyl sucrose).

[0151] If present, such absorption enhancers comprise, in total, from about 0.1% to about 5%, or from about 0.25% to about 5%, or from about 0.5% to about 4% by weight of the total composition.

[0152] In a preferred embodiment, the absorption enhancer comprises Vitamin E TPGS in an amount of 0.5% to 5% by weight, or 0.5% to 2.5% by weight of the total weight of the composition.

[0153] Suitable surfactants (single or in combination) also include oleic acid, glyceryl monostearate, sorbitan monooleate, sorbitan monolaurate, triethanolamine oleate, polyoxyethylene sorbitan monooleate (Tween 80), d-alpha tocopheryl macrogol 1000 succinate (vitamin E TPGS), polyoxyethylene sorbitan monolaurate, sodium oleate, sodium lauryl sulfate, poloxamer, and poloxamer 188. Such surfactants, if present, constitute, in total, from about 0.25% to about 15%, or from about 0.4% to about 10%, or from about 3% to about 9% by weight of the total weight of the composition.

[0154] In one embodiment, the surfactant comprises one or two surfactants selected from polyoxyethylene sorbitan monooleate and poloxamer 188, and the surfactant is present in an amount of 0.5% to 5% by weight of the total weight of the composition. In another embodiment, the surfactant is present in the composition in an amount of about 0.5%, 1.0%, 1.5%, 2.0%, 2.5%, 3.0%, 3.5%, 4.0%, 4.5%, or 5.0% ±0.5% by weight of the total weight of the composition.

[0155] Suitable antioxidants (single or in combination) include amino acid sulfites (e.g., L-lysine sulfite), ascorbic acid, ascorbyl palmitate, benzotriazole, butylated hydroxyanisole (BHA), butylated hydroxytoluene (BHT), citric acid, cysteine, cysteine ​​hydrochloride, calcium disodium EDTA, disodium EDTA, dithiothreitol, dl-α-tocopherol, erythorbic acid, ethoxyquinoline, EDTA salts, fumaric acid, glutathione, guaiac resin, homocysteine, isopropyl citrate, L-ascorbic acid stearate, thioglycerin, nordihydroguaiaretic acid (NDGA), palmitic acid, ascorbic acid, sodium ascorbate, sodium bisulfite, tetrasodium EDTA, sodium erythorbate, sodium bisulfate, sodium metabisulfite, sodium metabisulfite. pyrosulfite, 1,3-butanediol, sodium sulfite, sodium thioglycolate, sodium thiosulfate, tert-butylhydroquinone, thioglycerol, thiourea, TPGS (tocopheryl polyethylene glycol succinate), vitamin E or a derivative thereof, α-thioglycerol and / or a salt thereof, and the like.

[0156] In some embodiments, the antioxidant is present at a concentration in the range of about 0.1-9.0% by weight, or at a concentration in the range of about 0.5-5.0% by weight, or at a concentration in the range of about 0.3-1.5% by weight, or at a concentration in the range of about 0.4-1.6% by weight, or at a concentration in the range of 0.5-1.7% by weight, or at a concentration in the range of 0.6-1.8% by weight, or at a concentration in the range of 0.7-1.9% by weight, or at a concentration in the range of 0.8-2.0% by weight, or at a concentration in the range of 1.0-2.5% by weight, or at a concentration in the range of 1.5-3.0% by weight, or at a concentration in the range of 2.0-3.5% by weight, or at a concentration in the range of 2.5-4.0% by weight, or at a concentration in the range of 3.0-5.0% by weight.

[0157] Methods for preparing pharmaceutical compositions of OAD2 In some embodiments, the pharmaceutical compositions of OAD2 or a pharma- ceutically acceptable salt thereof provided by the present invention are oral pharmaceutical compositions.

[0158] Liquid preparations (e.g., suspensions, tinctures, etc.) suitable for oral administration of the pharmaceutical compositions provided by the present invention can be prepared according to techniques known in the art, while any commonly used medium can be used, such as water, ethylene glycol, oils, alcohols, etc. Solid preparations (e.g., tablets, capsules, granules, and pills) suitable for oral administration can be prepared according to techniques known in the art, while some solid excipients, such as fillers, binders, disintegrants, etc., can also be used.

[0159] In some embodiments, the pharmaceutical compositions of OAD2 or a pharma- ceutically acceptable salt thereof provided by the present invention are solid pharmaceutical compositions.

[0160] In some embodiments, the pharmaceutical composition of OAD2 or a pharma- ceutically acceptable salt thereof provided by the present invention is in a dosage form selected from the group consisting of tablets, pills, capsules, mini-tablets, or granules, with or without a coating.

[0161] In a specific embodiment, the pharmaceutical composition of the present invention may further comprise one or more coating agents selected from the group consisting of a water-soluble polymer, a water-insoluble polymer, a gastro-soluble polymer, and an enteric polymer as a coating layer.

[0162] In one specific embodiment, the pharmaceutical composition of OAD2 or a pharma- ceutically acceptable salt thereof is a tablet.

[0163] The present invention further provides a method for preparing a pharmaceutical composition, the method mainly comprising the steps of: a. processing the auxiliary ingredients by sieving the filler, disintegrant, solubilizer, and optionally other auxiliary materials, followed by settling; b. granulating and mixing a formulation amount of OAD2 or a pharma- ceutically acceptable salt thereof, a filler, a solubilizer, a disintegrant, and optionally a binder, an acidifier, a lubricant, a wetting agent, an acidifier, a glidant, an absorption enhancer, and a surfactant; and c. The granules are mixed with fillers, disintegrants, lubricants, glidants, acidifiers and other auxiliary materials appropriately, and the mixture is tableted, and the hardness is controlled at 8-20Kg.

[0164] The compositions of the present invention comprise OAD2, or a pharma- ceutically acceptable salt thereof, in association with one or more pharma- ceutically acceptable excipients suitable for oral administration.

[0165] The compositions of the present invention can be adapted for administration by any suitable oral route by selecting appropriate excipient materials and doses of active ingredients effective for the intended treatment. Thus, any carrier materials used can be solid or liquid, or both, and the compositions contain about 1% to 95% by weight, about 10% to about 90% by weight, or about 25% to about 85% by weight, or about 10% to about 40% by weight of OAD2 or a pharma- ceutically acceptable salt thereof. Such pharmaceutical compositions can be prepared by any of the well-known techniques of pharmacy, including mixing the ingredients.

[0166] The compositions of the present invention contain a desired amount of OAD2 or a pharma- ceutically acceptable salt thereof per dosage unit and may take the form of, for example, tablets, pills, hard or soft capsules, lozenges, cachets, dispensable powders, granules, suspensions, elixirs, liquids, or any other form reasonably selected for oral administration. Such compositions may be manufactured in the form of individual dosage units, such as tablets, pills, or capsules, each of which contains a predetermined amount of OAD2 or a pharma- ceutically acceptable salt thereof. Additionally, tablets, pills, and the like may be prepared with or without a coating agent.

[0167] The compositions of the present invention can be prepared by any suitable method of pharmacy, including the step of combining OAD2 or a pharma- ceutically acceptable salt thereof with a carrier material. In general, the compositions are prepared by uniformly and thoroughly mixing OAD2 or a pharma- ceutically acceptable salt thereof with a liquid, or finely divided solid carrier, or both, and then encapsulating or shaping the product, if necessary.

[0168] For example, a tablet can be prepared by compressing or molding a powder or granules of the compound with one or more excipients. Compressed tablets can be prepared by compressing in a suitable machine a free-flowing composition, such as a powder or granules, containing OAD2 or a pharma- ceutically acceptable salt thereof mixed with one or more excipients. Molded tablets can be produced by molding in a suitable machine a powdered compound moistened with an inert filler liquid.

[0169] These pharmaceutical excipients may be added individually or in combination of two or more pharmaceutical excipients in an appropriate amount. Regarding the content of the pharmaceutical excipients, each excipient may be used in an amount that can achieve the desired effect of the present invention.

[0170] The composition for oral administration of the present invention can be manufactured by a known method including, for example, steps of mixing, granulation, drying, molding (tabletting), film coating, etc. A method for manufacturing the composition for oral administration of the present invention is described below.

[0171] Before mixing, the active ingredient and any solid excipient may be crushed and / or sieved by a conventional pharmaceutical method. Examples of crushers include hammer mills, ball mills, jet mills, colloid mills, etc. The conditions for crushing may be appropriately selected and are not particularly limited.

[0172] In the step of mixing the components, the device and the means are not particularly limited as long as they can mix the components uniformly in a conventional pharmaceutical method.

[0173] In the granulation step, the apparatus and means are not particularly limited as long as they can granulate the active ingredient and suitable excipients by a conventional pharmaceutical method.

[0174] Examples of granulation methods and granulation devices used in wet granulation using a solvent such as water include high shear granulation, milling (pulverization) granulation, fluidized bed granulation, extrusion granulation, tumbling granulation, spray granulation, and their devices. Spray granulation and spray granulators are preferred, and there is no particular limitation on the drying method as long as drying can be achieved by a conventional pharmaceutical method.

[0175] In the drying step, the apparatus and means are not particularly limited as long as they can dry the granular product in a conventional pharmaceutical method. Examples of the apparatus include a forced air dryer, a reduced pressure dryer, a vacuum dryer, a fluidized bed granulation dryer, etc.

[0176] After drying, the mixture may be sieved, if necessary, using a sieve, Comil, or the like, to separate the mixture according to size.

[0177] In the molding step, the apparatus and the means are not particularly limited as long as the molding method of the pharmaceutical composition for oral administration of the present invention is used. Examples of the method include a method of preparing a pharmaceutical composition for oral administration by granulating an active ingredient and a suitable excipient, drying the granulated active ingredient and a suitable excipient, and compressing the granulated active ingredient and a suitable excipient, mixing the granulated active ingredient and a suitable excipient with one or more extragranular excipients such as binders, fillers, lubricants, lubricants, and / or acidifiers, and compressing the mixture to prepare a pharmaceutical composition for oral administration.

[0178] After tableting, the surface of the pharmaceutical composition for oral administration may be film-coated. The film-coating method is not particularly limited as long as it can be achieved by a normal pharmaceutical method. Examples of coating include pan coating and dip coating. The film-coating agent may be added alone or in combination of two or more.

[0179] The coating rate is not particularly limited as long as a film can be formed. The coating rate is, for example, 0.5% by weight to 10% by weight of the total weight of the pharmaceutical composition for oral administration. In another embodiment, the coating results in a weight increase between 0.5% by weight to 5% by weight, or between 2% by weight to 4% by weight.

[0180] During or after film coating, the coated product may be dried. The drying method is not particularly limited as long as it can be achieved by a conventional pharmaceutical method. The drying conditions are not particularly limited as long as they are appropriately selected in consideration of the stability of the pharmaceutical composition for oral administration.

[0181] The specific implementation of the method for preparing the pharmaceutical composition provided by the present invention is illustrated in the Examples.

[0182] Pharmaceutical Uses of OAD2 Pharmaceutical Compositions and / or Methods of Treatment The present invention further provides the use of pharmaceutical compositions of OAD2 and pharma- ceutically acceptable salts thereof in the medical field.

[0183] In some embodiments, the present invention provides the use of a pharmaceutical composition of OAD2 and its pharma- ceutically acceptable salts for the preparation of a medicament that mediates the GLP-1 receptor.

[0184] In some embodiments, the present invention provides the use of a pharmaceutical composition of OAD2 and its pharma- ceutically acceptable salts for the preparation of a medicament for the treatment or prevention of a GLP-1 receptor mediated disease.

[0185] In some embodiments, the present invention provides the use of a pharmaceutical composition of OAD2 and its pharma- ceutically acceptable salts for the preparation of a medicament for the treatment or prevention of metabolic diseases and / or disorders, including, but not limited to, diseases selected from the group consisting of metabolic syndrome, impaired glucose tolerance, hyperglycemia, dyslipidemia, type I diabetes, type II diabetes, syndrome X, insulin resistance, impaired glucose tolerance (IGT), obesity, diabetic dyslipidemia, hyperlipidemia, arteriosclerosis, atherosclerosis, other cardiovascular diseases that benefit from activation of the GLP-1 receptor, hypertension, metabolic disorders that benefit from activation of the GLP-1 receptor, and the like, and complications resulting from or associated with diabetes, including, but not limited to, neuropathy, retinopathy, nephropathy, and wound healing disorders.

[0186] In one specific embodiment, the present invention provides the use of a pharmaceutical composition of OAD2 and its pharma- ceutically acceptable salts for the preparation of a medicament for the treatment or prevention of type II diabetes.

[0187] The present invention also relates to a method of mediating the GLP-1 receptor, comprising administering to a patient in need thereof a therapeutically effective amount of a pharmaceutical composition of OAD2 and its pharma-ceutically acceptable salts.

[0188] The present invention also relates to a method for treating or preventing a GLP-1 receptor agonist mediated disease, comprising administering to a patient in need thereof a therapeutically effective amount of a pharmaceutical composition of OAD2 and its pharma-ceutically acceptable salts.

[0189] The present invention is also directed to a method of treating or preventing metabolic diseases and / or disorders comprising administering to a patient in need thereof a therapeutically effective amount of a pharmaceutical composition of OAD2 and its pharma- ceutically acceptable salts, including metabolic syndrome, impaired glucose tolerance, hyperglycemia, dyslipidemia, type I diabetes, type II diabetes, syndrome X, insulin resistance, impaired glucose tolerance (IGT), obesity, diabetic dyslipidemia, hyperlipidemia, arteriosclerosis, atherosclerosis, other cardiovascular diseases, hypertension, metabolic disorders that would benefit from activation of the GLP-1 receptor, and the like, as well as complications resulting from or associated with diabetes, including, but not limited to, neuropathy, retinopathy, nephropathy, wound healing disorders.

[0190] The present invention also relates to a method for treating or preventing type II diabetes comprising administering to a patient in need thereof a therapeutically effective amount of a pharmaceutical composition of OAD2 and its pharma- ceutically acceptable salts.

[0191] The present invention also relates to pharmaceutical compositions of OAD2 and pharma- ceutically acceptable salts thereof, which are useful as GLP-1 receptor agonists.

[0192] The present invention also relates to pharmaceutical compositions of OAD2 and pharma- ceutically acceptable salts thereof for use in the treatment or prevention of GLP-1 receptor mediated diseases and / or disorders.

[0193] The present invention also relates to a pharmaceutical composition of OAD2 and / or a pharma- ceutically acceptable salt thereof for use in the treatment or prevention of metabolic diseases and / or disorders including, but not limited to, diseases selected from the group consisting of metabolic syndrome, impaired glucose tolerance, hyperglycemia, dyslipidemia, type I diabetes, type II diabetes, syndrome X, insulin resistance, impaired glucose tolerance (IGT), obesity, diabetic dyslipidemia, hyperlipidemia, arteriosclerosis, atherosclerosis, other cardiovascular diseases, hypertension, metabolic disorders that benefit from activation of the GLP-1 receptor, and the like, as well as complications resulting from or associated with diabetes, including, but not limited to, the group consisting of neuropathy, retinopathy, nephropathy, and wound healing disorders.

[0194] The present invention also relates to pharmaceutical compositions of OAD2 and pharma- ceutically acceptable salts thereof for use in the treatment or prevention of type II diabetes.

[0195] In another embodiment, the present invention provides a method of treating type I diabetes by administering to a human subject a therapeutically effective amount of OAD2 or a pharma- ceutically acceptable salt thereof as part of a pharmaceutical composition described herein.

[0196] In another embodiment, the present invention provides a method of treating obesity by administering to a human subject a therapeutically effective amount of OAD2 or a pharma- ceutically acceptable salt thereof as part of a pharmaceutical composition described herein.

[0197] In another embodiment, the present invention provides a method of delaying gastric emptying by administering a therapeutically effective amount of OAD2 or a pharma- ceutically acceptable salt thereof to a human subject as part of a pharmaceutical composition described herein. In another embodiment, the present invention provides a method of reducing HbA1c levels by administering a therapeutically effective amount of OAD2 or a pharma- ceutically acceptable salt thereof to a human subject as part of a pharmaceutical composition described herein. In one embodiment, the amount of HbA1c in a subject in need of such reduction can be reduced by at least 0.1%, or 0.2%, or 0.3%, or 0.4%, or 0.5%, or 0.6%, or 0.7%, or 0.8%, or 0.9%, or 1.0%. In yet another embodiment, the method of treatment can reduce HbA1c levels to less than 7% in a subject in need of such reduction. In other embodiments, HbA1c levels can be reduced to levels between 5% and 6.5%.

[0198] The dose of the pharmaceutical composition of OAD2 or a pharma- ceutical acceptable salt thereof used in the treatment method provided by the present invention may vary depending on the progression of the disease, the severity of the disease, the underlying pathology of the subject, and the like. In general, the appropriate dose of the pharmaceutical composition of the present invention may be 0.5 to 1000 mg.

[0199] The OAD2 or a pharma- ceutically acceptable salt thereof may be administered in an amount between 1 mg and 1000 mg per day, or between 25 mg and 200 mg per day, or between 25 and 75 mg per day, or between 50 and 100 mg per day, or between 75 and 125 mg per day, or between 100 mg and 150 mg per day, or between 125 and 175 mg per day, or between 150 mg and 200 mg per day, or between 75 mg and 150 mg per day, or between 25 mg and 30 mg per day, or between 15 and 20 mg per day. It may be administered at a dose of 40±5mg per day, 50mg±5mg per day, or 60mg±5mg per day, or 75mg±5mg per day, or 80mg±5mg per day, or 90mg±5mg per day, or 100mg±5mg per day, or 110mg±5mg per day, or 125mg±5mg per day, or 150mg±5mg per day, or 175mg±5mg per day, or 200mg±5mg per day, or 225mg±5mg per day, or 250mg±5mg per day. In one embodiment, the OAD2 or a pharma- ceutically acceptable salt thereof may be administered at a dose such that the amount of OAD2 or a pharma- ceutically acceptable salt thereof administered is 25 mg ± 2.5 mg per day, or 50 mg ± 2.5 mg per day, or 75 mg ± 2.5 mg per day, or 100 mg ± 2.5 mg per day, or 125 mg ± 2.5 mg per day, or 150 mg ± 2.5 mg per day.

[0200] Dosages may be individualized by the clinician based on the particular clinical condition of the subject being treated.

[0201] It will be understood that the specific dosage level for any particular subject will vary depending on a variety of factors, including the activity of the particular compound used, age, body weight, general health, sex, diet, timing of administration, route of administration, excretion rate, drug combination, and the severity of the particular disease being treated.

[0202] In some embodiments, the dose of the pharmaceutical composition of OAD2 and pharma- ceutically acceptable salts thereof of the present invention is 0.5-1000 mg per day, or 1-500 mg per day, 2-300 mg per day, 5-200 mg per day, 10-100 mg per day, 20-50 mg per day, or 5-20 mg per day, 25-40 mg per day, 45-60 mg per day, 65-80 mg per day, 85-100 mg per day, 105-120 mg per day, 125-140 mg per day, 145-160 mg per day, 185-190 mg per day, 205-210 mg per day, 225-230 mg per day, 245-250 mg per day, 265-270 mg per day, 285-290 mg per day, 295-300 mg per day, 305-310 mg per day, 315-320 mg per day, 325-330 mg per day, 335-340 mg per day, 345-350 mg per day, 350-360 mg per day, 365-370 mg per day, 375-380 mg per day, 385-390 mg per day, 395-400 mg per day, 405-410 mg per day, 425-420 mg per day, 435-440 mg per day, 445-450 mg per day, 450-460 mg per day, 465-470 mg per day, 475-480 mg per day, 485-490 mg per day, 495-500 mg per day, 500-510 mg per day, 50 165-180 mg per day, 185-200 mg per day, or 10±2.5 mg per day, 15±2.5 mg per day, 20±2.5 mg per day, 25±2.5 mg per day, 30±2.5 mg per day, 35±2.5 mg per day, 40±2.5 mg per day, 45±2.5 mg per day, 50±2.5 mg per day, 55±2.5 mg per day, 60±2.5 mg per day, 65±2.5 mg per day, 70±2.5 mg per day, 75±2.5 mg per day, 80±2.5 mg per day, 85±2.5 mg per day 2.5mg, 90±2.5mg per day, 95±2.5mg per day, 100±2.5mg per day, 105±2.5mg per day, 110±2.5mg per day, 115±2.5mg per day, 120±2.5mg per day, 125±2.5mg per day, 130±2.5mg per day, 135±2.5mg per day, 140±2.5mg per day, 145±2.5mg per day, 150±2.5mg per day, 155±2.5mg per day, 160±2.5mg per day, 165±2.5mg per day, 170±2.5mg per day, 175±2.5mg per day, 180±2.5mg per day, 185±2.5mg per day, 190±2.5mg per day, 195±2.5mg per day, 200±2.5mg per day, 205±2.5mg per day, 210±2.5mg per day, 215±2.5mg per day, 220±2.5mg per day, 225±2.5mg per day, 230±2.5mg per day, 235±2.5mg per day, 240±2.5mg per day, 245±2.5mg per day, 250±2.5mg per day.5mg per day, 255±2.5mg per day, 260±2.5mg per day, 265±2.5mg per day, 270±2.5mg per day, 275±2.5mg per day, 280±2.5mg per day, 285±2.5mg per day, 290±2.5mg per day, 295±2.5mg per day, 300±2.5mg per day.

[0203] The present invention also relates to pharmaceutical compositions of OAD2 and its pharma- ceutically acceptable salts in combination or conjugation with one or more other pharma- ceutically active ingredients. In one embodiment, the present invention provides for the administration of OAD2 or its pharma- ceutically acceptable salts in combination with one or more other pharma- ceutically active compounds, such as other antidiabetic drugs. Combination therapy can include the active ingredient and the other pharma- ceutically active compound in a single pharmaceutical composition, as well as in two separate pharmaceutical compositions administered to the same subject simultaneously or at a time interval determined by the skilled artisan.

[0204] Pharmaceutical composition with low impurity content The present invention provides compositions with fewer or less impurities. The term "impurity" refers to undesirable substances in a composition. In some embodiments, the amount of impurity may be present in the initial composition and / or may form after a certain shelf life of the composition. In some embodiments, the impurity may be formed by degradation of one or more components of the composition (e.g., active ingredient). Sources of degradation impurities include, but are not limited to, oxidation, racemization, visible light, ultraviolet light, moisture, heat, changes in pH, and interactions of the components of the composition.

[0205] In some embodiments, the total content of impurities in a pharmaceutical composition provided by the present invention is 5% by weight or less from the time of preparation of the composition through the shelf life of the composition, or the mass percentage of total impurities in a pharmaceutical composition provided by the present invention is less than 4.8%, or less than 4.7%, or less than 4.6%, or less than 4.5%, or less than 4.4%, or less than 4.3%, or less than 4.2%, or less than 4.1%, or less than 4.0%, or less than 3.9%, or less than 3.8%, or less than 3.7%, or less than 3.6%, or less than 3.5%, or less than 3.4%, or less than 3.3%, or less than 3.2%, or less than 3.1%, or less than 3.0%, or less than 2.9%, or less than 2.8%, or less than 2.7%, or less than 2.6%, or less than 2.5%. , or less than 2.4%, or less than 2.3%, or less than 2.2%, or less than 2.2%, or less than 2.1%, or less than 2.0%, or less than 1.9%, or less than 1.8%, or less than 1.7%, or less than 1.6%, or less than 1.5%, or less than 1.4%, or less than 1.3%, or less than 1.2%, or less than 1.1%, or less than 1.0%, or less than 0.9%, or less than 0.8%, or less than 0.7%, or less than 0.6%, or less than 0.5%, or less than 0.4%, or less than 0.3%, or less than 0.2%, or less than 0.1%, or less than 0.09%, or less than 0.08%, or less than 0.07%, or less than 0.06%, or less than 0.05%, or less than 0.04%, or less than 0.03%, or less than 0.02%.

[0206] In some embodiments, after a period of shelf life, the composition may have a total amount of impurities of 10% by weight or less.In another embodiment, the composition has a total amount of impurities of about 9.9% by weight or less, or about 9.8% by weight or less, or about 9.6% by weight or less, or about 9.4% by weight or less, or about 9.2% by weight or less, or about 9% by weight or less, or about 8.8% by weight or less, or about 8.6% by weight or less, or about 8.4% by weight or less, or about 8.2% by weight or less, or about 8% by weight or less, or about 7.8% by weight or less, or about 7.6% by weight or less, or about 7.4% by weight or less, or about 7.2% by weight or less, or about 7% by weight or less, or about 6.8% by weight or less, about 6.6% by weight or less, or about 6.4% by weight or less, or about 6.2% by weight or less, or about 6% by weight or less, or about 5.8% by weight or less, or about 5.6% by weight or less, or about 5.4% by weight or less, or about 5.2% by weight or less, or about 5% by weight or less, or about 4.8% by weight or less, or about 4.6% by weight or less, or about 4.4% by weight or less, or about 4.2% by weight or less, or about 4% by weight or less, or about 3.8% by weight or less, or about 3.6% by weight or less, or about 3.4% by weight or less, or about 3.2% by weight or less, or about 3% by weight or less, and is about 2.8% by weight or less, or about 2.6% by weight or less, or about 2.5% by weight or less, or about 2.4% by weight or less, or about 2.3% by weight or less, or about 2.2% by weight or less, or about 2.1% by weight or less, or about 2% by weight or less, or about 1.9% by weight or less, or about 1.8% by weight or less, or about 1.7% by weight or less, or about 1.6% by weight or less, or about 1.5% by weight or less, or about 1.4% by weight or less, or about 1.3% by weight or less, or about 1.2% by weight or less, or about 1.1% by weight or less, or about 1% by weight or less, or about 0.9% by weight It may be about 0.8% by weight or less, or about 0.7% by weight or less, or about 0.6% by weight or less, or about 0.5% by weight or less, or about 0.4% by weight or less, or about 0.3% by weight or less, or about 0.2% by weight or less, or about 0.1% by weight or less, or about 0.09% by weight or less, or about 0.08% by weight or less, or about 0.07% by weight or less, or about 0.06% by weight or less, or about 0.05% by weight or less, or about 0.04% by weight or less, or about 0.03% by weight or less, or about 0.02% by weight or less, or about 0.01% by weight or less.

[0207] The present invention provides technical solutions and technical means for reducing the impurity content of the composition, specifically for reducing the content of decomposition impurity B, through the study of the compatibility of auxiliary raw materials.

[0208] In some embodiments, the present invention predicts the potential incompatibility of the drug in the final dosage form by studying the compatibility of auxiliary materials in the pharmaceutical composition, and screens the selection and dosage of each auxiliary material. Among others, the study of the compatibility of auxiliary materials includes, but is not limited to, the selection of auxiliary materials / excipients, evaluation of the stability of the composition, identification of degradation products, and investigation of the mechanism of interaction.

[0209] The researchers of the present invention have studied the chemical interactions between drug substances and auxiliary materials / excipients in pharmaceutical compositions, and the inherent reactions between auxiliary materials / excipients, such as hydrolysis, dehydration, isomerization, elimination, cyclization, oxidation, photolysis effects, and the main factors influencing the above reactions include, but are not limited to, the temperature, pH, moisture content, relative temperature, exposure, oxygen, physical form, and particle size of the auxiliary materials. The research focuses on the effect of moisture and pH value in the microenvironment, the reaction of auxiliary materials / excipients with their impurities, the investigation of stabilizers, etc.

[0210] In some embodiments, impurities are formed during standing of the composition, influenced by, for example, temperature, humidity, oxygen content, pH, exposure to light, and the like.

[0211] The present researchers further analyze the possible formation reasons of each impurity by determining the growth conditions under different conditions of various impurities of active ingredients through forced decomposition experiments of OAD2 and its pharma- ceutically acceptable salts. Based on the forced decomposition experiments detailed below, the researchers reasonably determine that impurity B is an impurity formed by the oxidation or decomposition of OAD2 and its pharma-ceutically acceptable salts, and therefore, the formation or growth of decomposition impurity B can be reduced by reducing the content of oxides, peroxides, superoxides, and other oxides or active oxygen components in auxiliary raw materials.

[0212] The present invention further provides pharmaceutical compositions having low levels of impurity B.

[0213] In another aspect, the present invention provides a composition containing auxiliary materials / excipients with low reactive oxygen species, which can effectively control the content of impurities in the composition by studying the effect of reactive oxygen species in the auxiliary materials / excipients.

[0214] In some embodiments, the concentration or amount of impurities present in the composition may be at least partially attributable to the decomposition of the composition components other than the active ingredient after a certain period of shelf life. In some embodiments, the concentration or amount of impurities present in the composition at the end of shelf life may be at least partially attributable to the decomposition of the active ingredient. In some embodiments, the decomposition of OAD2 or its pharma- ceutically acceptable salt may be the result of physical or chemical stress. Examples of stress include, but are not limited to, exposure to oxygen, ROS, HPO, pH, light, processed surfaces, and soluble trace metals.

[0215] In some embodiments, the impurities are affected by the components of the auxiliary materials in the composition. By optimizing the components of the auxiliary materials in the composition, the formation of impurities or the rate of growth of impurities can be suppressed to some extent.

[0216] In some embodiments, the components of the composition may be present in concentrations or amounts that at least partially inhibit the formation of impurities in the composition. In other embodiments, the composition may include excipients that have low levels of reactive oxygen species (ROS), such as HPO.

[0217] In some embodiments, the amount of impurity B in the composition after a certain shelf life can be greater than 0% and about 5% by weight or less. In another embodiment, the amount of impurity B in the composition is 0% and about 4.9% by weight or less, or about 4.8% by weight or less, or about 4.7% by weight or less, or about 4.6% by weight or less, or about 4.5% by weight or less, or about 4.4% by weight or less, or about 4.3% by weight or less, or about 4.2% by weight or less, or about 4.1% by weight or less, or about 4% by weight or less, or about 3.9% by weight or less, or about 3.8% by weight or less, or about 3.7% by weight or less, or about 3.8% by weight or less, or about 3.9% by weight or less, or about 3.8 ... 0.6% by weight or less, or about 3.5% by weight or less, or about 3.4% by weight or less, or about 3.3% by weight or less, or about 3.2% by weight or less, or about 3.1% by weight or less, or about 3% by weight or less, or about 2.9% by weight or less, or about 2.8% by weight or less, or about 2.7% by weight or less, or about 2.6% by weight or less, or about 2.5% by weight or less, or about 2.4% by weight or less, or about 2.3% by weight or less, or about 2.2% by weight or less, or about 2.1% by weight or less % or less, or about 2% or less, or about 1.9% or less, or about 1.8% or less, or about 1.7% or less, or about 1.6% or less, or about 1.5% or less, or about 1.4% or less, or about 1.3% or less, or about 1.2% or less, or about 1.1% or less, or about 1% or less, or about 0.9% or less, or about 0.8% or less, or about 0.7% or less, or about 0.6% or less, can be about 0.5% by weight or less, or about 0.4% by weight or less, or about 0.3% by weight or less, or about 0.2% by weight or less, or about 0.1% by weight or less, or about 0.09% by weight or less, or about 0.08% by weight or less, or about 0.07% by weight or less, or about 0.06% by weight or less, or about 0.05% by weight or less, or about 0.04% by weight or less, or about 0.03% by weight or less, or about 0.02% by weight or less, or about 0.01% by weight or less.

[0218] In some embodiments, the content of degradation impurity B in a pharmaceutical composition provided by the present invention from the time of composition preparation through the shelf life is 4% by weight or less, or the mass percentage of total impurities in a pharmaceutical composition provided by the present invention is less than 4.0%, or less than 3.9%, or less than 3.8%, or less than 3.7%, or less than 3.6%, or less than 3.5%, or less than 3.4%, or less than 3.3%, or less than 3.2%, or less than 3.1%, or less than 3.0%, or less than 2.9%, or less than 2.8%, or less than 2.7%, or less than 2.6%, or less than 2.5%, or less than 2.4%, or less than 2.3%, or less than 2.2%, or less than 2.2%, or less than 2.1%. or less than 2.0%, or less than 1.9%, or less than 1.8%, or less than 1.7%, or less than 1.6%, or less than 1.5%, or less than 1.4%, or less than 1.3%, or less than 1.2%, or less than 1.1%, or less than 1.0%, or less than 0.9%, or less than 0.8%, or less than 0.7%, or less than 0.6%, or less than 0.5%, or less than 0.4%, or less than 0.3%, or less than 0.2%, or less than 0.1%, or less than 0.09%, or less than 0.08%, or less than 0.07%, or less than 0.06%, or less than 0.05%, or less than 0.04%, or less than 0.03%, or less than 0.02%, or less than 0.01%.

[0219] In one specific embodiment, the mass percentage of the decomposition impurity B in the composition from the time of preparation of the composition through its shelf life is maintained at 0-1%.

[0220] In a preferred embodiment, after a certain shelf life, the amount of impurity B is greater than 0% and not greater than about 1.0% by weight, based on the total weight of the drug dosage form. In another preferred embodiment, the amount of impurity B is greater than 0% by weight and not greater than about 1.0% by weight after 12 months at 25° C.±2° C. / 60% RH±5% RH, or 30° C.±2° C. / 65% RH±5% RH, or not greater than about 1.0% by weight after 6 months at 30° C.±2° C. / 65% RH±5% RH, or not greater than about 1.0% by weight after 6 months at 40° C.±2° C. / 75% RH±5% RH.

[0221] In some embodiments, the initial amount of impurity B in the composition or the amount after a period of storage can be greater than 0 wt.% and not more than about 2.5 wt.%, or not more than about 2 wt.%, or not more than about 1.5 wt.%, or not more than about 1 wt.%, or not more than about 0.5 wt.%, or not more than about 0.4 wt.%, or not more than about 0.3 wt.%, or not more than about 0.2 wt.%, or not more than about 0.1 wt.%, or not more than about 0.09 wt.%, or not more than about 0.08 wt.%, or not more than about 0.07 wt.%, or not more than about 0.06 wt.%, or not more than about 0.05 wt.%, or not more than about 0.04 wt.%, or not more than about 0.03 wt.%, or not more than about 0.02 wt.%, or not more than about 0.01 wt.%.

[0222] In one specific embodiment, the formation of impurity B may be influenced by an oxygen-dependent mechanism, such that reducing the oxygen accessible to the composition can slow the rate of formation of impurity B. In one specific embodiment, the content of active oxygen affects the growth rate of impurity B.

[0223] In some embodiments, the concentration of oxidative degradation products contained in the composition is such that the composition does not undergo physical changes after a period of shelf life, including, but not limited to, color changes and the formation of insoluble particles.

[0224] In some embodiments, the rate of formation and / or concentration of oxidative degradation products in the composition may be reduced after a certain shelf life by other components of the composition. In some embodiments, the rate of formation and / or concentration of oxidative degradation products in the composition may be reduced by the inclusion of an antioxidant.

[0225] As a specific embodiment, impurity B may be used as a standard for OAD2 or a pharma- ceutically acceptable salt thereof.

[0226] The present invention also provides compositions that contain low levels of ROS, such as HPO.

[0227] Thus, in one embodiment, any excipient or carrier material formulated with an active ingredient may contain low levels of ROS, such as one or more HPO. In one embodiment, the HPO value may simply be a measure of the amount of H2O2.

[0228] In one embodiment, the total HPO value of all materials in the composition, or the HPO value of the entire composition, is less than 200 ppm, or less than 190 ppm, or less than 180 ppm, or less than 170 ppm, or less than 160 ppm, or less than 150 ppm, or less than 140 ppm, or less than 130 ppm, or less than 120 ppm, or less than 110 ppm, or less than 100 ppm, or less than 90 ppm, or less than 80 ppm, or less than 70 ppm, or less than 60 ppm, or less than 50 ppm, or less than 40 ppm, or less than 30 ppm, or less than 20 ppm, or less than 10 ppm, or less than 5 ppm.

[0229] In further embodiments, the total HPO value of all materials in the composition, or the HPO value of the entire composition, is less than 20,000 nmole / g, or less than 19,000 nmole / g, or less than 18,000 nmole / g, or less than 17,000 nmole / g, or less than 16,000 nmole / g, or less than 15,000 nmole / g, or less than 12,000 nmole / g, or less than 11,000 nmole / g, or less than 10,000 nmole / g, or less than 9000 nmole / g, or less than 8000 nmole / g, or less than 7000 nmole / g, or less than 6000 nmole / g, or less than 5000 nmole / g, or less than 4000 nmole / g, or less than 3000 nmole / g, or less than 2000 nmole / g, or less than 1000 nmole / g, or less than 500 nmole / g.

[0230] In another embodiment, the total HPO value of all ingredients in the composition, or the HPO value of the entire composition, is less than 10.0mEq^O2 / kg, or less than 9.5mEq^O2 / kg, or less than 9.0mEq^O2 / kg, or less than 8.5mEq^O2 / kg, or less than 8.0mEq^O2 / kg, or less than 7.5mEq^O2 / kg, or less than 7.0mEq^O2 / kg, or less than 6.5mEq^O2 / kg, or less than 6.0mEq^O2 / kg, or less than 5.5mEq^O2 / kg, or less than 5.0mEq^O2 / kg, or less than 4.5mEq^O2 / kg, or less than 4.0mEq^O2 / kg, or less than 3.5mEq^O2 / kg, or less than 3.0mEq^O2 / kg, or less than 2.5mEq^O2 / kg, or less than 2.0mEq^O2 / kg, or less than 1.5mEq^O2 / kg, or less than 1.0mEq^O2 / kg, or less than 0.9mEq^O2 / kg, or less than 0.8mEq^O2 / kg, or less than 0.7mEq^O2 / kg, or less than 0.6mEq^O2 / kg, or less than 0.5mEq^O2 / kg.

[0231] In one embodiment, the composition comprises a disintegrant, and the HPO value of the disintegrant is less than 50 ppm, or less than 49 ppm, or less than 48 ppm, or less than 47 ppm, or less than 46 ppm, or less than 45 ppm, or less than 44 ppm, or less than 43 ppm, or less than 42 ppm, or less than 41 ppm, or less than 40 ppm, or less than 39 ppm, or less than 38 ppm, or less than 37 ppm, or less than 36 ppm, or less than 35 ppm, or less than 34 ppm, or less than 33 ppm, or less than 32 ppm, or less than 31 ppm. In a preferred embodiment, the composition comprises a disintegrant, and the HPO value of the disintegrant is less than 50 ppm, or less than 40 ppm, or less than 30 ppm, or less than 29 ppm, or less than 28 ppm, or less than 27 ppm, or less than 26 ppm, or less than 25 ppm, or less than 24 ppm, or less than 23 ppm, or less than 22 ppm, or less than 21 ppm, or less than 20 ppm, or less than 19 ppm, or less than 18 ppm, or less than 17 ppm, or less than 16 ppm, or less than 15 ppm, or less than 14 ppm, or less than 13 ppm, or less than 12 ppm, or less than 11 ppm, or less than 10 ppm. In a further preferred embodiment, the composition comprises a disintegrant, the disintegrant is crospovidone, and the HPO or H2O2 value of the disintegrant is less than 50 ppm, or less than 40 ppm, or less than 30 ppm, or less than 25 ppm, or less than 10 ppm, as measured by the European Pharmacopoeia Type A method. In a further embodiment, the European Pharmacopoeia Type A method can be the 2012, 2013, 2014, or 2015 method. In a further preferred embodiment, the composition comprises a disintegrant, the disintegrant is crospovidone, and the HPO or H2O2 value of the disintegrant is less than 125 ppm, or less than 100 ppm, or less than 75 ppm, or less than 50 ppm, as measured by the European Pharmacopoeia Type B method. In a further embodiment, the European Pharmacopoeia Type B method can be the 2012, 2013, 2014, or 2015 method.

[0232] In one embodiment, the composition comprises a disintegrant, the HPO value of the disintegrant is less than 6000 nmole / g, or less than 5000 nmole / g, or less than 4900 nmole / g, or less than 4800 nmole / g, or less than 4700 nmole / g, or less than 4600 nmole / g, or less than 4500 nmole / g, or less than 4400 nmole / g, or less than 4300 nmole / g, or less than 4200 nmole / g, or less than 4100 nmole / g, or less than 4000 nmole / g, or less than 3900 nmole / g, or less than 3800 nmole / g, or less than 3700 nmole / g, or less than 3600 nmole / g, or less than 3500 nmole / g, or less than 3400 nmole / g, or less than 3300 nmole / g, or less than 3200 nmole / g, or less than 31 00 nmole / g, or less than 3000 nmole / g, or less than 2900 nmole / g, or less than 2800 nmole / g, or less than 2700 nmole / g, or less than 2600 nmole / g, or less than 2500 nmole / g, or less than 2400 nmole / g, or less than 2300 nmole / g, or less than 2200 nmole / g, or less than 2100 nmole / g, or less than 2000 nmole / g, or less than 1900 nmole / g, or less than 1800 nmole / g, or less than 1700 nmole / g, or less than 1600 nmole / g, or less than 1500 nmole / g, or less than 1400 nmole / g, or less than 1300 nmole / g, or less than 1200 nmole / g, or less than 1100 nmole / g, or less than 1000 nmole / g. In a preferred embodiment, the composition comprises a disintegrant, and the HPO value of the disintegrant is less than 5000 nmole / g, or less than 4000 nmole / g. In a further preferred embodiment, the composition comprises a disintegrant, and the disintegrant is crospovidone, and the HPO value of the disintegrant is less than 5000 nmole / g, or less than 4000 nmole / g.

[0233] In another embodiment, the composition comprises a disintegrant, and the HPO value of the disintegrant is less than 2.00mEq^O2 / kg, or less than 1.90mEq^O2 / kg, or less than 1.80mEq^O2 / kg, or less than 1.70mEq^O2 / kg, or less than 1.60mEq^O2 / kg, or less than 1.50mEq^O2 / kg, or less than 1.40mEq^O2 / kg, or less than 1.30mEq^O2 / kg, or less than 1.20mEq^O2 / kg, or less than 1.10mEq^O2 / kg, or less than 1.00mEq^O2 / kg, or less than 0.90mEq^O2 / kg. or less than 0.80mEq^O2 / kg, or less than 0.70mEq^O2 / kg, or less than 0.60mEq^O2 / kg, or less than 0.50mEq^O2 / kg, or less than 0.40mEq^O2 / kg, or less than 0.30mEq^O2 / kg, or less than 0.20mEq^O2 / kg, or less than 0.10mEq^O2 / kg, or less than 0.09mEq^O2 / kg, or less than 0.08mEq^O2 / kg, or less than 0.07mEq^O2 / kg, or less than 0.06mEq^O2 / kg, or less than 0.05mEq^O2 / kg. In a preferred embodiment, the composition comprises a disintegrant, and the HPO value of the disintegrant is less than 1.00mEq^O2 / kg. In a further preferred embodiment, the composition comprises a disintegrant, the disintegrant is crospovidone, and the HPO value of the disintegrant is less than 1.00 mEq^O2 / kg.

[0234] In any of the foregoing embodiments, the measured HPO can be a measure of total HPO or total H2O2. Additionally, quantification of HPO levels can be accomplished using methods known to those of skill in the art.

[0235] In one embodiment, HPO levels can be determined according to a method measuring the reduction of HPO by Fe(II) under acidic conditions, such as that described by Gay (Gay et al. 1999. Hydroperoxide assay with the ferric-xylenol orange complex "Anal. Biochem 273:149-155).

[0236] In another embodiment, the HPO level can be determined according to a method that measures the formation of triphenylphosphine oxide from triphenylphosphine, such as the method described in Nakamura (Nakamura et al. 1991. "A simple assay for lipid hydroperoxides based on triphenylphosphine oxidation and high-performance liquid chromatography" Lipids 26:765-768).

[0237] Other methods for measuring HPO are described by Wasylaschuk (Wasylaschuk et al. 2007. "Evaluation of hydroperoxides in common pharmaceutical exicipents" J. Pharm. Sci. 96:106-116).

[0238] Other methods for the measurement of peroxides (H2O2) are described in the European Pharmacopoeia monographs: Type A: up to 400 ppm (400 ppm or less) of H2O2, Type B: up to 1000 ppm (1000 ppm or less) of H2O2 as of 2012, 2013, 2014 and 2015.

[0239] Each of the above HPO measurement methods is incorporated herein by reference.

[0240] The present invention also provides compositions that may have an extended shelf life compared to compositions with high levels of ROS, such as HPO.

[0241] As used herein, the term "shelf life" refers to the period of time that a product can be stored without becoming unsuitable for medical use. Examples of compositions that are unsuitable for medical use include, but are not limited to, compositions that have unacceptably high amounts of impurities and / or physical changes as described herein (e.g., color change and / or inclusion of insoluble particles).

[0242] In some embodiments, the shelf life of the composition may be 7 days, or 11 days, or 14 days, or 1 month, or 2 months, or 3 months, or 4 months, or 5 months, or 6 months, or 7 months, or 8 months, or 9 months, or 10 months, or 11 months, or 12 months, or 13 months, or 14 months, or 15 months, or 16 months, or 17 months, or 18 months, or 19 months, or 20 months, or 21 months, or 22 months, or 23 months, or 24 months, or 25 months, or 26 months, or 27 months, or 28 months, or 29 months, or 30 months, or 31 months, or 32 months, or 33 months, or 34 months, or 35 months, or 36 months, or 48 months.

[0243] In other embodiments, the shelf life of the composition may be extended by 7 days, or 11 days, or 14 days, or 1 month, or 2 months, or 3 months, or 4 months, or 5 months, or 6 months, or 7 months, or 8 months, or 9 months, or 10 months, or 11 months, or 12 months, or 13 months, or 14 months, or 15 months, or 16 months, or 17 months, or 18 months, or 19 months, or 20 months, or 21 months, or 22 months, or 23 months, or 24 months, or 25 months, or 26 months, or 27 months, or 28 months, or 29 months, or 30 months, or 31 months, or 32 months, or 33 months, or 34 months, or 35 months, or 36 months, or 48 months, compared to the same or similar composition having higher ROS levels.

[0244] In some embodiments, shelf life can be determined by measuring a particular characteristic of the composition that may indicate that the composition is unsuitable for medical use. In some embodiments, shelf life can be determined by measuring the impurity concentration in the composition after storage at 25° C. and 60% relative humidity. In some embodiments, shelf life can be determined by measuring the impurity concentration in the composition after storage at 37° C. and 65% relative humidity. In some embodiments, shelf life can be determined by measuring the impurity concentration in the composition after storage at 40° C. and 75% relative humidity. In some embodiments, shelf life can be determined by measuring the impurity concentration in the composition after storage at 50° C.-60° C. or 55° C.-65° C.

[0245] In some embodiments, shelf life may be determined by measuring the concentration of impurities in the composition after storage at (long term - 12 months) 25°C ± 2°C / 60% RH ± 5% RH, or 30°C ± 2°C / 65% RH ± 5% RH, or (intermediate term - 6 months) 30°C ± 2°C / 65% RH ± 5% RH, or (accelerated term - 6 months) 40°C ± 2°C / 75% RH ± 5% RH.

[0246] In some embodiments, shelf life may be determined by measuring the levels of impurities in the composition using the guidelines outlined in the ICH Harmonized Tripartite Guideline: Stability Testing of New Drug Substances and Products Q1A(R2), published February 6, 2003.

[0247] For example, shelf life can be determined for long-term storage conditions, accelerated storage conditions, and, where appropriate, intermediate storage conditions by measuring impurity concentrations after storage at these conditions, where the composition is packaged in a container closure system that is the same or similar to the packaging proposed for storage and distribution.

[0248] Methods for identifying and controlling impurity B As can be seen from the results of the forced decomposition experiment of the active ingredient (see Examples), as a result of the oxidative destruction, impurities appeared before the main peak, and the resolution between the impurities and the main peak was 0.68, which means that the impurities had low resolution from the main peak. Meanwhile, the minimum purity of the main peak after oxidative destruction in each sub-experiment was 91.6%, and therefore, it can be seen that OAD2 and its pharma- ceutically acceptable salts are, firstly, the most sensitive to oxidative destruction, and, secondly, highly sensitive to high-temperature destruction, and therefore further control is required against the generation of oxidative impurities.

[0249] From the change situation of impurities in the forced decomposition experiment, in the oxidative destruction sub-experiment, the increase of the component of impurity B increased to 2.77 after oxidative destruction, which was the most obvious change component in each sub-experiment. Therefore, it is necessary to optimize the analysis method of impurity B and reduce the limit value of impurity B.

[0250] On the other hand, the engineers have reasonably determined through the above forced decomposition experiments that impurity B is an impurity formed by the oxidation or decomposition of OAD2 or a pharma- ceutically acceptable salt thereof, and therefore the formation or proliferation of oxidative decomposition impurity B can be reduced by reducing the oxides, peroxides, superoxides, and other oxides, or active oxygen structural components, contained in the auxiliary raw materials.

[0251] The present invention provides one of the related substances of OAD2, namely, degradation impurity B, 2-3(-(4-((3,4-dichlorobenzyl)oxy)phenyl)-8-oxo-12-(1-phenylpropyl)-2,3,6,8,9,10-hexahydro-7H-6,9-epimino[1,4]dioxino[2',3':4,5]benzo[1,2-c]azapin-7-yl)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid, as shown in structural formula B. The molecular formula of degradation impurity B is C 50 H 45 It is Cl2N3O6 and has a molecular weight of 854.82.

[0252] [ka]

[0253] Data on the detection, analysis, characterization, etc. of impurity B are provided in the Examples.

[0254] In some embodiments, impurity B is characterized by a relative retention time relative to OAD2 of 0.45-0.66 under certain HPLC or LCMS conditions, such as those described in sections Examples 18-24. In one embodiment, the HPLC relative retention time of impurity B is between 0.47-0.63 relative to OAD2. In another embodiment, the HPLC relative retention time of impurity B is between 0.55-0.64 relative to OAD2.

[0255] In another embodiment, impurity B is a product produced by a method comprising oxidizing OAD2 or a pharma- ceutically acceptable salt thereof. The oxidizing step may comprise mixing OAD2 or a pharma- ceutically acceptable salt thereof with an oxidizing agent. The oxidizing agent may be any reagent capable of removing two electrons, and / or H2, from OAD2 or a pharma- ceutically acceptable salt thereof. The oxidizing agent may be molecular oxygen (O2), hydrogen peroxide (H2O2), superoxide, hypochlorite, or an organic hydroperoxide (ROOH), where R is a carbon atom, such as a C1-C6 alkyl group. In one embodiment, the oxidizing agent is molecular oxygen. In another embodiment, the oxidizing agent is hydrogen peroxide. In another embodiment, the oxidizing agent is an organic hydroperoxide, such as 3-chloroperbenzoic acid (mCPBA).

[0256] Further embodiments Embodiment A-1 1. A compound produced by a process comprising the step of oxidizing (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid (OAD2) or a pharma- ceutically acceptable salt thereof, wherein the compound produced has a molecular weight of 854.

[0257] Embodiment A-2 The compound of embodiment A-1, wherein the compound is further characterized by having a retention time for OAD2 of 0.45-0.66 under reverse phase liquid chromatography gradient mobile phase conditions, where mobile phase A comprises 0.05% TFA in water (v / v) and mobile phase B comprises 0.05% TFA in acetonitrile:methanol (1:2) (v / v), and the sample is run using a step gradient from time zero (50% mobile phase A) to 38 minutes (99% mobile phase B).

[0258] Embodiment A-3 A composition comprising (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid (OAD2) or a pharma- ceutically acceptable salt thereof, a compound according to embodiment A-1 or a pharma- ceutically acceptable salt thereof, and one or more excipients, wherein the composition has greater than 0% and less than 2.5% by weight of a compound according to embodiment A-1 or A-2 or a pharma- ceutically acceptable salt thereof.

[0259] Embodiment A-4 A composition comprising (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid (OAD2) or a pharma- ceutically acceptable salt thereof, and a disintegrant, wherein the HPO value of the disintegrant is less than 50 ppm.

[0260] Embodiment A-5 The composition of embodiment A-4, comprising 10% to 40% by weight of OAD2 dihydrochloride, and 0.1% to 20% by weight of a disintegrant.

[0261] Embodiment A-6

[0262] The composition of embodiment A-5, wherein the disintegrant is crospovidone and is present in the range of 0.2% to 10% by weight. Embodiment A-7 The composition of embodiment A-4 comprising a compound of embodiment A-1 or A-2, or a pharma- ceutically acceptable salt thereof, wherein the amount of the compound of embodiment A-1 or A-2, or a pharma- ceutically acceptable salt thereof, is present in an amount greater than 0% and less than 1.0% by weight.

[0263] Embodiment A-8 A composition according to embodiment A-7, comprising 0.4% by weight or less of a compound according to embodiment A-1 or A-2, or a pharma- ceutically acceptable salt thereof, after storage at 25° C.±2° C. / 60% RH±5% RH for 24 months.

[0264] Embodiment A-9 The composition according to embodiment A-7, comprising 1% by weight or less of a compound according to embodiment A-1 or A-2, or a pharma- ceutically acceptable salt thereof, after storage at 55°C to 65°C for 14 days.

[0265] Embodiment A-10 % to about 50% by weight of an acidifying agent; and wherein the composition comprises a compound according to embodiment A-1 or A-2 or a pharma- ceutically acceptable salt thereof, and wherein the amount of the compound according to embodiment A-1 or A-2 or a pharma- ceutically acceptable salt thereof is greater than 0% and less than or equal to 0.4% by weight after storage for 24 months at 25° C.±2° C. / 60% RH±5% RH.

[0266] Embodiment A-11 The composition according to any of embodiments A-3 to A-10, which is in the form of a tablet or capsule.

[0267] Embodiment A-12 The composition according to any of embodiments A-3 to A-10, comprising between 1 and 500 mg of OAD2 or a pharma- ceutically acceptable salt thereof.

[0268] Embodiment A-13 A method for preparing a composition described in any one of embodiments A-3 to A-10, comprising mixing OAD2 or a pharma- ceutically acceptable salt thereof with one or more excipients.

[0269] Embodiment A-14 The method according to embodiment A-13, wherein the method is a spray granulation process.

[0270] Embodiment A-15 A method for treating a disease, comprising administering to a human in need thereof a composition according to any one of embodiments A-3 to A-10, wherein the disease is selected from the group consisting of metabolic syndrome, impaired glucose tolerance, hyperglycemia, dyslipidemia, type I diabetes, type II diabetes, hypertriglyceridemia, syndrome X, insulin resistance, impaired glucose tolerance (IGT), obesity, diabetic dyslipidemia, hyperlipidemia, arteriosclerosis, atherosclerosis, other cardiovascular diseases, hypertension, and complications due to diabetes, including but not limited to neuropathy, retinopathy, nephropathy, and wound healing disorders.

[0271] Embodiment A-16 The method according to embodiment A-15, wherein the disease is type II diabetes.

[0272] Embodiment A-17 The method of embodiment A-16, wherein the amount of OAD2 or a pharma- ceutically acceptable salt thereof administered is between 25 mg and 200 mg per day.

[0273] Definition of Terms The term "active ingredient" refers to OAD2 and its pharma- ceutically acceptable salts.

[0274] The term "pharmaceutically acceptable salt" refers to a salt of a compound prepared by reacting a free base with a suitable organic or inorganic acid, or an acid with a suitable organic or inorganic base. Representative salts include acetate, benzenesulfonate, benzoate, bicarbonate, bisulfate, bitartrate, borate, bromide, calcium edetate, camphorsulfonate, carbonate, chloride, clavulanate, citrate, citrate, dihydrochloride, edetate, edisylate, estolate, esylate, fumarate, gluceptate, gluconate, glutamate, glycollylarsanilate, hexylresorcinate, hydrabamine, hydrobromide, hydrochloride, hydroxynaphthoate, iodide, isethionate, lactate, lactobionate, laurate, lysine ... Examples of suitable salts include malonate, maleate, mandelate, mesylate, methyl bromide, methyl nitrate, methyl sulfate, monopotassium maleate, mucate, napsylate, nitrate, N-methylglucamine, oxalate, pamoate (embonate) palmitate, pantothenate, phosphate / biphosphate, polygalacturonate, potassium salts, salicylate, sodium salts, stearate, subacetate, succinate, tannate, tartrate, theoclate, p-toluenesulfonate, 3-ethyliodo compounds, trimethylammonium salts, and valerate salts. When an acidic substituent such as -COOH is present, ammonium, morpholinium, sodium, potassium, barium, calcium salts, and the like, can be formed for use as dosage forms. When a basic group, such as an amino group, or a basic heteroaryl radical, such as pyridyl, is present, acid salts such as hydrochloride, hydrobromide, phosphate, sulfate, trifluoroacetate, trichloroacetate, acetate, oxalate, maleate, pyruvate, malonate, succinate, citrate, tartrate, fumarate, mandelate, benzoate, cinnamate, methanesulfonate, ethanesulfonate, picrate, and the like can be formed.In a specific embodiment, the GLP-1R agonist is a hydrochloride or dihydrochloride salt.

[0275] The term "active oxygen" refers to a type of one-electron reduction product of oxygen in the body. Active oxygen is generated when electrons leak out of the respiratory chain and consume approximately 2% of oxygen before they are transferred to the terminal oxidase. Among these, active oxygen includes the one-electron reduction product of oxygen: superoxide anion (O2-), the two-electron reduction product hydrogen peroxide (H2O2), the three-electron reduction product hydroxyl radical (OH), and nitric oxide.

[0276] The term "hydroperoxides" or HPO can be organic hydroperoxides (ROOH), where R is a carbon atom, or hydrogen peroxide (H2O2).

[0277] The term "reactive oxygen species" or ROS includes peroxides, hydroperoxides, HPO, superoxide, hypochlorite and / or formate.

[0278] The term "HPO value" means the amount of HPO. The units of HPO value can be ppm, mEq^O2 / kg, nmole / g, or units of absorbance, depending on the assay used to measure HPO.

[0279] The term "shelf life" refers to the period of time that a pharmaceutical composition can be stored without use, provided that it remains effective. Examples of compositions that are unsuitable for medical use include, but are not limited to, compositions that have unacceptably high levels of impurities and / or the presence of physical changes described herein, including color changes and / or insoluble particles.

[0280] The term "storage" refers to the conditions under which a composition is stored, such as temperature, light exposure, relative humidity, and other conditions under which a pharmaceutical composition is stored. In some embodiments, unless otherwise specified, storage refers to storing the pharmaceutical composition at a temperature of 25±5° C. and a relative humidity of 50±10%.

[0281] The term "mass of the composition" or "mass of the preparation" refers to the mass of active ingredient or other pharma- ceutically acceptable auxiliary materials used, calculated from the weight of the tablet core without coating.

[0282] The term "excipient" includes any substance used as a vehicle for delivery of an active ingredient to a subject, and any substance added to an active ingredient, for example, to improve its handling or to allow the resulting composition to be formed into an orally deliverable unit dose having a desired shape and consistency. Excipients may include, by way of example and not limitation, diluents, disintegrants, binders, adhesives, wetting agents, lubricants, glidants, substances added to attenuate or neutralize bad aftertastes or odors, flavorings, dyes, substances added to improve the appearance of the dosage form, and other substances other than the active ingredient that are conventionally used in the preparation of oral dosage forms. In one embodiment, the excipient may contain less than 50 ppm, or less than 40 ppm, or less than 30 ppm, or less than 20 ppm of peroxide. In further embodiments, the peroxide content may be a measure of H2O2.

[0283] The term "subject" refers to any mammal, such as a human, horse, cow, sheep, pig, mouse, rat, dog, cat, and primate, such as a chimpanzee, gorilla, or rhesus monkey. In some embodiments, the "subject" is a human. In some such embodiments, the "subject" is a human exhibiting one or more symptoms characteristic of a disease, disorder, or illness. The term "subject" does not require a subject to have a particular qualification (e.g., an inpatient, a research participant, etc.) with respect to a hospital, clinic, or research facility. In specific embodiments, the subject is a human having an HbA1c level of greater than 6.0%, 6.5%, 7.0%, 7.5%, or 8.0%. In other embodiments, the subject is a human subject in need of administration of a GLP1R agonist. The nature of the need varies depending on the treatment goal. In some embodiments, the subject exhibits high glycated hemoglobin levels in the blood, e.g., high HbA1c levels in the blood. In some such embodiments, administration of a GLP1R agonist is performed to reduce the subject's HbA1c level. In other embodiments of any of the above embodiments, the subject exhibits one or more symptoms consistent with type II diabetes. In some such embodiments, the administration of the GLP1R agonist is performed to treat type II diabetes or type I diabetes (including treating one or more symptoms associated therewith). In other embodiments of any of the above embodiments, the subject exhibits weight gain, or in some cases obesity. In some such embodiments, the administration of the GLP1R agonist is performed to reduce body mass, treat obesity (including treating one or more symptoms associated therewith), or slow gastric emptying. In some other embodiments, the subject exhibits one or more symptoms consistent with poor glycemic control. In such embodiments, the administration of the GLP1R agonist is performed to improve glycemic control (including treating one or more symptoms associated therewith).

[0284] The term "administer" or "administration" refers to introducing, such as introducing a compound or composition into a subject. The term is not limited to any particular delivery mode, but preferably refers to oral delivery. Furthermore, administration can be performed by a variety of individuals, such as, for example, a medical professional (e.g., a doctor, a nurse, etc.), a pharmacist, or the subject (i.e., self-administration).

[0285] The term "treat" or "treating" or "treatment" can refer to one or more of: slowing the progression of the disease, disorder or condition; controlling the disease, disorder or condition; delaying the onset of the disease, disorder or condition; ameliorating one or more symptoms characteristic of the disease, disorder or condition; and, depending on the nature of the disease, disorder or condition and its characteristic symptoms, delaying the recurrence of the disease, disorder or condition or its characteristic symptoms. [Brief description of the drawings]

[0286] [Figure 1] 1 is a mass spectrum (MS) diagram of impurity B. [Diagram 2] FIG. 1 is a hydrogen nuclear magnetic resonance spectrum (1H-NMR) diagram of impurity B. [Diagram 3] FIG. 1 is a carbon nuclear magnetic resonance spectrum (C-NMR) diagram of impurity B. [Figure 4] This is a nuclear magnetic resonance DEPT135° spectrum of impurity B. [Diagram 5] FIG. 2 is a nuclear magnetic resonance carbon-hydrogen correlation spectrum (HSQC) diagram of impurity B. [Figure 6] FIG. 2 is a nuclear magnetic resonance carbon-hydrogen remote correlation spectrum (HSMBC) diagram of impurity B. [Figure 7] FIG. 2 is a nuclear magnetic resonance hydrogen-hydrogen correlation spectrum (1H-1H COSY) diagram of impurity B. EXAMPLES

[0287] The present invention will be described in more detail with reference to specific examples. The following examples are provided for understanding the method and core concept of the present invention, and any possible modifications or substitutions are within the scope of protection of the present invention without departing from the concept of the present invention. The experimental methods in the examples of the present invention that do not specify specific conditions are generally conventional conditions or conditions proposed by raw material manufacturers or product manufacturers, and the reagents that do not specify the source are generally commercially available conventional reagents.

[0288] The dihydrochloride salt of OAD2 can be obtained according to the methods described in patent CN102378574A or related WO 2010 / 114824, the entireties of which are incorporated herein by reference.

[0289] Free OAD2 can be obtained according to the methods described in patent CN102378574A or related WO 2010 / 114824, the entireties of which are incorporated herein by reference.

[0290] Example 1 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, Tween, Poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their formulation amounts, respectively. API was added to the above solution and stirred to completely dissolve. The formulation amount of microcrystalline cellulose, pregelatinized starch, and crospovidone were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amount of microcrystalline cellulose, crospovidone, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the hardness of the plain tablet was controlled at 10-14 kg.

[0291] [Table 4]

[0292] Example 2 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, Tween, Poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their formulation amounts, respectively. The API was added to the above solution and stirred to completely dissolve. The formulation amount of microcrystalline cellulose, lactose, and low-substituted hydroxypropyl cellulose were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amount of microcrystalline cellulose, low-substituted hydroxypropyl cellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0293] [Table 5]

[0294] Example 3 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, HS15, poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their dosage amounts. The API was added to the above solution and stirred to completely dissolve. The dosage amounts of microcrystalline cellulose, lactose, and low-substituted hydroxypropyl cellulose were transferred to a fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40-mesh sieve to stabilize the particle size, mixed with the dosage amounts of microcrystalline cellulose, low-substituted hydroxypropyl cellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0295] [Table 6]

[0296] Example 4 The formulation amount of SoluPlus and polyvinylpyrrolidone were added separately to purified water. The API was added to the above solution and stirred to completely dissolve. The formulation amount of microcrystalline cellulose, lactose, and low-substituted hydroxypropyl cellulose were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amount of microcrystalline cellulose, low-substituted hydroxypropyl cellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0297] [Table 7]

[0298] Example 5 Hydroxypropyl beta-cyclodextrin, poloxamer 188, and polyvinylpyrrolidone in formulation amounts were added separately to purified water. API was added to the above solution and stirred to completely dissolve. Microcrystalline cellulose, lactose, and low-substituted hydroxypropyl cellulose in formulation amounts were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with microcrystalline cellulose, low-substituted hydroxypropyl cellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid in formulation amounts, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0299] [Table 8]

[0300] Example 6 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, HS15, poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their formulation amounts. The API was added to the above solution and stirred to completely dissolve. The formulation amounts of microcrystalline cellulose, pregelatinized starch, and crospovidone were transferred to the fluidized bed and spray granulated. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amounts of microcrystalline cellulose, crospovidone, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the hardness of the plain tablet was controlled at 10-14 kg.

[0301] [Table 9]

[0302] Example 7 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, RH40, poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their formulation amounts. The API was added to the above solution and stirred to completely dissolve. The formulation amounts of microcrystalline cellulose, pregelatinized starch, and crospovidone were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amounts of microcrystalline cellulose, crospovidone, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the hardness of the plain tablet was controlled at 10-14 kg.

[0303] [Table 10]

[0304] Example 8 The formulation amount of poloxamer 188 and polyvinylpyrrolidone were added separately to purified water. The API was added to the above solution and stirred to completely dissolve. The formulation amount of microcrystalline cellulose, lactose, and low-substituted hydroxypropyl cellulose were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amount of microcrystalline cellulose, low-substituted hydroxypropyl cellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0305] [Table 11]

[0306] Example 9 The formulation amounts of SoluPlus, poloxamer 188, and polyvinylpyrrolidone were added to purified water, respectively. The API was added to the above solution and stirred to completely dissolve. The formulation amounts of microcrystalline cellulose, lactose, and low-substituted hydroxypropyl cellulose were transferred to a fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amounts of microcrystalline cellulose, low-substituted hydroxypropyl cellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0307] [Table 12]

[0308] Example 10 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, Tween, Poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their formulation amounts, respectively. API was added to the above solution and stirred to completely dissolve. The formulation amount of microcrystalline cellulose, lactose, and crospovidone were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amount of microcrystalline cellulose, crospovidone, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the hardness of the plain tablet was controlled at 10-14 kg.

[0309] [Table 13]

[0310] Example 11 Vitamin E TPGS 1000 was melted at 50°C, and the melted Vitamin E TPGS 1000, Tween, Poloxamer 188, and polyvinylpyrrolidone were added to purified water according to their formulation amounts, respectively. API was added to the above solution and stirred to completely dissolve. The formulation amount of microcrystalline cellulose, lactose, and sodium carboxymethylcellulose were transferred to the fluidized bed and spray granulation was carried out. The prepared granules were sieved through a 40 mesh sieve to stabilize the particle size, mixed with the formulation amount of microcrystalline cellulose, sodium carboxymethylcellulose, colloidal silicon dioxide, magnesium stearate, and anhydrous citric acid, and tableted, where the tablet hardness was controlled at 10-14 kg.

[0311] [Table 14]

[0312] Example 12 Investigating the Stability of Compositions of OAD2 or Its Pharmaceutically Acceptable Salts (Preliminary Screening) Compositions were prepared according to the formulations and methods described in Examples 1 to 11, and the prepared compositions were placed under conditions of 25°C and normal humidity, and the total mass changes of each tablet were recorded at the start, 1 month, 2 months, and 3 months, respectively. The results are shown in Table 12.1.

[0313] [Table 15-1]

[0314] The researchers found that impurity B was the only shelf life impurity among all related substances, that is, the content of impurity B gradually increased with the extension of storage time. Therefore, the researchers independently analyzed the increase of impurity B. Similarly, the compositions were prepared according to the formulations and methods of Examples 1 to 11, and the prepared compositions were placed under conditions of a temperature of 25°C and normal humidity, and the content of impurity B in the pharmaceutical compositions at the start, 1 month, 2 months, and 3 months was recorded, respectively. The results are recorded in Table 12.2.

[0315] [Table 15-2]

[0316] Example 13 Forced decomposition experiment of active ingredients Preparation of solutions (1) Undestructive test article solution: 25 mg of OAD2 or its pharma- ceutically acceptable salt was placed in a 50 ml measuring flask, dissolved by adding a diluent, diluted to the scale line, and shaken well to obtain the test article solution. (2) Acid-destroyed test article solution: 25.35 mg of OAD2 or a pharma- ceutically acceptable salt thereof was placed in a 50 ml volumetric flask. 2 ml of 1 mol / L hydrochloric acid was added, the mixture was mixed, allowed to stand at room temperature for 24 hours, and the pH was adjusted to neutral with 1 mol / L sodium hydroxide solution. The mixture was diluted to the scale line by adding diluent. The mixture was shaken well and used as the acid-destroyed test article solution. (3) Alkaline-destroyed test article solution: 26.64 mg of OAD2 or its pharma- ceutically acceptable salt was placed in a 50 ml measuring flask. 2 ml of 1 mol / L sodium hydroxide solution was added, the mixture was mixed, and allowed to stand at room temperature for 24 hours, and the pH was adjusted to neutral with 1 mol / L hydrochloric acid. The mixture was diluted to the scale line by adding a diluent. The mixture was shaken well and used as the alkaline-destroyed test article solution. (4) Acid blank: 2 ml of 1 mol / L sodium hydroxide solution was placed in a 50 ml measuring flask. The solution was neutralized with 1 mol / L hydrochloric acid solution, then diluted to the scale line with diluent and shaken well to use as an acid destruction blank solution. (5) Oxidatively destroyed test article solution: 28.10 mg of OAD2 or its pharma- ceutically acceptable salt was placed in a 50 ml measuring flask. 2 ml of 15% hydrogen peroxide was added and allowed to stand at room temperature for 9 hours. The mixture was diluted to the scale line with diluent. The mixture was shaken well and used as the oxidatively destroyed test article solution. (6) Oxidative destruction blank: 2 ml of 15% hydrogen peroxide was placed in a 50 ml measuring flask, diluted to the graduated line with diluent, and shaken well to serve as the oxidative destruction blank. (7) High-temperature destruction test solution: 26.07 mg of OAD2 or its pharma- ceutically acceptable salt was accurately weighed, placed in a 50 ml measuring flask, and left to stand at a high temperature of 105° C. for 72 hours. This was dissolved and diluted with a diluent to the scale line, shaken well, and used as a high-temperature destruction test solution. (8) Exposure-destroyed test solution: 25.12 mg of OAD2 or its pharma- ceutically acceptable salt was accurately weighed, placed in a 50 ml measuring flask, and left to stand for 6 days under light irradiation of 4500 Lx +-500 Lx. This was dissolved and diluted with a diluent to the scale line, shaken well, and used as the exposure-destroyed test solution. (9) Test solution destroyed by high humidity destruction: 25.71 mg of OAD2 or its pharma- ceutically acceptable salt was placed in a 50 ml measuring flask, and then the measuring flask was placed in a dryer (humidity 92.5%) with KNO3 saturated solution placed at the bottom, and left to stand for 5 days. This was dissolved and diluted to the scale line with a diluent, shaken well, and used as the test solution destroyed by high humidity destruction. (10) Blank solution that is not destroyed by high temperature, high humidity, or light irradiation: Diluent

[0317] The measurement method is as follows. 2 μl of each of the above solutions (1) to (10) was injected into the liquid chromatograph, and the chromatogram was recorded. The results of the forced decomposition experiment are shown in Table 13.1, and the results of the changes in various impurity components after forced decomposition are shown in Table 13.2.

[0318] [Table 16-1]

[0319] [Table 16-2]

[0320] [Table 16-3]

[0321] The results of the forced decomposition experiment showed that oxidative destruction caused impurities to appear before the main peak, and the resolution between the impurities and the main peak was 0.68, resulting in impurities with low resolution from the main peak. Meanwhile, the minimum purity of the main peak after oxidative destruction in each sub-experiment was 91.6%, which showed that OAD2 or its pharma- ceutically acceptable salts were firstly most sensitive to oxidative destruction and secondly sensitive to high-temperature destruction, so further control of impurities arising from oxidation and destruction is necessary.

[0322] From the change situation of impurities in the forced decomposition experiment, in the oxidative destruction sub-experiment, the increase of the component of impurity B increased to 2.77 after oxidative destruction, which was the component that changed most obviously in each sub-experiment. Therefore, it is necessary to optimize the analysis method of impurity B and reduce the limit value of impurity B.

[0323] Meanwhile, through forced decomposition experiments, the engineers have reasonably determined that impurity B is an impurity formed by oxidizing or decomposing OAD2 or its pharma- ceutically acceptable salts, and therefore the formation or proliferation of oxidative decomposition impurity B can be reduced by reducing the oxides, peroxides, superoxides, and other oxides, or active oxygen structural components, contained in the auxiliary raw materials. As an improvement to pharmaceutical formulations of OAD2 or its pharma-ceutically acceptable salts, the researchers have found that solubilizers and disintegrants with low peroxide content reduce the formation of oxidative decomposition impurity B.

[0324] Example 14 Characterization of oxidative degradation impurity B 1. MS: Instrument method: Agilent Q-TOF-6545A, Test conditions: ESI source; Molecular formula:C 50 H 45 Cl2N3O6 Theoretical molecular weight: 854.2758([M+H] + ) Measurement by high-resolution mass spectrometry: M / Z=854.2771 2.NMR: Instrument method: Bruker AVANCE III HD 500MHz, Measurement method: Weigh a certain amount of oxidative decomposition impurity B (batch number: RD 181112) and dissolve it in DMSO-d6. 1 H-NMR, 13 C-NMR, DEPT135°, HSQC, HMBC, 1 H- 1 H COSY was measured.

[0325] Table 14.1 shows the impurity B 1 H-NMR, and 1 H- 1 Table 14.2 lists the H COSY spectral data of impurity B. 13 The C-NMR, DEPT135°, HSQC, and HMBC spectral data are listed.

[0326] [Table 17-1]

[0327] [Table 17-2]

[0328] [Table 17-3]

[0329] [Table 17-4]

[0330] [Table 17-5]

[0331] [Table 17-6]

[0332] The mass spectrum of impurity B was obtained by employing the positive ion detection mode of the ESI source, and that of impurity C was obtained by employing the positive ion detection mode of the ESI source. 50 H 45 The molecular weight of the sample [M+H] corresponds to that of Cl2N3O6. + The molecular structure of the sample was further confirmed by NMR. 1 H-NMR), and carbon spectrum ( 13 C-NMR, DEPT135°) showed that the sample molecule had 44 hydrogen atoms (no active hydrogen) and 50 carbon atoms, and the two-dimensional correlation spectrum ( 1 H- 1 From the viewpoints of H COSY, HSQC, and HMBC, it can be determined that two carbonyl groups, two 1,4-disubstituted benzene ring fragments, one monosubstituted benzene ring fragment, one 1,3,4-trisubstituted benzene ring fragment, one 1,2,4,5-tetrasubstituted benzene ring fragment, and one 1,2,3,4-trisubstituted pyridine ring fragment are present in the molecule. The connection modes of the various fragments can be determined from the structure of the OAD2 precursor of the sample and the two-dimensional correlation spectrum, which shows the H-24 (δ H5.467,s,1H) and C-25 (δ C173.53,s) related signals, as well as the H-26 (δ H4.842,dd,J=10.3,5.4Hz,1H) and C-24 (δ A C74.19,d) related signal can be observed by HMBC, indicating that the methylene at C-24' of OAD2 or a pharma- ceutically acceptable salt thereof is oxidized and combined with C25'-NH- to form a 4-imidazolidinone ring structure fragment, resulting in the oxidative degradation impurity B, 2-3(-(4-((3,4-dichlorobenzyl)oxy)phenyl)-8-oxo-12-(1-phenylpropyl)-2,3,6,8,9,10-hexahydro-7H-6,9-epimino[1,4]dioxono[2',3':4,5]benzo[1,2-c]azepin-7-yl)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propanoic acid.

[0333] [ka]

[0334] 1-7 list the analytical spectra corresponding to the above mentioned mass analyses.

[0335] Example 15 Method for Analyzing OAD2 or Its Pharmaceutically Acceptable Salt or Related Substance High Performance Liquid Chromatography (HPLC) (for Examples 1-17): Chromatographic conditions and system suitability test: packing material was amide hexadecyl silica gel (Supelco Ascentis Express RP-Amide, 3.0 mm×150 mm, 2.7 μm), mobile phase A was 0.05% trifluoroacetic acid in water (V / V), mobile phase B was 0.05% trifluoroacetic acid in acetonitrile-0.05% trifluoroacetic acid in methanol (1:2, V / V), flow rate was 0.5 ml / min, column temperature was 50° C., detection wavelength was 280 nm, sample injection tray temperature was 5° C., and theoretical plate number was 5000 or more calculated according to the peak of OAD2 or pharma-ceutically acceptable salt. The gradient of the mobile phase is shown in Table 15.

[0336] [Table 18]

[0337] Measurement method: An appropriate amount of OAD2 or its pharma- ceutically acceptable salt or related substance was placed in a 250 ml measuring flask. An appropriate amount of diluent (0.05% trifluoroacetic acid acetonitrile solution: 0.05% trifluoroacetic acid aqueous solution = 60:40 (V / V)) was added, and the mixture was sonicated for 30 minutes to dissolve OAD2 or its pharma-ceutically acceptable salt or related substance. The solution was cooled, diluted to the scale line with diluent, shaken well, and filtered. 2 ml of the subsequent filtrate was accurately weighed, placed in a 20 ml measuring flask, diluted to the scale line by adding diluent, and shaken well to be used as the test article solution. 5 μl of the test article solution was accurately weighed and injected into the liquid chromatograph, and the chromatogram was recorded. Separately, an appropriate amount of standard substance of OAD2 or a pharma- ceutically acceptable salt was accurately weighed, and a diluent was added to dissolve and dilute it to a certain amount, thereby preparing a solution in which the amount of OAD2 or a pharma- ceutically acceptable salt was equal to that of the test solution (active ingredient C 50 H 47 (Calculated with Cl2N3O6.) Both were measured by the same method, and the peak areas were calculated according to the external standard method.

[0338] Example 16 Stability Study of Compositions of OAD2 or Pharmaceutically Acceptable Salts Thereof (Priority Validation)

[0339] Through the screening of pharmaceutical compositions of each component formulation in Examples 1 to 11, the stability experiment in Example 12, and the screening of total impurity content and impurity B content, it is further determined that the preferred compositions are Examples 4 and 5. In addition, the researchers measured the status of related substances in the formulation of the compositions in Examples 4 and 5.

[0340] Each pharmaceutical formulation was prepared according to the mixing ratio and preparation method corresponding to Example 4 and Example 5, respectively. The formulations were placed under different storage conditions, and the content of impurity B and the total content of impurities in the formulations were detected according to the plan. The specific stability experiment results of Example 4 are shown in Tables 16.1 and 16.2. The specific stability experiment results of Example 5 are shown in Tables 16.3 and 16.4.

[0341] [Table 19-1]

[0342] [Table 19-2]

[0343] [Table 19-3]

[0344] [Table 19-4]

[0345] [Table 19-5]

[0346] As can be seen from Tables 16.1 to 16.4, the compositions corresponding to the preferred Examples 4 and 5 have good compounding stability and can be stably stored at room temperature. Impurity B is the only impurity whose content increases with time. After optimizing the solubilizer and disintegrant in the formulation, its growth rate is well controlled, and as a result, the total impurity content is also well controlled.

[0347] Example 17 Method for preparing impurity B 22 g of free OAD2 and 350 ml of dichloromethane were charged into a 500 ml reaction bottle, and the mixture was stirred to dissolve. 100 ml of water was added, and the system became cloudy. 7 g of TEMPO was added. After stirring for 15 minutes, 20 g of iodobenzene diacetic acid was added in several portions, and the reaction was allowed to react at 20 °C for 2 hours until completion. The reaction solution was washed successively with 15% aqueous sodium thiosulfate, saturated aqueous sodium bicarbonate, and saturated aqueous sodium chloride. The reaction solution was dried over anhydrous sodium sulfate for 15 minutes, filtered to remove the drying agent, and concentrated under reduced pressure to obtain crude impurity B.

[0348] The crude product was purified by column chromatography, slurried in ethyl acetate / petroleum ether mixture for 2 hours, filtered and oven dried to give 8 g of an off-white solid.

[0349] Example 18 Forced decomposition test No.2 Sample preparation for test groups 1 to 6 A stock solution was prepared by dissolving 12.90 mg of OAD2 2HCl in acetonitrile:water (70:30) to a final volume of 25 mL (0.442 mg / mL). For test groups 1 and 2, test solutions were prepared by mixing 2 mL of the stock solution with 2 mL of water. For test groups 3 and 4, test solutions were prepared by mixing 2 mL of the stock solution with 2 mL of 0.1 N HCl solution. For test groups 5 and 6, test solutions were prepared by mixing 2 mL of the stock solution with 2 mL of 0.1 N NaOH solution. Test groups 1, 3, and 5 (room temperature) were wrapped in aluminum foil to protect from light.

[0350] Sample preparation for test groups 7 and 8 A stock solution was prepared by dissolving 5.37 mg of OAD2 2HCl in acetonitrile:water (40:60) to a final volume of 10 mL (0.46 mg / mL). For test group 7, a test solution was prepared by mixing 2 mL of the stock solution with 2 mL of 3% H2O2 aqueous solution. For test group 8, a test solution was prepared by dissolving 5.58 mg to 5.64 mg of OAD2 2HCl in acetonitrile:water (40:60) to a final volume of 25 mL.

[0351] The samples of each test group were stored at room temperature or at 60°C and observed after the periods shown in the table below.

[0352] [Table 20]

[0353] None of these forced degradation studies showed significant impurity growth or loss of active ingredient by HPLC analysis, except for Test Group 7, which showed significant impurity growth after 90 minutes along with a 10% loss of the associated active ingredient. Additionally, the largest impurity had a relative retention time consistent with impurity B by HPLC analysis.

[0354] HPLC conditions (for Examples 18 to 24) Analysis (anhydrous basis) The assay (content of active ingredient) was determined by applying a validated reversed-phase liquid chromatography gradient method. The column used was a Supelco Ascentis Express RP-Amide, 150 x 3.0 mm, 2.7μ or equivalent column. Mobile phase A contained 0.05% TFA (v / v) in water. Mobile phase B contained 0.05% TFA (v / v) in acetonitrile:methanol (1:2). Samples were run using a step gradient from time zero (50% mobile phase A) to 38 min (99% mobile phase B). The diluent used for dissolving standards and samples was a 60:40 mixture of acetonitrile and water. Chromatographic peaks were detected at 280 nm using a UV detector. The assay value was obtained by comparing the peak response, represented by the peak area of ​​a sample formulation of known concentration, and the peak area obtained from a standard formulation of known concentration. Impurities were quantified using the assay procedure described above, which utilizes an area normalization technique to determine the percent level of each impurity.

[0355] Example 19 Preparation of Comparative Formulation 1 ("Formulation CF1") The following procedure was used to prepare tablets having 75 mg of active ingredient. The amounts of the individual ingredients are shown in Table 19.2 below. Step 1. Polysorbate 80, Vitamin E TPGS, Poloxamer 188, and Copovidone were dissolved in a certain amount of water using an overhead stirrer until dissolved. The amount of water may be equal to between 50-100% by weight (of the combined weight of Polysorbate 80 / Vitamin E TPGS / Poloxamer 188 / Copovidone). The rate of dissolution was increased by warming the water to 50°C. Step 2. OAD2 dihydrochloride was added to the above Polysorbate 80 / Vitamin E TPGS / Poloxamer 188 / Copovidone solution and mixed until dissolved. Step 3. Microcrystalline cellulose, pregelatinized starch, and crospovidone were passed through screen #20 and loaded into a fluid bed dryer and mixed. Step 4. The solution from step 2 was sprayed onto the mixture from step 3 to form spray granules. Step 5. The spray granules were milled and passed through a #40 screen. Step 6. Determined the potency of OAD2 dihydrochloride in the spray granular material and adjusted all extragranular material to obtain the required potency of 75 mg per tablet. Step 7. Colloidal silicon dioxide, microcrystalline cellulose, crospovidone, and citric acid were passed through a #30 screen in a separate polyethylene bag. Step 8. The screened granules and screened excipients of step 6 were charged into a V-shell blender and mixed for 15-20 minutes. Step 9. Equal amounts of the mixture were charged into the screened Magnesium Stearate in a polyethylene bag and mixed for a few minutes. Step 10. The screened magnesium stearate was charged into a V-shell blender and mixed for a few minutes. Step 11. The powder was taken and compressed into tablets having 75 mg of OAD2 dihydrochloride and a total tablet weight of approximately 620-640 mg. Step 12. After compression, the tablets were coated with Opadry II white 85F18422 to a weight gain of 3%.

[0356] [Table 21-1]

[0357] The manufacturer's Certificate of Analysis for the lot of crospovidone used in formulation CF1 indicated that the peroxide level, expressed as H2O2, was 58 ppm when measured by the process described in Ph.Eur. "Crospovidone" Type A 8th Edition, USP37 / NF32, Japanese Pharmacopoeia 16th Edition Supplement 1. An independent analysis was performed on this batch of crospovidone using the NF 33 monograph method and prior to use in the CF1 formulation, the assay for H2O2 showed an absorbance of 0.13 for the appropriate compensation liquid, where an absorbance of 0.35 corresponds to 400 ppm of H2O2. The absorbance of 0.13 converts to approximately 148 ppm of H2O2 for Ph.Eur. Type A.

[0358] [Table 21-2]

[0359] Example 20 Stability study of formulation CF1 Tablets of three separate batches of Formulation CF1 (Batch 1, Batch 2, and Batch 3) were packaged in PVC / aluminum foil blisters according to ICH requirements, and tablets of Formulation CF1 were placed in a stability program at 5° C., 25° C. / 60% relative humidity (RH), and 40° C. / 75% RH.

[0360] The growth of impurity B over time in batch 1, batch 2, and batch 3, respectively, under various storage conditions is shown in Table 20.1, Table 20.2, and Table 20.3.

[0361] Tables 20.1-A, 20.2-A, and 20.3-A show a complete list of impurities in each batch after 3 months under various storage conditions whose retention times are proportional to the retention time of OAD2 dihydrochloride, with impurity B highlighted in bold. The relative retention times of impurity B at time zero (initial) in Tables 20.1-A, 20.2-A, and 20.3-A range from 0.56 to 0.60. The assay used the high performance liquid chromatography method described herein.

[0362] The symbol "-" in the table indicates time points where data were not collected.

[0363] [Table 22-1]

[0364] [Table 22-2]

[0365] [Table 22-3]

[0366] [Table 23-1]

[0367] [Table 23-2]

[0368] [Table 23-3]

[0369] Example 21 Preparation of Comparative Formulation 2 ("Formulation CF2") The following process was used to prepare tablets containing 100 mg of active ingredient: Process for preparing tablets containing 100 mg of active ingredient. The amounts of the individual ingredients are shown in Table 21.2 below. Step 1. Polysorbate 80, Vitamin E TPGS, and Copovidone were dissolved in a certain amount of water using an overhead stirrer until dissolved. The dissolution rate was increased by warming the water to 50°C. Step 2. OAD2 dihydrochloride was added to the above Polysorbate 80 / Vitamin E TPGS / Copovidone solution and mixed until dissolved. Step 3. Microcrystalline cellulose, pregelatinized starch, and crospovidone were passed through screen #30 and loaded into a fluid bed dryer and mixed. Step 4. The solution from step 2 was sprayed onto the mixture from step 3 to form spray granules. Step 5. The spray granules were milled and passed through a #40 screen. Step 6. Determined the potency of OAD2 dihydrochloride in the spray granular material and adjusted all extragranular material to obtain the required potency of 100 mg per tablet. Step 7. Colloidal silicon dioxide, microcrystalline cellulose, crospovidone, poloxamer 188, and citric acid were passed through a #30 screen in a separate polyethylene bag. Step 8. The screened granules and screened excipients of step 6 were charged into a V-shell blender and mixed for 15-20 minutes. Step 9. Equal amounts of the mixture were charged into the screened Magnesium Stearate in a polyethylene bag and mixed for a few minutes. Step 10. The screened magnesium stearate was charged into a V-shell blender and mixed for a few minutes. Step 11. The powder was taken and compressed into tablets having 100 mg of OAD2 dihydrochloride and a total tablet weight of approximately 820-840 mg.

[0370] [Table 24-1]

[0371] The manufacturer's Certificate of Analysis for the lot of crospovidone used in formulation CF2 indicated that the peroxide level, expressed as H2O2, was 50 mg / kg (or ppm) as measured by the process described in Ph.Eur. "Crospovidone", 6th Edition, Supplement 6.3 (Type A) USP32 / NF37, JPE 2004. Prior to use in formulation CF2, an independent analysis of the same batch of crospovidone was performed using the method in the European Pharmacopoeia (Type A) as of 2013 and found the amount of H2O2 to be 400 ppm or less.

[0372] [Table 24-2]

[0373] Example 22 Stability study of formulation CF2 A batch of tablets of formulation CF2 was placed on a stability program under the conditions and time points shown in Table 22.1. The tablets were packaged in 75 cc high density polyethylene bottles with rayon coils and desiccant and capped.

[0374] Tables 22.1-A and 22.1-B show a complete list of impurities in batches of formulation CF2 after 3, 12, and 24 months under various storage conditions where the retention time is proportional to the retention time of OAD2 dihydrochloride, with impurity B highlighted in bold. In Tables 22.1-A and 22.2-B, the relative retention time at time zero (initial) for impurity B is 0.56. The assay used the high performance liquid chromatography method described herein.

[0375] The symbol "-" in the table indicates time points where no data were collected (ND).

[0376] [Table 25-1]

[0377] [Table 25-2]

[0378] [Table 25-3]

[0379] [Table 25-4]

[0380] Example 23 Preparation of Low Peroxide Formulations ("LPO Formulations") The following process was used to prepare tablets containing 75 mg or 150 mg of active ingredient. The amounts of the individual ingredients are shown in Table 23.1 below. The most notable difference between formulation LPO and formulations CF1 and CF2 is the grade of crospovidone used. Formulation LPO uses a grade of crospovidone (Polyplasdone™ Ultra from Ashland Chemical) that, according to its product specifications, has a maximum of 30 ppm of peroxide (H2O2), while formulation LPO can have a H2O2 level as low as 9.2 ppm (see Pharmaceutical Technology Report (PTR-097), Ashland Specialty Ingredients “Utility of Polyplasdone™ crospovidone as a Superdisintegrant” pp.1-5 (2014)). As described in Example 19 above, the H2O2 level of the crospovidone used in formulation CF1 is 148 ppm. As described above in Example 21, the H2O2 level of the crospovidone used in formulation CF2 is at least 50 ppm and no more than 400 ppm. Step 1. Polysorbate 80, Vitamin E TPGS, Poloxamer 188, and Copovidone were dissolved in a volume of water using an overhead stirrer until dissolved, and in some cases warmed to 50° C. to increase the rate of dissolution. Step 2. OAD2 dihydrochloride was added to the above Polysorbate 80 / Vitamin E TPGS / Poloxamer 188 / Copovidone solution and mixed until dissolved. Step 3. Microcrystalline cellulose and pregelatinized starch were passed through screen #30 and loaded into a fluid bed dryer and mixed. Step 4. The solution from step 2 was sprayed onto the mixture from step 3 to form spray granules. Step 5. The spray granules were screened through a #40 screen. Step 6. Determined the potency of OAD2 dihydrochloride in the spray granule material and adjusted all extragranular material to obtain the required potency for each tablet. Step 7. Colloidal silicon dioxide, microcrystalline cellulose, Polyplasdone Ultra, and citric acid were passed through a #30 screen in a separate polyethylene bag. Step 8. The screened granules and screened excipients of step 6 were charged into a V-shell blender and mixed for 15-20 minutes. Step 9. Equal amounts of the mixture were charged into the screened Magnesium Stearate in a polyethylene bag and mixed for a few minutes. Step 10. The screened magnesium stearate was charged into a V-shell blender and mixed for a few minutes. Step 11. The powder was removed and compressed into tablets with the following specifications: Total weight: 500 mg, OAD2 dihydrochloride 150 mg, Total weight: 250 mg plus OAD2 dihydrochloride 75 mg. Step 12. After compression, the tablets were coated with Opadry II.

[0381] [Table 26-1]

[0382] [Table 26-2]

[0383] Example 24 Stability studies of formulations CF2 and LPO Tablets of a batch of formulation CF2 and a batch of formulation LPO were placed in an open dish under forced degradation conditions at 55-60°C to study the growth of impurities including impurity B.

[0384] Tables 24.1 and 24.2 summarize these conditions and the growth of impurity B at the indicated time points. Tables 24.1-A and 24.2-A provide a complete list of impurities in each batch at the indicated time points under these storage conditions whose retention times are proportional to the retention time of OAD2 dihydrochloride, with impurity B highlighted in bold. The relative retention times of impurity B at time zero (initial) in Tables 24.1-A and 24.2-A are 0.47 or 0.59. The assay used the high performance liquid chromatography method described herein.

[0385] The symbol "-" in the table indicates time points where no data were collected (ND).

[0386] [Table 27-1]

[0387] [Table 27-2]

[0388] [Table 27-3]

[0389] [Table 27-4]

[0390] The above examples are only used to understand the method and core concept of the present invention, and do not limit the scope of the present invention. Any modifications or alternatives that can be implemented by those skilled in the art without departing from the concept of the present invention are within the protection scope of the present invention.

Claims

1. A compound produced by a process comprising the step of oxidizing (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid (OAD2) or a pharmaceutically acceptable salt thereof, The compound obtained has a molecular weight of 854.

2. The compound is characterized in that the retention time relative to OAD2 is between 0.45 and 0.66 under gradient mobile phase conditions of reversed-phase liquid chromatography; Mobile phase A contained 0.05% TFA (v / v) in water, and mobile phase B contained 0.05% TFA (v / v) in acetonitrile:methanol (1:2); 10. The compound of claim 1, wherein the sample is run using a step gradient from time zero (50% mobile phase A) to 38 minutes (99% mobile phase B).

3. (i) (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid (OAD2) or a pharmaceutically acceptable salt thereof; (ii) a compound of claim 1 or a pharmaceutically acceptable salt thereof; (iii) one or more pharmaceutically acceptable excipients; and A composition comprising: A composition wherein the amount of (ii) present in the composition is greater than 0 wt.% and less than 2.5 wt.%.

4. (i) (S)-2-(3S,8S)-3-(4-(3,4-dichlorobenzyloxy)phenyl-7-((S)-1-phenylpropyl)-2,3,6,7,8,9-hexahydro-[1,4]-dioxino[2,3-g]isoquinolin-8-ylformylamino)-3-(4-(2,3-dimethylpyridin-4-yl)phenyl)propionic acid (OAD2) or a pharmaceutically acceptable salt thereof; (ii) a disintegrant having an HPO value of less than 50 ppm; A composition comprising:

5. 10% by weight to 40% by weight of OAD2 dihydrochloride; 0.1% to 20% by weight of a disintegrant; The composition of claim 4 comprising:

6. The composition described in claim 5, wherein the disintegrant is crospovidone and is present in the range of 0.2% to 10% by weight.

7. The compound of claim 1, or a pharmaceutically acceptable salt thereof, 5. The composition of claim 4, wherein the amount of the compound or its pharmaceutically acceptable salt is greater than 0% and less than 1.0% by weight.

8. The composition described in claim 7, which contains 0.4 wt% or less of the compound described in claim 1 or a pharmaceutically acceptable salt thereof after storage at 25°C ± 2°C / 60% RH ± 5% RH for 24 months.

9. 10% by weight to 40% by weight of OAD2 dihydrochloride; 1% to 5% by weight of a disintegrant comprising crospovidone; 0.1% to 20% by weight of a binder; 10% to 85% by weight of a filler; 0.25% to 15% by weight of a surfactant; 0.1% to 10% by weight of a lubricant; 0.1% to 10% by weight of a lubricant; 1% to about 50% by weight of an acidifying agent; Including, 10. The compound of claim 1, or a pharmaceutically acceptable salt thereof, 5. The composition of claim 4, wherein the amount of the compound of claim 1 or a pharmaceutically acceptable salt thereof is greater than 0% and less than or equal to 0.4% by weight after storage at 25°C ± 2°C / 60% RH ± 5% RH for 24 months.

10. The composition of any one of claims 3 to 9, in the form of a tablet or capsule.

11. A composition described in any one of claims 3 to 9, comprising between 1 and 500 mg of OAD2 or a pharmaceutically acceptable salt thereof.

12. A method for preparing the composition of any one of claims 3 to 9, comprising: A method comprising the step of mixing OAD2 or a pharmaceutically acceptable salt thereof with one or more pharmaceutically acceptable excipients.

13. The method of claim 12, wherein the method is a spray granulation process.

14. A pharmaceutical composition for use in treating a disease, comprising the composition according to any one of claims 3 to 9, The pharmaceutical composition, wherein the disease is selected from the group consisting of metabolic syndrome, impaired glucose tolerance, hyperglycemia, dyslipidemia, type I diabetes, type II diabetes, hypertriglyceridemia, syndrome X, insulin resistance, impaired glucose tolerance (IGT), obesity, diabetic dyslipidemia, hyperlipidemia, arteriosclerosis, atherosclerosis, other cardiovascular diseases, hypertension, neuropathy, retinopathy, nephropathy, and wound healing disorders.

15. The pharmaceutical composition described in claim 14, wherein the disease is metabolic syndrome or obesity.