Imidazo ring compounds and their uses
Novel imidazo ring compounds offer an oral GLP-1R agonist solution for Type 2 diabetes mellitus, enhancing insulin secretion and weight loss with reduced toxicity and improved patient compliance, addressing the limitations of current GLP-1R agonists.
Patent Information
- Application Number
- JP2024510709
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2021-09-30
- Filing Date
- 2022-08-24
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2042-08-24
AI Technical Summary
Current GLP-1R agonists for Type 2 diabetes mellitus require subcutaneous or intravenous administration, leading to increased infection risk, reduced patient compliance, and high costs, while the only oral option, semaglutide, has strict dosing conditions and is expensive, limiting their widespread clinical use.
Development of novel imidazo ring compounds and their pharmaceutically acceptable salts, which can be administered orally, acting as GLP-1R agonists to enhance insulin secretion, reduce weight, and protect cardiovascular function without the drawbacks of existing drugs.
The imidazo ring compounds provide an efficient, less toxic, and more patient-friendly treatment option for Type 2 diabetes mellitus, offering improved compliance and reduced side effects compared to existing GLP-1R agonists.
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Abstract
Description
[Technical Field]
[0001] This invention claims priority to: CN202110976089.5, filed on August 24, 2021; CN202111154964.8, filed on September 29, 2021; CN202111162621.6, application date is September 30, 2021.
[0002] The present invention relates to a series of imidazo ring compounds and uses thereof, and more particularly to compounds represented by formula (P) and pharmaceutically acceptable salts thereof: [Background technology]
[0003] Type 2 diabetes mellitus (T2DM) is one of the most common chronic metabolic diseases. It frequently occurs in middle-aged and elderly people and obese individuals, severely impacting patients' physical and mental health and quality of life. The primary etiology of T2DM is pancreatic beta-cell dysfunction, insulin resistance, and impaired glucagon secretion. While common hypoglycemic drugs (e.g., insulin, sulfonylureas, and thiazolidinediones) primarily work by improving pancreatic beta-cell secretory function or insulin resistance, they often cause side effects such as hypoglycemia, which in turn adversely affect cardiovascular function. Recent diabetes-related clinical research guidelines have indicated that clinical treatment of T2DM requires not only carbohydrate restriction but also weight loss and cardiovascular benefits. Therefore, there is an urgent need to develop drugs with novel mechanisms of action for the treatment of T2DM.
[0004] Glucagon-like peptide-1 (GLP-1) is a 30-amino acid polypeptide hormone secreted by intestinal L cells after a meal. After binding to the GLP-1 receptor (GLP-1R), GLP-1 upregulates downstream cAMP and MAPK signaling pathways, enhancing glucose-stimulated insulin secretion (GSIS), promoting insulin secretion from pancreatic islet β cells, reducing the risk of hypoglycemia, promoting β cell proliferation, inhibiting β cell apoptosis, inhibiting glucagon secretion from pancreatic islet α cells, protecting cardiovascular function, delaying gastric emptying, reducing food intake, and promoting weight loss. Therefore, the development of GLP-1-based drugs for T2DM, including GLP-1 analogs, GLP-1R agonists, and DPP-4 inhibitors, is a novel strategy. Summary of the Invention [Problem to be solved by the invention]
[0005] GLP-1R agonists currently available in China include liraglutide and exenatide, which are essentially GLP-1 analogs and have significant effects on promoting insulin secretion by pancreatic islet beta cells, protecting their function, and reducing patient weight. However, these drugs must be administered subcutaneously or intravenously, which increases the risk of infection, reduces patient compliance, and increases costs, making their widespread clinical use difficult. The only oral GLP-1R agonist, semaglutide, has strict dosing conditions, strict storage requirements, and is expensive. Therefore, the development of more efficient, less toxic small molecule oral GLP-1R agonists has better prospects for use. [Means for solving the problem]
[0006] The present invention provides a compound represented by formula (P) or a pharmaceutically acceptable salt thereof: [ka] however, [ka] is selected from a single bond and a double bond, and when T2 is selected from N, [ka] is selected from a single bond, T1 and T2 are selected from N and CR9; X and Y are each independently selected from CH, O-CH, NH, O, and C(=O); X1 and X2 are each independently selected from CH, N, O, and S, wherein said CH is optionally substituted by one of F, Cl, Br, and CH3; Ring B is selected from 5- to 6-membered heteroaryl, wherein the 5- to 6-membered heteroaryl is optionally substituted by 1, 2, or 3 R1; Alternatively, Ring B is selected from phenyl, said phenyl optionally substituted with 1, 2 or 3 R1, wherein X and Y are not simultaneously selected from O; R1 is selected from F, Cl, Br, I, OH, NH2, CN, CH3 and OCH3; R2 is [ka] and [ka] optionally 1, 2 or 3 R a is replaced by Y1 and Y2 are each independently selected from CH2, NH and O; o and p are each independently selected from 0, 1, 2, and 3; R3 is -C(=O)-NH-R b, -C(=O)-R b , -C(=O)-NH-S(=O)2-R b , -S(=O)2-NH-R b , -S(=O)2-R b , -P(=O)(R b )2, C 1-3 Alkyl, tetrazole, isoxazole, [ka]
[0007] wherein C is selected from 1-3 Alkyl, tetrazole, isoxazole, [ka] optionally 1, 2 or 3 R b is replaced by R4 is D, F, Cl, Br, I and C 1-3 alkyl, wherein C 1-3 alkyl is optionally substituted by 1, 2 or 3 R; R5 is selected from H, D and CH3, wherein said CH3 is optionally substituted by 1, 2 or 3 R; R6, R7, R8 and R9 are each independently H, D and C 1-3 alkyl, wherein C 1-3 alkyl is optionally substituted by 1, 2 or 3 R; n is selected from 0, 1 and 2; Each R a are each independently selected from F, Cl, Br, and I; Each R b are independently OH, CN, and C 1-3 Alkyl, C 1-3 Alkoxy, C 1-3 alkylamino and oxazolyl, 1-3 Alkyl, C 1-3 Alkoxy and oxazolyl are optionally substituted by 1, 2 or 3 R; Each R is independently selected from D, F, Cl, Br, and I.
[0008] In some embodiments of the present invention, the R b are each independently selected from OH, CN, CH3, CF3, and OCH3, and all other variables are as defined herein.
[0009] In some embodiments of the present invention, R2 is [ka] and [ka] optionally 1, 2 or 3 R a and the other variables are as defined in the present invention.
[0010] In some embodiments of the present invention, R2 is [ka] and the other variables are as defined in the present invention.
[0011] In some embodiments of the present invention, R2 is [ka] and the other variables are as defined in the present invention.
[0012] In some embodiments of the present invention, R3 is selected from -COOH, -C(=O)-NH-CN, -C(=O)-NH-OH, -C(=O)-NH-OCH3, -C(=O)-CF3, -S(=O)2-NH-CH3, and -S(=O)2-OH, and all other variables are as defined herein.
[0013] In some embodiments of the present invention, R3 is selected from -COOH, and other variables are as defined herein.
[0014] In some embodiments of the present invention, R4 is selected from F and CH3, and other variables are as defined herein.
[0015] In some embodiments of the present invention, R5 is selected from H, D, CH3, CF3, CHF2, CHD2, and CD3, and all other variables are as defined herein.
[0016] In some embodiments of the present invention, R5 is selected from CH3, and other variables are as defined herein.
[0017] In some embodiments of the present invention, R6, R7, R8, and R9 are each independently selected from H, D, and CH3, wherein CH3 is optionally substituted with 1, 2, or 3 R, and all other variables are as defined herein.
[0018] In some embodiments of the present invention, R6 is selected from H, D, and CH3, and all other variables are as defined herein.
[0019] In some embodiments of the present invention, R7 is selected from H, D, and CH3, and all other variables are as defined herein.
[0020] In some embodiments of the present invention, R8 is selected from H, D, and CH3, and all other variables are as defined herein.
[0021] In some embodiments of the present invention, R9 is selected from H, D, and CH3, and all other variables are as defined herein.
[0022] In some embodiments of the present invention, ring B is selected from a 6-membered heteroaryl, which is optionally substituted with 1, 2, or 3 R1, and other variables are as defined herein.
[0023] In some embodiments of the present invention, Ring B is selected from pyridyl, pyrimidinyl, pyrazinyl, pyridazinyl, pyrazolyl, imidazolyl, thiazolyl, and oxazolyl, wherein said pyridyl, pyrimidinyl, pyrazinyl, pyridazinyl, pyrazolyl, imidazolyl, thiazolyl, and oxazolyl are optionally substituted by 1, 2, or 3 R1, and other variables are as defined herein.
[0024] In some embodiments of the present invention, Ring B is selected from pyridyl, which is optionally substituted with 1, 2, or 3 R1, and other variables are as defined herein.
[0025] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0026] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0027] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0028] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0029] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0030] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0031] In some embodiments of the invention, Ring B is [ka] and the other variables are as defined in the present invention.
[0032] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0033] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0034] In some embodiments of the invention, the ring B is selected from phenyl, said phenyl optionally substituted with 1, 2 or 3 R1, and the structural unit [ka] teeth, [ka]
[0035] and the other variables are as defined in the present invention.
[0036] In some embodiments of the invention, Ring B is [ka] and structural units are selected from [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0037] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0038] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0039] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0040] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0041] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0042] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0043] In some embodiments of the present invention, the structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0044] In some embodiments of the present invention, the compound or a pharmaceutically acceptable salt thereof is selected from: [ka] however, [ka] is selected from a single bond and a double bond, and when T2 is selected from N, [ka] is selected from a single bond, X1, T2 and ring B are as defined in the present invention.
[0045] In some embodiments of the present invention, the compound or a pharmaceutically acceptable salt thereof is selected from: [ka] however, [ka] is selected from a single bond and a double bond, and when T2 is selected from N, [ka] is selected from a single bond, X1, T2 and ring B are as defined in the present invention.
[0046] The present invention also provides a compound represented by formula (I) or a pharmaceutically acceptable salt thereof. [ka] however, [ka] is selected from a single bond and a double bond, and when T2 is selected from N, [ka] is selected from a single bond, T1 and T2 are selected from N and CH; X and Y are each independently selected from CH, O-CH, NH, O, and C(=O); X1 and X2 are each independently selected from CH, N, O, and S, wherein said CH is optionally substituted by one of F, Cl, Br, and CH3; Ring B is selected from 5-6 membered heteroaryl, wherein the 5-6 membered heteroaryl is optionally substituted by 1, 2 or 3 R1; Alternatively, Ring B is selected from phenyl, said phenyl optionally substituted with 1, 2 or 3 R1, wherein X and Y are not simultaneously selected from O; R1 is selected from F, Cl, Br, I, OH, NH2, CN, CH3 and OCH3; R2 is [ka] and [ka] optionally 1, 2 or 3 R a is replaced by Y1 and Y2 are each independently selected from CH2, NH and O; o and p are each independently selected from 0, 1, 2, and 3; R3 is -C(=O)-NH-R b , -C(=O)-R b , -C(=O)-NH-S(=O)2-R b , -S(=O)2-NH-R b , -S(=O)2-R b , -P(=O)(R b )2, C 1-3 Alkyl, tetrazole, isoxazole, [ka] wherein C is selected from 1-3 Alkyl, tetrazole, isoxazole, [ka] optionally 1, 2 or 3 R b is replaced by R4 is F, Cl, Br, I and C 1-3alkyl, R5 is selected from H and CH3; n is selected from 0, 1 and 2; Each R a are each independently selected from F, Cl, Br, and I; Each R b are independently OH, CN, and C 1-3 Alkyl, C 1-3 Alkoxy, C 1-3 alkylamino and oxazolyl, 1-3 Alkyl, C 1-3 Alkoxy and oxazolyl are optionally substituted by 1, 2 or 3 R; Each R is independently selected from F, Cl, Br, and I.
[0047] The present invention also provides a compound represented by formula (I) or a pharmaceutically acceptable salt thereof. [ka] however, [ka] is selected from a single bond and a double bond, and when T2 is selected from N, [ka] is selected from a single bond, T1 and T2 are selected from N and CH; X and Y are each independently selected from CH, NH, O, and C(=O); X1 and X2 are each independently selected from CH, N, O, and S, wherein said CH is optionally substituted by one of F, Cl, Br, and CH3; Ring B is selected from 5- to 6-membered heteroaryl, wherein the 5- to 6-membered heteroaryl is optionally substituted by 1, 2, or 3 R1; R1 is selected from F, Cl, Br, I, OH, NH2, CN, CH3 and OCH3; R2 is [ka] and [ka] optionally 1, 2 or 3 R a is replaced by Y1 and Y2 are each independently selected from CH2, NH and O; o and p are each independently selected from 0, 1, 2, and 3; R3 is -C(=O)-NH-R b , -C(=O)-R b , -C(=O)-NH-S(=O)2-R b , -S(=O)2-NH-R b , -S(=O)2-R b , -P(=O)(R b )2, C 1-3 Alkyl, tetrazole, isoxazole, [ka] wherein C is selected from 1-3 Alkyl, tetrazole, isoxazole, [ka] optionally 1, 2 or 3 R b is replaced by R4 is F, Cl, Br, I and C 1-3 alkyl, R5 is selected from H and CH3; n is selected from 0, 1 and 2; Each R a are each independently selected from F, Cl, Br, and I; Each R bare independently OH, CN, and C 1-3 Alkyl, C 1-3 Alkoxy, C 1-3 alkylamino and oxazolyl, 1-3 Alkyl, C 1-3 Alkoxy and oxazolyl are optionally substituted by 1, 2 or 3 R; Each R is independently selected from F, Cl, and Br.
[0048] The present invention also provides a compound represented by formula (II) or a pharmaceutically acceptable salt thereof. [ka] however, [ka] is selected from a single bond and a double bond, and when T2 is selected from N, [ka] is selected from a single bond, T1 and T2 are selected from N and CH; X1 and X2 are each independently selected from CH, N, O, and S, wherein said CH is optionally substituted by one of F, Cl, Br, and CH3; Ring B is selected from 5- to 6-membered heteroaryl, wherein the 5- to 6-membered heteroaryl is optionally substituted by 1, 2, or 3 R1; R1 is selected from F, Cl, Br, I, OH, NH2, CN, CH3 and OCH3; R2 is [ka] and [ka] optionally 1, 2 or 3 R a is replaced by Y1 and Y2 are each independently selected from CH2, NH and O; o and p are each independently selected from 0, 1, 2, and 3; R3 is -C(=O)-NH-R b , -C(=O)-R b , -C(=O)-NH-S(=O)2-R b , -S(=O)2-NH-R b , -S(=O)2-R b , -P(=O)(R b )2, C 1-3 Alkyl, tetrazole, isoxazole, [ka] wherein C is selected from 1-3 Alkyl, tetrazole, isoxazole, [ka] optionally 1, 2 or 3 R b is replaced by R4 is F, Cl, Br, I and C 1-3 alkyl, R5 is selected from H and CH3; n is selected from 0, 1 and 2; Each R a are each independently selected from F, Cl, Br, and I; Each R b are independently OH, CN, and C 1-3 Alkyl, C 1-3 Alkoxy, C 1-3 alkylamino and oxazolyl, 1-3 Alkyl, C 1-3 Alkoxy and oxazolyl are optionally substituted by 1, 2 or 3 R; Each R is independently selected from F, Cl, and Br.
[0049] Some embodiments of the present invention are further formed by any combination of the above variables.
[0050] In some embodiments of the present invention, the compound or a pharmaceutically acceptable salt thereof is analyzed by SFC as two independent chromatographic peaks, the SFC analysis method being: Column type: Chiralcel OJ-3, 50 x 4.6 mm ID, 3 μm, Mobile phase A is carbon dioxide, and Mobile phase B is selected from methanol (0.1% isopropylamine), ethanol (0.2% aqueous ammonia), or methanol.
[0051] In some embodiments of the present invention, the ratio of mobile phase B in the above SFC analysis method is 5% to 35%, 5% to 50%, or gradient setting, for example, the content of mobile phase B increases from 5% to 50% within 0.2 minutes, maintains for 2 minutes, and then decreases from 50% to 5% within 2.2 minutes.
[0052] In Example 1 of the present invention, compound 001 has a retention time of 1.422 minutes in SFC analysis (chromatographic column: Chiralcel OJ-3, 50×4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: the content of B increases from 5% to 50% in 0.2 minutes and remains there for 2 minutes, then decreases from 50% to 5% in 2.2 minutes).
[0053] In Example 2 of the present invention, compound 002 has a retention time of 1.264 minutes in SFC analysis (chromatographic column: Chiralcel OJ-3, 50×4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: the content of B increases from 5% to 50% in 0.2 minutes and remains there for 2 minutes, then decreases from 50% to 5% in 2.2 minutes).
[0054] In some examples of the present invention, compounds 002 and 002′ are shown by chiral HPLC analysis (chromatographic column: Chiralpak IG-U, 50×3.0 mm ID, 1.6 μm; mobile phase A: n-hexane, B: ethanol (0.1% trifluoroacetic acid); gradient: mobile phase A:B=85:15), with a retention time of compound 002 of 2.931 minutes and a retention time of compound 002′ of 4.354 minutes.
[0055] In Example 3 of the present invention, compound 003 has a retention time of 1.856 minutes in SFC analysis (chromatographic column: Chiralcel OJ-3, 50×4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: the content of B increases from 5% to 50% in 0.2 minutes and remains there for 2 minutes, then decreases from 50% to 5% in 2.2 minutes).
[0056] In Example 8 of the present invention, the retention time of compound 008 was 1.215 min in SFC analysis (chromatographic column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B phase is methanol (0.1% isopropylamine); gradient (B%): 5% to 50%).
[0057] In Example 9 of the present invention, SFC analysis (chromatographic column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B: MeOH (0.1% isopropanol), gradient (B%): 5% to 50%) was performed, and the retention time of compound 009 was 1.373 min.
[0058] In Example 10 of the present invention, the retention time of compound 010 is 1.264 min. in SFC analysis (chromatographic column: Chiralpak AD-3, 50×4.6 mm ID, 3 μm; mobile phase: A phase is supercritical carbon dioxide, B phase is methanol (0.1% isopropanol); gradient: B% increases from 5% to 50% in 0.2 min and remains for 2 min, then decreases from 50% to 5% in 2.2 min).
[0059] In Example 12 of the present invention, the retention time of compound 012 is 1.142 minutes according to the SFC analysis (chromatographic column: Chiralpak AD-3, 50×4.6 mm ID, 3 μm; mobile phase: A: CO2, B: ethanol (0.1% isopropanol); gradient: the content of B increases from 5% to 50% in 0.2 minutes and maintains for 2 minutes, then decreases from 50% to 5% in 2.2 minutes).
[0060] The present invention also provides a compound represented by the following formula or a pharmaceutically acceptable salt thereof:
[0061] [ka]
[0062] [ka]
[0063] [ka]
[0064] In some embodiments of the present invention, the compound or a pharmaceutically acceptable salt thereof is selected from:
[0065] [ka]
[0066] [ka]
[0067] [ka]
[0068] [ka]
[0069] The present invention also provides the use of the above compound, or a pharmaceutically acceptable salt thereof, in the manufacture of a medicament for treating diabetes.
[0070] [Definitions and Explanations] Unless otherwise specified, the following terms and phrases used herein are intended to have the following meanings. A particular term or phrase, unless specifically defined, should be understood to have its ordinary definition, rather than being indefinite or unclear. When a trade name appears herein, it refers to the corresponding product or its active ingredient.
[0071] As used herein, "pharmaceutically acceptable" refers to those compounds, materials, compositions and / or dosage forms which, within the scope of sound medical judgment, are suitable for contact with the tissues of human beings and animals and are consistent with a reasonable benefit / risk ratio without appreciable toxicity, irritation, allergic response or other problem or complication.
[0072] The term "pharmaceutically acceptable salt" refers to a salt of a compound of the present invention, which is prepared with a relatively non-toxic acid or base, when the compound has certain substituents found in the present invention. When the compound of the present invention contains a relatively acidic functional group, a base addition salt can be obtained by contacting the compound with a sufficient amount of base in a suitable inert solvent, or by solution alone. When the compound of the present invention contains a relatively basic functional group, an acid addition salt can be obtained by contacting the compound with a sufficient amount of acid in a suitable inert solvent, or by solution alone. Some specific compounds of the present invention contain basic and acidic functional groups, and therefore can be converted into any base addition salt or acid addition salt.
[0073] The pharmaceutically acceptable salts of the present invention can be synthesized from the parent compound containing an acidic or basic group in a conventional manner. Typically, such salts are prepared by reacting the compound in its free acid or base form with a stoichiometric amount of the appropriate base or acid in water or an organic solvent, or a mixture of both.
[0074] The compounds of the present invention may exist in particular geometric or stereoisomeric forms. The present invention contemplates all such compounds, including cis and trans isomers, (-)- and (+)-enantiomers, (R)- and (S)-enantiomers, diastereomers, (D)-isomers, (L)-isomers, and racemic and other mixtures thereof, such as mixtures enriched in enantiomers or non-enantiomers, and all such mixtures are within the scope of the present invention. Other asymmetric carbon atoms may be present in substituents such as alkyl. All such isomers and mixtures thereof are within the scope of the present invention.
[0075] Unless otherwise specified, the terms "enantiomers" or "optical isomers" are stereoisomers that are mirror images of each other.
[0076] Unless otherwise stated, the terms "cis-trans isomers" or "geometric isomers" refer to the inability to freely rotate about double bonds or single bonds of ring carbon atoms.
[0077] Unless otherwise specified, the term "diastereomer" refers to stereoisomers whose molecules have two or more centers of chirality and whose molecules are not mirror-images of each other.
[0078] Unless otherwise stated, "(+)" means dextrorotatory, "(-)" means levorotatory, and "(±)" means racemic.
[0079] [ka]
[0080] Unless otherwise defined, when a compound has a double bond structure, such as a carbon-carbon double bond, a carbon-nitrogen double bond, and a nitrogen-nitrogen double bond, and each atom in the double bond has two different substituents bonded to it (in a double bond containing a nitrogen atom, a pair of lone electron pairs on the nitrogen atom is considered to be one substituent bonded to it), the atoms on the double bond of the compound and their substituents are [ka] When the compound is represented by the formula:
[0081] Unless otherwise specified, the term "tautomer" or "tautomeric form" refers to isomers of different functional groups that are in dynamic equilibrium and can rapidly interconvert at room temperature. Where tautomers are possible (e.g., in solution), chemical equilibrium of tautomers can be achieved. For example, proton tautomers (also called prototropic tautomers) include interconversions via the transfer of a proton, such as keto-enol isomerization and imine-enamine isomerization. Valence tautomers include interconversions via recombination of some bond electrons. A specific example of keto-enol tautomerization is the interconversion between the two tautomers of pentane-2,4-dione and 4-hydroxypent-3-en-2-one.
[0082] Unless otherwise stated, the terms "enriched in one isomer," "enriched in one enantiomer," or "enantiomer-enriched" refer to less than 100% isomer or enantiomer content, and the content of that isomer or enantiomer is 60% or more, or 70% or more, or 80% or more, or 90% or more, or 95% or more, or 96% or more, or 97% or more, or 98% or more, or 99% or more, or 99.5% or more, or 99.6% or more, or 99.7% or more, or 99.8% or more, or 99.9% or more.
[0083] Unless otherwise stated, the terms "isomeric excess" or "enantiomeric excess" refer to the difference between the relative percentages of two isomers or two enantiomers. For example, if one isomer or enantiomer is present at 90% and the other isomer or enantiomer is present at 10%, the isomeric or enantiomeric excess (ee) is 80%.
[0084] Optically active (R)- and (S)-isomers, as well as D- and L-isomers, can be prepared by chiral synthesis or chiral reagents or other conventional techniques. Single enantiomers of certain compounds of the invention can be prepared by asymmetric synthesis or derivatization with a chiral auxiliary, where the resulting diastereomeric mixture is separated and the auxiliary is cleaved to provide the pure desired enantiomer. Alternatively, if the molecule contains a basic (e.g., amino) or acidic (e.g., carboxyl) functional group, the diastereomeric salt can be formed with an appropriate optically active acid or base, followed by separation of the diastereomers by conventional methods known in the art, followed by recovery to provide the pure enantiomers. Separation of enantiomers and diastereomers is also commonly accomplished using chromatography employing chiral stationary phases, optionally in combination with chemical derivatization methods (e.g., carbamate formation from amines).
[0085] The compounds of the present invention may also contain unnatural proportions of atomic isotopes at one or more of the atoms that constitute such compounds. For example, the compounds may contain tritium ( 3 H), iodine-125( 125 I), C-14( 14 The compounds of the present invention can be labeled with a radioactive isotope such as HCl, HCl, or HCl. Alternatively, for example, deuterium can be substituted for hydrogen to form a deuterated drug, where the bond formed between deuterium and carbon is stronger than the bond formed between normal hydrogen and carbon. Compared with non-deuterated drugs, deuterated drugs have the advantages of reduced toxic side effects, increased drug stability, enhanced efficacy, and prolonged biological half-life. Conversion of the isotopic composition of the compounds of the present invention, whether radioactive or not, is included within the scope of the present invention.
[0086] The terms "optional" and "optionally" mean that the following event or circumstance may occur, but does not necessarily occur, and that the description includes the case where the described event or circumstance does not occur, if that event or circumstance occurs.
[0087] The term "substituted" refers to the replacement of any one or more hydrogen atoms at a particular atom with a substituent, and the substituent may include deuterium and hydrogen variants, provided that the particular valence state is correct and the resulting compound is stable. When the substituent is a keto group (i.e., =O), it means that two hydrogen atoms have been replaced. Keto group substitution does not occur in aromatic groups. The term "optionally substituted" refers to the possibility of substitution or non-substitution, and unless otherwise defined, the type and number of substituents are optional as long as they are chemically stable and feasible.
[0088] When any variable (e.g., R) occurs more than once in a compound composition or structure, its definition is independent at each occurrence. So, for example, if a group is substituted with 0 to 2 R, then that group is optionally substituted with up to 2 R, and each occurrence of R is independently optional. Also, combinations of substituents and / or variants thereof are permissible only if such combinations result in stable compounds.
[0089] When the number of linking groups is 0, for example, -(CRR)0- means that the linking group is a single bond.
[0090] If one of the variables is a single bond, the two groups connected by it are directly linked; for example, if L in ALZ represents a single bond, the structure actually becomes AZ.
[0091] When a substituent is empty, it means that the substituent is not present, for example, when X in AX is empty, it means that the structure is actually A. When a recited substituent does not indicate through which atom it is bonded to the substituted group, such substituent can be bonded through any atom thereof, for example, pyridinyl as a substituent may be bonded to the substituted group through any carbon atom of the pyridine ring.
[0092] If the listed linking group does not specify any other linking direction, the linking direction is arbitrary, for example: [ka] In this case, the linking group L is -MW-, and in this case, -MW- is the same as the order in which ring A and ring B are linked together, reading from left to right. [ka] and ring A and ring B are concatenated in the reverse order of reading from left to right. [ka] Combinations of the above linking groups, substituents and / or variants thereof are permissible only if such combinations result in stable compounds.
[0093] Unless otherwise specified, when a group has one or more bondable sites, any one or more sites of the group can be bonded to other groups by chemical bonds. If the bonding mode of the chemical bond is delocalized and there is an H atom at the bondable site, when a chemical bond is formed, the number of H atoms at the site is reduced to the corresponding valence of the group according to the number of bonded chemical bonds. The chemical bond that bonds the site to another group is represented by a straight solid bond ( [ka] ), straight dashed bond ( [ka] ), or wavy line ( [ka] ), where the straight dashed bond ( [ka] ) or wavy line ( [ka] ) is linked to another group via a single, double, or triple bond, reducing one, two, or three H at that site accordingly to form a monovalent, divalent, or trivalent group. For example, the straight solid bond in -OCH3 means that the group is linked to another group via the oxygen atom of the group.
[0094] [ka] A straight dashed bond within a group means that both ends of the nitrogen atom within the group are connected to other groups.
[0095] [ka] The wavy lines in the middle indicate that the phenyl group is linked to other groups via the 1st and 2nd carbon atoms;
[0096] [ka] means that any available bond site on the piperidinyl may be linked to another group by one chemical bond, and at least [ka] It includes four bond forms, and even if the H atom is drawn as -N-, [ka] When a chemical bond is connected, the hydrogen at that site decreases by one to form the corresponding monovalent piperidinyl. [ka] can represent a bond to another group via one and two carbon atoms of the tetrahydrofuran group, for example: [ka] They may be connected via a single bond, for example: [ka] They may also be connected via a double bond.
[0097] Unless otherwise defined, the term "C 1-3 "Alkyl" refers to a saturated hydrocarbon group consisting of 1 to 3 carbon atoms, either straight or branched. 1-3 C for alkyl 1-2 and C 2-3alkyl, which may be monovalent (e.g., methyl), divalent (e.g., methylene), and polyvalent (e.g., methine). 1-3 Illustrative examples of alkyl include, but are not limited to, methyl (Me), ethyl (Et), propyl (including n-propyl and isopropyl), and the like.
[0098] Unless otherwise defined, the term "C 1-3 "Alkoxy" refers to an alkyl group containing 1 to 3 carbon atoms connected to the remainder of the molecule via an oxygen atom. 1-3 Alkoxy is C 1-2 , C 2-3 , C3 and C2 alkoxy, etc. 1-3 Illustrative examples of alkoxy include, but are not limited to, methoxy, ethoxy, propoxy (including n-propoxy or isopropoxy), and the like.
[0099] Unless otherwise defined, the term "C 1-3 "Alkylamino" refers to an alkyl group containing 1 to 3 carbon atoms connected to the remainder of the molecule via an amino group. 1-3 Alkylamino is C 1-2 , C3 and C2 alkylamino, etc. 1-3 Illustrative examples of alkylamino include, but are not limited to, -NHCH3, -N(CH3)2, -NHCH2CH3, -N(CH3)CH2CH3, -NHCH2CH2CH3, -NHCH2(CH3)2, and the like.
[0100] Unless otherwise defined, the terms "5- to 6-membered heteroaryl ring" and "5- to 6-membered heteroaryl" as used herein may be used interchangeably, and the term "5- to 6-membered heteroaryl" refers to a monocyclic group having a conjugated π-electron system composed of 5 to 6 ring atoms, of which 1, 2, 3, and 4 ring atoms are independently selected from O, S, and N heteroatoms, and the remainder are carbon atoms, wherein the nitrogen atom is optionally quaternized, and the nitrogen and sulfur heteroatoms are optionally oxidized (i.e., NO and S(O)). p, p is 1 or 2). The 5- to 6-membered heteroaryl is linked to the rest of the molecule through a heteroatom or a carbon atom. The 5- to 6-membered heteroaryl includes 5- and 6-membered heteroaryls. Illustrative examples of the 5- to 6-membered heteroaryl include pyrrolyl (including N-pyrrolyl, 2-pyrrolyl, and 3-pyrrolyl, etc.), pyrazolyl (including 2-pyrazolyl and 3-pyrazolyl, etc.), imidazolyl (including N-imidazolyl, 2-imidazolyl, 4-imidazolyl, and 5-imidazolyl, etc.), oxazolyl (including 2-oxazolyl, 4-oxazolyl, and 5-oxazolyl, etc.), triazolyl (including 1H-1,2,3-triazolyl, 2H-1,2,3-triazolyl, 1H-1,2,4-triazolyl, and 4H-1,2,4-triazolyl, etc.), and the like. thiazolyl (including 2-thiazolyl, 4-thiazolyl, and 5-thiazolyl), tetrazolyl, isoxazolyl (including 3-isoxazolyl, 4-isoxazolyl, and 5-isoxazolyl), thiazolyl (including 2-thiazolyl, 4-thiazolyl, and 5-thiazolyl, etc.), furanyl (including 2-furanyl and 3-furanyl, etc.), thienyl (including 2-thienyl and 3-thienyl, etc.), pyridyl (including 2-pyridyl, 3-pyridyl, and 4-pyridyl, etc.), pyrazinyl, or pyrimidinyl (including 2-pyrimidinyl and 4-pyrimidinyl, etc.).
[0101] Unless otherwise defined, the term "aromatic ring" refers to a cyclic group having a conjugated π-electron system surrounded by a cloud of delocalized π-electrons between its atoms. In structural formulas, alternating single and double bonds may be drawn, provided that the rules of valence and covalent bonding are obeyed. [ka] For example, the structural formula [ka] The structures represented by the structural formula [ka] The structures represented by are all similar.
[0102] Unless otherwise defined, C n-n+m or C n -C n+m includes any one specific embodiment of n to n+m carbons, for example, C 1-12 are C1, C2, C3, C4, C5, C6, C7, C8, C9, C 10 , C 11 , and C 12 and any one of the ranges n to n+m, for example, C 1-12 is C 1-3 , C 1-6 , C 1-9 , C 3-6 , C 3-9 , C 3-12 , C 6-9 , C 6-12 , and C 9-12 Similarly, n- to n+m-membered rings indicate that the number of atoms in the ring is n to n+m, and for example, a 3- to 12-membered ring includes a 3-membered ring, a 4-membered ring, a 5-membered ring, a 6-membered ring, a 7-membered ring, an 8-membered ring, a 9-membered ring, a 10-membered ring, an 11-membered ring, and a 12-membered ring, and also includes any one range of n to n+m, and for example, a 3- to 12-membered ring includes a 3- to 6-membered ring, a 3- to 9-membered ring, a 5- to 6-membered ring, a 5- to 7-membered ring, a 6- to 7-membered ring, a 6- to 8-membered ring, and a 6- to 10-membered ring, etc.
[0103] The structure of the compounds of the present invention can be confirmed by conventional methods known to those skilled in the art. When the present invention relates to the absolute configuration of a compound, the absolute configuration can be confirmed by conventional technical means known to those skilled in the art. For example, single crystal X-ray diffraction (SXRD), cultured single crystals are collected by a Bruker D8 venture diffractometer, the light source is CuKα radiation, the scanning method is φ / ω scanning, and after collecting the relevant data, the absolute configuration can be confirmed by direct crystal structure analysis (Shelxs97).
[0104] The compounds of the present invention can be prepared by various synthetic methods known to those skilled in the art, including the specific embodiments listed below, embodiments formed by combining them with other chemical synthetic methods, and equivalent substitution forms known to those skilled in the art, and preferred embodiments include, but are not limited to, the examples of the present invention.
[0105] All solvents used in the present invention can be obtained from commercial sources. The following abbreviations are used in the present invention: aq represents water; eq represents equivalent; DCM represents dichloromethane; PE represents petroleum ether; DMF represents N,N-dimethylformamide; DMSO represents dimethyl sulfoxide; EtOAc and EA represent ethyl acetate; EtOH represents ethanol; MeOH represents methanol; BOC represents tert-butoxycarbonyl, an amine protecting group; HOAc represents acetic acid; RT and Rt represent retention time; O / N represents overnight; hr represents hours; THF represents tetrahydrofuran; BocO represents di-tert-butyl dicarbonate; TFA represents trifluoroacetic acid; DIPEA represents diisopropyl ethyl acetate. represents amine; Xantphos represents 4,5-bis(diphenylphosphino)-9,9-dimethylxanthene; BINAP represents 2,2'-bis(diphenylphosphino)-1,1'-binaphthyl; SEMCl represents 2-(trimethylsilyl)ethoxymethyl chloride; TBDPSCl represents tert-butyldiphenylchlorosilane; NBS represents N-bromosuccinimide; i-PrMgCl represents isopropylmagnesium chloride; N2 represents nitrogen; NaBH4 represents sodium borohydride; DIAD represents diisopropyl azodicarboxylate; and Pd(PPh3)4 represents tetrakis(triphenylphosphine)palladium.
[0106] Compounds are named according to conventional naming principles in the art or using ChemDraw® software, commercially available compounds are named in supplier catalogs. [Effects of the Invention]
[0107] The compounds of the present invention exhibit excellent agonistic activity against the GLP-1 receptor, have a low risk of time-dependent inhibition of the cytochrome P450 isoenzyme 2C19 in human liver microsomes, are slowly metabolized in various hepatocytes, and show little species difference.The compounds of the present invention have high oral exposure, a long half-life, high bioavailability, and favorable pharmacokinetic properties in the body. DETAILED DESCRIPTION OF THE INVENTION
[0108] The present invention will be specifically described below by way of examples, but is not intended to be an adverse limitation of the present invention. The present invention has been described in detail herein, and specific embodiments thereof have been disclosed. It will be apparent to those skilled in the art that various changes and modifications can be made in the specific embodiments of the present invention without departing from the spirit and scope of the present invention.
[0109] Reference Example 1: Fragment BB-1: [ka]
[0110] Synthesis scheme: [ka]
[0111] Step 1: Synthesis of compound B-1-2 B-1-1 (12.9 g, 92.05 mmol, 1 eq) was dissolved in THF (150.0 mL). Sodium hydride (5.52 g, 138.08 mmol, 60% content, 1.5 eq) was then slowly added in batches under a nitrogen atmosphere at 0 °C. After uniform stirring, SEMCl (23.55 g, 141.25 mmol, 25 mL, 1.53 eq) was added. The reaction mixture was gradually warmed to 20 °C and stirred for 16 h. The reaction solution was slowly poured into ice water (300.0 mL), thoroughly stirred, and extracted with ethyl acetate (150.0 mL x 3). The organic phase was washed with saturated brine (100 mL) and dried over anhydrous sodium sulfate. The filtrate was concentrated to obtain the crude product. The crude product was separated and purified by silica gel column chromatography (petroleum ether:ethyl acetate = 1:0 to 1:1) to obtain compound B-1-2. LCMS: m / z=271.1 [M+1] + .
[0112] Step 2: Synthesis of compound B-1-3 Lithium aluminum hydride (712.91 mg, 18.78 mmol, 1.5 eq) was dissolved in THF (60 mL) and stirred thoroughly. Then, at 0 °C, a solution of B-1-2 (3.39 g, 12.52 mmol, 1 eq) in THF (10 mL) was slowly added under a nitrogen atmosphere. The temperature was raised to 20 °C and the mixture was stirred for 45 min. The reaction solution was cooled to 0 °C, and then 1 mL of water and 1 mL of 15% sodium hydroxide solution were added sequentially. The temperature was raised to 20 °C and the mixture was stirred for 15 min. After that, a small amount of anhydrous magnesium sulfate was added, and the mixture was stirred for 15 min and filtered. The resulting filtrate was washed with saturated brine (350 mL), and the aqueous phase was extracted with ethyl acetate (50 mL × 3). The resulting organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated under reduced pressure to give B-1-3. 1H NMR (400 MHz, CDCl3) δ ppm 6.95 - 7.00 (m, 1H), 6.92 (s, 1H), 5.37 (s, 2H), 4.71 (s, 2H), 3.49-3.56 (m, 2H), 0.88-0.94 (m, 2H), 0.02-0.05 (m, 9H). LCMS: m / z=229.1 [M+1] + .
[0113] Step 3: Synthesis of compound B-1-4 B-1-3 (2.4 g, 10.51 mmol, 1 eq) was dissolved in DMF (30 mL) at 20 °C and stirred thoroughly. Then, TBDPSCl (1.3 g, 13.63 mmol, 1.3 eq) and imidazole (1.8 g, 26.44 mmol, 2.52 eq) were added sequentially. The mixture was stirred under a nitrogen atmosphere for 16 h. The reaction solution was poured into water (50 mL) to quench the reaction, and extracted with ethyl acetate (40 mL × 3). The resulting organic phase was washed with saturated brine (40 mL) and dried over anhydrous sodium sulfate. The filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 3:1) to obtain B-1-4. 1 H NMR (400 MHz, CDCl3) δ ppm 7.67 - 7.72 (m, 4H), 7.37 - 7.46 (m, 6H), 7.00-7.03 (m, 1H), 6.98 (d, J=1.25 Hz, 1H), 5.41 (s, 2H), 4.84 (s, 2H), 3.42-3.47 (m, 2H), 1.06 (s, 9H), 0.85-0.90 (m, 2H), 0.03 (s, 9H). LCMS: m / z=467.2 [M+1] + .
[0114] Step 4: Synthesis of compound B-1-5 B-1-4 (10.9 g, 223.42 mmol, 1 eq) was dissolved in THF (120 mL) and cooled to 0 °C. NBS (15 g, 84.28 mmol, 3.60 eq) was added in batches, then the mixture was warmed to 20 °C and stirred for 16 h. The reaction solution was slowly poured into water (150 mL), thoroughly stirred, and extracted with ethyl acetate (100 mL × 2). The organic phase was washed with saturated brine (200 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by neutral alumina column chromatography (petroleum ether:ethyl acetate = 1:0 to 20:1) to obtain compound B-1-5. LCMS: m / z = 622.9 [M+1] + .
[0115] Step 5: Synthesis of compound B-1-6 B-1-5 (2.4 g, 3.79 mmol, 1 eq) was dissolved in THF (24 mL) and cooled to -70 °C under a nitrogen atmosphere. i-PrMgCl (2 M, 2.09 mL, 1.1 eq) was added dropwise and stirred for 1.5 h. DMF (55.47 g, 758.94 mmol, 58.39 mL, 200 eq) was then added dropwise, and the mixture was warmed to 20 °C and stirred for 0.5 h. The reaction solution was quenched by slowly pouring it into saturated ammonium chloride solution (200 mL). The mixture was extracted with ethyl acetate (200 mL × 3). The organic phase was washed with saturated brine (200 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to obtain compound B-1-6. 1 H NMR (400 MHz, CDCl3) δ ppm 9.76(s,1H), 7.66 (dd, J=7.91, 1.38 Hz, 4H), 7.36 - 7.47 (m, 6H), 5.85 (s, 2 H), 4.86 (s, 2H), 3.48-3.54 (m, 2H), 1.07 (s, 9H), 0.84-0.89 (m, 2H), 0.02-0.06 (m, 9H). LCMS: m / z = 573.0 [M+1] + .
[0116] Step 6: Synthesis of compound B-1-7 B-1-6 (1.1 g, 1.97 mmol, 1 eq) was dissolved in dichloromethane (5 mL), and then TFA (8.98 g, 78.79 mmol, 5.83 mL, 40 eq) was added dropwise and stirred at 20 °C for 16 hours. The reaction solution was poured into saturated sodium bicarbonate solution (70 mL), the pH was adjusted to 5-6, and extracted with ethyl acetate (40 mL × 3). The organic phase was washed with water (30 mL) and saturated brine (30 mL) and dried over anhydrous sodium sulfate. The filtrate obtained by filtration was concentrated to obtain the crude product, which was then separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0-10:1) to obtain compound B-1-7. 1 H NMR (400 MHz, CDCl3) δ ppm 9.65 (s, 1H), 7.63 (dd, J=7.94, 1.44 Hz, 4H), 7.40-7.50 (m, 6H), 4.83 (s, 2H), 1.13 (s, 9H). LCMS: m / z = 442.9 [M+H] + .
[0117] Step 7: Synthesis of compound B-1-9 B-1-7 (0.02 g, 45.11 μmol, 1 eq) was dissolved in acetonitrile (0.5 mL), and then cesium carbonate (16.17 mg, 49.62 μmol, 1.1 eq) and B-1-8 (11.24 mg, 67.66 μmol, 1.5 eq) were added sequentially. The mixture was heated to 80°C and stirred for 16 hours. The reaction solution was concentrated to give a crude product, which was purified by preparative thin-layer chromatography on a silica gel plate (petroleum ether:ethyl acetate = 5:1) to give B-1-9. 1H NMR (400 MHz, CDCl3) δ ppm 9.70 (s, 1 H), 7.67 (ddd, J=12.38, 7.82, 1.31 Hz, 4 H), 7.38-7.48 (m, 6H), 4.84-5.00 (m, 3H), 4.65- 4.75 (m,1 H), 4.46-4.65 (m, 2H), 4.19 (dt, J=9.07, 6.10 Hz, 1H), 2.62-2.75 (m, 1 H), 2.17-2.29 (m, 1 H), 1.07-1.13 (m, 9 H). LCMS: m / z = 512.9[M+H] + .
[0118] Step 8: Synthesis of compound B-1-10 Sodium ethoxide (13 mg, 191.04 μmol, 3.77 eq) was dissolved in ethanol (0.5 mL), followed by the sequential addition of ethyl thioglycolate (183.07 μmol, 20 μL, 3.62 eq) and B-1-9 (26 mg, 50.63 μmol, 1 eq). The mixture was heated to 80°C and stirred for 20 hours. The pH of the reaction solution was adjusted to 2-3 with 1 M hydrochloric acid, and the aqueous phase was extracted with ethyl acetate (5 mL x 3). The organic phase was washed with saturated brine and then concentrated. The resulting crude product was separated and purified by preparative thin-layer chromatography on a silica gel plate (petroleum ether:ethyl acetate = 5:1) to give B-1-10. 1 H NMR (400 MHz, CDCl3) δ ppm 7.74 (s, 1 H), 7.63 - 7.70 (m, 4 H), 7.37-7.47 (m, 6H), 4.95 (s,2H), 4.03-4.71 (m,7H), 2.57-2.71 (m,1H), 2.28-2.39 (m, 1H), 1.39 (t, J=7.15 Hz, 3H), 1.08 (s, 9H). LCMS: m / z = 535.0 [M+H] + .
[0119] Step 9: Synthesis of Compound B-1-11 B-1-10 (2 g, 3.15 mmol, 84.3% purity, 1 eq) was added to a dried reaction flask in THF (20 mL), and triethylamine trihydrofluoride (15.77 mmol, 2.57 mL, 5 eq) was added. The mixture was stirred at 20 °C for 10 h. Water (30 mL) was added for dilution, and ethyl acetate (30 mL × 3) was added for extraction. After separation, the organic phase was collected. The resulting organic phase was washed sequentially with saturated sodium bicarbonate (30 mL) and saturated brine (30 mL × 3), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure. Methyl tert-butyl ether (10 mL) and ethyl acetate (1 mL) were added, stirred, and filtered. The cake was further washed with methyl tert-butyl ether (10 mL). The resulting cake was concentrated under reduced pressure to give B-1-11. LCMS: m / z = 297.1 [M+1] + .
[0120] Step 10: Synthesis of Compound B-1 A dried reaction flask was charged with B-1-11 (0.8 g, 2.70 mmol, 1 eq), dichloromethane (10 mL), and triethylamine (819.51 mg, 8.10 mmol, 1.13 mL, 3 eq). The mixture was purged with nitrogen gas, cooled to 0 °C, and methylsulfonyl chloride (463.86 mg, 4.05 mmol, 313.42 μL, 1.5 eq) was added. The mixture was stirred at 20 °C for 3 h. The reaction mixture was quenched by pouring into water (20 mL). The mixture was extracted with dichloromethane (20 mL × 3). After separation, the organic phase was collected, washed sequentially with saturated brine (20 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the crude product. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 3:1) to give B-1. LCMS: m / z = 315.1 [M+1] + .
[0121] Reference Example 2: Fragment B-2 [ka]
[0122] Synthesis scheme: [ka]
[0123] Step 1: Synthesis of compound B-2-2 B-2-1 (2.00 g, 12.49 mmol, 1 eq) and anhydrous tetrahydrofuran (100 mL) were added to a reaction flask, and 2,2,6,6-tetramethylpiperidinyl magnesium chloride lithium chloride complex (1 M, 24.00 mL, 1.92 eq) was added at -40 °C. The reaction mixture was stirred at -40 °C for 0.5 h. Carbon tetrabromide (4.14 g, 12.49 mmol, 1 eq) was added, and the reaction mixture was stirred at -40 °C for 0.5 h. The temperature was then gradually raised to 20 °C and stirred for 11 h. The reaction mixture was quenched by the addition of hydrochloric acid (0.5 M, 10 mL). The mixture was extracted with ethyl acetate (50 mL × 3). The combined organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 20:1) to obtain compound B-2-2. LCMS: m / z = 238.9 [M+1] + .
[0124] Step 2: Synthesis of compound B-2-3 B-2-2 (1.70 g, 7.11 mmol, 1 eq), B-7 (2.23 g, 7.11 mmol, 1.0 eq), and potassium carbonate (1.97 g, 14.22 mmol, 2 eq) were dissolved in anhydrous toluene (50 mL). Tris(dibenzylideneacetone)dipalladium (0.65 g, 709.82 μmol, 0.10 eq) and Xantphos (0.82 g, 1.42 mmol, 0.2 eq) were added under a nitrogen atmosphere. The mixture was then heated to 100 °C and stirred for 12 h. The reaction solution was filtered, water (50 mL) was added to the filtrate, and the mixture was extracted with ethyl acetate (50 mL × 3). The combined organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated to give the crude product. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 4:1) to give B-2-3. LCMS: m / z = 472.1 [M+1] + .
[0125] Step 3: Synthesis of compound B-2-4 B-2-3 (2.60 g, 2.84 mmol, 51.53% purity, 1 eq) and NBS (1.00 g, 5.62 mmol, 1.98 eq) were dissolved in anhydrous THF (50 mL), and the reaction mixture was stirred at 20 °C for 12 h. Saturated sodium bicarbonate solution (50 mL) was added to the reaction mixture, and the mixture was extracted with ethyl acetate (50 mL × 3). The combined organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to give B-2-4. 1 H NMR (400 MHz, CDCl3) δ ppm 9.65 (br s, 1 H), 7.66 (br d, J = 6.78 Hz, 4 H), 7.42 - 7.50 (m, 6 H), 4.31 (s, 2 H), 3.89 (s, 3 H), 1.19 (s, 9 H). LCMS: m / z = 550.0 [M+1] + .
[0126] Step 4: Synthesis of compound B-2-5 B-2-4 (1.80 g, 3.27 mmol, 1 eq) and Lawesson's reagent (1.35 g, 3.34 mmol, 1.02 eq) were dissolved in anhydrous dioxane (30 mL), and the reaction mixture was stirred at 110 °C for 6 h. The reaction mixture was cooled to room temperature and concentrated to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to obtain compound B-2-5. 1 H NMR (400 MHz, CDCl3) δ ppm 11.18 (br s, 1 H), 7.66 (dd, J =7.91, 1.38 Hz, 4 H), 7.40 - 7.51 (m, 6 H), 4.60 (s, 2 H), 3.91 (s, 3 H), 1.20 (s, 9 H). LCMS: m / z = 566.0 [M+1] + .
[0127] Step 5: Synthesis of compound B-2-7 B-2-5 (1.50 g, 2.65 mmol, 1 eq), B-2-6 (0.60 g, 6.89 mmol, 2.60 eq), and silver acetate (0.90 g, 5.39 mmol, 276.07 μL, 2.04 eq) were dissolved in anhydrous DMF (20 mL), and the reaction mixture was stirred at 20 °C for 16 h. The reaction mixture was filtered, and water (50 mL) was added to the filtrate. The mixture was extracted with ethyl acetate (50 mL × 3). The combined organic phases were washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 5:1) to give B-2-7. 1H NMR (400 MHz, CDCl3) δ ppm 7.63 (br t, J = 5.65 Hz, 4 H), 7.39 - 7.52 (m, 6 H), 6.95 (br s, 1 H), 5.05 - 5.17 (m, 1 H), 4.68 - 4.78 (m, 1 H), 4.53 (dt, J = 9.22, 5.93 Hz, 1 H), 4.31 - 4.45 (m, 2 H), 3.77 - 3.88 (m, 4 H), 3.56 - 3.66 (m, 1 H), 2.67 - 2.78 (m, 1 H), 2.55 - 2.66 (m, 1 H), 1.10 (s, 9 H). LCMS: m / z = 619.1 [M+1] + .
[0128] Step 6: Synthesis of compound B-2-8 B-2-7 (0.80 g, 1.29 mmol, 1 eq) and N,N'-dimethylethylenediamine (0.16 g, 1.82 mmol, 195.36 μL, 1.41 eq) were dissolved in acetonitrile (10 mL). Cuprous iodide (0.16 g, 840.12 μmol, 0.65 eq) was added under a nitrogen atmosphere, and the reaction mixture was stirred at 80 °C for 10 h. The reaction mixture was filtered, water (20 mL) was added, and the mixture was extracted with ethyl acetate (20 mL × 3). The combined organic phase was washed with saturated brine (20 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated to give the crude product. The crude product was separated and purified by preparative thin-layer chromatography on a silica gel plate (petroleum ether:ethyl acetate = 3:1) to give compound B-2-8. LCMS: m / z = 539.2 [M+1] + .
[0129] Step 7: Synthesis of compound B-2-9 B-2-8 (0.40 g, 742.52 μmol, 1 eq) was dissolved in anhydrous tetrahydrofuran (5 mL). Tetrabutylammonium fluoride (1 M, 1.00 mL, 1.35 eq) was then added, and the reaction mixture was stirred at 20 °C for 1 h. Water (20 mL) was added to the reaction mixture, followed by extraction with ethyl acetate (20 mL × 3). The combined organic phase was washed with saturated brine (20 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 0:1) to obtain compound B-2-9. 1H NMR (400 MHz, CDCl3) δ ppm 5.19 (qd, J = 6.90, 2.89 Hz, 1 H), 4.80 - 4.90 (m, 2 H), 4.67 - 4.74 (m, 1 H), 4.40 - 4.56 (m, 3 H), 3.91 (s, 3 H), 2.78 - 2.89 (m, 1 H), 2.48 - 2.58 (m, 1 H). LCMS: m / z = 301.1 [M+1] + .
[0130] Step 8: Synthesis of Compound B-2 B-2-9 (30 mg, 99.90 μmol, 1 eq) was dissolved in anhydrous dichloromethane (2 mL), and methylsulfonyl chloride (261.89 μmol, 20.27 μL, 2.62 eq) and triethylamine (296.47 μmol, 41.27 μL, 2.97 eq) were added at 0°C (ice-water bath), and the reaction mixture was stirred at 20°C for 1 hour. Saturated sodium bicarbonate solution (0.5 mL) was added to the reaction mixture to quench the reaction mixture, and the mixture was concentrated to give compound B-2. LCMS: m / z=318.8 [M+1] + .
[0131] Reference Example 3: Fragments B-3 and B-4 [ka]
[0132] Synthesis scheme: [ka]
[0133] Step 1: Synthesis of compound B-3-3 B-3-2 (519.64 mmol, 71.99 mL, 2 eq), copper(I) iodide (989.65 mg, 5.20 mmol, 0.02 eq), bis(triphenylphosphine)palladium(II) dichloride (1.82 g, 2.60 mmol, 0.01 eq), and B-3-1 (50 g, 259.82 mmol, 1 eq) were dissolved in triethylamine (550 mL) and reacted at 60 °C for 8 h under a nitrogen atmosphere. The mixture was diluted with saturated brine (400 mL) and extracted with ethyl acetate (400 mL x 3). After separation, the organic phase was collected, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 20:1) to obtain B-3-3. LCMS: m / z = 210.2 [M+1] + .
[0134] Step 2: Synthesis of compound B-3-4 Potassium hydroxide (6.29 g, 95.35 mmol, 85% purity, 1 eq) was added to a methanol solution (400 mL) of B-3-3 (20 g, 95.35 mmol, 1 eq) and stirred at 25 °C for 1 hour. The reaction solution was poured into 500 mL of saturated brine, extracted with ethyl acetate (600 mL × 3), and the organic phases were combined. The organic phase was dried over anhydrous sodium sulfate and filtered. The obtained filtrate was concentrated to give B-3-4. LCMS: m / z = 138.2 [M+1] + .
[0135] Step 3: Synthesis of compound B-3-6 Dodecacarbonyltriruthenium (464.74 mg, 726.92 μmol, 0.02 eq), B-3-5 (6.87 g, 36.35 mmol, 1 eq), and B-3-4 (5 g, 36.35 mmol, 1 eq) were dissolved in toluene (100 mL). After purging with nitrogen gas three times, the mixture was reacted at 100 °C for 16 hours. The reaction solution was filtered through diatomaceous earth, and the cake was washed with ethyl acetate (20 mL × 3). The filtrates were combined and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 50:1) to obtain B-3-6. LCMS: m / z = 326.0 [M+1] + .
[0136] Step 4: Synthesis of compound B-3-8 B-3-6 (4.5 g, 13.78 mmol, 1 eq), B-3-7 (6.39 g, 20.67 mmol, 1.5 eq), [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (2.02 g, 2.76 mmol, 0.2 eq), and potassium carbonate (7.62 g, 55.12 mmol, 4 eq) were dissolved in dioxane (100 mL) / water (10 mL). After purging with nitrogen gas three times, the mixture was reacted at 90 °C for 12 h. The reaction solution was poured into water (200 mL) and extracted with ethyl acetate (300 mL × 3). The combined organic phases were dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether / ethyl acetate = 1:0 to 10:1) to give B-3-8. LCMS: m / z=373.1 [M-55] + .
[0137] Step 5: Synthesis of Compounds B-3 and B-4 B-3-8 was separated and purified by preparative SFC [column model: DAICEL CHIRALPAK IC (250 mm × 30 mm × 10 μm); mobile phase: Phase A: supercritical carbon dioxide, Phase B: ethanol (0.1% aqueous ammonia); gradient (B%): 35% to 35%] to obtain compounds B-3 and B-4.
[0138] Compound B-3 was obtained by SFC detection [column model: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm); mobile phase: Phase A: supercritical carbon dioxide, Phase B: ethanol (0.1% isopropylamine); gradient (B%): 5% to 50%]. The retention time of compound B-3 was 0.920 min, ee value = 100%; and the retention time of compound B-4 was 1.197 min, ee value = 98.4%.
[0139] Reference Example 4: Fragments B-5 and B-6 [ka]
[0140] Synthesis scheme: [ka]
[0141] Step 1: Synthesis of compound B-5-2 B-3-6 (1.6 g, 4.90 mmol, 1 eq), B-5-1 (1.31 g, 5.88 mmol, 1.2 eq), and cesium carbonate (4.79 g, 14.70 mmol, 3 eq) were added to toluene (16 mL). The atmosphere was purged with nitrogen, and then palladium acetate (55.00 mg, 244.97 μmol, 0.05 eq) and BINAP (213.55 mg, 342.96 μmol, 0.07 eq) were added. The reaction mixture was heated to 100 °C and stirred for 10 h. The reaction mixture was diluted with water (20 mL) and extracted with ethyl acetate (20 mL × 3). After separation, the organic phase was collected, washed with saturated brine (20 mL × 3), dried over anhydrous sodium sulfate, and the resulting filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 5:1) to give B-5-2. LCMS: m / z = 432.2 [M+1] + .
[0142] Step 2: Synthesis of Compounds B-5 and B-6 B-5-2 was separated and purified by preparative SFC [column model: DAICEL CHIRALPAK IC (250 mm × 30 mm × 10 μm); mobile phase: phase A was supercritical carbon dioxide, phase B was methanol (neutral); gradient (B%): 35% to 35%] to obtain compounds B-5 and B-6.
[0143] Compound B-5 was obtained by SFC detection [column model: Chiralpak (IG-3, 50 × 4.6 mm ID, 3 μm); mobile phase: Phase A: supercritical carbon dioxide, Phase B: methanol (0.1% isopropylamine); gradient (B%): 5% to 50%]. The retention time of compound B-5 was 1.015 min, ee value = 99.5%, and the retention time of compound B-6 was 1.134 min, ee value = 99.6%.
[0144] Reference Example 5: Fragment B-7 [ka]
[0145] Step 1: Synthesis of compound B-7-2 B-7-1 (10.00 g, 111.02 mmol, 1 eq), tert-butyldiphenylchlorosilane (36.62 g, 133.22 mmol, 34.22 mL, 1.2 eq), and imidazole (8.92 g, 131.00 mmol, 1.18 eq) were dissolved in anhydrous DMF (150.00 mL) and stirred at 0 °C for 3 h. The reaction solution was concentrated to give the crude product, which was dissolved in ethyl acetate (200 mL) and washed sequentially with water (200 mL × 2) and saturated brine (30 mL). The organic phase was dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated to give the crude product. The crude product was separated and purified by silica gel column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to give compound B-7-2. 1H NMR (400 MHz, CDCl3) δ ppm 7.69 (dd, J = 7.88, 1.38 Hz, 4 H), 7.37 - 7.45 (m, 6 H), 4.26 (s, 2 H), 3.69 (s, 3 H), 1.10 (s, 9 H).
[0146] Step 2: Synthesis of compound B-7 B-7-2 (220 g, 669.76 mmol, 1 eq) was added to ammonia methanol (7 M, 1.58 L, 16.5 eq) in a dried reaction flask and stirred for 10 hours at 50°C. The reaction solution was concentrated and then separated and purified by silica gel column chromatography (petroleum ether: ethyl acetate = 1:0 to 3:1) to obtain compound B-7. 1 H NMR (400 MHz, DMSO-d6) δ ppm 7.64 (dd, J = 7.91, 1.63 Hz, 4 H), 7.42 - 7.52 (m, 6 H), 7.40 (br s, 1 H), 7.11 (br s, 1 H), 3.94 (s, 2 H), 1.02 (s, 9H).
[0147] Reference Example 6: Fragment B-8 [ka]
[0148] Step 1: Synthesis of B-8-2 B-8-1 (8.8 g, 42.31 mmol, 1 eq) was dissolved in acetonitrile (88.0 mL). Triethylamine (35.3 mL), copper(I) iodide (161.15 mg, 0.85 mmol, 0.02 eq), bis(triphenylphosphine)palladium(II) dichloride (0.3 g, 0.42 mmol, 0.01 eq), and B-3-2 (59.23 mmol, 8.21 mL, 1.4 eq) were added sequentially and reacted at 75 °C for 3 h under a nitrogen atmosphere. The mixture was diluted with saturated brine (80 mL) and extracted with ethyl acetate (80 mL x 3). After separation, the organic phase was collected, dried over anhydrous sodium sulfate, and concentrated under reduced pressure. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to obtain B-8-2. LCMS: m / z = 179.0 [M+1] + .
[0149] Step 2: Synthesis of compound B-8-3 B-8-2 (6.5 g, 36.45 mmol, 1 eq) was dissolved in tetrahydrofuran (60.0 mL), and a solution of potassium hydroxide (2.05 g) in water (10.0 mL) was added, followed by stirring for 12 hours at 25° C. The reaction solution was diluted with 70 mL of saturated brine and extracted with ethyl acetate (70 mL × 2). The combined organic phase was washed with 70 mL of water, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated to obtain B-8-3. 1 H NMR (400 MHz, CDCl3) δ ppm 7.31 (d, J=2.26 Hz, 1 H), 6.42 (d, J=2.26 Hz, 1 H), 3.91 (s, 3 H), 3.06 (s, 1 H).
[0150] Step 3: Synthesis of compound B-8-4 B-8-3 (2.6 g, 24.50 mmol, 1 eq) and B-3-5 (4.17 g, 22.05 mmol, 0.9 eq) were dissolved in toluene (30.0 mL). Under a nitrogen gas atmosphere, triruthenium dodecacarbonyl (313.26 mg, 0.49 mmol, 0.02 eq) was added and the mixture was allowed to react at 100 °C for 12 hours. The reaction solution was filtered through diatomaceous earth, and the cake was washed with ethyl acetate (100 mL × 2). The filtrates were combined and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 4:1) to obtain B-8-4. LCMS: m / z = 295.0 [M+1] + .
[0151] Step 4: Synthesis of compound B-8 B-8-4 (7.2 g, 24.40 mmol, 1 eq), B-3-7 (9.05 g, 29.28 mmol, 1.2 eq), and sodium carbonate (10.34 g, 97.58 mmol, 4 eq) were dissolved in dioxane (70 mL) / water (30 mL). Tetrakistriphenylphosphine palladium (1.41 g, 1.22 mmol, 0.05 eq) was added under a nitrogen atmosphere and the mixture was allowed to react at 100 °C for 2 h. The reaction solution was filtered through diatomaceous earth, and the cake was washed with ethyl acetate (70 mL × 3). The filtrate was washed with 70 mL of water and then concentrated under reduced pressure to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 4:1) to give B-8. LCMS: m / z = 420.0 [M+23] + .
[0152] Reference Example 7: Fragment B-9 [ka]
[0153] Step 1: Synthesis of B-9-2 B-9-1 (6.94 g, 42.31 mmol, 1 eq) was dissolved in acetonitrile (88.0 mL). Triethylamine (35.3 mL), copper(I) iodide (161.15 mg, 0.85 mmol, 0.02 eq), bis(triphenylphosphine)palladium(II) dichloride (0.3 g, 0.42 mmol, 0.01 eq), and B-3-2 (59.23 mmol, 8.21 mL, 1.4 eq) were added sequentially and reacted at 75 °C for 3 h under a nitrogen atmosphere. The mixture was diluted with saturated brine (80 mL) and extracted with ethyl acetate (80 mL x 3). After separation, the organic phase was collected, dried over anhydrous sodium sulfate, and concentrated under reduced pressure. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 15:1) to obtain B-9-2. 1 H NMR (400 MHz, DMSO-d6) δ ppm 9.06 (d, J=2.0 Hz, 1 H), 8.05 (s, 1 H), 0.20 (s, 9 H). LCMS: m / z = 181.8 [M+1] + .
[0154] Step 2: Synthesis of compound B-9-3 B-9-2 (6.61 g, 36.45 mmol, 1 eq) was dissolved in tetrahydrofuran (60.0 mL), and a solution of potassium hydroxide (2.05 g) in water (10.0 mL) was added and stirred for 12 hours at 25 ° C. The reaction solution was diluted with 70 mL of saturated brine and extracted with ethyl acetate (70 mL × 2). The organic phases were combined and washed with 70 mL of water. The organic phase was dried over anhydrous sodium sulfate and then filtered. The filtrate was concentrated to obtain B-9-3. 1 H NMR (400 MHz, CDCl3) δ ppm 8.76 (s, 1 H), 7.58 (s, 1 H), 3.15 (s, 1 H).
[0155] Step 3: Synthesis of compound B-9-4 B-9-3 (2.67 g, 24.50 mmol, 1 eq) and B-3-5 (4.17 g, 22.05 mmol, 0.9 eq) were dissolved in toluene (30.0 mL). Under a nitrogen gas atmosphere, triruthenium dodecacarbonyl (313.26 mg, 0.49 mmol, 0.02 eq) was added and the mixture was allowed to react at 100 °C for 12 hours. The reaction solution was filtered through diatomaceous earth, and the cake was washed with ethyl acetate (100 mL × 2). The filtrates were combined and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 6:1) to obtain B-9-4. LCMS: m / z = 298.1 [M+1] + .
[0156] Step 4: Synthesis of compound B-9-5 B-9-4 (7.3 g, 24.40 mmol, 1 eq), B-3-7 (9.05 g, 29.28 mmol, 1.2 eq), and sodium carbonate (10.34 g, 97.58 mmol, 4 eq) were dissolved in dioxane (70 mL) / water (30 mL). Tetrakistriphenylphosphine palladium (1.41 g, 1.22 mmol, 0.05 eq) was added under a nitrogen atmosphere and the mixture was allowed to react at 100 °C for 2 hours. The reaction solution was filtered through diatomaceous earth, and the cake was washed with ethyl acetate (70 mL × 3). The filtrate was washed with 70 mL of water and then concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 6:1) to obtain B-9-5. LCMS: m / z = 401.2 [M+1] + .
[0157] Reference Example 8: Fragment B-10 [ka]
[0158] Step 1: Synthesis of B-10-2 B-10-1 (20 g, 128.55 mmol, 1 eq) was dissolved in THF (200 mL) and purged with nitrogen gas. Then, phenyltrimethylammonium tribromide (50.74 g, 134.98 mmol, 1.05 eq) was added to the reaction flask. The temperature was gradually raised to 50 °C and stirred for 12 hours. The reaction solution was quenched with water (50 mL), and then extracted with ethyl acetate (50 mL × 2). The organic phase was collected. The organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and concentrated under reduced pressure. Petroleum ether:ethyl acetate = 10:1 (150 mL) was added to the crude product and stirred at 25 °C for 1 hour. After filtration, the cake was collected and dried to obtain compound B-10-2, which was directly used in the next step. LCMS: m / z = 234.0 [M+1] + .
[0159] Step 2: Synthesis of B-10-3 B-10-2 (13.70 g, 72.50 mmol, 1 eq) was dissolved in anhydrous DMF (170 mL), potassium carbonate (10.02 g, 72.50 mmol, 1 eq) was added, and the mixture was stirred at 25 °C for 18 h. The reaction solution was diluted with ethyl acetate (170 mL) and then washed sequentially with water (170 mL) and saturated aqueous sodium chloride solution (170 mL). The organic phase was dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 50:1 to 10:1) to obtain B-10-3. 1 H NMR (400 MHz, DMSO-d6) δ ppm 8.69 (d, J = 2.4 Hz, 1H), 8.06 (dd, J = 2.4, 8.5 Hz, 1H), 7.90 (s, 1H), 7.79 (d, J = 8.5 Hz, 1H), 7.18 (d, J = 7.9 Hz, 1H), 7.01 (d, J = 8.1 Hz, 1H), 6.90 - 6.78 (m, 1H), 4.40 (s, 2H). LCMS: m / z=342.0 [M+1] + .
[0160] Step 3: Synthesis of B-10-4 B-10-3 (13 g, 37.95 mmol, 1 eq) was dissolved in EtOH (260 mL), purged with nitrogen gas, and NaBH4 (2.87 g, 75.90 mmol, 2 eq) was added to the reaction flask and stirred at 25 °C for 2 h. The reaction solution was quenched with saturated aqueous ammonium chloride (300 mL) and extracted with ethyl acetate (300 mL x 2). The organic phase was collected and washed with saturated aqueous sodium chloride (300 mL). The organic phase was then dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 100:1 to 10:1) to give B-10-4. 1 H NMR (400 MHz, DMSO-d6) δ ppm 10.31 - 9.59 (m, 1H), 8.57 (d, J = 2.3 Hz, 1H), 7.97 (dd, J = 2.5, 8.4 Hz, 1H), 7.64 (d, J = 8.5 Hz, 1H), 7.00 - 6.95 (m, 1H), 6.90 - 6.85 (m, 2H), 4.97 (dd, J = 4.3, 6.4 Hz, 1H), 4.24 (dd, J = 4.3, 10.1 Hz, 1H), 4.12 (dd, J = 6.6, 10.0 Hz, 1H). LCMS: m / z=344.0 [M+1] + .
[0161] Step 4: Synthesis of B-10-5 Compound B-10-4 (3 g, 8.71 mmol, 1 eq), triphenylphosphine (4.57 g, 17.41 mmol, 2 eq), and tetrahydrofuran (60 mL) were added to a dried reaction flask and purged with nitrogen gas. The mixture was cooled to 0 °C, and a solution of DIAD (3.52 g, 17.41 mmol, 2 eq) in tetrahydrofuran (15 mL) was added and stirred at 20 °C for 12 hours. Water (100 mL) was added to the reaction system to quench the reaction, followed by the addition of sodium hypochlorite solution (10 mL) and stirring for 10 minutes. The mixture was extracted with ethyl acetate (100 mL × 2), separated, and the organic phases were combined. The organic phase was washed with saturated brine (100 mL), dried over anhydrous sodium sulfate, filtered, and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate=100:1 to 10:1) to give B-10-5. LCMS: m / z=326.0 [M+1] + .
[0162] Step 5: Synthesis of B-10 Compound B-10-5 (1 g, 3.06 mmol, 1 eq), B-3-7 (2.84 g, 9.19 mmol, 3 eq), 1,4-dioxane (25 mL), HO (5 mL), sodium carbonate (973.66 mg, 9.19 mmol, 3 eq), and Pd(PPh3)4 (353.84 mg, 306.21 μmol, 0.1 eq) were sequentially added to a dried reaction flask, purged with nitrogen gas, and stirred at 90 °C for 10 h. The reaction was quenched by adding water (50 mL), followed by addition of aqueous sodium hypochlorite solution (10 mL) and stirring for 10 min. Ethyl acetate (50 mL × 2) was then added for extraction, and the organic phases were combined after separation. The organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and concentrated under reduced pressure to obtain the crude product. The crude product was purified by column chromatography (petroleum ether:ethyl acetate=100:1 to 10:1) to give B-10. LCMS: m / z=451.2 [M+23] + .
[0163] Reference Example 9: Fragment B-11 [ka]
[0164] Step 1: Synthesis of B-11-2 Compound B-11-1 (29 g, 187.59 mmol, 1 eq) was dissolved in tetrahydrofuran (290 mL) and purged with nitrogen gas. Phenyltrimethylammonium tribromide (74.05 g, 196.97 mmol, 1.05 eq) was then added to the reaction flask. The temperature was gradually raised to 50 °C and stirred for 12 hours. The reaction solution was quenched with water (500 mL), extracted with ethyl acetate (500 mL × 2), and the organic phase was collected. The organic phase was washed with saturated brine (500 mL), dried over anhydrous sodium sulfate, filtered, and concentrated under reduced pressure. Petroleum ether:ethyl acetate = 10:1 (150 mL) was added to the crude product and stirred at 25 °C for 1 hour. After filtration, the cake was collected and dried to give B-11-2, which was directly used in the next step. LCMS: m / z = 233.0 [M+H] + .
[0165] Step 2: Synthesis of B-11-3 B-11-2 (10 g, 42.83 mmol, 1 eq) and B-3-5 (8.09 g, 42.83 mmol, 1 eq) were dissolved in anhydrous DMF (100 mL), potassium carbonate (5.92 g, 42.83 mmol, 1 eq) was added, and the mixture was stirred at 25 °C for 18 h. The reaction solution was diluted with ethyl acetate (10 mL) and then washed sequentially with water (10 mL) and saturated aqueous sodium chloride solution (10 mL). The organic phase was dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 20:1) to obtain B-11-3. 1H NMR (400 MHz, DMSO-d6) δ ppm 7.75 (d, J = 1.6 Hz, 1H), 7.63 - 7.59 (m, 2H), 7.54 - 7.50 (m, 2H), 7.19 (dd, J = 1.4, 7.9 Hz, 1H), 7.00 (dd, J = 1.5, 8.1 Hz, 1H), 6.90 - 6.83 (m, 1H), 4.27 (d, J = 11.1 Hz, 1H), 4.06 - 4.03 (m, 1H). LCMS: m / z=341.0 [M+H] + .
[0166] Step 3: Synthesis of B-11-4 Compound B-11-3 (6 g, 17.57 mmol, 1 eq) was dissolved in EtOH (120 mL), purged with nitrogen gas, and sodium borohydride (1.33 g, 35.13 mmol, 2 eq) was added to the reaction flask and stirred at 25 °C for 2 h. The reaction solution was quenched with saturated aqueous ammonium chloride (120 mL) and extracted with ethyl acetate (100 mL × 2). The organic phase was collected and washed with saturated aqueous sodium chloride (200 mL). The organic phase was then dried over anhydrous sodium sulfate, filtered, and concentrated under reduced pressure. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 100:1 to 10:1) to give B-11-4. 1 H NMR (400 MHz, DMSO-d6) δ ppm 9.97 - 9.68 (m, 1H), 7.48 - 7.44 (m, 2H), 7.42 - 7.39 (m, 2H), 7.10 - 6.95 (m, 1H), 6.87 (d, J = 5.0 Hz, 2H), 6.30 - 6.09 (m, 1H), 4.98 (dd, J = 4.6, 7.2 Hz, 1H), 4.06 (dd, J = 4.5, 10.0 Hz, 1H), 3.91 (dd, J = 7.3, 10.0 Hz, 1H). LCMS: m / z=343.0 [M+H] + .
[0167] Step 4: Synthesis of B-11-5 B-11-4 (1 g, 2.91 mmol, 1 eq) and triphenylphosphine (1.53 g, 5.82 mmol, 2 eq) were dissolved in THF (20 mL), purged with nitrogen gas, and cooled to 0 °C. A solution of diisopropyl azodicarboxylate (1.18 g, 5.82 mmol, 2 eq) in THF (5 mL) was slowly added dropwise to the reaction flask and stirred at 20 °C for 10 h. The reaction solution was quenched by adding water (50 mL) and extracted with ethyl acetate (50 mL × 3). The organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 20:1 to 10:1) to give B-11-5. 1 H NMR (400 MHz, DMSO-d6) δ ppm 7.52 (s, 4H), 7.18 (dd, J = 1.4, 8.0 Hz, 1H), 7.01 (dd, J = 1.4, 8.1 Hz, 1H), 6.88 - 6.79 (m, 1H), 5.33 (dd, J = 2.4, 8.3 Hz, 1H), 4.57 (dd, J = 2.4, 11.5 Hz, 1H), 4.19 (dd, J = 8.3, 11.4 Hz, 1H). LCMS: m / z= 325.0 [M+H] + .
[0168] Step 5: Synthesis of B-11 B-11-5 (720 mg, 2.21 mmol, 1 eq) and compound B-3-7 (2.05 g, 6.63 mmol, 3 eq) were dissolved in 1,4-dioxane (20 mL) and HO (4 mL). Sodium carbonate (703.15 mg, 6.63 mmol, 3 eq) and tetrakistriphenylphosphine palladium (255.54 mg, 221.14 μmol, 0.1 eq) were then added sequentially. The mixture was purged with nitrogen and stirred at 90 °C for 10 h. Water (20 mL) was added to the reaction solution to dilute the reaction mixture. Ethyl acetate (20 mL × 3) was added, and the resulting organic phase was washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 100:1 to 20:1) to give B-11. 1 H NMR (400 MHz, DMSO-d6) δ ppm 7.50 (s, 4H), 6.92 - 6.88 (m, 1H), 6.84 (t, J = 7.8 Hz, 1H), 6.78 - 6.74 (m, 1H), 5.92 - 5.77 (m, 1H), 5.27 (dd, J = 2.4, 8.2 Hz, 1H), 4.46 (dd, J = 2.5, 11.5 Hz, 1H), 4.10 - 4.00 (m, 2H), 3.95 (br s, 2H), 3.86 (br s, 1H), 3.53 - 3.45 (m, 2H), 1.42 (s, 9H). LCMS: m / z= 450.2 [M+Na] + .
[0169] Reference Example 10: Fragment B-12 [ka]
[0170] Step 1: Synthesis of B-12-2 B-12-1 (15 g, 74.24 mmol, 1 eq) was dissolved in water (113 mL) and hydrochloric acid (75 mL) and stirred until homogeneous. At 0 °C, an aqueous solution (75 mL) of sodium nitrite (6.15 g, 89.09 mmol, 1.2 eq) was added dropwise to the reaction mixture and stirred for 0.5 h until complete dissolution. An aqueous solution (150 mL) of potassium iodide (24.65 g, 148.48 mmol, 2 eq) was added to the reaction mixture and stirred for 4 h at 0 °C. 200 mL of ethyl acetate was added to separate the organic phase. The organic phase was washed with 200 mL of saturated sodium sulfite, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to obtain B-12-2. LCMS: m / z = 313.0 [M+1] + .
[0171] Step 2: Synthesis of B-12-3 B-12-2 (20.8 g, 66.47 mmol, 1 eq), 1-fluoro-4-(1-methylethenyl)benzene (13.84 g, 81.09 mmol, 1.22 eq), cesium carbonate (64.97 g, 199.41 mmol, 3 eq), and chloro[(tri-tert-butylphosphine)-2-(2-aminobiphenyl)]palladium(II) (3.41 g, 6.65 mmol, 0.1 eq) were dissolved in toluene (125 mL). The atmosphere was purged with nitrogen three times and the reaction mixture was stirred at 120 °C for 16 h. The reaction mixture was washed with ethyl acetate (100 mL × 3) and 100 mL of water. The organic phase was dried over saturated anhydrous sodium sulfate and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether) to obtain B-12-3. LCMS: m / z= 355.0 [M+1] + .
[0172] Step 3: Synthesis of B-12-4 B-12-3 (2.85 g, 8.01 mmol, 1 eq) was dissolved in DCM (20 mL), and then boron tribromide (6.02 g, 24.04 mmol, 2.32 mL, 3 eq) was added and reacted at 20 °C for 2 hours. The reaction mixture was slowly added to 200 mL of water and separated. The organic phase was washed with saturated brine (200 mL × 3), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated under reduced pressure to give crude product B-12-4. The reaction was carried out directly to the next step without purification. LCMS: m / z = 341.0 [M+1] + .
[0173] Step 4: Synthesis of B-12-5 B-12-4 (2.96 g, 8.67 mmol, 1 eq) was dissolved in formic acid (30 mL), heated to 120 °C, and reacted for 16 hours. 40 mL of water and 40 mL of ethyl acetate were added to the reaction mixture, and the mixture was separated. The organic phase was washed with saturated brine, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether) to obtain B-12-5. LCMS: m / z = 341.0 [M+1] + .
[0174] Step 5: Synthesis of B-12 B-12-5 (1.1 g, 3.22 mmol, 1 eq) and B-3-7 (1.05 g, 3.38 mmol, 1.05 eq) were dissolved in 1,4-dioxane (22 mL) and water (2.2 mL). Next, [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (117.81 mg, 161.00 μmol, 0.05 eq) and potassium carbonate (890.08 mg, 6.44 mmol, 2 eq) were added sequentially. The reaction mixture was purged with nitrogen gas three times, heated to 120 °C, and reacted for 16 h. 30 mL of water and 30 mL of ethyl acetate were added to the reaction mixture. The resulting organic phase was washed with saturated brine, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give the crude product. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 5:1) to give B-12. LCMS: m / z = 444.2 [M+1]+ .
[0175] Reference Example 11: Fragment B-13 [ka]
[0176] Step 1: Synthesis of B-13-2 B-13-1 (20 g, 98.99 mmol, 1 eq) was dissolved in water (150 mL) and hydrochloric acid (100 mL) and stirred until homogeneous. A solution of sodium nitrite (8.20 g, 118.78 mmol, 1.2 eq) in water (100 mL) was added dropwise to the reaction mixture at 0 °C and stirred for 0.5 h until complete dissolution. A solution of potassium iodide (32.86 g, 197.97 mmol, 2 eq) in water (200 mL) was added to the reaction mixture and stirred at 0 °C for 4 h. 200 mL of ethyl acetate was added to separate the organic phase. The organic phase was washed with 200 mL of saturated sodium sulfite, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 10:1) to obtain B-13-2. LCMS: m / z = 313.0 [M+1] + .
[0177] Step 2: Synthesis of B-13-3 B-13-2 (83.09 mmol, 1 eq), 1-fluoro-4-(1-methylethenyl)benzene (17.29 g, 101.36 mmol, 1.22 eq), bis(triphenylphosphine)palladium(II) dichloride (5.83 g, 8.31 mmol, 0.1 eq), and sodium acetate (20.45 g, 249.26 mmol, 3 eq) were dissolved in DMF (420 mL). The atmosphere was purged with nitrogen gas three times, and the reaction mixture was stirred at 120 °C for 16 h. The reaction mixture was washed with ethyl acetate (400 mL) and 400 mL of water. The organic phase was dried over saturated anhydrous sodium sulfate and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether) to obtain B-13-3. LCMS: m / z = 355.0 [M+1] +.
[0178] Step 3: Synthesis of B-13-4 B-13-3 (4.65 g, 13.08 mmol, 1 eq) was dissolved in DCM (93 mL), and then boron tribromide (9.83 g, 39.23 mmol, 3.78 mL, 3 eq) was added and reacted at 25 °C for 3 hours. The reaction mixture was slowly added to 110 mL of water and separated. The organic phase was washed with saturated brine (100 mL × 3), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated under reduced pressure to give crude product B-13-4. The reaction mixture was directly used in the next step without purification. LCMS: m / z = 341.0 [M+1] + .
[0179] Step 4: Synthesis of B-13-5 B-13-4 (4.7 g, 13.76 mmol, 1 eq) was dissolved in formic acid (47 mL), heated to 110 °C, and reacted for 16 hours. 50 mL of water and 50 mL of ethyl acetate were added to the reaction system, and 1 M lithium hydroxide was added to adjust the pH to 7, followed by phase separation. The separated organic phase was washed with saturated brine, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether) to obtain B-13-5. LCMS: m / z = 341.0 [M+1] + .
[0180] Step 5: Synthesis of B-13 B-13-5 (2.9 g, 8.49 mmol, 1 eq) and B-3-7 (2.63 g, 8.49 mmol, 1 eq) were dissolved in 1,4-dioxane (30 mL) and water (3.0 mL). Next, [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (310.59 mg, 424.50 μmol, 0.05 eq) and potassium carbonate (2.35 g, 16.98 mmol, 2 eq) were added sequentially. The reaction mixture was purged with nitrogen gas three times, heated to 120 °C, and reacted for 16 h. 40 mL of water and 40 mL of ethyl acetate were added to the reaction mixture. The resulting organic phase was washed with saturated brine, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 5:1) to obtain B-13. LCMS: m / z= 444.2 [M+1] + .
[0181] Example 1 [ka]
[0182] Synthesis scheme: [ka]
[0183] Step 1: Synthesis of compound 001-1 To a dried reaction flask, B-3 (0.3 g, 699.45 μmol, 1 eq), methanol (6 mL), and chlorotris(triphenylphosphine)rhodium(I) (64.71 mg, 69.95 μmol, 0.1 eq) were added sequentially. The mixture was stirred under a hydrogen gas atmosphere (60 °C, 50 psi) for 12 hours. The reaction solution was filtered through diatomaceous earth, the cake was washed with methanol (3 mL × 3), and the resulting filtrate was concentrated to give crude product 001-1. LCMS: m / z = 431.1 [M+1] + .
[0184] Step 2: Synthesis of compound 001-2 Trifluoroacetic acid (2.33 g, 20.42 mmol, 1.51 mL, 20 eq) was added to a solution of 001-1 (440 mg, 1.02 mmol, 1 eq) in dichloromethane (4 mL), and the mixture was allowed to react at 25° C. for 15 minutes. The reaction solution was directly concentrated to give the trifluoroacetate salt of crude product 001-2. LCMS: m / z = 331.1 [M+1] + .
[0185] Step 3: Synthesis of compound 001-3 A dried reaction flask was charged with 001-2 (50.00 mg, crude TFA salt), B-2 (38.54 mg, 120.92 μmol, 0.8 eq), potassium carbonate (83.56 mg, 604.60 μmol, 4.00 eq), and acetonitrile (2 mL). The mixture was heated to 60 °C and stirred for 10 h. Water (10 mL) was added to dilute the reaction solution, which was then extracted with ethyl acetate (10 mL × 3). After separation, the organic phase was collected, washed sequentially with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated under reduced pressure to give crude product 001-3. LCMS: m / z = 627.1 [M+1] + .
[0186] Step 4: Synthesis of Compound 001 001-3 (80 mg, 130.48 μmol, 1 eq), methanol (1 mL), tetrahydrofuran (1 mL), water (1 mL), and lithium hydroxide monohydrate (16.43 mg, 391.45 μmol, 3 eq) were sequentially added to a reaction flask and stirred at 20°C for 6 hours. The reaction solution was concentrated under reduced pressure and then purified by preparative high-performance liquid chromatography (method: chromatography column: Waters Xbridge BEH C18 100 × 30 mm × 10 μm; mobile phase: [water (aqueous ammonia + ammonium bicarbonate)-acetonitrile]; B (acetonitrile): 10% to 45%) to obtain compound 001. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-G (Waters UPCC with PDA); chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: B content increased from 5% to 50% in 0.2 min and maintained for 2 min, then decreased from 50% to 5% in 2.2 min) showed a retention time of compound 001: 1.422 min, ee=100%. 1 H NMR (400 MHz, CD3OD) δ ppm ppm 8.67 - 8.56 (m, 1H), 7.94 - 7.87 (m, 1H), 7.68 (br d, J = 8.4 Hz, 1H), 6.87 - 6.72 (m, 3H), 5.27 - 5.22 (m, 2H), 4.74 - 4.68 (m, 3H), 4.50 - 4.43 (m, 1H), 4.15 - 4.07 (m, 2H), 3.35 - 3.31 (m, 1H), 3.27 - 3.20 (m, 1H), 2.87 - 2.80 (m, 2H), 2.64 - 2.50 (m, 3H), 2.07 - 1.92 (m, 6H). LCMS: m / z= 599.1 [M+1] + .
[0187] Compound 001' was synthesized using compound B-4 as the starting material, following the synthesis method of steps 1 to 4 in Example 1. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-G (Waters UPCC with PDA); chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: the content of B increased from 5% to 50% in 0.2 minutes and maintained for 2 minutes, then decreased from 50% to 5% in 2.2 minutes) showed that the retention time of compound 001 was 1.030 min, ee=100%. 1 H NMR (400 MHz, CD3OD) δ ppm 8.72 - 8.51 (m, 1H), 8.00 - 7.79 (m, 1H), 7.66 (d, J = 8.5 Hz, 1H), 6.91 - 6.66 (m, 4H), 5.29 - 5.15 (m, 2H), 4.50 - 4.35 (m, 3H), 4.22 - 4.06 (m, 3H), 3.77 (s, 1H), 3.64 (s, 1H), 2.94 - 2.74 (m, 3H), 2.71 - 2.57 (m, 3H), 2.54 - 2.42 (m, 1H), 1.97 - 1.85 (m, 3H). LCMS: m / z= 599.1 [M+1] + .
[0188] Example 2 [ka]
[0189] Synthesis scheme: [ka]
[0190] Step 1: Synthesis of compound 002-1 A dried reaction flask was charged with 001-2 (46.00 mg, 139.05 μmol, 1 eq), B-1 (43.77 mg, 139.05 μmol, 1 eq), potassium carbonate (76.87 mg, 556.21 μmol, 4 eq), and acetonitrile (2 mL). The mixture was heated to 60 °C and stirred for 10 h. Water (10 mL) was added for dilution, and the mixture was extracted with ethyl acetate (3 × 10 mL). After separation, the organic phase was collected, washed sequentially with saturated brine (10 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified using a preparative thin-layer chromatography plate (PE:EA = 1:0 to 2:1) to give 002-1. LCMS: m / z = 609.2 [M+1] + .
[0191] Step 2: Synthesis of Compound 002 A dried reaction flask was charged with 002-1 (27.00 mg, 44.33 μmol, 1 eq), methanol (0.5 mL), tetrahydrofuran (0.5 mL), water (0.5 mL), and lithium hydroxide monohydrate (5.58 mg, 132.98 μmol, 3 eq), which was then sequentially purged with nitrogen gas and stirred at 20°C for 6 hours. The reaction solution was concentrated under reduced pressure and purified by preparative high-performance liquid chromatography (method: chromatography column: Waters Xbridge BEH C18 100 × 30 mm × 10 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; B (acetonitrile) %: 15% to 45%) to obtain compound 002. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-H (Waters UPCC with SQ Detector 2); chromatography column: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: B content increased from 5% to 50% in 0.2 min and maintained for 2 min, then decreased from 50% to 5% in 2.2 min) showed a retention time of compound 002: 1.264 min, ee=100%. 1H NMR (400 MHz, CD3OD) δ ppm 8.60 (d, J = 1.9 Hz, 1H), 7.69 - 7.65 (m, 1H), 7.61 - 7.58 (m, 1H), 7.42 (s, 1H), 6.81 - 6.67 (m, 3H), 5.17 - 5.04 (m, 1H), 4.67 - 4.52 (m, 3H), 4.39 - 4.33 (m, 1H), 4.15 - 4.01 (m, 2H), 3.57 - 3.42 (m, 2H), 2.88 - 2.79 (m, 1H), 2.73 - 2.65 (m, 1H), 2.60 - 2.51 (m, 2H), 2.43 - 2.37 (m, 1H), 2.11 (br s, 1H), 2.03 (s, 3H), 1.93 (br s, 2H), 1.65 (s, 1H). LCMS: m / z = 581.1 [M+1] + .
[0192] Compound 002' was synthesized using compound B-4 as the starting material, following the synthesis methods of steps 1 and 2 in Example 1 and step 1 and 2 in Example 2. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-H (Waters UPCC with SQ Detector 2); chromatography column: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: the content of B increased from 5% to 50% in 0.2 minutes and maintained for 2 minutes, then decreased from 50% to 5% in 2.2 minutes) showed that compound 002' had a retention time of 1.246 min and an ee of 100%. 1H NMR (400 MHz, CD3OD) δ ppm 8.68 (d, J = 2.4 Hz, 1H), 7.97 - 7.92 (m, 1H), 7.78 - 7.70 (m, 2H), 6.93 - 6.85 (m, 1H), 6.79 - 6.78 (m, 1H), 6.82 - 6.78 (m, 1H), 5.38 - 5.20 (m, 1H), 4.79 - 4.61 (m, 4H), 4.53 - 4.47 (m, 1H), 4.27 (br d, J = 2.1 Hz, 2H), 3.46 (br d, J = 11.6 Hz, 1H), 2.94 - 2.75 (m, 4H), 2.62 - 2.53 (m, 1H), 2.09 (s, 4H), 1.99 - 1.98 (m, 1H), 2.04 - 1.96 (m, 2H). LCMS: m / z = 581.1 [M+1] + .
[0193] Example 3 [ka]
[0194] Synthesis scheme: [ka]
[0195] Step 1: Synthesis of Entity 003-1 B-5 (100 mg, 231.53 μmol, 1 eq) was dissolved in dichloromethane (1 mL), and then trifluoroacetic acid (0.2 mL) was added and stirred at 20° C. for 1 hour. The reaction solution was directly concentrated under reduced pressure to give the crude trifluoroacetate salt of 003-1, which was used directly in the next step. LCMS: m / z = 332.1 [M+1] + .
[0196] Step 2: Synthesis of compound 003-2 To a dried reaction flask, 003-1 (77.00 mg, crude trifluoroacetate salt), B-1 (54.37 mg, 172.72 μmol, 1 eq), potassium carbonate (143.23 mg, 1.04 mmol, 6 eq), and acetonitrile (2 mL) were sequentially added, heated to 60 °C, and stirred for 10 h. Water (10 mL) was added to the reaction mixture, followed by extraction with ethyl acetate (10 mL × 3). After separation, the organic phase was collected and washed with saturated brine solution (10 mL × 3), dried over anhydrous sodium sulfate, and concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified using a silica gel plate for thin-layer chromatography (petroleum ether:ethyl acetate = 2:1) to obtain 003-2. LCMS: m / z = 610.2 [M+1] + .
[0197] Step 3: Synthesis of Compound 003 003-2 (60 mg, 98.34 μmol, 1 eq) was dissolved in tetrahydrofuran (0.5 mL), methanol (0.5 mL), and water (0.5 mL). Lithium hydroxide monohydrate (12.38 mg, 295.02 μmol, 3 eq) was then added, and the reaction mixture was stirred at 20°C for 6 h. The reaction mixture was concentrated under reduced pressure, and the resulting crude product was purified by preparative high-performance liquid chromatography to give 003. Method: Chromatography column: Waters Xbridge BEH C18 100 × 30 mm × 10 μm; Mobile phase: [water (ammonium bicarbonate)-acetonitrile]; B (acetonitrile) %: 30% to 60%. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-H (Waters UPCC with SQ Detector 2); chromatography column: Chiralpak IG-3, 50 × 4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: B content increased from 5% to 50% in 0.2 min and maintained for 1 min, then decreased from 50% to 5% in 2.2 min) showed a retention time of 1.856 min, ee=100%. 1H NMR (400 MHz, CD3OD ) δ ppm 8.59 (d, J = 2.4 Hz, 1H), 7.87 (dd, J = 2.4, 8.5 Hz, 1H), 7.79 (s, 1H), 7.66 (dd, J = 0.6, 8.5 Hz, 1H), 6.83 - 6.71 (m, 1H), 6.56 - 6.41 (m, 2H), 5.22 (br dd, J = 2.6, 7.4 Hz, 1H), 4.74 - 4.64 (m, 2H), 4.60 - 4.54 (m, 1H), 4.43 (td, J = 6.0, 9.2 Hz, 1H), 4.02 - 3.80 (m, 2H), 3.20 (br s, 4H), 2.83 - 2.75 (m, 1H), 2.74 - 2.63 (m, 4H), 2.48 (tdd, J = 7.2, 9.1, 11.4 Hz, 1H), 2.02 (s, 3H). LCMS: m / z = 582.1 [M+1] + .
[0198] Compound B-6 was used as the starting material, and compound 003' was synthesized according to the synthesis method of steps 1 to 3 in Example 3. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-H (Waters UPCC with SQ Detector 2); chromatography column: Chiralpak IG-3, 50 × 4.6 mm ID, 3 μm; mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropylamine); gradient: the content of B increased from 5% to 50% in 0.2 minutes and maintained for 1 minute, then decreased from 50% to 5% in 2.2 minutes) showed a retention time of 1.730 min and ee=100%. 1H NMR (400 MHz, CD3OD) δ ppm 8.59 (d, J = 2.4 Hz, 1H), 7.87 (dd, J = 2.4, 8.4 Hz, 1H), 7.78 (s, 1H), 7.66 (d, J = 8.5 Hz, 1H), 6.83 - 6.70 (m, 1H), 6.49 (dd, J = 8.0, 13.3 Hz, 2H), 5.22 (dq, J = 2.8, 7.1 Hz, 1H), 4.72 - 4.63 (m, 2H), 4.61 - 4.55 (m, 1H), 4.43 (td, J = 5.9, 9.1 Hz, 1H), 3.99 - 3.82 (m, 2H), 3.19 (br s, 4H), 2.83 - 2.75 (m, 1H), 2.71 (br d, J = 4.4 Hz, 4H), 2.48 (tdd, J = 7.2, 9.1, 11.3 Hz, 1H), 2.02 (s, 3H). LCMS: m / z = 581.1 [M+1] + .
[0199] Example 4
change
[0200] Synthetic スキーム:
change
[0201] To a dried reaction flask, 002 (150 mg, 0.26 mmol, 1 eq), dichloromethane (12.0 mL), HATU (147.2 mg, 0.39 mmol, 1.5 eq), and DIPEA (157.6 μL, 0.91 mmol, 3.5 eq) were sequentially added, and the reaction solution was stirred at 24 °C for 0.5 h. Then, methoxyamine hydrochloride (32.4 mg, 0.26 mmol, 1.5 eq) was added, and the mixture was stirred at 24 °C for 0.5 h. Water (10 mL) was added to the reaction solution, and the mixture was extracted with dichloromethane (10 mL × 3). After separation, the organic phase was collected, washed with saturated brine solution (10 mL × 2), dried over anhydrous sodium sulfate, and concentrated under reduced pressure to obtain the crude product. The crude product was purified by thin-layer chromatography on a silica gel plate (dichloromethane:methanol = 20:1) and preparative high-performance liquid chromatography (HPLC) using a Waters Xbridge BEH C18 100 × 30 mm × 10 μm column; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile): 30% to 60% to obtain 004. 1 H NMR (400 MHz, CDCl3) δ ppm 8.61 - 8.53 (m, 1H), 7.70 - 7.62 (m, 2H), 7.58 - 7.52 (m, 1H), 6.79 - 6.72 (m, 1H), 6.71 - 6.63 (m, 2H), 5.30 (s, 3H), 5.22 - 5.12 (m, 1H), 4.64 - 4.57 (m, 1H), 4.55 - 4.44 (m, 2H), 4.42 - 4.34 (m, 1H), 3.82 (s, 3H), 3.79 - 3.74 (m, 1H), 3.62 - 3.54 (m, 2H), 3.06 - 3.02 (m, 2H), 2.97 - 2.93 (m, 1H), 2.99 - 2.92 (m, 1H), 2.91 - 2.82 (m, 1H), 2.78 - 2.66 (m, 2H), 2.49 - 2.41 (m, 1H), 2.30 - 2.12 (m, 2H). LCMS: m / z = 610.2 [M+1] + .
[0202] Example 5 [ka]
[0203] Synthesis scheme: [ka]
[0204] To a dried reaction flask, 002 (145.8 mg, 0.24 mmol, 1 eq), dichloromethane (12.0 mL), HATU (139.5 mg, 0.36 mmol, 1.5 eq), and DIPEA (277.0 μL, 1.59 mmol, 6.5 eq) were added sequentially, and the reaction solution was stirred at 24 °C for 0.5 h. Hydroxylamine hydrochloride (25.5 mg, 0.24 mmol, 1.5 eq) was then added, and the mixture was stirred at 24 °C for 0.5 h. Water (10 mL) was added to the reaction solution, and the mixture was extracted with dichloromethane (10 mL × 3). After separation, the organic phase was collected, washed with saturated brine solution (10 mL × 2), dried over anhydrous sodium sulfate, and then concentrated under reduced pressure to obtain the crude product. The crude product was purified by thin-layer chromatography on a silica gel plate (dichloromethane:methanol = 10:1) and preparative high-performance liquid chromatography (HPLC) using a Waters Xbridge BEH C18 100 × 30 mm × 10 μm column; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile): 30% to 60%. 005 was obtained. 1H NMR (400 MHz, CDCl3) δ ppm 8.62 (d, J = 2.0 Hz, 1H), 7.72 (dd, J = 2.0, 8.0 Hz, 1H), 7.65 (dd, J = 2.0, 8.0 Hz, 1H), 7.31 (s, 1H), 6.80 (q, J = 8.0 Hz, 1H), 6.75 (q, J = 8.0 Hz, 2H), 5.22 - 5.12 (m, 1H), 4.90 - 4.82 (m, 1H), 4.70 - 4.60 (m, 2H), 4.41 - 4.31 (m, 2H), 2.95 - 2.88 (m, 1H), 2.78 - 2.74 (m, 1H), 2.52 - 2.47 (m, 1H), 2.32 - 2.17 (m, 2H), 2.08 (s, 3H), 2.01 - 1.96 (m, 2H), 1.62 - 1.47 (m, 3H), 1.20 - 1.17 (m, 2H).
[0205] Example 6
change
[0206] Synthetic スキーム:
change
change
[0207] ステップ1:Synthesis of compound 006-1 Under an argon atmosphere, Pd / C (5.0 g, 13.21 mmol, 10% content, 1 eq) was added, followed by B-8 (5.25 g, 13.21 mmol, 1 eq) and 60 mL of methanol. The reaction mixture was stirred under a hydrogen atmosphere (50 °C, 45 psi) for 12 hours. The reaction mixture was filtered, and the filtrate was concentrated. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 4:1) to obtain 006-1. LCMS: m / z = 400.2 [M+1] + .
[0208] Step 2: Synthesis of compound 006-2 006-1 (1.0 g, 2.50 mmol, 1 eq) was dissolved in 10 mL of dichloromethane, and then trifluoroacetic acid (25.03 mmol, 1.85 mL, 10 eq) was added dropwise. The reaction solution was stirred at 24 °C for 2 hours. Saturated sodium bicarbonate was added to the reaction solution to adjust the pH to approximately 7, and the mixture was extracted with dichloromethane (50 mL x 2). The combined organic phase was washed with 20 mL of water, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (dichloromethane:methanol = 1:0 to 10:1) to obtain 006-2. LCMS: m / z = 299.9 [M+1] + .
[0209] Step 3: Synthesis of compound 006-3 006-2 (0.1 g, 0.33 mmol, 1 eq) and B-1 (95.0 mg, 0.3 mmol, 0.9 eq) were dissolved in 1 mL of acetonitrile. Potassium carbonate (0.18 g, 1.34 mmol, 4 eq) was added, and the mixture was heated to 60 °C and stirred for 12 h. The mixture was spin-dried under reduced pressure to remove the acetonitrile. The mixture was then diluted with 10 mL of water and extracted with ethyl acetate (30 mL × 2). The organic phases were combined, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (dichloromethane:methanol = 1:0 to 10:1) to obtain 006-3.
[0210] Step 4: Synthesis of compounds 006-3-P1 and 006-3-P2 006-3 was separated and purified by preparative SFC (column model: DAICEL CHIRALPAK IC (250 mm × 30 mm × 10 μm); mobile phase: A phase: supercritical carbon dioxide, B phase: ethanol (0.2% aqueous ammonia); gradient: 35% to 35%) to obtain compounds 006-3-P1 and 006-3-P2. Chiral analytical SFC detection (column model: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm); mobile phase: A phase: supercritical carbon dioxide, B phase: ethanol (0.2% aqueous ammonia); gradient (B%): 5% to 35%) showed that compound 006-3-P1 had an Rt of 0.872 min, ee = 100%, and compound 006-3-P2 had an Rt of 1.197 min, ee = 98.4%. LCMS: m / z = 578.0 [M+1] + .
[0211] Step 5: Synthesis of Compounds 006 and 006' 006-3-P1 (0.12 g, 0.21 mmol, 1 eq), methanol (0.5 mL), tetrahydrofuran (0.5 mL), water (0.5 mL), and lithium hydroxide monohydrate (26.2 mg, 0.62 mmol, 3 eq) were sequentially added to a dried reaction flask, and the mixture was purged with nitrogen gas and stirred at 28 °C for 3 hours. The reaction solution was concentrated under reduced pressure and purified by high-performance liquid chromatography (method: chromatography column: Phenomenex C18 75 × 30 mm × 3 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile): 30% to 60%) to obtain 006. 1H NMR (400 MHz, CDCl3) δ ppm 8.80 (br s, 1 H), 7.36 - 7.61 (m, 2 H), 6.62 - 6.80 (m, 3 H), 5.07 (br s, 1 H), 4.53 (br s, 2 H), 4.32 (br s, 1 H), 3.94 (s, 3 H), 3.86 - 4.14 (m, 2 H), 3.39 (br s, 4 H), 2.78 (br s, 1 H), 2.63 (br s, 1 H), 2.32 - 2.51 (m, 2 H), 2.08 (s, 3 H), 1.94 (br s, 4 H). LCMS: m / z = 550.3 [M+1] + .
[0212] Compound 006-3-P2 was used as a starting material and synthesized according to the synthesis method in Step 5 of Example 6 to obtain compound 006'. 1 H NMR (400 MHz, CDCl3) δ ppm 8.81 (br s, 1 H), 7.36 - 7.61 (m, 2 H), 6.62 - 6.80 (m, 3 H), 5.05 (br s, 1 H), 4.53 (br s, 2 H), 4.32 (br s, 1 H), 3.94 (s, 3 H), 3.86 - 4.15 (m, 2 H), 3.39 (br s, 4 H), 2.76 (br s, 1 H), 2.61 (br s, 1 H), 2.32 - 2.51 (m, 2 H), 2.06 (s, 3 H), 1.92 (br s, 4 H). LCMS: m / z = 550.3 [M+1] + .
[0213] Example 7 [ka]
[0214] Synthesis scheme: [ka] [ka]
[0215] Step 1: Synthesis of compound 007-1 Under an argon atmosphere, Pd / C (5.0 g, 13.21 mmol, 10% content, 1 eq) was added, followed by B-9 (5.29 g, 13.21 mmol, 1 eq) and 60 mL of methanol. The reaction mixture was stirred under a hydrogen atmosphere at 50 °C and 45 psi for 12 hours. The reaction mixture was filtered, and the filtrate was concentrated. The crude product was purified by column chromatography (petroleum ether:ethyl acetate = 1:0 to 6:1) to obtain 007-1. LCMS: m / z = 403.2 [M+1] + .
[0216] Step 2: Synthesis of compound 007-2 007-1 (1.0 g, 2.50 mmol, 1 eq) was dissolved in 10 mL of dichloromethane, and then trifluoroacetic acid (25.03 mmol, 1.85 mL, 10 eq) was added dropwise. The reaction solution was stirred at 24 °C for 2 hours. Saturated sodium bicarbonate was added to the reaction solution to adjust the pH to approximately 7, and the mixture was extracted with dichloromethane (50 mL x 2). The combined organic phase was washed with 20 mL of water, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (dichloromethane:methanol = 1:0 to 20:1) to obtain 007-2. LCMS: m / z = 303.1 [M+1] + .
[0217] Step 3: Synthesis of compound 007-3 007-2 (0.1 g, 0.33 mmol, 1 eq) and B-1 (95.0 mg, 0.3 mmol, 0.9 eq) were dissolved in 1 mL of acetonitrile, followed by the addition of potassium carbonate (0.18 g, 1.34 mmol, 4 eq). The mixture was heated to 60 °C and stirred for 12 h. The mixture was evaporated to dryness under reduced pressure to remove the acetonitrile. The mixture was then diluted with 10 mL of water and extracted with ethyl acetate (30 mL × 2). The organic phases were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was evaporated to dryness under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (dichloromethane:methanol = 1:0 to 10:1) to obtain 007-3. LCMS: m / z = 581.2 [M+1] + .
[0218] Step 4: Synthesis of Compound 007-3-P1 and Compound 007-3-P2 007-3 was separated and purified by preparative SFC (column model: DAICEL CHIRALPAK IC (250 mm × 30 mm × 10 μm); mobile phase: A phase: supercritical carbon dioxide, B phase: methanol; gradient (B%): 5% to 50%) to give compounds 007-3-P1 and 007-3-P2. Chiral analytical SFC detection (column model: Chiralpak (IG-3, 50 × 4.6 mm ID, 3 μm); mobile phase: A phase: supercritical carbon dioxide, B phase: methanol; gradient (B%): 5% to 50%) gave compound 007-3-P1 with a retention time of 0.932 min and an ee value of 100%, and compound 007-3-P2 with a retention time of 1.206 min and an ee value of 97.8%, respectively.
[0219] Step 5: Synthesis of Compounds 007 and 007' 007-3-P1 (0.12 g, 0.21 mmol, 1 eq), methanol (0.5 mL), tetrahydrofuran (0.5 mL), water (0.5 mL), and lithium hydroxide monohydrate (26.2 mg, 0.62 mmol, 3 eq) were sequentially added to a dried reaction flask, purged with nitrogen gas, and stirred at 28 °C for 3 h. The reaction solution was concentrated under reduced pressure and then purified by preparative high-performance liquid chromatography (method: column: Phenomenex C18 75 × 30 mm × 3 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile): 15% to 45%) to give 007. 1 H NMR (400 MHz, CDCl3) δ ppm 8.80 (br s, 1 H), 7.36 - 7.66 (m, 2 H), 6.63 - 6.78 (m, 3 H), 5.07 (br s, 1 H), 4.18 - 4.60 (m, 4 H), 3.92 (br s, 2 H), 3.23 (br s, 1 H), 2.74 (br s, 6 H), 2.36 (br s, 2 H), 2.07 (br s, 3 H), 1.86 (br s, 2 H). LCMS: m / z = 553.2 [M+1] + .
[0220] Compound 007-3-P2 was used as a starting material and synthesized according to the synthesis method in Step 5 of Example 7 to obtain compound 007'. 1 H NMR (400 MHz, CDCl3) δ ppm 8.82 (br s, 1 H), 7.36 - 7.64 (m, 2 H), 6.63 - 6.78 (m, 3 H), 5.06 (br s, 1 H), 4.18 - 4.58 (m, 4 H), 3.93 (br s, 2 H), 3.24 (br s, 1 H), 2.74 (br s, 6 H), 2.36 (br s, 2 H), 2.05 (br s, 3 H), 1.86 (br s, 2 H). LCMS: m / z = 553.2 [M+1] + .
[0221] Example 8 [ka]
[0222] Synthesis scheme: [ka] [ka]
[0223] Step 1: Synthesis of 008-1-P1 and 008-1-P2 Compounds 008-1-P1 and 008-1-P2 were obtained by chiral separation B-10 [separation method: chromatography column: DAICEL CHIRALCEL OJ (250 mm × 30 mm, 10 μm); mobile phase: phase A: supercritical carbon dioxide, phase B: methanol; gradient (B%): 30% to 30%].
[0224] Compound 008-1-P1: Rt: 2.322 min, ee=99.92%. Detection method: Chromatography column: Chiralcel OJ-3, 150 × 4.6 mm ID, 3 μm; Mobile phase: Phase A: supercritical carbon dioxide, Phase B: methanol (0.1% isopropylamine), gradient (B%): 10% to 10%. 1H NMR (400 MHz, CDCl3) δ ppm 8.58 (s, 1H), 7.73 (dd, J = 2.1, 8.4 Hz, 1H), 7.51 (d, J = 8.4 Hz, 1H), 7.00 - 6.93 (m, 1H), 6.91 - 6.85 (m, 1H), 6.83 - 6.75 (m, 1H), 5.83 (br s, 1H), 5.27 (br d, J = 5.9 Hz, 1H), 4.61 (td, J = 1.2, 11.3 Hz, 1H), 4.17 (dd, J = 7.5, 11.3 Hz, 1H), 4.05 (br s, 2H), 3.60 (br d, J = 3.5 Hz, 2H), 2.50 (br s, 2H), 1.50 (s, 9H). LCMS: m / z=451.2 [M+ Na] + .
[0225] Compound 008-1-P2: Rt: 2.642min, ee value=98.58%, extraction method: クロマトグラフィーカラム: Chiralcel OJ-3, 150×4.6mm ID, 3μm; mobile phase: A phase: supercritical diacid carbon, B phase: メタノール (0.1% のイソプロピルアミン), blend (B%): 10%~10% であった. 1 H NMR (400 MHz, CDCl3) δ 8.57 (d, J = 2.1 Hz, 1H), 7.73 (dd, J = 2.5, 8.4 Hz, 1H), 7.51 (d, J = 8.5 Hz, 1H), 6.98 - 6.93 (m, 1H), 6.87 (t, J = 7.8 Hz, 1H), 6.82 - 6.78 (m, 1H), 5.83 (br s, 1H), 5.27 (dd, J = 2.5, 7.4 Hz, 1H), 4.61 (dd, J = 2.6, 11.3 Hz, 1H), 4.17 (dd, J = 7.5, 11.3 Hz, 1H), 4.05 (br s, 2H), 3.60 (br d, J = 3.6 Hz, 2H), 2.50 (br s, 2H), 1.50 (s, 9H). LCMS: m / z=451.2 [M+Na] + .
[0226] Step 2: Synthesis of 008-2 To a dried reaction flask, 008-1-P1 (290 mg, 676.14 μmol, 1 eq), methanol (30 mL), and chlorotris(triphenylphosphine)rhodium(I) (62.56 mg, 67.61 μmol, 0.1 eq) were sequentially added and stirred under a H atmosphere (60 °C, 50 psi) for 24 h. The reaction solution was filtered through diatomaceous earth, the cake was rinsed with methanol (50 mL), and the filtrate was concentrated under reduced pressure. The crude product was separated and purified using a preparative thin-layer chromatography plate (petroleum ether:ethyl acetate = 5:1) to give 008-2. 1 H NMR (400 MHz, CDCl3) δ ppm 8.58 (d, J = 2.0 Hz, 1H), 7.73 (dd, J = 2.2, 8.3 Hz, 1H), 7.51 (d, J = 8.3 Hz, 1H), 6.92 - 6.85 (m, 2H), 6.82 - 6.75 (m, 1H), 5.27 (dd, J = 2.3, 7.2 Hz, 1H), 4.61 (dd, J = 2.3, 11.2 Hz, 1H), 4.22 - 4.10 (m, 5H), 3.10 - 3.00 (m, 1H), 2.90 - 2.73 (m, 2H), 1.87 - 1.79 (m, 1H), 1.78 - 1.70 (m, 1H), 1.49 (s, 9H). LCMS: m / z=453.2 [M+Na] + .
[0227] Step 3: Synthesis of 008-3 Compound 008-2 (200 mg, 464.12 μmol, 1 eq), DCM (5 mL), and TFA (5.86 mmol, 433.79 μL, 12.62 eq) were added to a dried reaction flask, and the mixture was purged with nitrogen gas and stirred at 20° C. for 1 hour. The reaction solution was concentrated under reduced pressure, and the resulting crude trifluoroacetate salt 008-3 was used directly in the next step. LCMS: m / z=331.1 [M+H] + .
[0228] Step 4: Synthesis of 008-4 B-1 (146.07 mg, 464.02 μmol, 1 eq), 008-3 (153.5 mg, crude trifluoroacetate salt), acetonitrile (5 mL), and potassium carbonate (192.39 mg, 1.39 mmol, 3 eq) were added to a dried reaction flask and stirred at 60 °C for 12 h. Potassium carbonate (192.39 mg, 1.39 mmol, 3 eq) was added, and stirring was continued at 60 °C for 2 h. After cooling to room temperature, the mixture was quenched with water (10 mL) and extracted with ethyl acetate (3 × 10 mL). After separation, the organic phase was collected, dried sequentially with saturated brine solution (3 × 10 mL) and anhydrous sodium sulfate, and concentrated under reduced pressure to give the crude product. The crude product was separated and purified using preparative thin-layer chromatography (petroleum ether:ethyl acetate = 1:1) to give 008-4. 1 H NMR (400 MHz, CDCl3) δ ppm 8.57 (d, J = 2.4 Hz, 1H), 7.78 - 7.69 (m, 2H), 7.54 - 7.48 (m, 1H), 6.96 - 6.76 (m, 2H), 5.32 - 5.13 (m, 2H), 4.70 - 4.52 (m, 4H), 4.45 - 4.33 (m, 3H), 4.24 - 4.08 (m, 2H), 3.87 - 3.77 (m, 2H), 3.07 - 2.88 (m, 3H), 2.81 - 2.68 (m, 1H), 2.59 - 2.40 (m, 1H), 2.36 - 2.18 (m, 2H), 1.94 - 1.63 (m, 4H), 1.39 (br t, J = 7.0 Hz, 3H). LCMS: m / z=609.2 [M+H] + .
[0229] Step 5: Synthesis of 008 A dried reaction flask was charged with 008-4 (180 mg, 295.50 μmol, 1 eq), tetrahydrofuran (4 mL), methanol (4 mL), water (4 mL), and sodium hydroxide (130.02 mg, 3.25 mmol, 11 eq) in that order, followed by stirring at 20 °C for 4 h. The reaction mixture was adjusted to pH 2-3 with 2N aqueous hydrochloric acid and extracted with ethyl acetate (3 × 10 mL). After separation, the organic phase was collected, washed sequentially with saturated brine (3 × 10 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give the crude product. The crude product was isolated and purified by preparative HPLC (chromatography column: Phenomenex C18 80 × 40 mm × 3 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; B%: 20%-40%, 8 min) to give compound 008. Rt: 1.215 min, ee=97.1%, Analytical method: Chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; Mobile phase: A: CO2, B phase: methanol (0.1% isopropylamine); Gradient (B%): 5% to 50%. 1 H NMR (400 MHz, CDCl3) δ ppm 8.57 (s, 1H), 7.72 (dd, J = 1.6, 8.4 Hz, 1H), 7.50 (br d, J = 8.3 Hz, 1H), 7.33 (br s, 1H), 6.93 - 6.77 (m, 3H), 5.26 (br d, J = 5.1 Hz, 1H), 5.15 - 5.03 (m, 1H), 4.76 - 4.48 (m, 4H), 4.43 - 4.29 (m, 1H), 4.18 (br dd, J = 7.3, 10.9 Hz, 2H), 4.07 (br d, J = 12.8 Hz, 1H), 3.69 - 3.56 (m, 2H), 3.15 - 2.93 (m, 1H), 2.77 - 2.53 (m, 3H), 2.47 - 2.32 (m, 1H), 2.08 - 1.83 (m, 4H). LCMS: m / z =581.1 [M+H] + .
[0230] Using 008-1-P2 as the starting material, compound 008' was obtained by referring to steps 2 to 5 of Example 8. Rt: 1.750 min, ee=100%, analytical method: Chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B phase: methanol (0.1% isopropylamine); gradient (B%): 5% to 50%. 1 H NMR (400 MHz, CDCl3) δ 8.57 (d, J = 1.8 Hz, 1H), 7.72 (dd, J = 2.0, 8.4 Hz, 1H), 7.50 (d, J = 8.4 Hz, 1H), 7.29 (s, 1H), 6.92 - 6.78 (m, 3H), 5.26 (br d, J = 5.7 Hz, 1H), 5.12 - 5.02 (m, 1H), 4.77 - 4.65 (m, 1H), 4.65 - 4.49 (m, 3H), 4.43 - 4.32 (m, 1H), 4.28 - 4.05 (m, 3H), 3.79 - 3.55 (m, 2H), 3.12 - 2.97 (m, 1H), 2.74 - 2.55 (m, 3H), 2.47 - 2.30 (m, 1H), 2.12 - 1.85 (m, 4H). LCMS: m / z =581.1 [M+H] + .
[0231] Example 9 [ka]
[0232] Synthesis scheme: [ka]
[0233] Step 1: Synthesis of 009-1-P1 and 009-1-P2 B-11 was separated by chiral HPLC (chromatographic column: DAICEL CHIRALCEL OJ (250 mm × 30 mm, 10 μm); mobile phase: A phase: supercritical carbon dioxide, B phase: methanol, gradient (B%): 35% to 35%) to give 009-1-P1 and 009-1-P2.
[0234] Compound 009-1-P1 was detected by chiral analytical SFC (method: chromatography column: Chiralcel OJ-3, 150 × 4.6 mm ID, 3 μm; mobile phase: A: supercritical carbon dioxide, B: methanol (0.1% isopropanol)), with a retention time of 3.094 min and an ee of 100%. 1 H NMR (400 MHz,CDCl3) δ ppm 7.45 - 7.34 (m, 4H), 6.95 - 6.90 (m, 1H), 6.86 (t, J = 7.8 Hz, 1H), 6.81 - 6.77 (m, 1H), 5.84 (br s, 1H), 5.11 (dd, J = 2.1, 8.7 Hz, 1H), 4.38 (dd, J = 2.3, 11.4 Hz, 1H), 4.07 (br s, 2H), 3.97 (dd, J = 8.9, 11.4 Hz, 1H), 3.62 (br s, 2H), 2.52 (br s, 2H), 1.50 (s, 9H). LCMS: m / z= 450.2 [M+Na] + .
[0235] Compound 009-1-P2 was purified by chiral analytical SFC detection (method: chromatography column: Chiralcel OJ-3, 150 × 4.6 mm ID, 3 μm; mobile phase: A: supercritical carbon dioxide, B: methanol (0.1% isopropanol), gradient (B%): 35% to 35%), retention time: 3.754 min, ee = 100%. 1H NMR (400 MHz, CDCl3) δ ppm 7.43 - 7.35 (m, 4H), 6.94 - 6.90 (m, 1H), 6.86 (t, J = 7.8 Hz, 1H), 6.81 - 6.77 (m, 1H), 5.84 (br s, 1H), 5.11 (dd, J = 2.2, 8.8 Hz, 1H), 4.38 (dd, J = 2.4, 11.5 Hz, 1H), 4.06 (br s, 2H), 3.97 (dd, J = 8.8, 11.4 Hz, 1H), 3.67 - 3.56 (m, 2H), 2.52 (br s, 2H), 1.50 (s, 9H). LCMS: m / z= 450.2 [M+Na] + .
[0236] Step 2: Synthesis of 009-2 009-1-P1 (260 mg, 607.59 μmol, 1 eq) and chlorotris(triphenylphosphine)rhodium(I) (56.22 mg, 60.76 μmol, 0.1 eq) were dissolved in methanol (26 mL) and stirred under a H atmosphere (60 °C, 50 psi) for 24 hours. The reaction solution was filtered through diatomaceous earth, the cake was rinsed with dichloromethane (10 mL), and the resulting filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified using a preparative thin-layer chromatography plate (petroleum ether:ethyl acetate = 5:1) to give 009-2. 1H NMR (400 MHz, CDCl3) δ ppm 7.31 (q, J = 8.5 Hz, 4H), 6.79 (d, J = 4.5 Hz, 2H), 6.71 (br d, J = 4.6 Hz, 1H), 5.03 (dd, J = 1.9, 8.7 Hz, 1H), 4.36 - 4.26 (m, 1H), 4.16 (br d, J = 1.6 Hz, 1H), 3.89 (dd, J = 8.9, 11.3 Hz, 1H), 3.42 (s, 1H), 3.04 - 2.90 (m, 1H), 2.87 - 2.62 (m, 2H), 1.82 - 1.66 (m, 2H), 1.54 (dt, J = 3.9, 12.8 Hz, 2H), 1.47 - 1.28 (m, 9H). LCMS: m / z= 452.2 [M+Na] + .
[0237] Step 3: Synthesis of 009-3 Compound 009-2 (0.22 g, 0.51 mmol, 1 eq), dichloromethane (2 mL), and trifluoroacetic acid (14.86 mmol, 1.1 mL, 29.03 eq) were added to a dried reaction flask, and the mixture was purged with nitrogen gas and stirred at 20° C. for 1 hour. Concentration under reduced pressure gave crude trifluoroacetate salt 009-3, which was directly used in the next step. LCMS: m / z= 330.2 [M+1] + .
[0238] Step 4: Synthesis of 009-4 B-1 (161.08 mg, 511.70 μmol, 1 eq), 009-3 (168.77 mg of the trifluoroacetate salt crude product), and potassium carbonate (212.17 mg, 1.54 mmol, 3 eq) were dissolved in acetonitrile (5 mL), heated to 60 °C, and stirred for 3 h. Water (10 mL) was added to quench the reaction, followed by extraction with ethyl acetate (3 × 10 mL). After separation, the organic phase was collected, washed sequentially with saturated brine solution (10 mL), dried over anhydrous sodium sulfate, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified using a preparative thin-layer chromatography plate (dichloromethane:methanol = 20:1) to obtain 009-4. 1 H NMR (400 MHz, CDCl3) δ ppm 7.75 (s, 1H), 7.43 - 7.34 (m, 4H), 6.88 - 6.84 (m, 2H), 6.80 (br d, J = 4.5 Hz, 1H), 5.25 - 5.16 (m, 1H), 5.12 - 5.07 (m, 1H), 4.70 - 4.61 (m, 1H), 4.56 (br d, J = 3.5 Hz, 2H), 4.44 - 4.33 (m, 4H), 3.96 (dd, J = 9.0, 11.4 Hz, 1H), 3.82 (br s, 1H), 3.02 - 2.92 (m, 2H), 2.80 - 2.70 (m, 1H), 2.50 - 2.41 (m, 1H), 2.34 - 2.21 (m, 2H), 1.71 - 1.62 (m, 6H), 1.40 - 1.35 (m, 3H). LCMS: m / z= 608.2 [M+1] + .
[0239] Step 5: Synthesis of 009 009-4 (200 mg, 328.87 μmol, 1 eq) was dissolved in THF (1 mL), MeOH (1 mL), and HO (1 mL). Lithium hydroxide monohydrate (41.40 mg, 986.61 μmol, 3 eq) was then added and the mixture was allowed to react at 20°C for 36 h. The pH of the reaction solution was adjusted to 2-3 with 2N aqueous hydrochloric acid, and the mixture was extracted with ethyl acetate (3 × 5 mL). After separation, the organic phase was collected, washed sequentially with saturated brine (3 × 50 mL), dried over anhydrous sodium sulfate, and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by preparative HPLC (chromatography column: Waters Xbridge BEH C18 100 × 30 mm × 10 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; B%: 40%-60%) to obtain 009. Chiral analytical SFC detection (Method: Chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; Mobile phase: A: CO, B: MeOH (0.1% isopropanol), Gradient (B%): 5% to 50%) showed Rt: 1.373 min, ee = 100%. 1 H NMR (400 MHz, CDCl3) δ ppm 7.41 - 7.35 (m, 4H), 7.32 (s, 1H), 6.86 - 6.82 (m, 3H), 5.09 (br d, J = 7.8 Hz, 2H), 4.69 (br dd, J = 4.8, 14.9 Hz, 1H), 4.59 - 4.52 (m, 2H), 4.38 (br d, J = 10.1 Hz, 2H), 4.28 - 4.17 (m, 1H), 4.14 - 4.05 (m, 1H), 4.00 - 3.91 (m, 1H), 3.76 - 3.66 (m, 1H), 3.64 - 3.54 (m, 1H), 3.17 - 2.96 (m, 1H), 2.78 - 2.54 (m, 3H), 2.49 - 2.31 (m, 1H), 2.13 - 1.86 (m, 4H). LCMS: m / z= 580.1 [M+1] + .
[0240] Using 009-1-P2 as the starting material, compound 009' was obtained by referring to steps 2 to 5 of Example 9. Rt: 1.914 min, ee=100%, analytical method: Chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B phase: methanol (0.1% isopropylamine); gradient (B%): 5% to 50%. 1 H NMR (400 MHz, CDCl3) δ ppm 7.38 (q, J = 8.3 Hz, 4H), 7.32 (s, 1H), 6.89 - 6.79 (m, 3H), 5.09 (br d, J = 7.4 Hz, 2H), 4.76 - 4.66 (m, 1H), 4.63 - 4.50 (m, 2H), 4.45 - 4.34 (m, 2H), 4.28 - 4.19 (m, 1H), 4.17 - 4.08 (m, 1H), 3.96 (dd, J = 9.1, 11.0 Hz, 1H), 3.73 - 3.70 (m, 1H), 3.64 - 3.61 (m, 1H), 3.13 - 3.00 (m, 1H), 2.75 - 2.61 (m, 3H), 2.47 - 2.33 (m, 1H), 2.17 - 1.89 (m, 4H). LCMS: m / z= 580.1 [M+1] + .
[0241] Example 10 [ka]
[0242] Synthesis scheme: [ka]
[0243] Step 1: Synthesis of 010-1-P1 and 010-1-P2 B-12 was separated by chiral HPLC [chromatography column: DAICEL CHIRALCEL OJ (250 mm × 30 mm, 10 μm); mobile phase: A: supercritical carbon dioxide, B: methanol, gradient (B%): 30% to 50%] to give compounds 010-1-P1 and 010-1-P2.
[0244] 010-1-P1 was purified by chiral analytical SFC detection (method: chromatographic column: Chiralcel OJ-3, 150 x 4.6 mm ID, 3 μm; A phase: supercritical carbon dioxide, B phase: methanol (0.1% isopropanol), gradient (B%): 30% to 50%), showing a retention time of 1.642 min, ee = 100%. LCMS: m / z = 444.2 [M+1] + .
[0245] Chiral analytical SFC detection of 010-1-P2 [Method: Chromatography column: Chiralcel OJ-3, 150 x 4.6 mm ID, 3 μm; Mobile phase A: supercritical carbon dioxide, B: methanol (0.1% isopropanol), Gradient (%B): 30%-50%] showed a retention time of 2.025 min, ee=100%. LCMS: m / z=444.2 [M+1] + .
[0246] Step 2: Synthesis of 010-2 010-1-P1 (550.00 mg, 1.24 mmol, 1 eq) and chlorotris(triphenylphosphine)rhodium(I) (114.63 mg, 123.89 μmol, 0.1 eq) were dissolved in methanol (10 mL) and stirred under a H atmosphere (60 °C, 50 psi) for 16 hours. The reaction solution was filtered, the cake was washed with methanol (10 mL), and the filtrate was concentrated under reduced pressure to obtain the crude product. The crude product was separated and purified by column chromatography (petroleum ether:ethyl acetate = 100:1 to 20:1) to obtain 010-2. 1H NMR (400 MHz, CDCl3) δ ppm 7.62 - 7.53 (m, 1H), 7.19 - 7.10 (m, 2H), 7.05 - 6.92 (m, 3H), 6.85 (d, J = 7.5 Hz, 1H), 4.33 - 4.25 (m, 2H), 3.44 (br d, J = 13.5 Hz, 2H), 2.99 - 2.90 (m, 2H), 1.88 (br d, J = 11.9 Hz, 2H), 1.76 (br s, 2H), 1.55 (s, 3H), 1.50 (s, 9H). LCMS: m / z= 468.1 [M+23] + .
[0247] Step 3: Synthesis of 010-3 010-2 (90.00 mg, 201.82 μmol, 1 eq) was dissolved in dichloromethane (1 mL), purged with nitrogen gas, and cooled to 0°C. Trifluoroacetic acid (0.2 mL) was added and stirred at 20°C for 1 hour. The reaction solution was directly concentrated under reduced pressure to give crude trifluoroacetate salt 010-3, which was used directly in the next step without purification. LCMS: m / z = 346.2 [M+1] + .
[0248] Step 4: Synthesis of 010-4 010-3 (69.8 mg, trifluoroacetate salt crude product) and B-1 (63.53 mg, 201.83 μmol, 1 eq) were dissolved in acetonitrile (1 mL). Potassium carbonate (111.58 mg, 807.32 μmol, 4 eq) was added, the mixture was purged with nitrogen gas, and the temperature was raised to 60 °C and stirred for 10 h. The reaction solution was diluted with water (5 mL) and extracted with ethyl acetate (3 × 5 mL). The resulting organic phase was washed with saturated brine (5 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified using a preparative thin-layer chromatography plate (PE:EA = 1:1) to give 010-4. 1H NMR (400 MHz, CDCl3) δ ppm 7.84 - 7.69 (m, 1H), 7.61 - 7.47 (m, 1H), 7.17 - 7.09 (m, 2H), 7.01 (br s, 2H), 6.89 - 6.79 (m, 1H), 5.38 - 5.22 (m, 2H), 4.68 - 4.52 (m, 3H), 4.44 - 4.37 (m, 2H), 4.18 - 4.09 (m, 1H), 3.85 (br s, 2H), 3.54 - 3.41 (m, 2H), 3.12 - 2.89 (m, 2H), 2.88 - 2.56 (m, 2H), 2.49 - 2.29 (m, 2H), 1.74 (s, 3H), 1.56 (s, 3H), 1.44 - 1.38 (m, 3H), 1.29 - 1.27 (m, 1H). LCMS: m / z= 624.2 [M+1] + .
[0249] Step 5: Synthesis of 010 010-4 (70 mg, 112.15 μmol, 1 eq) and lithium hydroxide monohydrate (14.12 mg, 336.45 μmol, 3 eq) were dissolved in methanol (0.5 mL), tetrahydrofuran (0.5 mL), and water (0.5 mL). The mixture was purged with nitrogen gas and stirred at 20°C for 6 hours. The reaction solution was concentrated under reduced pressure and then purified by preparative HPLC (method: chromatography column: Phenomenex C18 75 × 30 mm × 3 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile): 25% to 55%) to give 010. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-H (Waters UPCC with SQ Detector2); chromatography column: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A phase supercritical carbon dioxide, B phase methanol (0.1% isopropanol); gradient: B% increased from 5% to 50% in 0.2 min and maintained for 2 min, then decreased from 50% to 5% in 2.2 min), retention time: 1.264 min, ee = 100%. 1H NMR (400 MHz, CD3OD) δ ppm 7.69 - 7.59 (m, 2H), 7.27 - 7.17 (m, 2H), 7.08 - 6.99 (m, 2H), 6.83 (s, 1H), 5.32 - 5.16 (m, 1H), 4.61 (s, 4H), 4.49 - 4.40 (m, 1H), 4.25 (s, 2H), 3.54 - 3.40 (m, 3H), 3.05 - 2.94 (m, 1H), 2.88 - 2.73 (m, 3H), 2.58 - 2.44 (m, 1H), 2.19 - 1.93 (m, 4H), 1.72 (s, 3H). LCMS: m / z= 596.1 [M+1] + .
[0250] Using 010-1-P2 as the starting material, compound 010' was obtained by referring to steps 2 to 5 of Example 10. Rt: 2.155 min, ee=100%, analytical method: Chromatography column: Chiralcel OJ-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B phase: methanol (0.1% isopropylamine); gradient (B%): 5% to 50%. 1 H NMR (400 MHz, CDCl3) δ ppm 7.67 - 7.60 (m, 2H), 7.26 - 7.17 (m, 2H), 7.06 - 6.99 (m, 2H), 6.85 - 6.79 (m, 1H), 5.26 - 5.17 (m, 1H), 4.72 - 4.54 (m, 3H), 4.41 (td, J = 5.9, 9.1 Hz, 1H), 4.25 (br s, 2H), 3.55 - 3.34 (m, 4H), 3.03 - 2.92 (m, 1H), 2.87 - 2.71 (m, 3H), 2.54 - 2.43 (m, 1H), 2.22 - 1.96 (m, 4H), 1.72 (s, 3H). LCMS: m / z= 596.1 [M+1] + .
[0251] Example 11 [ka]
[0252] Synthesis scheme: [ka]
[0253] Step 1: Synthesis of 011-1 B-3 (0.4 g, 0.93 mmol, 1 eq) was dissolved in DCM (5 mL), purged with nitrogen gas, and cooled to 0° C. Trifluoroacetic acid (1.0 mL) was then added and stirred at 20° C. for 1 hour. The reaction solution was directly concentrated under reduced pressure to give crude trifluoroacetate salt 011-1, which was used directly in the next step without purification. LCMS: m / z= 329.1 [M+1] + .
[0254] Step 2: Synthesis of 011-2 011-1 (0.24 g, crude trifluoroacetate salt) and B-1 (0.13 g, 0.40 mmol, 1 eq) were dissolved in acetonitrile (2 mL). Potassium carbonate (0.22 g, 0.16 mmol, 4 eq) was added, the mixture was purged with nitrogen gas, and the mixture was heated to 60 °C and stirred for 10 hours. The reaction solution was diluted with water (10 mL) and extracted with ethyl acetate (3 × 15 mL). The resulting organic phase was washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the crude product. The crude product was separated and purified using a preparative thin-layer chromatography plate (PE:EA = 2:1) to give 011-2. LCMS: m / z = 607.2 [M+1] + .
[0255] Step 3: Synthesis of 011 011-2 (0.2 g, 0.33 mmol, 1 eq) was dissolved in methanol (1.5 mL), tetrahydrofuran (1.5 mL), and water (1.5 mL). After complete dissolution, lithium hydroxide monohydrate (69.1 mg, 1.65 mmol, 5 eq) was added and stirred at 20 °C for 3 h. The reaction solution was concentrated under reduced pressure, and then 10 mL of ethyl acetate was added. The pH was adjusted to approximately 2 with 5 mL of 1 M hydrochloric acid. The organic phase obtained by extraction was concentrated under reduced pressure to obtain the crude product. The crude product was purified by p-HPLC (method: chromatography column: Phenomenex C18 75 × 30 mm × 3 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile): 25% to 55%). The obtained fractions were lyophilized to obtain 011. 1 H NMR (400 MHz, DMSO-d6) δ ppm 8.71-8.73 (m, 1H), 7.95-8.02 (m, 1H), 7.70-7.55 (m, 2H), 6.91-6.78 (m, 3H), 6.34-6.30 (m, 1H), 5.07-4.97 (m, 1H), 5.60-4.40 (m, 4H), 4.35-4.30 (m, 1H), 3.83-3.78 (m, 1H), 3.75-3.68 (m, 1H), 2.72-2.60 (m, 4H), 2.33-2.25 (m, 3H), 2.01 (s, 3H). LCMS: m / z= 579.1 [M+1] + .
[0256] Example 12 [ka]
[0257] Synthesis scheme: [ka]
[0258] Step 1: Synthesis of 012-1-P1 and 012-1-P2 B-13 was separated by chiral HPLC (chromatographic column: DAICEL CHIRALCEL OJ (250 mm × 30 mm, 10 μm); mobile phase: A: CO , B: methanol; gradient (B%): 10% to 50%) to give 012-1-P1 and 012-1-P2.
[0259] 012-1-P1 was analyzed by chiral analytical SFC (Method: Chromatography column: Chiralpak AD-3, 150 x 4.6 mm ID, 3 μm; Mobile phase: A: CO₂, B: Ethanol (0.1% isopropanol), Gradient (B%): 10% to 50%) with a retention time of 2.027 min and an ee of 100%. LCMS: m / z = 444.2 [M+1] + .
[0260] 012-1-P2 was analyzed by chiral analytical SFC (method: chromatographic column: Chiralpak AD-3, 150 x 4.6 mm ID, 3 μm; mobile phase: A: CO₂, B: ethanol (0.1% isopropanol, gradient (B%): 10% to 50%)) with a retention time of 2.221 min and an ee of 100%. LCMS: m / z = 444.2 [M+1] + .
[0261] Step 2: Synthesis of 012-2 012-1-P1 (0.2 g, 450.51 μmol, 1 eq) was dissolved in dichloromethane (4 mL) and purged with nitrogen gas. Trifluoroacetic acid (5.40 mmol, 0.4 mL, 11.99 eq) was then added and stirred at 20° C. for 3 hours. 10 mL of saturated sodium carbonate and 5 mL of dichloromethane were added to the reaction mixture to adjust the pH of the aqueous phase to approximately 9. The reaction mixture was separated, and the organic phase was dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain 012-2. This was used directly in the next step without further purification. LCMS: m / z= 344.1 [M+1] + .
[0262] Step 3: Synthesis of 012-3 012-2 (0.15 g, 433.73 μmol, 1 eq) and B-1 (136.53 mg, 433.73 μmol, 1 eq) were dissolved in acetonitrile (4 mL), followed by the addition of potassium carbonate (179.83 mg, 1.30 mmol, 3 eq). The mixture was purged with nitrogen gas, heated to 60°C, and stirred for 2 hours. The reaction mixture was filtered, the cake was washed with 10 mL of ethyl acetate, and the filtrate was concentrated under reduced pressure to give crude product 012-3. LCMS: m / z = 622.2 [M+1] + .
[0263] Step 4: Synthesis of 012 012-3 (0.15 g, 241.10 μmol, 1 eq) and lithium hydroxide monohydrate (50.58 mg, 1.21 mmol, 5 eq) were dissolved in methanol (3.0 mL), tetrahydrofuran (3.0 mL), and water (1.0 mL), and the mixture was purged with nitrogen gas and stirred at 20° C. for 6 hours. The reaction mixture was concentrated under reduced pressure to remove the solvent, 10 mL of ethyl acetate was added, and the pH was adjusted to approximately 3 with 1 M HCl. The organic phase was concentrated under reduced pressure to obtain the crude product, which was separated and purified by preparative HPLC (chromatographic column: Phenomenex Luna C18 75 × 30 mm × 3 μm; mobile phase: [water (formic acid)-acetonitrile]; gradient (acetonitrile)%: 45% to 85%) and further separated by preparative HPLC (chromatographic column: Waters Xbridge BEH C18 100 × 30 mm × 10 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile)%: 30% to 60%) to obtain 012. Chiral analytical SFC detection (instrument: CAS-TJ-ANA-SFC-H (Waters UPCC with SQ Detector2); chromatography column: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B: ethanol (0.1% isopropanol); gradient: B content increased from 5% to 50% in 0.2 min and maintained for 2 min, then decreased from 50% to 5% in 2.2 min) showed a retention time of 1.142 min, ee = 100%. 1H NMR (400 MHz, DMSO-d4) δ ppm 7.76 (s, 1H), 7.55 - 7.43 (m, 2H), 7.27 - 7.23 (m, 1H), 7.21 - 7.13 (m, 1H), 6.82 - 6.76 (m, 2H), 5.82 - 5.76 (m, 1H), 5.02 - 4.97 (m, 1H), 4.67 - 4.59 (m, 1H), 4.47 - 4.35 (m, 2H), 4.31 - 4.25 (m, 1H), 3.81 - 3.72 (m, 2H), 3.14 - 3.08 (m, 2H), 2.62 - 2.56 (m, 4H), 2.45 - 2.32 (m, 4H), 1.70 (s, 3H). LCMS: m / z= 594.2 [M+1] + .
[0264] Using 012-1-P2 as the starting material, compound 012' was obtained by following steps 2 to 4 of Example 12. Rt: 1.501 min, ee=100%. Analytical method (chromatography column: Chiralpak AD-3, 50 × 4.6 mm ID, 3 μm; mobile phase: A: CO2, B: MeOH (0.1% isopropanol); gradient (B%): 5% to 50%). 1 H NMR (400 MHz, CDCl3) δ ppm 7.74 (s, 1H), 7.54 - 7.44 (m, 2H), 7.26 - 7.22 (m, 1H), 7.21 - 7.12 (m, 1H), 6.82 - 6.74 (m, 2H), 5.82 - 5.75 (m, 1H), 5.03 - 4.97 (m, 1H), 4.68 - 4.59 (m, 1H), 4.50 - 4.36 (m, 2H), 4.31 - 4.25 (m, 1H), 3.81 - 3.71 (m, 2H), 3.14 - 3.08 (m, 2H), 2.62 - 2.56 (m, 4H), 2.47 - 2.33 (m, 4H), 1.70 (s, 3H). LCMS: m / z= 594.2 [M+1] + .
[0265] Example 13 [ka]
[0266] Synthesis scheme: [ka]
[0267] Step 1: Synthesis of 013-1 012-1-P1 (0.2 g, 450.51 μmol, 1 eq) and chlorotris(triphenylphosphine)rhodium(I) (0.1 g, 108.08 μmol, 0.24 eq) were dissolved in methanol (10 mL) and stirred under H atmosphere (50 °C, 50 psi) for 16 h. The reaction solution was concentrated under reduced pressure to give crude 013-1, which was used directly in the next step. LCMS: m / z = 390.0 [M-55] + .
[0268] Step 2: Synthesis of 013-2 013-1 (387.90 mg, 869.82 μmol, 1 eq) was dissolved in DCM (4 mL), and then TFA (5.40 mmol, 400.00 μL, 6.21 eq) was added, and the reaction system was stirred at 20° C. for 16 hours. A saturated aqueous solution of sodium carbonate was added to the reaction solution to adjust the pH value of the aqueous phase to about 8. After separation, the organic phase was dried over anhydrous sodium sulfate and filtered, and the obtained filtrate was concentrated to give 013-2. LCMS: m / z= 346.0 [M+1] + .
[0269] Step 3: Synthesis of 013-3 013-2 (0.1 g, 289.15 μmol, 1 eq) and B-1 (110 mg, 349.44 μmol, 1.21 eq) were dissolved in acetonitrile (4 mL), followed by the addition of potassium carbonate (199.81 mg, 1.45 mmol, 5 eq). The mixture was purged with nitrogen gas, heated to 60°C, and stirred for 2 hours. The reaction solution was diluted with water (10 mL) and extracted with ethyl acetate (2 × 15 mL). The resulting organic phase was washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and the resulting filtrate was concentrated under reduced pressure to give crude product 013-3. LCMS: m / z = 624.2 [M+1] + .
[0270] Step 4: Synthesis of 013 013-3 (0.3 g, 480.64 μmol, 1 eq) was dissolved in MeOH (3 mL), HO (1 mL), and THF (3 mL), then lithium hydroxide monohydrate (100.85 mg, 2.40 mmol, 5 eq) was added and the reaction was stirred for 16 h at 20° C. The reaction was concentrated under reduced pressure to remove the solvent, 10 mL of ethyl acetate was added, the pH was adjusted to approximately 3 with 1 M HCl, separated, and the organic phase was concentrated under reduced pressure to give the crude product. The resulting crude product was separated and purified by preparative HPLC (chromatographic column: Phenomenex Luna C18 75 × 30 mm × 3 μm; mobile phase: [water (formic acid)-acetonitrile]; gradient (acetonitrile)%: 45% to 85%), and further separated and purified by preparative HPLC (chromatographic column: Waters Xbridge BEH C18 100 × 30 mm × 10 μm; mobile phase: [water (ammonium bicarbonate)-acetonitrile]; gradient (acetonitrile)%: 30% to 60%) to obtain 013. 1H NMR (400 MHz, DMSO-d4) δ ppm 7.76 (s, 1H), 7.55 - 7.45 (m, 2H), 7.29 - 7.25 (m, 1H), 7.23 - 7.18 (m, 1H), 6.78 - 6.62 (m, 2H), 5.06 - 5.01 (m, 1H),4.71 - 4.65 (m, 1H), 4.55 - 4.45 (m, 2H), 4.41 - 4.32 (m, 1H), 3.83 - 3.65 (m, 2H), 3.52 - 3.45 (m, 1H), 2.93 - 2.82 (m, 4H), 2.21 - 2.05 (m, 4H), 1.72 - 1.61 (m, 7H). LCMS: m / z= 596.1 [M+1] + .
[0271] Using 012-1-P2 as a starting material, compound 013' was obtained by following steps 1 to 4 of Example 13. 1 H NMR (400 MHz, CDCl3) δ ppm 7.74 (s, 1H), 7.53 - 7.44 (m, 2H), 7.29 - 7.25 (m, 1H), 7.23 - 7.18 (m, 1H), 6.78 - 6.62 (m, 2H), 5.06 - 5.01 (m, 1H),4.71 - 4.65 (m, 1H), 4.55 - 4.45 (m, 2H), 4.41 - 4.32 (m, 1H), 3.82 - 3.62 (m, 2H), 3.52 - 3.45 (m, 1H), 2.93 - 2.82 (m, 4H), 2.21 - 2.05 (m, 4H), 1.72 - 1.61 (m, 7H). LCMS: m / z= 596.1 [M+1] + .
[0272] Experimental Example 1: In vitro cell activity test 1.Material 1) Cell line The host cell HEK293 for GLP-1 was constructed by Wuxi Pharmatech (Cayman) Inc.
[0273] 2) Reagents cAMP Detection Kit, Cisbio (Cat # 62AM4PEJ);1M HEPES, Invitrogen (Cat # 15630-106);1X HBSS, Invitrogen (Cat # 14025);BSA, Sigma (Cat # B2064);IBMX, Sigma (Cat # I5879);Exenatide, Hao Yuan (HY-13443A).
[0274] 3)Equipment OptiPlate-384, White, PerkinElmer (Cat # 6007290); 384 well plate for Echo, Labcyte (Cat#P-05525); EnVision, PerkinElmer; Vi-cell counter, Beckman(Cat# Vi-CELL TM XR Cell Viability Analyzer).
[0275] 4) Compound production The compounds were prepared in DMSO to a working concentration of 30 μM. In this experiment, the volume of each sample used was 5 μL.
[0276] 5) Experimental buffer 24.5 mL of Hanks Buffer Saline Solution (HBSS), final concentration: 1x; 125 μL HEPES 1M, final concentration: 5 mM; 333 μL of 7.5% BSA Solution, final concentration: 0.1%; 25 μL of IBMX 500 mmol / L, final concentration: 0.5 mmol / L.
[0277] 6) Production of detection reagents Preparation of cAMP detection reagent: 250 μL of cAMP-D2 and 250 μL of anti-cAMP cryptate reagent were added to 4 mL of lysis buffer and mixed gently.
[0278] 2. Experimental Method a) Preparation of compound plates: Test compounds were diluted 3-fold in 10 points with a starting concentration of 30 μM, and dilutions were completed in Bravo.
[0279] The reference compound exenatide was diluted 3-fold into 10 points with a starting concentration of 500 nM, and the dilutions were completed in a Bravo.
[0280] b) Compound transfer: 1) 100 nL of compound was transferred to an OptiPlate-384 plate using Echo. 2) The OptiPlate-384 plate was centrifuged at 1000 rpm for 5 seconds.
[0281] c) Preparation of cell suspension 1) One GLP-1 cell cryopreservation tube was placed in 37°C warm water to quickly thaw. 2) The cell suspension was transferred to a 15 mL centrifuge tube and gently rinsed with 10 mL of HBSS. 3) The centrifuge tube was centrifuged at 1000 rpm at room temperature for 1 minute. 4) The supernatant was removed. 5) The cells at the bottom were gently dispersed, gently washed with 10 mL of HBSS, centrifuged to sediment the cells, and finally resuspended in the experimental buffer. 6) Cell density and activity were measured using Vi-cell. 7) GLP-1 cell concentration in experimental buffer was adjusted to 2.0 × 10 5 / mL. 8) 100 nL of the diluted cell suspension was transferred to an OptiPlate-384 plate. 9) Incubated at room temperature for 30 minutes.
[0282] d) Addition of detection reagent: 1) 10 μL of 800 nM gradient diluted cAMP standard solution was added to empty wells of an OptiPlate-384 plate. 2) 10 μL of cAMP detection reagent was added. 3) The OptiPlate-384 plate was covered with TopSeal-A film and incubated at room temperature for 60 minutes.
[0283] The TopSeal-A was removed and the data was read using EnVision.
[0284] The experimental results are shown in Table 1.
[0285] [Table 1]
[0286] Conclusion: The compounds of the present invention exhibited potent agonist activity at the GLP-1 receptor.
[0287] Experimental Example 2: In vitro PK parameter study - Time-dependent inhibition (TDI) study Test Purpose The purpose was to test the time-dependent inhibitory effect of the test compound on the activity of CYP2C19 of human liver microsomal cytochrome P450 isozyme.
[0288] Experimental Method The experiments were divided into two groups. In the first group, human liver microsomes (HLM) were used as the culture system. A range of concentrations of the test article was added to the culture system, followed by the addition of a coenzyme factor (NADPH) solution. The culture system was pre-incubated at 37°C for 30 minutes. After pre-incubation, a probe substrate solution was added. After the specified incubation period, the reaction was stopped and the amount of probe substrate metabolites produced in the culture solution was measured, and the enzyme activity was calculated. In the second group, human liver microsomes (HLM) were used as the culture system. A range of concentrations of the test article was added to the culture system, followed by the addition of a potassium phosphate buffer solution. After pre-incubation at 37°C for 30 minutes, the NADPH and probe substrate solution was added. After the specified incubation period, the reaction was stopped and the amount of probe substrate metabolites produced in the culture solution was measured, and the enzyme activity was calculated.
[0289] First, the test compound (10.0 mM) was gradient diluted to prepare working solutions (100x the final concentration). The concentrations of the working solutions were 5.00, 1.65, 0.500, 0.165, 0.0500, 0.0165, and 0.00500 mM, respectively. At the same time, working solutions of a positive inhibitor of the P450 isoenzyme CYP2C19, a probe substrate, and NADPH were prepared. Human liver microsomes stored in a refrigerator below -60°C were thawed on ice. After all the human liver microsomes were dissolved, they were diluted with potassium phosphate buffer (PB) to prepare working solutions of the desired concentrations (0.169 mg / ml).
[0290] Next, 147.5 μL of human liver microsome working solution was added to the reaction plate, and the reaction plate was placed on ice for use. 2.50 μL of each concentration of test compound (N=1) and positive control inhibitor working solution (N=2) were added to the corresponding wells, and organic solvent was added to the groups without inhibitor (test compound or positive inhibitor). The reaction plate was placed at 37°C and incubated for 10 minutes. After incubation, 50.0 μL of NADPH solution or potassium phosphate buffer was added to the first or second reaction wells, respectively, to initiate the reaction. The reaction plate was placed at 37°C and pre-incubated for 30 minutes. 50.0 μL of substrate solution or NADPH and substrate mixture solution was added to the first or second reaction wells, respectively, to initiate the reaction. After 20 minutes, the reaction was stopped by adding 250 μL of pre-chilled acetonitrile solution (containing 200 ng / mL tolbutamide and labetalol as internal standards). The reaction plate was placed on a shaker and shaken for 10 minutes to ensure uniform mixing. The plate was then centrifuged at 4000 rpm for 20 minutes at 4°C. 200 μL of the supernatant was added to 200 μL of water for sample dilution. Finally, the plate was sealed and shaken evenly for 10 minutes before LC / MS / MS detection.
[0291] Experimental results: As shown in Table 2.
[0292] [Table 2]
[0293] Conclusion: The compounds of the present invention have a low risk of time-dependent inhibition of human liver microsomal cytochrome P450 isoenzyme 2C19.
[0294] Experimental Example 3: In vitro PK parameter test - HMS CLint(liver) test Experimental objective: To determine the metabolic stability of test substances in human and rat hepatocytes.
[0295] Test materials: (1) Test compound (10 mM), control: 7-ethoxycoumarin (30 mM), 7-hydroxycoumarin (30 mM); Mouse hepatocytes, cell viability 73.8%, Manufacturer Cat: No.: BioreclamationIVTM005052; Rat hepatocytes, cell viability 78.3%, Manufacturer Cat: No.: BioreclamationIVTM00005-T; Canine hepatocytes, cell viability 80.2%, Manufacturer Cat: No.: BioreclamationIVTM00205; Monkey hepatocytes, cell viability 80.9%, Manufacturer Cat: No.: RILD HP-SXH-02M; Human hepatocytes, cell viability 94.6%, Manufacturer Catalog No.: Bioreclamation IVTX008001.
[0296] (2) Buffer system: Thawing medium: Williams medium E, containing 5% fetal bovine serum and 30% Percoll solution and other supplements. Culture medium: Williams medium E (phenol red free) containing 2 mM L-glutamine and 25 mM hydroxyethylpiperazineethanesulfonic acid. Stop solution: acetonitrile containing 200 ng / mL tolbutamide and labetalol as internal standards. Dilution solution: ultrapure water.
[0297] Experimental Method 1) An accurate amount of positive control compound was dissolved in dimethyl sulfoxide (DMSO) to prepare a 30 mM solution. 2) 10 mM test compound and 30 mM positive control compound were diluted to 1 mM and 3 mM using DMSO in a 96-well plate. 3) 1 mM test compound and 3 mM positive control compound were diluted to 100 μM and 300 μM fixed solutions using acetonitrile. 4) Cryopreserved cells were thawed, dissociated, and suspended in culture medium, then diluted to 0.5 × 10 with prewarmed culture medium. 6 cells / mL.
[0298] 5) 198 μL of pre-warmed cell suspension was added to a 96-well plate. 6) 100 μL of stop solution (acetonitrile containing 200 ng / mL tosylbutamide and 200 ng / mL labetalol as internal standards) was transferred to one group of pre-labeled 96-well plates. 7) 2 μL of 100 μM test compound or 300 μM positive control assay solution was added in duplicate to each well of the 96-well plate. 8) For TO samples, the mixture was mixed for approximately 1 minute until a uniform suspension was formed, and 20 μL of each sample was immediately transferred to a well containing 100 μL of ice-cold stop solution and mixed. 9) All plates were incubated at 37°C in a 95% humidified incubator with 5% CO2 and constant shaking at approximately 600 rpm to initiate the reaction. 10) Samples were mixed at 15, 30, 60, and 90 minutes, and 20 μL of each sample was transferred to a well containing 100 μL of ice-cold stop solution and mixed. 11) Media control (MC) sample plates (labeled T0-MC and T90-MC) were prepared at T0 and T90 by adding the same components, except for the cell suspension, to each well. A final concentration table was generated. 12) At each corresponding time point, the plate was removed from the incubator and mixed with 100 μL of ice-cold stop solution to stop the reaction.
[0299] 13) The plates were immediately vortexed on a plate shaker at 500 rpm for 10 minutes. Then, all sample plates were centrifuged at 3220 x g for 20 minutes at 4°C.
[0300] 14) After centrifugation, 35 μL / well of the supernatant solution from the sample plate was transferred to another group of labeled 96-well plates, and 70 μL of ultrapure water was added to the 96-well plates according to the plate map.
[0301] 15) The analysis plate was sealed and stored at 4°C until LC-MS-MS analysis.
[0302] The remaining percentage of the test compound and the control compound was calculated using the following formula:
[0303] [ka]
[0304] The elimination rate constants k of the test and reference compounds in hepatocytes were calculated by plotting the logarithm of the residual fraction against time, and the elimination rate k was used to calculate the half-life (T 1 / 2 ) and in vitro intrinsic clearance (CL int ) and the formula is as shown below. T 1 / 2 =0.693 / k; CL int(hep) = k / million cells / mL CL int(liver) =CL int(hep) × liver weight to body weight ratio × number of hepatocytes per gram of liver
[0305] The various parameters in the formula are as shown in Table 3.
[0306] [Table 3]
[0307] Experimental Results: The experimental results are shown in Table 4.
[0308] [Table 4]
[0309] Conclusion: The compounds of the present invention are metabolized slowly in various hepatocytes with little species difference.
[0310] Experimental Example 4: In vivo PK parameter test Test purpose: Male SD rats and male cynomolgus monkeys were used as test animals, and the blood concentration of the compound was measured after a single oral administration to evaluate the pharmacokinetic behavior.
[0311] Experimental Method Two groups of healthy fasting rats were administered the compound via intravenous injection (IV) and oral administration (PO), with two rats in each group. The solvent was 20% PEG400 + 10% solutol + 70% water. The test compound and solvent were mixed, vortexed, and sonicated to produce clear solutions of 0.2 mg / mL and 0.5 mg / mL. The rats were administered 1.0 mg / kg intravenously and 5.0 mg / kg orally via oral administration. Whole blood samples were collected at 0.083 h, 0.25 h, 0.5 h, 1.0 h, 2.0 h, 4.0 h, 8.0 h, 12.0 h, and 24.0 h after administration to prepare plasma samples. Drug concentrations were analyzed by LC-MS / MS, and pharmacokinetic parameters were calculated using Phoenix WinNonlin 6.3. The results are shown in Table 5.
[0312] Two groups of healthy male cynomolgus monkeys (fasting) were administered intravenously and orally via oral administration. Two monkeys were administered in each group. A 20% aqueous solution of hydroxypropyl-β-cyclodextrin was used as the vehicle. Test compound 002 was mixed with the vehicle, followed by vortexing and sonication to produce clear solutions of 1.0 mg / mL and 2.0 mg / mL. The intravenous dose was 1.0 mg / kg, and the oral intragastric dose was 2.0 mg / kg. Test compound 003 was mixed with the vehicle, followed by vortexing and sonication to produce clear solutions of 0.25 mg / mL and 10.0 mg / mL. The intravenous dose was 0.5 mg / kg, and the oral intragastric dose was 10.0 mg / kg. After administration, whole blood was collected at 0.083 h, 0.25 h, 0.5 h, 1.0 h, 2.0 h, 4.0 h, 8.0 h, 12.0 h, and 24.0 h to prepare plasma. Drug concentrations were analyzed by LC-MS / MS, and pharmacokinetic parameters were calculated using Phoenix WinNonlin 6.3. The results are shown in Table 6. Parameter meanings: C max is the maximum plasma concentration, AUC is the exposure, and T 1 / 2 is the half-life, Vd is the apparent volume of distribution, Cl is the clearance, and F% is the oral bioavailability.
[0313] [Table 5]
[0314] [Table 6]
[0315] Conclusion: The compounds of the present invention have high oral exposure, long half-life, high bioavailability and good pharmacokinetic properties in the body. The present application includes the following aspects. [Section 1] A compound represented by formula (P) or a pharmaceutically acceptable salt thereof: [ka] (however,
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Claims
1. A compound represented by formula (P) or a pharmaceutically acceptable salt thereof: 【Chemical 1】 (however, 【Chemistry 2】 is a single bond, T 1 is N, T 2 is N and CR 9 is selected from Or, structural unit 【Chemistry 3】 and X is O and Y is CH 2 and O, or X is selected from CH 2 and O and Y is O; X 1 is selected from CH and N, wherein said CH is optionally replaced by one of F, Cl, and Br; X 2 is S; Ring B is selected from a 5-6 membered heteroaryl, wherein 1, 2, 3, or 4 ring atoms are heteroatoms independently selected from O, S, and N, and the remainder are carbon atoms, said 5-6 membered heteroaryl optionally containing 1, 2, or 3 R 1 is replaced by R 1 is F, Cl, Br, I, OH, NH 2 , CN, and CH 3 is selected from R 2 teeth, 【Chemistry 4】 and Y 1 is O, o is independently selected from 0, 1, 2, and 3; R 3 is -C(=O)-NH-R b and -C(=O)-R b is selected from R 4 are F, Cl, Br, I, and C 1-3 alkyl, R 5 is H and CH 3 is selected from R 6 , R 7 , R 8 , and R 9 are each independently H; n is selected from 0, 1, and 2; Each R b are independently OH and C 1-3 alkoxy.)
2. Each R b are each independently OH and OCH 3 2. The compound of claim 1, or a pharmaceutically acceptable salt thereof, selected from:
3. R 2 teeth, 【Chemistry 5】 2. The compound of claim 1, wherein:
4. R 3 are —COOH, —C(═O)—NH—OH, and —C(═O)—NH—OCH 3 2. The compound of claim 1, or a pharmaceutically acceptable salt thereof, selected from:
5. Ring B is selected from pyridyl, pyrimidinyl, pyrazinyl, pyridazinyl, pyrazolyl, imidazolyl, thiazolyl, and oxazolyl, wherein said pyridyl, pyrimidinyl, pyrazinyl, pyridazinyl, pyrazolyl, imidazolyl, thiazolyl, and oxazolyl optionally contain one, two, or three R 1 or Ring B is substituted by 【Chemistry 6】 2. The compound of claim 1, or a pharmaceutically acceptable salt thereof, selected from:
6. Ring B is 【Chemistry 7】 Selected from:
6. The compound of claim 5 or a pharmaceutically acceptable salt thereof.
7. Structural Unit 【Chemistry 8】 2. The compound of claim 1, or a pharmaceutically acceptable salt thereof, selected from:
8. Structural Unit 【Chemistry 9】 2. The compound of claim 1, or a pharmaceutically acceptable salt thereof, selected from:
9. 2. The compound of claim 1, or a pharmaceutically acceptable salt thereof, selected from: 【Chemistry 10】 (however, 【Chemistry 11】 is a single bond, T 2 is selected from N and CR 9 ; Or, structural unit 【Chemistry 12】 and X 1 is as defined in claim 1, Ring B is as defined in claim 1.
10. A compound represented by the following formula or a pharmaceutically acceptable salt thereof: 【Chemistry 13】
11. 11. The compound of claim 10 selected from the following formulas: or a pharmaceutically acceptable salt thereof. 【Chemistry 14】 【Chemistry 15】 【Chemistry 16】 【Chemistry 17】
12. 12. Use of a compound according to any one of claims 1 to 11, or a pharmaceutically acceptable salt thereof, in the manufacture of a medicament for treating diabetes.
13. A compound represented by formula (I-1a) or (I-1b), or a pharmaceutically acceptable salt thereof. 【Chemistry 18】 (however, 【Chemistry 19】 is a single bond, T 2 is selected from N and CR 9 ; Or, structural unit 【Chemistry 20】 and X 1 and ring B are as defined in claim 1.
14. A compound represented by the following formula or a pharmaceutically acceptable salt thereof: 【Chemical 21】
15. A compound represented by the following formula or a pharmaceutically acceptable salt thereof: 【Chemical 22】 【Chemical 23】 16. Use of a compound according to any one of claims 13 to 15 or a pharmaceutically acceptable salt thereof in the manufacture of a medicament for treating diabetes.
Citation Information
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