Methods for producing and using proteolytic compounds
Novel PROTAC compounds targeting the AR for degradation address drug resistance in CRPC by enhancing metabolic stability and activity, providing a therapeutic solution for castration-resistant prostate cancer.
Patent Information
- Application Number
- JP2022539058
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-12-16
- Filing Date
- 2020-12-23
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2040-12-23
AI Technical Summary
Current treatments for castration-resistant prostate cancer (CRPC) are limited by androgen receptor (AR) mutations that lead to drug resistance, and existing PROTAC molecules face challenges with large molecular weight and low solubility, hindering effective drug dosage and activity.
Development of novel PROTAC compounds with specific structural units and linkages to target the AR for degradation, utilizing the ubiquitin-proteasome system, enhancing metabolic stability and drug activity.
The novel PROTAC compounds effectively degrade the AR, offering potential therapeutic benefits for CRPC by overcoming drug resistance and improving metabolic stability.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to compounds of formula (I) and pharmaceutically acceptable salts thereof, and the use of such compounds in degrading the androgen receptor (AR).
[0002] This application claims priority to: CN201911342649.0, filing date: December 23, 2019; CN202010200682.6, filing date: March 20, 2020; CN202010496353.0, filing date: June 3, 2020; CN202011486334.6, filing date: December 16, 2020. [Background technology]
[0003] Prostate cancer (PCa) is one of the most common cancers in the world and the second leading cause of cancer deaths among adult men worldwide. Prostate cancer grows slowly without obvious symptoms in the early stages. In the advanced stages, symptoms such as frequent urination, dysuria, hematuria, and urinary tract pain appear. It can metastasize to other parts of the body, and most patients are diagnosed with advanced cancer at the time of onset. In the United States, the incidence of prostate cancer has surpassed that of lung cancer, making it the leading cancer threat to men's health. In 2016, there were 120,000 new cases of prostate cancer in China. It is estimated that by 2030, the number of new cases in China will reach 237,000, with an average annual growth rate of 5%. Over the next decade, the incidence of prostate cancer in China will peak, making it the leading cause of cancer deaths in men. Due to low rates of early diagnosis, the mortality rate for prostate cancer patients in China is much higher than in developed countries. While the five-year survival rate in the United States is over 98%, the survival rate in China for the same patients is only 50%.
[0004] Prostate cancer is an androgen-dependent tumor, and androgens stimulate the growth of prostate cancer cells and disease progression. Endocrine therapy is one of the conventional treatments. For example, the standard of care for advanced PCa is androgen deprivation therapy (ADT), primarily consisting of surgical castration (bilateral orchiectomy) and drug castration (e.g., Zoladex injections). While ADT therapy is significantly effective in the early stages of treatment, as the disease progresses, the androgen receptor (AR) mutates, making the AR more sensitive to low levels of androgens and promoting disease progression to castration-resistant prostate cancer (CRPC). Nearly all patients with advanced prostate cancer who receive endocrine therapy eventually progress to CRPC. Furthermore, up to 30% of prostate cancer patients progress to metastatic castration-resistant prostate cancer (mCRPC) within 10 years of initial treatment. Currently, patients diagnosed with early-stage localized prostate cancer are usually curable, but there are no clinical cure options for patients diagnosed with asymptomatic or mildly symptomatic metastatic castration-resistant prostate cancer (mCRPC).
[0005] Currently, oral medications approved for the treatment of metastatic castration-resistant prostate cancer mainly include abiraterone and enzalutamide. Abiraterone is a novel androgen biosynthesis inhibitor that can block androgen synthesis in the testes, adrenal glands, or tumor cells. Enzalutamide is an androgen receptor inhibitor that can competitively inhibit androgen binding to the receptor. After binding to the AR, enzalutamide can further inhibit AR nuclear translocation and inhibit the interaction of AR with DNA.
[0006] Despite castration resistance, CRPC continues to grow dependent on the AR signaling axis. AR mutations reduce the antagonistic effect of AR-targeting small molecules and even convert them into AR agonists, resulting in clinically manifested drug resistance. Therefore, selective androgen receptor degraders (SARDs) not only inhibit the androgen receptor and inhibit the androgen receptor signaling process, but also degrade the receptor itself, providing more benefits.
[0007] The present invention primarily relies on protein degradation targeting chimera (PROTAC) technology to obtain a series of selective AR degraders (SARDs). PROTAC technology primarily relies on the intracellular ubiquitin-proteasome system. This system is an intracellular "cleaner," and the main role of the ubiquitination system is to ubiquitinate degenerated, mutated, or harmful proteins in the cell. Ubiquitinated proteins are degraded by the intracellular proteasome system. The design concept of PROTAC is that one end of the molecule is an AR-interacting fragment and the other end is a ubiquitin-proteasome-interacting fragment, and both ends are linked to a chimeric molecule via an intermediate link. PROTAC interacts with both the target protein (AR) and the proteasome system, bringing the proteasome and AR protein into spatial proximity, and degrading the AR by ubiquitinating it.
[0008] Small molecule PROTAC technology was first reported in 2008, and currently only one small molecule drug, ARV-110 (structure currently unknown), developed by Arvinas, is in the first stage of clinical development. PROTAC technology is at the forefront of this field, and a large body of literature in recent years has demonstrated that PROTACs simultaneously bind to their degradation targets and the ubiquitination system. Their mechanism of action is much more complex than that of traditional small molecule drugs: the mechanism of action of such molecules involves three-body binding kinetics, which are influenced by the catalytic properties of the PROTAC itself (and potential issues with the hook effect). Therefore, the molecular design of PROTACs is completely different from that of small molecules, with no clear rules, and common medicinal chemistry strategies, such as effective fragment-equivalent substitution, do not necessarily apply to the design of these molecules.
[0009] Patent CN110506039A designs a series of compounds based on PROTAC technology, and Example 158 is disclosed therein. PROTAC molecules generally have the disadvantages of large molecular weight and low solubility, which limits the increase in drug dosage. Therefore, improving the metabolic stability of compounds in the body and improving drug activity (animal efficacy) at the same dosage is very important in the development of such drugs. [ka] Currently, there is a need in the art to develop PROTAC molecules with novel structures for AR degradation. Summary of the Invention
[0010] In one aspect, the present invention provides a compound represented by formula (I), its optical isomers, and pharmaceutically acceptable salts thereof. [ka] wherein X is selected from C(R) and N; T1, T2, T3, and T4 are each independently selected from C(R) and N; T5 is selected from —(C═O)— and —CH2—; R1, R2, R3, and R4 are each independently CN, halogen, or C 1-6 Alkyl, C 1-6 alkoxy, wherein C 1-6 Alkyl or C 1-6 The alkoxy is optionally substituted with 1, 2 or 3 R; L1, L2, and L3 each independently represent a single bond, O, S, NH, C(=O), S(=O), S(=O)2, C 1-6 Alkyl, -C 1-6 Alkyl-O-, -C 1-6 Alkyl-NH-, -OC 1-6 Alkyl-O-, -OC 1-6 Alkyl-OC 1-6 Alkyl-, -OC 2-3 Alkenyl, C 2-3 Alkynyl, C3-10 cycloalkyl, 3- to 10-membered heterocycloalkyl, phenyl, and 5- to 9-membered heteroaryl; 1-6 Alkyl, -C 1-6 Alkyl-O-, -C 1-3 Alkyl-NH-, -OC 1-6 Alkyl-O-, -OC 1-6 Alkyl-OC 1-6 Alkyl-, C 2-3 Alkenyl, C 2-3 Alkynyl, C 3-10 The cycloalkyl, 3- to 10-membered heterocycloalkyl, phenyl, or 5- to 9-membered heteroaryl may optionally be substituted with one, two, or three R L is replaced by; R L are each independently H, halogen, OH, NH2, CN, [ka] C 1-6 Alkyl, C 3-6 Cycloalkyl, C 1-6 Alkyl-C(=O)-, C 1-6 Alkoxy, C 1-6 Alkylthio and C 1-6 alkylamino, wherein C 1-6 Alkyl, C 3-6 Cycloalkyl, C 1-6 Alkoxy, C 1-6 Alkylthio or C 1-6 alkylamino is optionally substituted with 1, 2 or 3 R'; R' is F, Cl, Br, I, OH, NH2, [ka] selected from CH3, CH2CH3, CH2F, CHF2 and CF3; R is H, F, Cl, Br, I, OH and C 1-6 alkyl; R5 is H, halogen and C 1-6 alkyl; The 3- to 10-membered heterocycloalkyl or 5- to 9-membered heteroaryl contains 1, 2, or 3 heteroatoms or heteroatom groups independently selected from -O-, -NH-, -S-, -C(=O)-, -C(=O)O-, -S(=O)-, -S(=O)2-, and N.
[0011] In another aspect, the present invention also provides a compound of formula (II), its optical isomers and pharmaceutically acceptable salts thereof. [ka] provided that ring A and ring B are each independently selected from 3- to 8-membered heterocycloalkyl and 5- to 6-membered heteroaryl, or are deleted, and the 3- to 8-membered heterocycloalkyl or 5- to 6-membered heteroaryl is optionally substituted with 1, 2, or 3 R; R1, R2, R3, and R4 are each independently CN, halogen, or C 1-6 Alkyl, C 1-6 alkoxy, wherein C 1-6 Alkyl or C 1-6 The alkoxy is optionally substituted with 1, 2 or 3 R; X is selected from C(R) and N; T1, T2, T3, and T4 are each independently selected from C(R) and N; T5 is selected from —(C═O)— and —CH2—; L2 is a single bond, O, S, NH, C(=O), S(=O), S(=O)2, C 1-6 Alkyl, -C 1-6 Alkyl-O-, -C 1-3 Alkyl-NH-, -OC 1-6 Alkyl-O-, -OC 1-6 Alkyl-OC 1-6 Alkyl-, -OC 2-3 Alkenyl, C 2-3 Alkynyl, C 3-10 cycloalkyl, 3- to 10-membered heterocycloalkyl, phenyl, and 5- to 9-membered heteroaryl; 1-6 Alkyl, -C 1-6Alkyl-O-, -C 1-3 Alkyl-NH-, -OC 1-6 Alkyl-O-, -OC 1-6 Alkyl-OC 1-6 Alkyl-, C 2-3 Alkenyl, C 2-3 Alkynyl, C 3-10 The cycloalkyl, 3- to 10-membered heterocycloalkyl, phenyl, or 5- to 9-membered heteroaryl may optionally be substituted with one, two, or three R L is replaced by; R L are each independently H, halogen, OH, NH2, CN, [ka] C 1-6 Alkyl, C 3-6 Cycloalkyl, C 1-6 Alkyl-C(=O)-, C 1-6 Alkoxy, C 1-6 Alkylthio and C 1-6 alkylamino, wherein C 1-6 Alkyl, C 3-6 Cycloalkyl, C 1-6 Alkoxy, C 1-6 Alkylthio or C 1-6 alkylamino is optionally substituted with 1, 2 or 3 R'; R' is F, Cl, Br, I, OH, NH2, [ka] selected from CH3, CH2CH3, CH2F, CHF2 and CF3; R is H, F, Cl, Br, I, OH and C 1-6 alkyl; R5 is H, halogen and C 1-6 alkyl; The 3- to 8-membered heterocycloalkyl, 3- to 10-membered heterocycloalkyl, 5- to 6-membered heteroaryl, or 5- to 9-membered heteroaryl contains 1, 2, or 3 heteroatoms or heteroatom groups independently selected from -O-, -NH-, -S-, -C(=O)-, -C(=O)O-, -S(=O)-, -S(=O)2-, and N.
[0012] In some technical solutions of the present invention, the above structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0013] In some technical solutions of the present invention, the above R is selected from H, halogen, OH, methyl, ethyl, n-propyl, isopropyl, and other variables are as defined in the present invention.
[0014] In some technical solutions of the present invention, the above R1 and R2 are each independently selected from CN, halogen, CH3O- and -CF3, and other variables are as defined in the present invention.
[0015] In some technical solutions of the present invention, R3 and R4 are each independently selected from methyl, ethyl, n-propyl and isopropyl, and other variables are as defined in the present invention.
[0016] In some technical solutions of the present invention, the above structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0017] In some technical solutions of the present invention, the above L1, L2, and L3 are each independently a single bond, O, S, NH, C(=O), S(=O), S(=O)2, C 1-3 Alkyl, -C 1-4 Alkyl-O-, -C 1-3 Alkyl-NH-, -OC 1-4 Alkyl-O-, -OC 1-3 Alkyl-OC 1-3 Alkyl-, -OC 2-3 Alkenyl, C 2-3 Alkynyl, C 3-8 cycloalkyl, 3- to 8-membered heterocycloalkyl, phenyl, and 5- to 6-membered heteroaryl; 1-3 Alkyl, -C 1-4 Alkyl-O-, -OC 1-4 Alkyl-O-, -C 1-3 Alkyl-NH-, -OC 1-3 Alkyl-OC 1-3 Alkyl-, C 2-3 Alkenyl, C 2-3 Alkynyl, C 3-8 The cycloalkyl, 3- to 8-membered heterocycloalkyl, phenyl, or 5- to 6-membered heteroaryl may optionally be substituted with one, two, or three R L and other variables are as defined in the present invention.
[0018] In some technical solutions of the present invention, the above R L are each independently H, halogen, OH, NH2, CN, [ka] C 1-3 Alkyl, C 3-6 Cycloalkyl, C 1-3 Alkyl-C(=O)-, C 1-3 Alkoxy, C 1-3 Alkylthio and C 1-3 alkylamino, wherein C 1-3 Alkyl, C 3-6 Cycloalkyl, C 1-3 Alkoxy, C 1-3 Alkylthio or C1-3 The alkylamino is optionally substituted with 1, 2 or 3 R', and the other variables are as defined herein.
[0019] In some technical solutions of the present invention, the above L1, L2, and L3 are each independently a single bond, O, S, NH, C(=O), S(=O), S(=O)2, CH2, -CH(CH3)-, CH2CH2-, -CH2CH2CH2-, [ka] and the other variables are as defined in the present invention.
[0020] In some technical solutions of the present invention, the above L2 is O, -C 1-3 Alkyl-, -OC 1-4 Alkyl-, -C 1-3 Alkyl-NH-, -OC 1-4 Alkyl-O-, -OC 1-3 Alkyl-OC 1-3 Alkyl-, [ka] -C is selected from 1-3 Alkyl-, -OC 1-4 Alkyl-, -C 1-3 Alkyl-NH-, -OC 1-4 Alkyl-O- or -OC 1-3 Alkyl-OC 1-3 Alkyl- is optionally one, two, or three R L and other variables are as defined in the present invention.
[0021] In some technical solutions of the present invention, the above-mentioned L2 is -O-, -CH2-, -CH2CH2-, -CH2CH2CH2-, -CH(CH3)-, [ka] and the other variables are as defined in the present invention.
[0022] In some technical solutions of the present invention, the above structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0023] In some technical solutions of the present invention, the above ring A and ring B are each independently selected from 4- to 6-membered heterocycloalkyl and 5- to 6-membered heteroaryl, wherein the 4- to 6-membered heterocycloalkyl or 5- to 6-membered heteroaryl is optionally substituted with 1, 2 or 3 R, and other variables are as defined in the present invention.
[0024] In some technical solutions of the present invention, said ring A is selected from azetidinyl, piperidinyl, piperazinyl, pyrazolyl and tetrahydropyrrolyl, wherein said azetidinyl, piperidinyl, piperazinyl, pyrazolyl and tetrahydropyrrolyl are optionally substituted with 1, 2 or 3 R, and other variables are as defined in the present invention.
[0025] In some technical solutions of the present invention, the ring A is: [ka] and the other variables are as defined in the present invention.
[0026] In some technical solutions of the present invention, said ring B is selected from morpholinyl, piperazinyl, tetrahydropyrrolyl, piperidinyl, azetidinyl and piperazine-2-ketonyl, wherein said morpholinyl, piperazinyl, tetrahydropyrrolyl, piperidinyl, azetidinyl or piperazine-2-ketonyl is optionally substituted by 1, 2 or 3 R, and other variables are as defined in the present invention.
[0027] In some technical solutions of the present invention, the ring B is: [ka] and the other variables are as defined in the present invention.
[0028] In some technical solutions of the present invention, the above structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0029] In some technical solutions of the present invention, the above structural unit [ka] teeth, [ka] and the other variables are as defined in the present invention.
[0030] In a further aspect, the present invention also provides a compound of the following formula selected from the following, its optical isomers and pharmaceutically acceptable salts thereof:
[0031] [ka] [ka] [ka] [ka] [ka]
[0032] In a further aspect, the present invention also provides the use of a compound as hereinbefore described, its optical isomers and pharmaceutically acceptable salts thereof in the manufacture of a medicament for the prevention and / or treatment of cancer or Kennedy's disease.
[0033] In some forms of the invention, the cancer is an AR-associated cancer, such as prostate cancer and breast cancer.
[0034] In a further aspect, the present invention also provides a method for treating cancer (e.g., prostate cancer, breast cancer, etc.) or Kennedy's disease, said method comprising administering to a patient a compound as described above, its optical isomers, and its pharmaceutically acceptable salts.
[0035] Definitions and Explanations Unless otherwise stated, the following terms and phrases used herein have the following meanings: Unless otherwise defined, a particular term or phrase should be understood to have its ordinary definition, rather than being indefinite or unclear. When a trade name appears in this specification, it refers to the corresponding product or its active ingredient.
[0036] As used herein, "pharmaceutically acceptable salts" refer to those compounds, materials, compositions and / or dosage forms which are within the scope of sound medical judgment, suitable for contact with the tissues of humans and animals, without appreciable toxicity, irritation, allergic response or other problem or complication, and commensurate with a reasonable benefit / risk ratio.
[0037] 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 this invention. When the compounds of the present invention contain a relatively acidic functional group, a base addition salt can be obtained by contacting the neutral form of these compounds with a sufficient amount of base, either in solution or in a suitable inert solvent. Pharmaceutically acceptable base addition salts include sodium, potassium, calcium, ammonium, organic amine, or magnesium salts or similar salts. When the compounds of the present invention contain a relatively basic functional group, an acid addition salt can be obtained by contacting the neutral form of these compounds with a sufficient amount of acid, either in solution or in a suitable inert solvent. Examples of pharmaceutically acceptable acid addition salts include inorganic and organic acid salts, as well as salts of amino acids (e.g., arginine) and organic acids such as glucuronic acid, such as hydrochloric acid, hydrobromic acid, nitric acid, carbonic acid, bicarbonate, phosphoric acid, monohydrogen phosphate, dihydrogen phosphate, sulfuric acid, hydrogen sulfate, hydroiodic acid, and phosphorous acid; and organic acids such as acetic acid, propionic acid, isobutyric acid, trifluoroacetic acid, maleic acid, malonic acid, benzoic acid, succinic acid, suberic acid, fumaric acid, lactic acid, mandelic acid, phthalic acid, benzenesulfonic acid, p-toluenesulfonic acid, citric acid, tartaric acid, methanesulfonic acid, and the like. Some specific compounds of the present invention contain both basic and acidic functional groups and can therefore be converted into any base or acid addition salt.
[0038] 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.
[0039] 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 included 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 included within the scope of the claimed invention.
[0040] The compounds of the present invention can exist in specific forms. Unless otherwise specified, the term "tautomer" or "tautomeric form" refers to isomers of different functional groups that are in dynamic equilibrium at room temperature and can rapidly convert between each other. Tautomers can reach chemical equilibrium when possible (e.g., in solution). For example, proton tautomers (also called prototropic tautomers) include interconversions mediated by the migration of a proton, such as keto-enol isomerization and imine-enamine isomerization. Valence tautomers include interconversions via the rearrangement 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.
[0041] The compounds of the present invention may contain unnatural atomic isotopes at one or more atoms constituting the compounds. For example, tritium ( 3 H), iodine-125( 125 I) or C-14( 14Compounds can be labeled with radioactive isotopes such as C). For example, deuterium can be replaced with hydrogen to form deuterated drugs. The bond formed between deuterium and carbon is stronger than the bond formed between normal hydrogen and carbon. Compared to non-deuterated drugs, deuterated drugs have the advantages of reduced toxic side effects, increased drug stability, improved therapeutic efficacy, and extended biological half-life. Conversion of the isotopic composition of the compounds of the present invention, whether radioactive or not, is within the scope of the present invention. The terms "optional" and "optionally" mean that the following items or circumstances are possible but not necessarily present, and the description includes cases where the described items or circumstances do not occur when the items or circumstances occur.
[0042] The term "substituted" or "substituted with" refers to the replacement of any one or more hydrogen atoms at a particular atom with a substituent, and may include variants of deuterium and hydrogen, provided that the particular valence state is normal and the compound after substitution is stable. The term "optionally substituted" refers to either substituted or unsubstituted, and unless otherwise defined, the type and number of substituents are optional as long as they are chemically stable and feasible.
[0043] When any variable (e.g., R) occurs more than one time in any composition or structure of a compound, its definition is independent at each occurrence. So, for example, if a group is substituted with one, two, or three R', then said group is optionally substituted with one, two, or three R', and each occurrence of R' is independently optional. Also, combinations of substituents and / or variables thereof are permissible only if such combinations result in stable compounds.
[0044] If one of the variables is a single bond, the two groups connected by it are directly linked, e.g. [ka] If L1 in represents a single bond, this structure is actually [ka] becomes.
[0045] If the atom through which a substituent is substituted for a given substituent is not specified, such substituent may be bonded through any atom thereof; for example, a pyridinyl group as a substituent may be bonded to the substituent through any carbon atom of the pyridine ring.
[0046] 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 -CHO-, and in this case, -CHO- is in the same direction as the reading order from left to right to form phenyl and cyclopentyl. [ka] You can also compose phenyl and cyclopentyl in the reverse order of reading from left to right. [ka] Combinations of the above linking groups, substituents and / or variables are permissible only if such combinations result in stable compounds.
[0047] Unless otherwise specified, the number of atoms in a ring is generally defined as the number of ring members; for example, a "3- to 6-membered ring" refers to a "ring" with 3 to 6 atoms arranged around it.
[0048] Unless otherwise defined, the term "C 1=6 "Alkyl" refers to a saturated hydrocarbon group consisting of 1 to 6 carbon atoms, either straight or branched. 1=3 C for alkyl 1-5 , C 1-4 , C 1-3 , C 1-2 , C 2-6 , C 2-4, C6 and C5 alkyl, which can be monovalent (e.g., CH3), divalent (e.g., -CH2-) and polyvalent (e.g., [ka] ) may be used. C 1-6 Examples of alkyl include CH3, [ka] These include, but are not limited to:
[0049] 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 Alkyl groups have C 1-2 and C 2-3 alkyl, which can be monovalent (e.g., CH3), divalent (e.g., -CH2-) and polyvalent (e.g., -CH2-). [ka] ) may be used. C 1-3 Examples of alkyl include CH3, [ka] These include, but are not limited to:
[0050] Unless otherwise defined, "C 2-3 "Alkenyl" refers to a straight or branched hydrocarbon group consisting of 2 to 3 carbon atoms containing at least one carbon-carbon double bond, and the carbon-carbon double bond may be located at any position within the group. 2-3 Alkenyl includes C3 and C2 alkenyl, etc. 2-3 Alkenyl may be monovalent, divalent or polyvalent. 2-3 Examples of alkenyls include [ka] These include, but are not limited to:
[0051] Unless otherwise defined, "C 2-3 "Alkynyl" refers to a hydrocarbon group consisting of 2 to 3 carbon atoms, straight or branched, containing at least one carbon-carbon triple bond, which may be located at any position in the group. It may be monovalent, divalent or polyvalent. 2-3 Alkynyl includes C3 and C2 alkynyl. 2-3 Examples of alkynyl groups include [ka] These include, but are not limited to:
[0052] Unless otherwise defined, the term "C 1-6 "Alkoxy" refers to an alkyl group containing 1 to 6 carbon atoms connected to the remainder of the molecule through an oxygen atom. 1-6 Alkoxy includes C 1-4 , C 1-3 , C 1-2 , C 2-6 , C 2-4 , C6, C5, C4 and C3 alkoxy, etc. 1―6 Illustrative examples of alkyl include, but are not limited to, methoxy, ethoxy, propoxy (including n-propoxy and isopropoxy), butoxy (including n-butoxy, isobutoxy, s-butoxy, and t-butoxy groups), pentyloxy (including n-pentyloxy, isopentyloxy, and neopentyloxy), hexyloxy, and the like.
[0053] 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 through an oxygen atom. 1-3 Alkoxy includes C 1-3 , C 1-2 , C 2-3 , C1, C2 and C3 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.
[0054] Unless otherwise defined, the term "C 1-6 "Alkylamino" refers to an alkyl group containing 1 to 6 carbon atoms connected to the remainder of the molecule through an amino group. 1-6 Alkylamino has C 1-4 , C 1-3 , C 1-2 , C 2-6 , C 2-4 , C6, C5, C4, C3 and C2 alkylamino, etc. 1-6 Illustrative examples of alkylamino include, but are not limited to, -NHCH3, -N(CH3)2, -NHCH2CH3, -N(CH3)CH2CH3, -N(CH2CH3)(CH2CH3), -NHCH2CH2CH3, -NHCH2(CH3)2, -NHCH2CH2CH2CH3, and the like.
[0055] 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 through an amino group. 1-3 C for alkylamino 1-3 , C 1-2 , C 2-3 , C1, C2 and C3 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.
[0056] Unless otherwise defined, the term "C 1-6 "Alkylthio" refers to an alkyl group containing 1 to 6 carbon atoms connected to the remainder of the molecule through a sulfur atom. 1-6 Alkylthio includes C 1-4 , C 1-3 , C 1-2 , C 2-6 , C 2-4 , C6, C5, C4, C3 and C2 alkylthio, etc. 1-6Examples of alkylthio include, but are not limited to, -SCH3, -SCH2CH3, -SCH2CH2CH3, -SCH2(CH3)2, and the like.
[0057] Unless otherwise defined, the term "C 1-3 "Alkylthio" refers to an alkyl group containing 1 to 3 carbon atoms connected to the remainder of the molecule through a sulfur atom. 1-3 Alkylthio includes C 1-3 , C 1-2 , C 2-3 , C1, C2 and C3 alkylthio, etc. 1-3 Examples of alkylthio include, but are not limited to, -SCH3, -SCH2CH3, -SCH2CH2CH3, -SCH2(CH3)2, and the like.
[0058] Unless otherwise defined, "C 3-9 "Cycloalkyl" refers to a saturated hydrocarbon group consisting of 3 to 9 carbon atoms, including monocyclic and bicyclic ring systems, as defined above. 3-9 Cycloalkyl has C 3-8 , C 3-7 , C 3-6 , C 3-5 and C 5-6 cycloalkyl, etc.; which may be monovalent, divalent or polyvalent. C 3-9 Examples of cycloalkyl include, but are not limited to, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, and the like.
[0059] Unless otherwise defined, "C 3-6 "Cycloalkyl" refers to a saturated cyclic hydrocarbon group composed of 3 to 6 carbon atoms, including monocyclic and bicyclic ring systems, and includes the above C 3-6 Cycloalkyl has C 3-5 , C 4-5 or C 5-6 cycloalkyl, etc.; which may be monovalent, divalent or polyvalent. C 3-6 Examples of cycloalkyl include, but are not limited to, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, and the like.
[0060] Unless otherwise defined, the term "3 to 12-membered heterocycloalkyl" by itself or in combination with other terms refers to a saturated cyclic group composed of 3 to 12 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 and p is 1 or 2.) It includes monocyclic, bicyclic, and tricyclic ring systems, where bicyclic and tricyclic ring systems include spirocyclic, fused, and bridged rings. Furthermore, for "3- to 12-membered heterocycloalkyl," a heteroatom can occupy the connection position of the heterocycloalkyl to the rest of the molecule. The 3- to 12-membered heterocycloalkyl includes 3- to 10-membered, 3- to 9-membered, 3- to 8-membered, 3- to 6-membered, 3- to 5-membered, 4- to 6-membered, 5- to 6-membered, 4-membered, 5-membered, and 6-membered heterocycloalkyl, etc. Illustrative examples of 3- to 12-membered heteroaryl groups are azetidinyl, oxetanyl, thietanyl, pyrrolidinyl, pyrazolidinyl, imidazolidinyl, tetrahydrothienyl (including tetrahydrothien-2-yl and tetrahydrothien-3-yl, etc.), tetrahydrofuranyl (including tetrahydrofuran-2-yl, etc.), tetrahydropyranyl, piperidinyl (including 1-piperidinyl, 2-piperidinyl, and 3-piperidinyl, etc.), piperazinyl (including 1-piperazinyl and 2-piperazinyl, etc.), morpholinyl (including 3-morpholinyl and 4-morpholinyl, etc.), dioxanyl, dithianyl, isoxazolidinyl, isothiazolidinyl, 1,2-oxazinyl, 1,2-thiazinyl, hexahydropyridazinyl, homopiperazinyl, homopiperidinyl, or dioxepanyl. [ka] Including, but not limited to:
[0061] Unless otherwise defined, the term "3- to 9-membered heterocycloalkyl" by itself or in combination with other terms refers to a saturated cyclic group composed of 3 to 9 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, where p is 1 or 2). It includes monocyclic and bicyclic ring systems, where bicyclic ring systems include spirocycles, fused rings, and bridged rings. Furthermore, with respect to "3- to 9-membered heterocycloalkyl," a heteroatom can occupy the position of attachment of the heterocycloalkyl to the rest of the molecule. The 3- to 9-membered heterocycloalkyl includes 3- to 6-membered, 4- to 7-membered, 4-membered, 5-membered, 6-membered, 7-membered, 8-membered, 9-membered heterocycloalkyl, etc. Illustrative examples of 3- to 9-membered heteroaryl groups include, but are not limited to, azetidinyl, oxetanyl, thietanyl, pyrrolidinyl, pyrazolidinyl, imidazolidinyl, tetrahydrothienyl (including tetrahydrothien-2-yl and tetrahydrothien-3-yl, etc.), tetrahydrofuranyl (including tetrahydrofuran-2-yl, etc.), tetrahydropyranyl, piperidinyl (including 1-piperidinyl, 2-piperidinyl, and 3-piperidinyl, etc.), piperazinyl (including 1-piperazinyl and 2-piperazinyl, etc.), morpholinyl (including 3-morpholinyl and 4-morpholinyl, etc.), dioxanyl, dithianyl, isoxazolidinyl, isothiazolidinyl, 1,2-oxazinyl, 1,2-thiazinyl, hexahydropyridazinyl, homopiperazinyl, or homopiperidinyl.
[0062] Unless otherwise defined, the term "3- to 6-membered heterocycloalkyl" by itself or in combination with other terms refers to a saturated cyclic group composed of 3 to 6 ring atoms, of which 1, 2, 3, or 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, where p is 1 or 2). It includes monocyclic and bicyclic ring systems, where bicyclic ring systems include spirocycles, fused rings, and bridged rings. Furthermore, with respect to "3- to 6-membered heterocycloalkyl," a heteroatom can occupy the position of attachment of the heterocycloalkyl to the rest of the molecule. The 3- to 6-membered heteroaryl includes 4- to 6-membered, 5- to 6-membered, 4-membered, 5-membered, and 6-membered heteroaryl, etc. Illustrative examples of 3- to 6-membered heteroaryl include, but are not limited to, azetidinyl, oxetanyl, thietanyl, pyrrolidinyl, pyrazolidinyl, imidazolidinyl, tetrahydrothienyl (including tetrahydrothien-2-yl and tetrahydrothien-3-yl, etc.), tetrahydrofuranyl (including tetrahydrofuran-2-yl, etc.), tetrahydropyranyl, piperidinyl (including 1-piperidinyl, 2-piperidinyl, and 3-piperidinyl, etc.), piperazinyl (including 1-piperazinyl and 2-piperazinyl, etc.), morpholinyl (including 3-morpholinyl and 4-morpholinyl, etc.), dioxanyl, dithianyl, isoxazolidinyl, isothiazolidinyl, 1,2-oxazinyl, 1,2-thiazinyl, hexahydropyridazinyl, homopiperazinyl, or homopiperidinyl.
[0063] Unless otherwise defined, the terms "C6-10 aromatic ring" and "C6-10 aryl" in the present invention can be used interchangeably. The terms "C6-10 aromatic ring" or "C6-10 aryl" refer to a cyclic hydrocarbon group having a conjugated π-electron system composed of 6 to 10 carbon atoms, which may be a monocyclic, fused bicyclic, or fused tricyclic ring system, in which each ring is aromatic. It may be monovalent, divalent, or polyvalent, and C6-10 aryl includes C6-9, C9, C10, and C6 aryl, etc. Examples of C6-10 aryl include, but are not limited to, phenyl, naphthyl (including 1-naphthyl and 2-naphthyl, etc.), etc.
[0064] Unless otherwise defined, the terms "5- to 12-membered heteroaromatic ring" and "5- to 12-membered heteroaryl" in the present invention can be used interchangeably. The term "5- to 12-membered heteroaryl" refers to a cyclic group having a conjugated π-electron system composed of 5 to 12 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. It may be a monocyclic, fused bicyclic, or fused tricyclic ring system, in which each ring is aromatic. The nitrogen atom is optionally quaternized, and the nitrogen and sulfur heteroatoms are optionally oxidized (i.e., NO and S(O)p, where p is 1 or 2). The 5- to 12-membered heteroaryl is linked to the rest of the molecule through a heteroatom or a carbon atom. The 5- to 12-membered heteroaryl includes 5- to 10-membered, 5- to 9-membered, 5- to 8-membered, 5- to 7-membered, 5- to 6-membered, 5- and 6-membered heteroaryl, etc.Illustrative examples of 5- to 12-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.), tetrazolyl, isoxazolyl (including 3-isoxazolyl, 4-isoxazolyl, and 5-isoxazolyl, etc.), thiazolyl (including 2-thiazolyl, 4-thiazolyl, and 5-thiazolyl, etc.). Examples of alkyl groups include, but are not limited to, 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, pyrimidinyl (including 2-pyrimidinyl or 4-pyrimidinyl, etc.), benzothiazolyl (including 5-benzothiazolyl, etc.), purinyl, benzimidazolyl (including 2-benzimidazolyl, etc.), benzoxazolyl, indolyl (including 5-indolyl, etc.), isoquinolinyl (including 1-isoquinolinyl and 5-isoquinolinyl, etc.), quinoxalinyl (including 2-quinoxalinyl and 5-quinoxalinyl, etc.), or quinolinyl (including 3-quinolinyl and 6-quinolinyl, etc.).
[0065] Unless otherwise defined, the terms "5- to 6-membered heteroaromatic ring" and "5- to 6-membered heteroaryl" of the present invention can be used interchangeably. 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. The nitrogen atom is optionally quaternized, and the nitrogen and sulfur heteroatoms are optionally oxidized (i.e., NO and S(O)p, where 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 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 (1H-1,2,3-triazolyl, 2H-1,2,3-triazolyl, 1H-1,2,4-triazolyl, and 4H-1,2,4 -triazolyl, tetrazolyl, isoxazolyl (such as 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 or 4-pyrimidinyl, etc.).
[0066] Unless otherwise defined, the terms "5- to 10-membered heteroaromatic ring" and "5- to 10-membered heteroaryl" of the present invention can be used interchangeably, and the term "5- to 9-membered heteroaryl" refers to a monocyclic group having a conjugated π-electron system composed of 5 to 10 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, where p is 1 or 2). The 5- to 10-membered heteroaryl is linked to the rest of the molecule through a heteroatom or a carbon atom. The 5- to 10-membered heteroaryl includes 5-, 6-, 7-, 8-, 9-, and 10-membered heteroaryl, etc. Illustrative examples of 5- to 10-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 (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. -triazolyl, tetrazolyl, isoxazolyl (such as 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 or 4-pyrimidinyl, etc.).
[0067] Unless otherwise defined, Cn-n+m or Cn-Cn+m includes any one specific embodiment of n to n+m carbons, for example, C1-12 includes C1, C2, C3, C4, C5, C6, C7, C8, C9, C10, C11, and C12, and also includes any one range of n to n+m, for example, C1-12 includes C1-3, C1-6, C1-9, C3-6, C3-9, C3-12, C6-9, C6-12, and C9-12, etc. Similarly, n- to n+m-membered rings indicate that the number of atoms in the ring is n to n+m. For example, a 3- to 12-membered ring includes a 3-, 4-, 5-, 6-, 7-, 8-, 9-, 10-, 11-, and 12-membered ring, and also includes any one range of n to n+m. 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.
[0068] The term "leaving group" refers to a functional group or atom that may be replaced by another functional group or atom in a substitution reaction (e.g., a nucleophilic substitution reaction). For example, representative leaving groups include trifluoromethanesulfonate; chlorine, bromine, iodine; sulfonates such as methanesulfonate, toluenesulfonate, p-bromobenzenesulfonate, p-toluenesulfonate, and the like; and acyloxy groups such as acetoxy, trifluoroacetoxy, and the like.
[0069] The term "protecting group" includes, but is not limited to, an "amino-protecting group," a "hydroxy-protecting group," or a "mercapto-protecting group." The term "amino-protecting group" refers to a protecting group suitable for preventing side reactions at the amino nitrogen. Representative amino acid protecting groups include, but are not limited to, formyl; acyl such as alkanoyl (e.g., acetyl, trichloroacetyl, or trifluoroacetyl); alkoxycarbonyl such as tert-butoxycarbonyl (Boc); arylmethoxycarbonyl such as benzyloxycarbonyl (Cbz) and 9-fluorenylmethoxycarbonyl (Fmoc); arylmethyl such as benzyl (Bn), triphenylmethyl (Tr), and 1,1-bis(4'-methoxyphenyl)methyl; silyl such as trimethylsilyl (TMS) and tert-butyldimethylsilyl (TBS). The term "hydroxy-protecting group" refers to a protecting group suitable for preventing side reactions at a hydroxy group. Representative hydroxy protecting groups include, but are not limited to, alkyl such as methyl, ethyl, and tert-butyl; acyl such as alkanoyl (e.g., acetyl); arylmethyl such as benzyl (Bn), p-methoxybenzyl (PMB), 9-fluorenylmethyl (Fm), and diphenylmethyl (benzhydryl, DPM); silyl such as trimethylsilyl (TMS) and tert-butyldimethylsilyl (TBS); and the like.
[0070] The compounds of the present invention can be prepared by various synthetic methods familiar to those skilled in the art, including the specific embodiments listed below, embodiments in combination with other chemical synthetic methods, and equivalent alternative methods familiar to those skilled in the art, and preferred embodiments include, but are not limited to, the examples of the present invention.
[0071] All solvents used in this invention are commercially available.
[0072] Compounds were named according to their usual names in the art or ChemDraw® software, and for commercially available compounds the manufacturer's catalogue names were used. [Brief explanation of the drawings]
[0073] [Figure 1] 1 shows the effect of compound 14 on tumor volume growth in a human prostate cancer VCaP cell subcutaneous xenograft tumor CB17 SCID mouse model. [Figure 2] 1 shows the effect of compound 14 on body weight in a CB17 SCID mouse model of subcutaneous human prostate cancer VCaP cell xenograft tumors. DETAILED DESCRIPTION OF THE INVENTION
[0074] The present application will be specifically described below by way of examples, but is not intended to limit the present invention in any way. The present application has been described in detail herein, and specific embodiments thereof have also been disclosed, and 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 application without departing from the spirit and scope of the present application.
[0075] Intermediate Production Reference Example 1: Preparation of Intermediate I-1 [ka] 5-Bromo-3,3-dimethyl-1H-indol-2-one (3.50 g, 14.60 mmol) and potassium tert-butoxide (2.46 g, 21.90 mmol) were dissolved in dimethyl sulfoxide (50 mL) at room temperature. After stirring for 30 minutes, 2-chloro-4-fluorobenzonitrile (2.72 g, 17.50 mmol) was added to the reaction solution, and the reaction solution was stirred at 20 °C for 20 hours. Water (100 mL) and ethyl acetate (50 mL) were added to the reaction system, and the organic phase was separated. The aqueous phase was extracted with ethyl acetate (50 mL × 2). The combined organic phase was washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure, and the residue was purified by silica gel chromatography to obtain intermediate I-1. LC-MS (ESI) [M+H] + 375.1; 1H NMR (400 MHz, DMSO-d6) δ 8.18 (d, J = 8.4 Hz, 1H), 7.96 (d, J = 1.9 Hz, 1H), 7.76 (d, J = 2.0 Hz, 1H), 7.70 (dd, J = 8.4, 1.9 Hz, 1H), 7.44 (dd, J = 8.4, 2.1 Hz, 1H), 6.93 (d, J = 8.4 Hz, 1H), 1.42 (s, 6H).
[0076] Reference Example 2: Preparation of Intermediate I-2 [ka] Intermediate I-1 (1.00 g, 2.67 mmol), bis(pinacolato)diboron (1.08 g, 4.01 mmol), [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (195 mg, 0.27 mmol), and potassium acetate (785 mg, 8.01 mmol) were dissolved in dioxane (40 mL) at room temperature. The reaction solution was purged with nitrogen gas three times, then heated to 90 °C and stirred for 2 hours. The reaction solution was evaporated under reduced pressure, and the residue was separated and purified by silica gel chromatography to obtain intermediate I-2. LC-MS (ESI) [M+H] + 423.3.
[0077] Reference Example 3: Preparation of Intermediate I-3 [ka] 3-Hydroxymethyl-N-boc-azetidine (1.00 g, 5.34 mmol) was dissolved in hydrochloric acid / dioxane (10 mL) at 25° C. and reacted at room temperature for 5 hours. The reaction solution was evaporated under reduced pressure to give the crude product of intermediate I-3, which was used directly in the next reaction without further purification.
[0078] Reference Example 4: Preparation of Intermediate I-4 [ka] Intermediate I-3 (800.00 mg) was dissolved in dimethyl sulfoxide (20 mL) at 25 °C, and potassium carbonate (2.21 g, 16.02 mmol), p-bromoiodobenzene (1.81 g, 6.41 mmol), L-proline (123.19 mg, 1.07 mmol), and cuprous iodide (203.78 mg, 1.07 mmol) were added sequentially. The reaction solution was stirred at 90 °C for 16 hours under nitrogen gas protection. After the reaction solution was cooled to room temperature, water (50 mL) was added to the reaction solution, 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 spin-dried. The filtrate was concentrated under reduced pressure to obtain the residue, which was purified by silica gel chromatography to obtain Intermediate I-4. LC-MS (ESI) [M+H] + :242.0.
[0079] Reference Example 5: Preparation of Intermediate I-5 [ka] Oxalyl chloride (420.11 mg, 3.31 mmol) was dissolved in dichloromethane (10 mL) and cooled to -60 °C. Dimethyl sulfoxide (532.07 mg, 6.81 mmol) was slowly added, and the reaction solution was stirred at -60 °C for 0.5 hours. A solution of intermediate I-4 (500.00 mg, 2.07 mmol) in dichloromethane (5 mL) was added. After stirring at -60 °C for 1 hour, triethylamine (1.05 g, 10.35 mmol) was added, and the reaction solution was continued stirring at -60 °C for 0.5 hours. The reaction solution was warmed to room temperature and stirred for 0.5 hours. After stirring, water (20 mL) was added, and the mixture was extracted with dichloromethane (20 mL × 3). The organic phases were combined, washed with saturated brine (20 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give a residue, which was purified by silica gel chromatography to give intermediate I-5. LC-MS (ESI) [M+H] + :240.0.
[0080] Reference Example 6: Preparation of Intermediate I-6 [ka] Intermediate I-5 (200.00 mg, 0.83 mmol) was dissolved in dichloromethane (10 mL) at 25 °C, and 1-Boc-piperazine (232.72 mg, 1.25 mmol), sodium triacetoxyborohydride (353.09 mg, 1.67 mmol), and glacial acetic acid (5.00 mg, 0.083 mmol) were added sequentially. The mixture was stirred at room temperature for 16 hours. Water (10 mL) was added to the reaction mixture, and the mixture was extracted with dichloromethane (10 mL × 3). The combined organic phases were washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give the residue, which was purified by silica gel chromatography to give Intermediate I-6. LC-MS (ESI) [M+H] + :410.2.
[0081] Reference Example 7: Preparation of Intermediate I-7 [ka] Intermediate I-6 (200.00 mg, 0.48 mmol) was dissolved in a dioxane / water mixture (8 mL / 2 mL), and potassium carbonate (194.93 mg, 1.41 mmol), intermediate I-2 (239.52 mg, 0.56 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (68.78 mg, 0.094 mmol) were added sequentially. The reaction solution was stirred at 80 °C for 16 hours under nitrogen gas protection. The reaction solution was cooled to room temperature, water (10 mL) was added, and the mixture was extracted with ethyl acetate (10 mL × 3). The organic phases were combined, washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to obtain the residue, which was purified by silica gel chromatography to obtain intermediate I-7. LC-MS (ESI) [M+H] + :626.4.
[0082] Reference Example 8: Preparation of Intermediate I-8 [ka] Intermediate I-7 (200.00 mg, 0.32 mmol) was dissolved in dichloromethane (4 mL), trifluoroacetic acid (2 mL) was added, and the reaction solution was stirred at room temperature for 3 hours. The reaction solution was concentrated under reduced pressure to obtain a residue, which was purified by silica gel chromatography to obtain intermediate I-8. LC-MS (ESI) [M+H] + :526.3.
[0083] Reference Example 9: Preparation of Intermediate I-9 [ka] At room temperature, 3-aminopiperidine-2,6-dione hydrochloride (991 mg, 6.02 mmol) and sodium acetate (988 mg, 12.04 mmol) were added to a solution of 4-fluorophthalic anhydride (1.0 g, 6.02 mmol) in acetic acid (10 mL). The reaction mixture was reacted at 120 °C for 16 hours. The reaction mixture was cooled to room temperature and concentrated under reduced pressure to remove most of the acetic acid solution. The residue was poured into water (25 mL), stirred for 10 minutes, and filtered. The cake was washed with water (20 mL × 2) and dried under vacuum to obtain intermediate I-9.
[0084] 1 H NMR (400 MHz, DMSO-d6) δ 11.14 (s, 1H), 8.01 (dd, J = 8.3, 4.5 Hz, 1H), 7.85 (dd, J = 7.5, 2.3 Hz, 1H), 7.76 - 7.69 (m, 1H), 5.16 (dd, J = 12.8, 5.4 Hz, 1H), 2.95 - 2.83 (m, 1H), 2.65 - 2.51 (m, 2H), 2.11 - 2.02 (m, 1H).
[0085] Reference Example 10: Preparation of Intermediate I-10 [ka] To N-methylpyrrolidone (100 mL) were added 2-methoxy-4-bromobenzonitrile (6.20 g, 29.20 mmol), 3,3-dimethyl-1-hydro-indol-2-one (4.71 g, 29.20 mmol), (1R,2R)-N,N'-dimethyl-1,2-cyclohexanediamine (1.66 g, 11.70 mmol), cuprous iodide (1.11 g, 5.84 mmol), and potassium carbonate (8.07 g, 58.40 mmol). The reaction mixture was stirred at 140 °C under an argon atmosphere overnight. After cooling to room temperature, the reaction mixture was poured into water (500 mL) and extracted with ethyl acetate (100 mL x 2). The combined organic phases were washed with saturated brine (200 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to remove the organic solvent, and the crude product was separated and purified by silica gel chromatography to obtain intermediate I-10. LCMS (ESI) [M+H] + 293.1.
[0086] Reference Example 11: Preparation of Intermediate I-11 [ka] Intermediate I-10 (530 mg, 1.81 mmol) and sodium acetate (148 mg, 1.81 mmol) were dissolved in acetic acid (8 mL), and a solution of liquid bromine (347 mg, 2.17 mmol) in acetic acid (2 mL) was added at room temperature with stirring. The reaction mixture was stirred overnight at room temperature. The mixture was poured into water (100 mL), extracted with ethyl acetate (20 mL × 2), and the organic phases were combined. The organic phase was washed with saturated sodium bicarbonate solution (50 mL × 2), saturated aqueous sodium chloride solution (50 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to remove the organic solvent, affording Intermediate I-11. LC-MS (ESI) [M+H] + 371.2. 1H NMR (400 MHz, CDCl3) δ 7.69 (d, J = 8.7 Hz, 1H), 7.41 (d, J = 2.0 Hz, 1H), 7.36 (dd, J = 8.4, 2.0 Hz, 1H), 7.12 - 7.05 (m, 2H), 6.84 (d, J = 8.4 Hz, 1H), 3.96 (s, 3H), 1.49 (s, 6H).
[0087] Reference Example 12: Preparation of Intermediate I-12 [ka] Intermediate I-11 (500 mg, 1.35 mmol) was dissolved in dioxane (10 mL) at 25 °C. Then, bis(pinacolato)diboron (448 mg, 1.75 mmol), [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (95 mg, 0.13 mmol), and potassium acetate (264 mg, 2.7 mmol) were sequentially added to the solution. The mixture was stirred overnight at 80 °C under nitrogen gas protection. After completion of the reaction, the reaction solution was poured into water (20 mL) and extracted with ethyl acetate (20 mL × 3). The combined organic phase was washed with saturated brine (30 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to remove the organic solvent, yielding the crude product. The crude product was separated and purified by silica gel chromatography to yield Intermediate I-12.
[0088] 1 H NMR (400 MHz, MeOH-d4) d 7.82 (d, J = 8.00 Hz, 1H), 7.76 (s, 1H), 7.70 (dd, J = 1.13, 7.88 Hz, 1H), 7.33 (d, J = 1.50 Hz, 1H), 7.16 - 7.23 (m,1H), 7.00 (d, J = 8.00 Hz, 1H), 4.01 (s, 3H), 1.50 (s, 6H), 1.23 - 1.29 (m, 12H).
[0089] Reference Example 13: Preparation of Intermediate I-13 [ka] Intermediate I-6 (150 mg, 0.366 mmol), Intermediate I-12 (152 mg, 0.363 mmol), and potassium phosphate (232 mg, 1.09 mmol) were dissolved in a tetrahydrofuran / water mixture (5 mL / 5 mL). Under argon gas protection, (2'-amino[1,1'-biphenyl]-2-yl)(dicyclohexyl(2',6'-diisopropoxy-[1,1'-biphenyl]-2-yl)phosphoryl)chloropalladium (28 mg, 0.036 mmol) was added with stirring. The reaction mixture was stirred at 70 °C under argon gas protection for 8 hours. The reaction mixture was diluted with water (10 mL) and extracted with ethyl acetate (20 mL × 3). The combined organic phase was washed with saturated brine (30 mL × 2), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to remove the organic solvent, yielding a residue. The residue was separated and purified by silica gel chromatography to obtain intermediate I-13. LC-MS (ESI) [M+H] + 622.5.
[0090] Reference Example 14: Preparation of Intermediate I-14 [ka] Intermediate I-13 (166 mg, 0.267 mmol) was dissolved in dichloromethane (5 mL) and trifluoroacetic acid (1 mL) was added. The reaction mixture was stirred at room temperature for 16 hours. After concentrating the reaction solution, a crude product of intermediate I-14 was obtained. The crude product was directly used in the next reaction without purification.
[0091] Reference Example 15: Preparation of Intermediate I-15 [ka] 5-Bromo-3,3-dimethyl-1H-indol-2-one (5.76 g, 24.00 mmol) and 4-fluoro-2-(trifluoromethyl)phenylacetonitrile (6.81 g, 36.00 mmol) were dissolved in dimethyl sulfoxide (60 mL). Potassium tert-butoxide (4.04 g, 36.00 mmol) was added at room temperature, and the reaction solution was stirred at 20 °C for 5 hours. Water (30 mL) was added to the reaction system, and the mixture was extracted with ethyl acetate (30 mL × 3). The organic phases were combined, washed with saturated brine (30 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure, and the residue was separated and purified by silica gel chromatography to obtain intermediate I-15.
[0092] 1 H NMR (400 MHz, DMSO-d6) δ 8.37 (d, J = 8.3 Hz, 1H), 8.18 (d, J = 1.6 Hz, 1H), 8.05 (dd, J = 8.3, 1.8 Hz, 1H), 7.77 (d, J = 2.0 Hz, 1H), 7.45 (dd, J = 8.4, 2.1 Hz, 1H), 6.97 (d, J = 8.4 Hz, 1H), 1.44 (s, 6H).
[0093] Reference Example 16: Preparation of Intermediate I-16 [ka] Intermediate I-15 (200 mg, 0.48 mmol) was dissolved in dioxane (10 mL) at 25 °C, and bis(pinacolato)diboron (185 mg, 0.73 mmol), potassium acetate (100 mg, 0.96 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (35 mg, 0.048 mmol) were added sequentially. The reaction mixture was stirred at 80 °C for 12 h under nitrogen gas protection. The reaction solution was cooled to room temperature and concentrated under reduced pressure to remove the organic solvent, yielding the crude product. The crude product was separated and purified by silica gel chromatography to yield intermediate I-16. LCMS(ESI)[M+H] +457.18.
[0094] Reference Example 17: Preparation of Intermediate I-17 [ka] Intermediate 1-6 (150 mg, 0.36 mmol), intermediate I-16 (250 mg, 0.55 mmol) and potassium phosphate (235 mg, 1.11 mmol) were dissolved in a mixed solution of tetrahydrofuran and water (8 mL / 2 mL). Under argon gas protection, (2'-amino[1,1'-biphenyl]-2-yl)(dicyclohexyl(2',6'-diisopropyl-[1,1'-biphenyl]-2-yl)phosphoryl]chloropalladium (29 mg, 0.037 mmol) was added with stirring. The reaction mixture was stirred at 60 °C under argon gas protection for 5 h. The reaction solution was diluted with water (10 mL) and extracted with ethyl acetate (20 mL × 3). The organic phases were combined, washed with saturated brine (30 mL × 2), and dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to remove the organic solvent, yielding a residue of I-17. The residue was separated and purified by silica gel chromatography to give intermediate I-17. LC-MS (ESI) [M+H] + 660.4.
[0095] Reference Example 18: Preparation of Intermediate I-18 [ka] Intermediate I-17 (160 mg, 0.24 mmol) was dissolved in dichloromethane (5 mL) and trifluoroacetic acid (1 mL) was added. The reaction mixture was stirred at room temperature for 6 hours. After concentrating the reaction solution, a crude product of intermediate I-18 was obtained. The crude product was used directly in the next reaction without purification. LC-MS (ESI) [M+H] + 560.4.
[0096] Reference Example 19: Preparation of Intermediate I-19 [ka] 5-Bromophthalide (3.00 g, 14.08 mmol) was dissolved in 1,4-dioxane (50 mL), and 1-Boc-piperazine (2.62 g, 14.08 mmol), 4,5-bis(diphenylphosphino)-9,9-dimethylxanthene (816 mg, 1.41 mmol), tris(dibenzylideneacetone)dipalladium (1.29 g, 1.41 mmol), and potassium phosphate (5.97 g, 28.16 mmol) were added sequentially. The reaction mixture was stirred at 100 °C under argon gas protection for 10 h. The reaction solution was cooled to room temperature, filtered, and concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-19. LC-MS (ESI) [M+H] + 319.3.
[0097] Reference Example 20: Preparation of Intermediate I-20 [ka] Intermediate I-19 (1.00 g, 3.14 mmol) was dissolved in methanol / water / tetrahydrofuran (30 mL, 1:1:1), and sodium hydroxide (502 mg, 12.56 mmol) was added. The reaction mixture was stirred at room temperature for 1 hour. The pH of the reaction solution was adjusted to below 5 with aqueous HCl (1 M) and extracted with ethyl acetate (50 mL × 3). The organic phases were combined, washed with saturated brine (50 mL × 2), and dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to obtain a residue. The residue was separated and purified by silica gel chromatography to obtain intermediate I-20. LC-MS (ESI) [M+H] + 337.0.
[0098] Reference Example 21: Preparation of Intermediate I-21 [ka] Intermediate I-20 (600 mg, 1.78 mmol) was dissolved in methanol / ethyl acetate (20 mL, 1:1), and (trimethylsilyl)diazomethane (611 mg, 5.35 mmol) was added. The reaction mixture was stirred at -10°C for 0.25 hours. The reaction solution was concentrated under reduced pressure, and the residue was diluted with water (30 mL) and extracted with ethyl acetate (30 mL x 3). The organic phases were combined, washed with saturated brine (50 mL x 2), and dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to remove the organic solvent, yielding a crude product, intermediate I-21. This crude product was used directly in the next reaction without further purification. LC-MS (ESI) [M+H] + 351.2.
[0099] Reference Example 22: Preparation of Intermediate I-22 [ka] Intermediate I-21 (400 mg) was dissolved in dichloromethane (20 mL), and methanesulfonyl chloride (170 mg, 1.48 mmol) and triethylamine (346 mg, 3.42 mmol) were added. The reaction mixture was stirred at 0° C. for 2 hours. The reaction solution was concentrated under reduced pressure to obtain a residue. Water (30 mL) was added to the residue, and the mixture was extracted with dichloromethane (30 mL × 3). The organic phases were combined, washed with saturated brine (50 mL × 2), and dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to remove the organic solvent, yielding a crude product of intermediate I-22. The crude product was used directly in the next reaction without further purification. LC-MS (ESI) [M+H]+ 429.0.
[0100] Reference Example 23: Preparation of Intermediate I-23 [ka] Intermediate I-22 (350 mg) was dissolved in acetonitrile (20 mL), and intermediate 3-amino-2,6-piperidinedione (157 mg, 1.23 mmol) and N,N-diisopropylethylamine (318 mg, 2.46 mmol) were added. The reaction mixture was stirred at 80 °C for 16 hours. The reaction mixture was cooled to room temperature and then filtered. The filtrate was concentrated under reduced pressure to remove the organic solvent, yielding a residue. The residue was separated and purified by silica gel chromatography to yield intermediate I-23. LC-MS (ESI) [M+H] + 429.1.
[0101] Reference Example 24: Preparation of Intermediate I-24 [ka] Intermediate I-23 (200 mg, 0.467 mmol) was dissolved in dichloromethane (20 mL), and trifluoroacetic acid (160 mg, 1.40 mmol) was added. The reaction mixture was stirred at room temperature for 1 hour. The reaction solution was concentrated under reduced pressure to obtain a residue. The residue was separated and purified by column chromatography to obtain intermediate I-24. LC-MS (ESI) [M+H] + 329.2.
[0102] Reference Example 25: Preparation of Intermediate I-25 [ka] Intermediate I-4 (1.00 g, 4.13 mmol), Intermediate I-2 (2.09 g, 4.96 mmol), and potassium phosphate (2.63 g, 12.4 mmol) were dissolved in dioxane (100 mL) and water (20 mL). Under argon gas protection, [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (302 mg, 0.41 mmol) was added with stirring. The reaction mixture was stirred at 100 °C for 16 h. The reaction solution was cooled to room temperature and concentrated under reduced pressure to remove the organic solvent, yielding the crude product. The crude product was separated and purified by silica gel chromatography to yield Intermediate I-25. LC-MS (ESI) [M+H] + 458.3.
[0103] Reference Example 26: Preparation of Intermediate I-26 [ka] Intermediate I-25 (300 mg, 0.655 mmol) was dissolved in ethyl acetate (30 mL), and 2-iodoylbenzoic acid (1.47 g, 5.24 mmol) was added. The reaction mixture was stirred at 100° C. for 3 hours. The reaction solution was filtered, and the filtrate was concentrated to obtain a crude product of intermediate I-26. The crude product was used directly in the next reaction without further purification. LC-MS (ESI) [M+H] + 456.0.
[0104] Reference Example 27: Preparation of Intermediate I-27 [ka] tert-Butyl 3-fluoro-3-(hydroxymethyl)azetidine-1-carboxylate (50 mg, 1.70 mmol) was dissolved in dichloromethane (5 mL) and trifluoroacetic acid (3 mL) was added. The reaction solution was stirred overnight at room temperature under nitrogen gas protection. The reaction solution was concentrated to obtain the crude product of intermediate I-27, which was used directly in the next reaction without purification.
[0105] Reference Example 28: Preparation of Intermediate I-28 [ka] Intermediate I-27 (179 mg, 1.70 mmol), p-bromoiodobenzene (482 mg, 1.70 mmol), and L-proline (78 mg, 0.68 mmol) were dissolved in N,N-dimethylformamide (10 mL), and potassium carbonate (1.18 g, 8.54 mmol) and cuprous iodide (65 mg, 0.34 mmol) were added. The reaction solution was stirred overnight at 80 °C under nitrogen gas protection. The reaction solution was cooled to room temperature and diluted with ethyl acetate (60 mL). The organic phase was washed with water (30 mL) and saturated brine (30 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to give a residue, which was separated and purified by silica gel chromatography to give intermediate I-28. LC-MS (ESI) [M+H] + :260.0.
[0106] Reference Example 29: Preparation of Intermediate I-29 [ka] Intermediate I-28 (200 mg, 0.77 mmol) was dissolved in dichloromethane (6 mL) and Dess-Martin oxidant (388 mg, 0.92 mmol) was added. The reaction solution was stirred overnight at room temperature under nitrogen gas protection. The reaction solution was filtered, and the filtrate was concentrated under reduced pressure to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-29.
[0107] Reference Example 30: Preparation of Intermediate I-30 [ka] Intermediate I-29 (200 mg) and N-Boc piperazine (218 mg, 1.17 mmol) were dissolved in 1,2-dichloroethane (6 mL), and glacial acetic acid (20 mg) and sodium triacetoxyborohydride (331 mg, 1.56 mmol) were added. The reaction solution was stirred overnight at room temperature under nitrogen gas protection. The reaction solution was concentrated to give a residue, which was separated and purified by silica gel chromatography to give intermediate I-30. LC-MS (ESI) [M+H] + :428.0.
[0108] Reference Example 31: Preparation of Intermediate I-31 [ka] Intermediate I-30 (50 mg, 0.12 mmol), Intermediate I-2 (59 mg, 0.14 mmol), and potassium carbonate (40 mg, 0.29 mmol) were dissolved in a dioxane / water (4 mL:1 mL) mixture, and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (8 mg, 0.011 mmol) was added. The reaction solution was stirred overnight at 85 °C under nitrogen gas protection. The reaction solution was cooled to room temperature and concentrated under reduced pressure to obtain a residue. The residue was separated and purified by silica gel chromatography to obtain Intermediate I-31.
[0109] Reference Example 32: Preparation of Intermediate I-32 [ka] Intermediate I-31 (45 mg, 0.070 mmol) was dissolved in dichloromethane (4 mL) and trifluoroacetic acid (2 mL) was added. The reaction solution was stirred overnight at room temperature under nitrogen gas protection. The reaction solution was concentrated to obtain a crude product of intermediate I-32, which was used directly in the next reaction without further purification. LC-MS (ESI) [M+H] + :544.3.
[0110] Reference Example 33: Preparation of Intermediate I-33 [ka] Intermediate I-2 (150.00 mg, 0.35 mmol) was dissolved in dioxane (8 mL) and water (2 mL) at 25 °C, and potassium carbonate (147.13 mg, 1.06 mmol), 2-iodo-5-bromopyrimidine (122.50 mg, 0.43 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (51.95 mg, 0.071 mmol) were added sequentially. The reaction solution was stirred at 80 °C for 16 h under nitrogen gas protection. After cooling to room temperature, the mixture was diluted with water (10 mL) and extracted with ethyl acetate (10 mL x 3). The combined organic phase was washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-33. LC-MS (ESI) [M+H] + :453.0.
[0111] Reference Example 34: Preparation of Intermediate I-34 [ka] Intermediate I-33 (140.00 mg, 0.31 mmol) was dissolved in dimethyl sulfoxide (5 mL) at 25 °C, and potassium carbonate (128.54 mg, 0.93 mmol), 3-hydroxymethylazetidine (32.26 mg, 0.37 mmol), L-proline (7.18 mg, 0.062 mmol), and cuprous iodide (11.81 mg, 0.062 mmol) were added sequentially. The mixture was purged with nitrogen gas three times and reacted at 90 °C under a nitrogen balloon atmosphere for 16 hours. Water (10 mL) was added, and the mixture was extracted with ethyl acetate (10 mL x 3). The combined organic phases were washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and concentrated to give the residue. The residue was separated and purified by silica gel chromatography to give intermediate I-34. LC-MS (ESI) [M+H] + :460.2.
[0112] Reference Example 35: Preparation of Intermediate I-35 [ka] At 25°C, oxalyl chloride (22.85 mg, 0.18 mmol) was dissolved in dichloromethane (10 mL) and cooled to -60°C. Dimethyl sulfoxide (28.36 mg, 0.36 mmol) was slowly added, and the reaction solution was stirred at -60°C for 0.5 hours. A solution of intermediate I-34 (50.00 mg, 0.11 mmol) in dichloromethane (5 mL) was added, and stirring was continued at -60°C for 0.5 hours. Triethylamine (55.65 mg, 0.55 mmol) was added, and stirring was continued at -60°C for 1 hour. The reaction solution was warmed to room temperature, diluted with water (10 mL), and extracted with dichloromethane (10 mL x 3). The organic phases were combined, washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-35. LC-MS (ESI) [M+H] + :458.2.
[0113] Reference Example 36: Preparation of Intermediate I-36 [ka] Intermediate I-35 (45.00 mg, 0.098 mmol) was dissolved in dichloromethane (5 mL) at 25 °C, and 1-Boc-piperazine (27.94 mg, 0.15 mmol), sodium triacetoxyborohydride (42.39 mg, 0.20 mmol), and glacial acetic acid (0.60 mg, 0.0098 mmol) were added sequentially. The mixture was allowed to react at room temperature for 3 hours. Water (10 mL) was added to the reaction solution, and the mixture was extracted with dichloromethane (10 mL x 3). The organic phases were combined, washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-36. LC-MS (ESI) [M+H] + :628.4.
[0114] Reference Example 37: Preparation of Intermediate I-37 [ka] Intermediate I-36 (25.00 mg, 0.040 mmol) was dissolved in dichloromethane (2 mL) at 25° C., and trifluoroacetic acid (1 mL) was added. The mixture was allowed to react at room temperature for 3 hours. The reaction solution was concentrated to give a crude product of intermediate I-37, which was used directly in the next reaction without further purification. LC-MS (ESI) [M+H] + :528.3.
[0115] Reference Example 38: Preparation of Intermediate I-38 [ka] 4,5-Difluorophthalic anhydride (1.00 g, 5.43 mmol) was dissolved in glacial acetic acid (20 mL), and sodium acetate (894 mg, 10.9 mmol) and 3-aminopiperidine-2,6-dione hydrochloride (894 mg, 5.43 mmol) were added sequentially with stirring. The reaction mixture was stirred at 120 °C for 16 hours under argon gas protection. The reaction solution was cooled to room temperature and poured into water (100 mL). A large amount of solid precipitated, which was suction filtered, washed with water (10 mL × 2), and dried to obtain intermediate I-38.
[0116] Reference Example 39: Preparation of Intermediate I-39 [ka] Intermediate I-38 (1.40 g, 4.76 mmol) was dissolved in anhydrous dimethyl sulfoxide (20 mL), and diisopropylethylamine (1.23 g, 9.52 mmol) and 1-tert-butoxycarbonylpiperazine (887 mg, 4.76 mmol) were added sequentially. The reaction mixture was stirred at 110 °C for 16 hours under argon gas protection. The reaction solution was cooled to room temperature, poured into water (100 mL), and extracted with ethyl acetate (50 mL × 3). The combined organic phase was washed with saturated brine (50 mL × 2) and dried over anhydrous sodium sulfate. After filtration, the filtrate was concentrated under reduced pressure to remove the organic solvent, yielding a residue. The residue was separated and purified by silica gel chromatography to yield Intermediate I-39. LC-MS (ESI) [M+H-56] + 405.2. Reference Example 40: Preparation of Intermediate I-40 [ka] Intermediate I-39 (600 mg, 1.30 mmol) was dissolved in a solution of hydrochloric acid in dioxane (25.0 mL). The reaction mixture was stirred under argon gas at room temperature for 1 hour. The mixture was concentrated under reduced pressure to remove the organic solvent, and the residue was added to water (100 mL). The pH of the reaction system was adjusted to 8.0 with saturated aqueous sodium bicarbonate solution. Extraction was performed with dichloromethane (50.0 mL × 3), and the combined organic phase was washed with saturated brine (50.0 mL × 2) and dried over anhydrous sodium sulfate. Filtration was performed, and the filtrate was concentrated under reduced pressure to remove the organic solvent to obtain a crude product of intermediate I-40. The crude product was used directly in the next reaction without further purification. LC-MS (ESI) [M+H] + 361.2.
[0117] Reference Example 41: Preparation of Intermediate I-41 [ka] Intermediate I-3 (230.00 mg), 3,6-dichloropyridazine (589.93 mg, 3.960 mmol), and potassium carbonate (1.09 g, 7.920 mmol) were suspended in N,N-dimethylformamide (15.0 mL) at room temperature. The mixture was stirred in an oil bath at 80 °C for 3 hours. After cooling to room temperature, the mixture was diluted with water (20.0 mL) and extracted with ethyl acetate (20.0 mL x 3). The organic phase was dried over anhydrous sodium sulfate, filtered, and concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-41.
[0118] Reference Example 42: Preparation of Intermediate I-42 [ka] Oxalyl chloride (305.16 mg, 2.400 mmol) was dissolved in dichloromethane (10.0 mL) at -78 °C, and then dimethyl sulfoxide (250.47 mg, 3.210 mmol) was slowly added dropwise. The mixture was stirred for 0.5 hours while maintaining the temperature at -78 °C. Intermediate I-41 (160.00 mg, 0.801 mmol) was dissolved in dichloromethane (5.0 mL) and then added dropwise to the reaction mixture. The mixture was stirred for 1 hour while maintaining the temperature at -78 °C. Triethylamine (486.61 mg, 4.810 mmol) was added dropwise to the reaction mixture, and the mixture was stirred for 0.5 hours, then allowed to warm to room temperature. The mixture was diluted with water (30.0 mL) and extracted with dichloromethane (20.0 mL x 3). The organic phase was dried over anhydrous sodium sulfate, filtered, and concentrated to give a residue, which was separated and purified by silica gel chromatography to give intermediate I-42. LC-MS (ESI) [M+H] + :197.8.
[0119] Reference Example 43: Preparation of Intermediate I-43 [ka] Intermediate I-42 (150.00 mg, 0.76 mmol) and N-Boc piperazine (155.51 mg, 0.83 mmol) were dissolved in 1,2-dichloroethane (15.0 mL) at room temperature, followed by the addition of sodium triacetoxyborohydride (377.61 mg, 1.60 mmol). The reaction solution was stirred at room temperature for 3 hours. Water (30.0 mL) was added, and the mixture was extracted with dichloromethane (30.0 mL × 3). The organic phase was dried over anhydrous sodium sulfate, filtered, and concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-43. LC-MS (ESI) [M+H] + :368.3.
[0120] Reference Example 44: Preparation of Intermediate I-44 [ka] Under nitrogen gas protection, intermediate I-43 (50.00 mg, 0.136 mmol), I-2 (68.94 mg, 0.163 mmol), [1,1''-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (9.93 mg, 0.014 mmol), and potassium carbonate (46.96 mg, 0.340 mmol) were suspended in 1,4-dioxane / water (4.0 mL / 1.0 mL). The mixture was stirred in an oil bath at 80 °C for 3 h. After cooling to room temperature, the insoluble material was removed by suction filtration, and the filtrate was concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-44. LC-MS (ESI) [M+H] + :628.4.
[0121] Reference Example 45: Preparation of Intermediate I-45 [ka] Intermediate I-44 (60.00 mg, 0.096 mmol) was dissolved in dichloromethane (2.0 mL) at room temperature, and trifluoroacetic acid (1.0 mL) was added. The reaction solution was stirred at room temperature for 1 hour, and the reaction solution was concentrated to give a crude product of intermediate I-45, which was directly used in the next reaction without purification. LC-MS (ESI) [M+H] + :528.3.
[0122] Reference Example 46: Preparation of Intermediate I-46 [ka] Intermediate I-3 (694.00 mg) was dissolved in dichloromethane (10 mL) at room temperature, and triethylamine (2.42 g, 23.90 mmol) and benzyl chloroformate (1.36 g, 7.97 mmol) were added sequentially. The mixture was stirred at room temperature overnight. The reaction solution was poured into water (50 mL) and extracted with dichloromethane (20 mL × 3). The organic phases were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to obtain a residue. The residue was separated and purified by silica gel chromatography to obtain intermediate I-46.
[0123] Reference Example 47: Preparation of Intermediate I-47 [ka] Oxalyl chloride (773.60 mg, 6.10 mmol) was dissolved in dichloromethane (5 mL) and stirred at -60 °C under nitrogen gas protection for 30 minutes. Anhydrous dimethyl sulfoxide (2.16 g, 27.71 mmol) was added to the solution. A solution of intermediate I-46 (1.23 g, 5.54 mmol) in dichloromethane (5 mL) was added, and the reaction solution was stirred at -60 °C for 30 minutes. Triethylamine (2.80 g, 27.71 mmol) was added, and after the dropwise addition was completed, the reaction temperature was slowly raised to room temperature. The reaction solution was poured into water (50 mL), extracted with ethyl acetate (20 mL × 3), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to give the crude product of intermediate I-47, which was used directly in the next reaction without further purification.
[0124] Reference Example 48: Preparation of Intermediate I-48 [ka] Intermediate I-47 (1.25 g), N-Boc piperazine (1.58 g, 8.55 mmol) were dissolved in dichloroethane (15 mL) at room temperature, and acetic acid (684.77 mg, 11.40 mmol) and sodium triacetoxyborohydride (1.81 g, 8.55 mmol) were added. The reaction solution was stirred overnight at room temperature, poured into saturated aqueous sodium bicarbonate (30 mL), and extracted with ethyl acetate (20 mL × 3). The organic layers were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-48.
[0125] Reference Example 49: Preparation of Intermediate I-49 [ka] Intermediate I-48 (1.70 g, 4.36 mmol) was dissolved in methanol (20 mL) at room temperature, and then palladium on carbon (500 mg, mass fraction 10%) was added. The reaction solution was stirred overnight at room temperature under a hydrogen gas atmosphere. The reaction solution was filtered, and the filtrate was concentrated to obtain a crude product of intermediate I-49, which was used directly in the next reaction without further purification.
[0126] Reference Example 50: Preparation of Intermediate I-50 [ka] Intermediate I-49 (100.00 mg) and 2-fluoro-5-bromopyridine (103.38 mg, 0.59 mmol) were dissolved in N,N-dimethylformamide (5 mL) at room temperature, and potassium carbonate (162.36 mg, 1.17 mmol) was added. The reaction solution was heated and stirred at 80 °C overnight under nitrogen gas protection. The reaction solution was cooled to room temperature, poured into water (50 mL), and then extracted with ethyl acetate (20 mL × 3). The organic phases were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to obtain a residue, which was separated and purified by silica gel chromatography to obtain intermediate I-50.
[0127] Reference Example 51: Preparation of Intermediate I-51 [ka] Intermediate I-50 (110.00 mg, 0.27 mmol) and I-2 (112.76 mg, 0.27 mmol) were dissolved in dioxane and water (5 mL / 2 mL) at room temperature, and 1,1'-bis(diphenylphosphino)ferrocenedichloropalladium(II) (19.74 mg, 0.027 mmol) and potassium carbonate (111.78 mg, 0.81 mmol) were added. The reaction solution was stirred at 80 °C under nitrogen gas protection for 2 hours. The reaction solution was cooled to room temperature, poured into water (50 mL), and extracted with ethyl acetate (20 mL × 3). The organic phases were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to give a residue, which was separated and purified by silica gel chromatography to give intermediate I-51. LC-MS (ESI) [M+H] + 627.4.
[0128] Reference Example 52: Preparation of Intermediate I-52 [ka] Intermediate I-51 (100 mg, 0.159 mmol) was dissolved in a solution of hydrogen chloride in ethyl acetate (3 M, 8 mL) at room temperature, and the reaction mixture was stirred at room temperature for 2 hours. The reaction mixture was concentrated to give a crude product of intermediate I-52, which was used directly in the next reaction without further purification. LCMS (ESI) [M+H] + 527.3.
[0129] Reference Example 53: Preparation of Intermediate I-53 [ka] Intermediate I-2 (75.00 mg, 0.18 mmol) and 2,5-dichloropyrazine (52.86 mg, 0.35 mmol) were dissolved in tetrahydrofuran and water (5 mL / 2 mL) at room temperature, and tetratriphenylphosphine palladium (20.50 mg, 0.018 mmol) and potassium carbonate (73.56 mg, 0.53 mmol) were added. The reaction solution was stirred at 80 °C for 2 hours under nitrogen gas protection. After cooling to room temperature, the reaction solution was poured into water (50 mL) and extracted with ethyl acetate (20 mL × 3). The organic phase was dried over anhydrous sodium sulfate and filtered. The filtrate was concentrated to obtain a residue, which was separated and purified by silica gel chromatography to obtain intermediate I-53. LC-MS (ESI) [M+H] + 441.2.
[0130] Reference Example 54: Preparation of Intermediate I-54 [ka] Intermediate I-53 (70.00 mg, 0.17 mmol) and I-49 (52.41 mg, 0.21 mmol) were dissolved in N,N-dimethylformamide (5 mL) at room temperature. Potassium carbonate (70.91 mg, 0.51 mmol) was added. The reaction solution was stirred overnight at 80 °C under nitrogen gas protection. After cooling to room temperature, the reaction solution was poured into water (50 mL) and then extracted with ethyl acetate (20 mL × 3). The organic phases were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated to give a residue, which was separated and purified by silica gel chromatography to give intermediate I-54. LC-MS (ESI) [M+H] + 628.4.
[0131] Reference Example 55: Preparation of Intermediate I-55 [ka] Intermediate I-54 (60.00 mg, 0.096 mmol) was dissolved in dichloromethane (3 mL) at room temperature, and 1 mL of trifluoroacetic acid was added. After stirring at room temperature for 1 hour, a crude product of intermediate I-55 was obtained, which was directly used in the next reaction without further purification.
[0132] Reference Example 56: Preparation of Intermediate I-56 [ka] 5-Bromo-3-chloropyridine-2-carbonitrile (2.00 g, 9.20 mmol) was dissolved in N-methylpyrrolidone (80.0 mL) and the resulting mixture was mixed with the intermediate 3,3-dimethylindol-2-one (1.48 g, 9.20 mol), cuprous iodide (350 mg, 1.84 mol), N 1 ,N 2 1,2-Dimethyl-1,2-cyclohexanediamine (523 mg, 3.68 mmol) and anhydrous potassium acetate (2.71 g, 27.6 mmol) were added sequentially. The reaction solution was stirred at 100 °C for 16 hours under argon gas protection. The reaction solution was cooled to room temperature and separated and purified by silica gel chromatography to obtain intermediate I-56. LC-MS (ESI) [M+H] + 298.1.
[0133] Reference Example 57: Preparation of Intermediate I-57 [ka] Intermediate I-56 (1.35 g, 4.53 mmol) was dissolved in glacial acetic acid (20 mL). The reaction mixture was cooled to 0 °C, and anhydrous sodium acetate (446 mg, 5.44 mmol) was added. A solution of bromine (796 mg, 4.98 mmol) in glacial acetic acid (10 mL) was added dropwise. After the addition was complete, the reaction mixture was stirred at room temperature under argon gas protection for 16 hours. The pH of the reaction mixture was adjusted to 8.0 with saturated aqueous sodium bicarbonate solution. The product was extracted with ethyl acetate (30 mL × 3). The organic phases were combined, dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to remove the organic solvent, affording crude intermediate I-57. This crude product was used directly in the next reaction without further purification. LC-MS (ESI) [M+H] + 376.0.
[0134] Reference Example 58: Preparation of Intermediate I-58 [ka] Intermediate I-57 (600 mg, 1.59 mmol) was dissolved in anhydrous dioxane (100 mL) and bis(pinacolato)diboron (485 mg, 1.91 mmol), anhydrous potassium acetate (312 mg, 3.18 mmol), and 1,1'-bis(diphenylphosphino)ferrocenedichloropalladium(II) (23.3 mg, 0.032 mmol) were added sequentially. The reaction mixture was stirred at 90 °C under argon gas protection for 3 h. The mixture was concentrated under reduced pressure to remove the solvent and the residue was purified by silica gel chromatography to give intermediate I-58. LC-MS (ESI) [M+H] + 424.2.
[0135] Reference Example 59: Preparation of Intermediate I-59 [ka] Intermediate I-6 (150 mg, 0.366 mmol) was dissolved in a mixture of anhydrous dioxane and water (15 mL / 5 mL), and intermediate I-58 (186 mg, 0.439 mmol), anhydrous potassium phosphate (233 mg, 1.10 mmol), and [1,1'-bis(di-tert-butylphosphino)ferrocene]palladium dichloride(II) (4.77 mg, 0.00732 mmol) were added sequentially. The reaction mixture was stirred under argon gas at 100 °C for 3 hours. The mixture was concentrated under reduced pressure to remove the solvent, and the residue was isolated and purified by silica gel chromatography to give intermediate I-59. LC-MS (ESI) [M+H] + 627.3.
[0136] Reference Example 60: Preparation of Intermediate I-60 [ka] Intermediate I-59 (110 mg, 0.175 mmol) was dissolved in anhydrous dichloromethane (2.00 mL), trifluoroacetic acid (0.60 mL) was added, and the reaction mixture was stirred at room temperature for 1 hour under argon gas protection. The mixture was concentrated under reduced pressure to remove the solvent, and the residue was separated and purified by silica gel chromatography to give intermediate I-60. LC-MS (ESI) [M+H] + 527.2.
[0137] Reference Example 61: Preparation of Intermediate I-61 [ka] 4-Pyrazoleboronic acid pinacol ester (2.00 g, 10.3 mmol), p-bromoiodobenzene (4.39 g, 15.5 mmol), potassium phosphate (4.37 g, 20.6 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (377 mg, 0.52 mmol) were mixed in N,N-dimethylformamide (20 mL) and water (4 mL). The reaction mixture was purged with argon gas three times at room temperature, and then stirred at 90 °C under argon gas protection for 4 h. The mixture was cooled to room temperature, poured into water (200 mL), and 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 filtrate was concentrated under reduced pressure to dryness to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-61. LC-MS (ESI) [M+H] + 223.2.
[0138] Reference Example 62: Preparation of Intermediate I-62 [ka] 4-(2-Hydroxyethyl)piperazine-1-carboxylic acid tert-butyl ester (2 g, 8.68 mmol) and carbon tetrabromide (3.15 g, 9.50 mmol) were added to anhydrous dichloromethane (20 mL) at room temperature, followed by a solution of triphenylphosphine (2.51 g, 9.57 mmol) in dichloromethane (8 mL). The reaction mixture was stirred overnight at room temperature under nitrogen gas protection. The organic solvent was removed under reduced pressure to give a residue, which was separated and purified by silica gel chromatography to give intermediate I-62. LC-MS (ESI) [M+H] + 293.1.
[0139] 1H NMR (400 MHz, CDCl3) δ 3.45 - 3.22 (m, 6H), 2.72 (t, J = 7.3 Hz, 2H), 2.50 - 2.25 (m, 4H), 1.61 - 1.43 (m, 2H), 1.39 (s, 9H). Reference Example 63: Preparation of Intermediate I-63 [ka] Intermediate I-61 (270 mg, 1.21 mmol) was dissolved in N,N-dimethylformamide (3 mL). Sodium hydride (72.8 mg, 1.82 mmol, 60% pure mineral oil) was added to the mixture at 0° C. The reaction mixture was stirred at room temperature for 30 minutes, and then a solution of intermediate I-62 (355 mg, 1.21 mmol) in N,N-dimethylformamide (2 mL) was added dropwise at room temperature. The reaction mixture was stirred overnight at room temperature. The mixture was poured into saturated ammonium chloride solution (50 mL) and extracted with ethyl acetate (15 mL × 3). The combined organic phase was washed with saturated brine (30 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give crude intermediate I-63, which was used directly in the next reaction without further purification. LCMS (ESI) [M+H] + 435.1.
[0140] Reference Example 64: Preparation of Intermediate I-64 [ka] Intermediate I-63 (200 mg), Intermediate I-2 (233 mg, 0.551 mmol), potassium phosphate (195 mg, 0.918 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (16.8 mg, 0.0230 mmol) were mixed in N,N-dimethylformamide (10 mL) and water (2 mL). The reaction mixture was purged with argon gas three times at room temperature and then stirred at 100 °C under argon gas protection for 2 h. The mixture was cooled to room temperature, poured into water (100 mL), and extracted with ethyl acetate (20 mL × 3). The combined organic phases were washed with saturated brine (30 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the residue. The residue was separated and purified by silica gel chromatography to give Intermediate I-64. LC-MS (ESI) [M+H] + 651.2.
[0141] Reference Example 65: Preparation of Intermediate I-65 [ka] Intermediate I-64 (200 mg) was dissolved in dichloromethane (2 mL), and a solution of hydrogen chloride in dioxane (4 M, 1 mL) was added dropwise to the solution at room temperature while stirring. The reaction mixture was stirred at room temperature for 30 minutes. The solvent was removed from the mixture under reduced pressure. The residue was separated and purified by silica gel chromatography to give Intermediate I-65. LC-MS (ESI) [M+H] + 551.3.
[0142] Reference Example 66: Preparation of Intermediate I-66 [ka] 1-tert-Butoxycarbonyl-4-(3-hydroxypropane)piperazine (2.00 g, 8.19 mmol) and carbon tetrabromide (2.99 g, 9.01 mmol) were mixed in tetrahydrofuran (60 mL). After purging with argon gas, a solution of triphenylphosphine (2.36 g, 9.01 mmol) in tetrahydrofuran (10 mL) was added dropwise at 0 °C. The reaction mixture was stirred overnight at room temperature under an argon atmosphere. The solvent was removed under reduced pressure. The residue was separated and purified by silica gel chromatography to give intermediate I-66.
[0143] 1 H NMR (400 MHz, CDCl3) δ 3.47 (t, J = 6.6 Hz, 2H), 3.42 (t, J = 5.0 Hz, 4H), 2.48 (t, J = 6.9 Hz, 2H), 2.38 (t, J = 5.0 Hz, 4H), 2.02 (p, J = 6.6 Hz, 2H), 1.46 (s, 9H). Reference Example 67: Preparation of Intermediate I-67 [ka] Intermediate I-61 (200 mg, 0.897 mmol) was dissolved in N,N-dimethylformamide (2 mL). Sodium hydride (54.0 mg, 1.35 mmol, 60% purity mineral oil) was added to the mixture at 0° C. in a batchwise manner. The reaction mixture was stirred at room temperature for 30 minutes, and then a solution of intermediate I-66 (276 mg, 0.897 mmol) in N,N-dimethylformamide (1 mL) was added dropwise at room temperature. The reaction mixture was stirred at room temperature for 2 hours. The mixture was poured into saturated ammonium chloride solution (50 mL) and extracted with ethyl acetate (15 mL × 3). The combined organic phase was washed with saturated brine (30 mL), dried over anhydrous sodium sulfate, and filtered. The filtrate was concentrated under reduced pressure to give crude intermediate I-67, which was used directly in the next reaction without further purification. LCMS (ESI) [M+H] + 449.2.
[0144] Reference Example 68: Preparation of Intermediate I-68 [ka] Intermediate I-67 (200 mg), Intermediate I-2 (226 mg, 0.53 mmol), potassium phosphate (189 mg, 0.89 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (16.3 mg, 0.023 mmol) were mixed in N,N-dimethylformamide (5 mL) and water (0.5 mL). After purging with argon gas three times at room temperature, the reaction mixture was stirred at 100 °C under argon gas protection for 2 h. The mixture was cooled to room temperature, poured into saturated brine (50 mL), and extracted with ethyl acetate (20 mL × 3). The organic phases were combined, dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give a residue. The residue was separated and purified by silica gel chromatography to give Intermediate I-68. LC-MS (ESI) [M+H] + 665.3.
[0145] Reference Example 69: Preparation of Intermediate I-69 [ka] Intermediate I-68 (130 mg, 0.195 mmol) was dissolved in dichloromethane (1 mL), and a solution of hydrogen chloride in methanol (3 M, 2.5 mL) was added dropwise to the solution at room temperature. The reaction mixture was stirred at room temperature for 1 hour. The solvent was removed under reduced pressure. The residue was separated and purified by silica gel chromatography to give Intermediate I-69. LC-MS (ESI) [M+H] + 565.3.
[0146] Reference Example 70: Preparation of Intermediate I-70 [ka] Intermediate I-3 (3.00 g) was dissolved in N,N-dimethylformamide (50 mL) at 25 °C, and potassium carbonate (6.64 g, 48.07 mmol) and 2,6-difluoropyridine (2.21 g, 19.23 mmol) were added sequentially. The mixture was stirred at 85 °C for 16 hours. Water (50 mL) was added, and the mixture was extracted with ethyl acetate (50 mL × 3). The organic phases were combined, washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain a residue. The residue was separated and purified by silica gel chromatography to obtain intermediate I-70. LC-MS (ESI) [M+H] + 183.2.
[0147] Reference Example 71: Preparation of Intermediate I-71 [ka] Intermediate I-70 (1.90 g, 10.43 mmol) was dissolved in dichloromethane (50 mL) at 25 °C, cooled to 0 °C, and N-bromosuccinimide (1.86 g, 10.43 mmol) was added. The mixture was allowed to react at 0 °C for 10 minutes. Water (50 mL) was added, and the mixture was extracted with dichloromethane (50 mL × 3). The organic phases were combined, washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain a residue. The residue was separated and purified by silica gel chromatography to obtain intermediate I-71.
[0148] 1 H NMR (400 MHz, CDCl3) δ 7.58 (t, J = 8.7 Hz, 1H), 6.00 (dd, J = 8.5, 1.5 Hz, 1H), 4.12 - 4.04 (m, 2H), 3.86 (d, J = 6.3 Hz, 2H), 3.81 (dd, J = 8.4, 5.2 Hz, 2H), 3.02 - 2.84 (m, 1H), 2.77 (s, 1H). Reference Example 72: Preparation of Intermediate I-72 [ka] At 25°C, oxalyl chloride (855.55 mg, 6.74 mmol) was dissolved in dichloromethane (50 mL) and cooled to -60°C. Dimethyl sulfoxide (1.09 g, 13.90 mmol) was added and the mixture was allowed to react at -60°C for 0.5 hours. A solution of intermediate I-71 (1.10 g, 4.21 mmol) in dichloromethane (10 mL) was added and the mixture was allowed to react at -60°C for 0.5 hours. Triethylamine (2.13 g, 21.07 mmol) was added and the mixture was allowed to react at -60°C for 0.5 hours, and then at room temperature for 0.5 hours. Water (50 mL) was added and the mixture was extracted with dichloromethane (50 mL x 3). The organic phases were combined, washed with saturated brine (50 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to obtain a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-72. LC-MS (ESI) [M+H] + 259.0.
[0149] Reference Example 73: Preparation of Intermediate I-73 [ka] Intermediate I-72 (1.00 g, 3.86 mmol) was dissolved in dichloromethane (20 mL) at 25 °C, and 1-Boc-piperazine (1.08 g, 5.79 mmol), sodium triacetoxyborohydride (1.64 g, 7.72 mmol), and glacial acetic acid (23.42 mg, 0.39 mmol) were added sequentially. The mixture was allowed to react at room temperature for 3 hours. Water (20 mL) was added, and the mixture was extracted with dichloromethane (20 mL × 3). The combined organic phases were washed with saturated brine (20 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the residue. The residue was separated and purified by silica gel chromatography to give Intermediate I-73. LC-MS (ESI) [M+H] + 429.2.
[0150] Reference Example 74: Preparation of Intermediate I-74 [ka] Intermediate I-73 (150.00 mg, 0.35 mmol) was dissolved in dioxane (8 mL) and water (2 mL) at 25 °C. Potassium carbonate (144.86 mg, 1.05 mmol), intermediate I-2 (177.23 mg, 0.42 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (50.52 mg, 0.070 mmol) were added sequentially. The mixture was purged with nitrogen gas three times and reacted at 80 °C under a nitrogen balloon atmosphere for 2 h. Water (10 mL) was added, and the mixture was extracted with ethyl acetate (10 mL × 3). The organic phases were combined, washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to give the residue. The residue was separated and purified by chromatography to give intermediate I-74. LC-MS (ESI) [M+H] + 645.4.
[0151] Reference Example 75: Preparation of Intermediate I-75 [ka] Intermediate I-74 (120.00 mg, 0.19 mmol) was dissolved in dichloromethane (4 mL) at 25° C., and trifluoroacetic acid (2 mL) was added. The reaction was allowed to proceed at room temperature for 3 hours. The mixture was concentrated under reduced pressure to give crude product Intermediate I-75, which was used directly in the next reaction. LC-MS (ESI) [M+H] + 545.3.
[0152] Reference Example 76: Preparation of Intermediate I-76 [ka] Intermediate I-73 (100.00 mg, 0.23 mmol) was dissolved in dioxane (8 mL) and water (2 mL) at 25 °C. Potassium carbonate (96.74 mg, 0.70 mmol), intermediate I-16 (127.53 mg, 0.28 mmol), and [1,1'-bis(diphenylphosphino)ferrocene]dichloropalladium(II) (33.92 mg, 0.047 mmol) were added sequentially. The mixture was purged with nitrogen gas three times and reacted at 80 °C for 2 hours under a nitrogen balloon atmosphere. Water (10 mL) was added, and the mixture was extracted with ethyl acetate (10 mL × 3). The organic phases were combined, washed with saturated brine (10 mL), dried over anhydrous sodium sulfate, filtered, and the filtrate was concentrated under reduced pressure to dryness to give a residue. The residue was separated and purified by silica gel chromatography to give intermediate I-76. LC-MS (ESI) [M+H] + 679.4.
[0153] Reference Example 77: Preparation of Intermediate I-77 [ka] Intermediate I-76 (110.00 mg, 0.16 mmol) was dissolved in dichloromethane (4 mL) at 25° C., and trifluoroacetic acid (2 mL) was added. The mixture was allowed to react at room temperature for 3 hours. The mixture was concentrated under reduced pressure to give the crude product Intermediate I-77, which was used directly in the next reaction. LC-MS (ESI) [M+H] + 579.3.
[0154] Example Preparation: Example 1: Preparation of Compound 1 [ka] Intermediate I-8 (650.00 mg, 1.24 mmol) was dissolved in dimethyl sulfoxide (8 mL) at 25 °C, and intermediate I-9 (408.81 mg, 1.48 mmol) and N,N-diisopropylethylamine (480.81 mg, 3.72 mmol) were added sequentially. The reaction solution was stirred at 120 °C for 16 hours. The reaction solution was cooled to room temperature and purified by silica gel chromatography to obtain target compound 1. LC-MS (ESI) [M+H] + :782.3.
[0155] 1 H NMR (400 MHz, DMSO-d6) δ 11.03 (s, 1H), 8.11 (d, J = 8.4 Hz, 1H), 7.91 (d, J = 1.9 Hz, 1H), 7.71 - 7.58 (m, 3H), 7.46 - 7.34 (m, 3H), 7.29 (d, J = 2.2 Hz, 1H), 7.20 (dd, J = 8.7, 2.3 Hz, 1H), 6.93 (d, J = 8.3 Hz, 1H), 6.44 (d, J = 8.2 Hz, 2H), 5.01 (dd, J = 12.9, 5.4 Hz, 1H), 3.91 (t, J = 7.4 Hz, 2H), 3.45 (t, J = 6.4 Hz, 2H), 3.38 (s, 4H), 2.92 (p, J = 6.8 Hz, 1H), 2.87 - 2.75 (m, 1H), 2.64 - 2.56 (m, 2H), 2.51 (t, J = 11.7 Hz, 6H), 1.99 - 1.88 (m, 1H), 1.39 (s, 6H). Example 2: Preparation of Compound 2 [ka] Intermediate I-14 (140 mg) was dissolved in DMSO (8 mL), and intermediate I-9 (74 mg, 0.27 mmol) and diisopropylethylamine (103 mg, 0.80 mmol) were added sequentially. The reaction solution was stirred at 110 °C for 16 hours. After cooling to room temperature, the reaction solution was filtered, and the filtrate was purified by preparative HPLC (containing formic acid) to give compound 2. LC-MS (ESI) [M+H] + 778.4. 1 H NMR (400 MHz, DMSO-d6) δ 11.08 (s, 1H), 8.40(s, from formic acid), 7.92 (d, J = 8.0 Hz, 1H), 7.69 (d, J = 12.4 Hz, 2H), 7.49 (d, J = 8.0 Hz, 2H), 7.42 -7.30 (m, 3H), 7.25 (dd, J = 15.0, 8.4 Hz, 2H), 6.99 (d, J = 8.2 Hz, 1H), 6.50 (d, J = 7.7 Hz, 2H), 5.07 (d, J = 7.9 Hz, 1H), 4.20-3.80 (m, 4H), 3.56 - 3.42 (m, 9H), 3.03 - 2.80 (m, 4H), 2.69 - 2.59 (m, 4H), 2.05-2.01 (m, 1H), 1.46 (s, 6H). Example 3: Preparation of Compound 3 [ka] Intermediate I-18 (80 mg) was dissolved in N-methylpyrrolidone (10 mL), and intermediate I-9 (50 mg, 0.181 mmol) and N,N-diisopropylethylamine (90 mg, 0.697 mmol) were added sequentially. The reaction solution was stirred at 110 °C for 16 hours. After cooling to room temperature, the reaction solution was filtered, and the filtrate was further purified by preparative HPLC (containing formic acid) to give compound 3. LC-MS (ESI) [M+H] + 816.4. 1H NMR (400 MHz, DMSO-d6) δ 11.08 (s, 1H), 8.37 (brs, 2H), 8.20 (s,1 H), 8.09 (d, J = 8.5 Hz, 1H), 7.75 - 7.66 (m, 2H), 7.55 - 7.43 (m, 3H), 7.36 (s, 1H), 7.27 (d, J = 7.3 Hz, 1H), 7.05 (d, J = 5.9 Hz, 1H), 6.51 (d, J = 6.0 Hz, 2H), 5.08 (d, J = 11.3 Hz, 1H), 3.99 (s, 2H), 3.49 (d, J = 26.9 Hz, 10H), 3.05 - 2.82 (m, 3H), 2.70 - 2.60 (s, 3H), 2.05-2.01 (m, 1H), 1.48 (s, 6H). (including formic acid) Example 4: Preparation of Compound 4 [ka] Intermediate I-24 (70.0 mg, 0.213 mmol) was dissolved in dichloromethane / methanol (20 mL, 10:1 volume ratio), and intermediate I-26 (97.1 mg, 0.213 mmol), sodium acetate (26.0 mg, 0.317 mmol), and sodium triacetoxyborohydride (68.0 mg, 0.321 mmol) were added sequentially. The reaction mixture was stirred at room temperature for 1 hour. The reaction solution was filtered, and the filtrate was separated and purified by preparative HPLC (containing formic acid) to give compound 4. LC-MS (ESI) [M+H] + 768.2.
[0156] 1H NMR (400 MHz, DMSO-d6) δ 10.97 (s, 1H), 8.19 (d, J = 8.4 Hz, 1H), 7.98 (d, J = 1.9 Hz, 1H), 7.77 - 7.70 (m, 2H), 7.55 - 7.43 (m, 4H), 7.07 (d, J = 8.0 Hz, 2H), 7.00 (d, J = 8.3 Hz, 1H), 6.51 (d, J = 8.6 Hz, 2H), 5.05 (dd, J = 13.3, 5.1 Hz, 1H), 4.27 (dd, J = 51.3, 17.0 Hz, 2H), 3.98 (t, J = 7.4 Hz, 2H), 3.58 - 3.47 (m, 4H), 3.03 - 2.85 (m, 3H), 2.68 - 2.59 (m, 3H), 2.55 (d, J = 2.2 Hz, 4H), 2.44 - 2.29 (m, 2H), 2.03 - 1.94 (m, 1H), 1.46 (s, 6H). Example 5: Preparation of Compound 5 [ka] Intermediate I-32 (38 mg), I-9 (25 mg, 0.090 mmol), and diisopropylethylamine (100 μL) were dissolved in dimethyl sulfoxide (3 mL), and the reaction solution was stirred overnight at 130° C. under nitrogen gas protection. The reaction solution was cooled to room temperature and purified by preparative HPLC (containing formic acid) to give compound 5. LC-MS (ESI) [M+H] + :800.4.
[0157] 1H NMR (400MHz, DMSO) δ: 11.09 (s, 1H), 8.18 (d, J = 8.3 Hz, 1H), 7.98 (d, J = 1.9 Hz, 1H), 7.77 - 7.64 (m, 3H), 7.59 - 7.43 (m, 3H), 7.35 (d, J = 2.3 Hz, 1H), 7.26 (dd, J = 8.7, 2.3 Hz, 1H), 7.00 (d, J = 8.2 Hz, 1H), 6.61 (d, J = 8.4 Hz, 2H), 5.07 (dd, J = 12.9, 5.4 Hz, 1H), 4.07 (dd, J = 17.8, 9.0 Hz, 2H), 3.93 (dd, J = 21.3, 8.9 Hz, 2H), 3.46 (d, J = 5.3 Hz, 4H), 3.02 - 2.81 (m, 3H), 2.68 (t, J = 4.9 Hz, 4H), 2.63 - 2.52 (m, 2H), 2.01 (td, J = 7.6, 3.6 Hz, 1H), 1.46 (s, 6H). Example 6: Preparation of Compound 6 [ka] Intermediate I-37 (25.00 mg) was dissolved in dimethyl sulfoxide (2 mL) at 25° C., and intermediate I-9 (13.26 mg, 0.048 mmol) and N,N-diisopropylethylamine (25.85 mg, 0.20 mmol) were added sequentially, and the reaction solution was stirred at 120° C. for 16 hours. The reaction solution was cooled to room temperature and purified by preparative HPLC (containing formic acid) to give compound 6. LC-MS (ESI) [M+H] + :784.4.
[0158] 1H NMR (400 MHz, DMSO-d6) δ 11.10 (s, 1H), 8.29 (d, J = 1.7 Hz, 1H), 8.23 - 8.16 (m, 2H), 8.12 (s, 2H), 8.01 (d, J = 1.9 Hz, 1H), 7.75 (dd, J = 8.4, 2.0 Hz, 1H), 7.69 (d, J = 8.4 Hz, 1H), 7.36 (d, J = 2.4 Hz, 1H), 7.27 (dd, J = 8.8, 2.3 Hz, 1H), 7.05 (d, J = 8.4 Hz, 1H), 5.08 (dd, J = 12.9, 5.4 Hz, 1H), 4.11 (t, J = 7.7 Hz, 2H), 3.69 (dd, J = 7.7, 5.5 Hz, 2H), 3.45 (t, J = 4.8 Hz, 4H), 3.07 (p, J = 6.6 Hz, 1H), 2.89 (ddd, J = 17.3, 14.1, 5.5 Hz, 1H), 2.68 (d, J = 7.4 Hz, 2H), 2.64 - 2.52 (m, 6H), 2.02 (dp, J = 11.3, 3.9, 3.5 Hz, 1H), 1.47 (s, 6H). Example 7: Preparation of Compound 7 [ka] Intermediate I-26 (80.0 mg, 0.175 mmol) was dissolved in methanol (10 mL), and intermediate I-40 (69.4 mg, 0.175 mmol), sodium acetate (28.7 mg, 0.350 mmol), and sodium borohydride acetate (37.1 mg, 0.175 mmol) were added sequentially. The reaction solution was stirred at room temperature for 3 hours. The reaction solution was concentrated under reduced pressure to give a residue, which was purified by preparative HPLC (formic acid) to give compound 7. LC-MS (ESI) [M+H] + 800.1.
[0159] 1H NMR (400 MHz, CDCl3) δ 8.02 (s, 1H), 7.82 (d, J = 8.4 Hz, 1H), 7.76 (d, J = 1.9 Hz, 1H), 7.58 (dd, J = 8.4, 2.0 Hz, 1H), 7.55 - 7.50 (m, 1H), 7.47 - 7.39 (m, 5H), 7.02 (d, J = 8.2 Hz, 1H), 6.54 (d, J = 8.6 Hz, 2H), 4.95 (dd, J = 12.3, 5.3 Hz, 1H), 4.17 (s, 2H), 3.72 (s, 2H), 3.55 (s, 3H), 2.95 - 2.49 (m, 7H), 2.20 - 2.11 (m, 1H), 1.96-1.67 (m, 4H), 1.53 (s, 6H). Example 8: Preparation of Compound 8 [ka] Intermediate I-45 (50.00 mg), I-9 (31.39 mg, 0.114 mmol), and N,N-diisopropylethylamine (122.38 mg, 0.947 mmol) were dissolved in dimethyl sulfoxide (3.0 mL) at room temperature. The reaction mixture was stirred in an oil bath at 110 °C for 16 hours. After cooling to room temperature, the mixture was separated and purified by chromatography to obtain compound 8. LC-MS (ESI) [M+H] + :784.4.
[0160] 1H NMR (400 MHz, DMSO-d6) δ 11.10 (s, 1H), 8.20 (d, J = 8.0 Hz, 1H), 8.15 (d, J = 1.8 Hz, 1H), 8.01 (d, J = 1.9 Hz, 1H), 7.94 (t, J = 9.4 Hz, 2H), 7.76 (dd, J = 8.4, 2.0 Hz, 1H), 7.69 (d, J = 8.5 Hz, 1H), 7.36 (d, J = 2.2 Hz, 1H), 7.28 (dd, J = 8.7, 2.3 Hz, 1H), 7.08 (d, J = 8.3 Hz, 1H), 6.90 (d, J = 9.3 Hz, 1H), 5.08 (dd, J = 12.9, 5.4 Hz, 1H), 4.21 (t, J = 8.1 Hz, 2H), 3.78 (dd, J = 8.3, 5.5 Hz, 2H), 3.50 - 3.40 (m, 4H), 3.10 - 3.03 (m, 2H), 2.89 - 2.82 (m, 1H), 2.69 (d, J = 7.5 Hz, 2H), 2.63 - 2.53 (m, 5H), 2.08 - 1.97 (m, 1H), 1.48 (s, 6H). Example 9: Preparation of Compound 9 [ka] Intermediate I-52 (90 mg), intermediate I-9 (58.59 mg, 0.212 mmol), and N,N-diisopropylethylamine (233.72 μL, 1.41 mmol) were dissolved in dimethyl sulfoxide (2 mL), and the reaction solution was stirred at 110° C. for 16 hours. Most of the N,N-diisopropylethylamine was removed under reduced pressure, and the residue was separated by preparative HPLC to give compound 9. LCMS (ESI) [M+H] + 783.4.
[0161] 1H NMR (400 MHz, DMSO-d6) δ 11.09 (s, 1H), 8.39 (d, J = 2.13 Hz, 1H), 8.18 (d, J = 8.51 Hz, 1H), 7.98 (d, J = 1.75 Hz, 1H), 7.79 - 7.86 (m, 1H), 7.64 -7.78 (m, 3H), 7.44 - 7.52 (m, 1H), 7.35 (s, 1H), 7.23 - 7.30 (m, 1H), 7.02 (d, J = 8.25 Hz, 1H), 6.43 - 6.50 (m, 1H), 5.02 - 5.13 (m, 1H), 4.03 - 4.13 (m, 2H), 3.60 - 3.71 (m, 2H), 3.45 (br. s., 4H), 2.82 - 3.05 (m, 2H), 2.51 - 2.69 (m, 8H), 1.95 - 2.06 (m, 1H), 1.46 (s, 6H).
[0162] Example 10: Preparation of Compound 10 [ka] Intermediate I-55 (50.00 mg) was dissolved in dimethyl sulfoxide (2 mL) at room temperature, and N,N-diisopropylethylamine (1 mL) and intermediate I-9 (52.31 mg, 0.19 mmol) were added. The reaction solution was stirred overnight at 130 °C under nitrogen gas protection. Most of the N,N-diisopropylethylamine was removed under reduced pressure, and the residue was separated by preparative HPLC to give compound 10. LC-MS (ESI) [M+H] + 784.4.
[0163] 1H NMR (400 MHz, DMSO-d6) δ 11.10 (s, 1H), 8.66 (d, J = 1.4 Hz, 1H), 8.19 (d, J = 8.4 Hz, 1H), 8.07 (d, J = 1.9 Hz, 1H), 7.97 (dd, J = 21.8, 1.7 Hz, 2H), 7.86 (dd, J = 8.4, 1.9 Hz, 1H), 7.79 - 7.63 (m, 2H), 7.42 - 7.16 (m, 2H), 7.04 (d, J = 8.3 Hz, 1H), 5.08 (dd, J = 12.9, 5.4 Hz, 1H), 4.19 (t, J = 8.1 Hz, 2H), 3.88 - 3.67 (m, 2H), 3.45 (t, J = 4.8 Hz, 4H), 3.13 - 3.01 (m, 1H), 2.89 (ddd, J = 17.3, 13.9, 5.4 Hz, 1H), 2.68 (d, J = 7.5 Hz, 2H), 2.75-2.30 (m, 6H), 2.14 - 1.88 (m, 1H), 1.47 (s, 6H).
[0164] Example 11: Preparation of Compound 11 [ka] Intermediate I-60 (110 mg) was dissolved in DMSO (5.00 mL), and intermediate I-9 (61.9 mg, 0.22 mmol) and diisopropylethylamine (88.9 mg, 0.69 mmol) were added sequentially. The reaction mixture was stirred under argon gas at 110 °C for 2 hours. The reaction mixture was separated and purified by preparative HPLC (containing formic acid) to give compound 11. LC-MS (ESI) [M+H] + 783.3. 1H NMR (400 MHz, DMSO-d6) δ 11.08 (s, 1H), 8.95 (s, 1H), 8.56 (s, 1H), 8.36 (s, 1H), 7.73 (s, 1H), 7.68 (d, J = 8.6 Hz, 1H), 7.53 - 7.46 (m, 2H), 7.35 (s, 1H), 7.27 (d, J = 8.4 Hz, 1H), 7.12 (d, J = 8.1 Hz, 1H), 6.51 (d, J = 8.4 Hz, 2H), 5.07 (dd, J = 12.7, 5.6 Hz, 1H), 3.99 (t, J = 7.2 Hz, 2H), 3.57 - 3.49 (m, 2H), 3.49 - 3.38 (m, 4H), 3.06 - 2.79 (m, 4H), 2.69 - 2.55 (m, 4H), 2.36 - 2.30 (m, 1H), 2.10 - 1.90 (m, 2H), 1.48 (s, 6H).
[0165] Example 12: Preparation of Compound 12 [ka] Intermediate I-65 (70.0 mg, 0.127 mmol), intermediate I-9 (42.0 mg, 0.152 mmol), and N,N-diisopropylethylamine (32.8 mg, 0.254 mmol) were dissolved in dimethyl sulfoxide (1.5 mL), and the reaction solution was stirred at 80° C. for 4 hours. The reaction solution was cooled to 30° C. and then purified by preparative HPLC (containing formic acid) to give compound 12. LC-MS (ESI) [M+H] + 807.4. 1H NMR (400 MHz, DMSO-d6) δ 11.08 (s, 1H), 8.38 (s, 1H), 8.27 (s, 1H), 8.19 (d, J = 8.4 Hz, 1H), 8.00 (s, 1H), 7.94 (s, 1H), 7.85 (s, 1H), 7.75 (d, J = 8.5 Hz, 1H), 7.69 - 7.64 (m, 4H), 7.59 (d, J = 8.4 Hz, 1H), 7.35 (s, 1H), 7.26 (d, J = 8.6 Hz, 1H), 7.05 (d, J = 8.2 Hz, 1H), 5.07 (dd, J = 12.9, 5.4 Hz, 1H), 4.30 (t, J = 6.5 Hz, 2H), 3.49 - 3.41 (m, 6H), 2.89 - 2.79 (m, 3H), 2.63 - 2.57 (m, 4H), 2.05 - 1.97 (m, 1H), 1.48 (s, 6H).
[0166] Example 13: Preparation of Compound 13 [ka] Intermediate I-69 (90.0 mg, 0.159 mmol), intermediate I-9 (52.8 mg, 0.191 mmol), and N,N-diisopropylethylamine (103 mg, 0.795 mmol) were dissolved in dimethyl sulfoxide (2 mL), and the reaction solution was stirred at 80° C. for 4 hours. The reaction solution was cooled to 20° C. and filtered. The filtrate was purified by preparative HPLC (containing formic acid) to give compound 13. LC-MS (ESI) [M+H] + 821.2. 1H NMR (400 MHz, DMSO-d6) δ 11.08 (s, 1H), 8.30 (s, 1H), 8.25 (s, 1H), 8.19 (d, J = 8.4 Hz, 1H), 8.00 (d, J = 1.9 Hz, 1H), 7.93 (s, 1H), 7.86 (d, J = 1.9 Hz, 1H), 7.75 (dd, J = 8.4, 2.0 Hz, 1H), 7.68 (d, J = 7.4 Hz, 4H), 7.59 (dd, J = 8.3, 1.9 Hz, 1H), 7.34 (d, J = 2.3 Hz, 1H), 7.26 (dd, J = 8.7, 2.3 Hz, 1H), 7.05 (d, J = 8.3 Hz, 1H), 5.07 (dd, J = 12.9, 5.4 Hz, 1H), 4.19 (t, J = 6.9 Hz, 2H), 3.45 (s, 8H), 2.93 - 2.83 (m, 1H), 2.62 - 2.52 (m, 2H), 2.34 (t, J = 6.9 Hz, 2H), 2.07 - 1.97 (m, 3H), 1.48 (s, 6H).
[0167] Example 14: Preparation of Compound 14 [ka] Intermediate I-75 (120.00 mg) was dissolved in dimethyl sulfoxide (2 mL) at 25° C., and intermediate I-9 (63.53 mg, 0.23 mmol) and N,N-diisopropylethylamine (122.79 mg, 0.95 mmol) were added sequentially, followed by a reaction at 120° C. for 16 hours. The reaction solution was cooled to 20° C. and directly purified by preparative HPLC (containing formic acid) to give compound 14. LC-MS (ESI) [M+H] + 801.4. 1HNMR(400 MHz, DMSO-d6) δ 11.08 (s, 1H), 8.19 (d, J = 8.4 Hz, 1H), 7.99 (d, J = 1.9 Hz, 1H), 7.80 (dd, J = 10.5, 8.2 Hz, 1H), 7.74 (dd, J = 8.4, 1.9 Hz, 1H), 7.68 (d, J = 8.5 Hz, 1H), 7.61 (d, J = 1.6 Hz, 1H), 7.41 - 7.32 (m, 2H), 7.27 (dd, J = 8.7, 2.3 Hz, 1H), 7.03 (d, J = 8.3 Hz, 1H), 6.37 (dd, J = 8.3, 1.9 Hz, 1H), 5.07 (dd, J = 12.8, 5.4 Hz, 1H), 4.10 (t, J = 8.1 Hz, 2H), 3.67 (dd, J = 8.4, 5.5 Hz, 2H), 3.45 (t, J = 4.8 Hz, 4H), 3.10 - 2.95 (m, 1H), 2.95 -2.80 (m, 1H), 2.66 (d, J = 7.4 Hz, 2H), 2.62 - 2.52 (m, 6H), 2.02 (ddt, J = 10.8, 6.0, 3.5 Hz, 1H), 1.45 (s, 6H).
[0168] Example 15: Preparation of Compound 15 [ka] Intermediate I-77 (110.00 mg) was dissolved in dimethyl sulfoxide (2 mL) at 25° C., and intermediate I-9 (52.48 mg, 0.19 mmol) and N,N-diisopropylethylamine (103.40 mg, 0.80 mmol) were added sequentially, followed by stirring at 120° C. for 16 hours. The reaction solution was cooled to 20° C. and directly purified by preparative HPLC (containing formic acid) to give compound 15. LC-MS (ESI) [M+H] + 835.4. 1H NMR (400 MHz, DMSO-d6) δ 11.09 (s, 1H), 8.38 (d, J = 8.3 Hz, 1H), 8.21 (d, J = 1.9 Hz, 1H), 8.09 (dd, J = 8.3, 2.0 Hz, 1H), 7.81 (dd, J = 10.5, 8.2 Hz, 1H), 7.69 (d, J = 8.5 Hz, 1H), 7.62 (d, J = 1.5 Hz, 1H), 7.44 - 7.31 (m, 2H), 7.27 (dd, J = 8.6, 2.3 Hz, 1H), 7.07 (d, J = 8.3 Hz, 1H), 6.38 (dd, J = 8.3, 1.9 Hz, 1H), 5.08 (dd, J = 12.9, 5.4 Hz, 1H), 4.11 (t, J = 8.1 Hz, 2H), 3.68 (dd, J = 8.3, 5.4 Hz, 2H), 3.45 (t, J = 4.9 Hz, 4H), 3.08 - 2.95 (m, 1H), 2.95 - 2.81 (m, 1H), 2.66 (d, J = 7.5 Hz, 2H), 2.58 - 2.52 (m, 6H), 2.12 - 1.95 (m, 1H), 1.46 (s, 6H).
[0169] Experimental Example 1: In-Cell-Western Measurement of Androgen Receptor The compound's properties were evaluated in Lncap cells. Intracellular androgen receptor activity was measured by In-Cell-Western assay using the following steps:
[0170] LNcap cells were seeded at 30,000 cells / well in 100 μL of LNcap cell assay medium (DMEM with phenol red (Gibco catalog number: 11995065) and fetal bovine serum (FBS) (Gibco catalog number: 10099141C)) in a 96-well cell culture plate (Corning 3599) pretreated with poly-D-lysine. Cells were cultured for at least 2 days.
[0171] 1. Cells were first treated with compounds. Compounds were gradient diluted in DMSO and cell culture medium to give 0.5% DMSO in cell culture plates - polypropylene plates were used according to the following protocol: (1) (i) A 200x stock plate was prepared in DMSO; (ii) a 10 mM stock solution was diluted 1:4 with DMSO (10 μL stock solution + 40 μL DMSO) = 2000 μM and placed in column 2; (iii) columns 2-9 were gradient diluted 1:4 (10 μL protac + 40 μL DMSO), with column 1 reserved for the 2000 μM reference compound and column 10 reserved for DMSO. (iv) A total of eight concentrations were used (final concentrations on the 200x plate were 2000 μM, 400 μM, 80 μM, etc.). (2) (i) A 3x stock solution was prepared in culture medium. (ii) 3 μL of the 200x stock solution was transferred to 197 μL of culture medium (columns 1-10 using a 12-channel pipette), i.e., the 3x stock plate. (iii) The stock plate was mixed uniformly. (3) (i) The medium of Vcap cells was replaced with 100 μL of fresh medium. (ii) The homogeneously mixed 3x stock solution was transferred to a cell culture plate (50 μL of stock solution was transferred to columns 1 to 10 using a 12-channel pipette). (iii) The cells were cultured for 24 hours.
[0172] 2. The expression level of intracellular androgen receptor after compound treatment was detected and measured by the following method.
[0173] (1) (i) Cells were fixed by adding an equal volume of 8% paraformaldehyde to a cell culture plate. The fixative solution was discarded from the cell plate and the plate was washed three times with PBS. (ii) Triton solution (stock solution diluted 1:1000) was prepared. The solution from the cell plate was discarded, and 200 μL of diluted Triton solution was added to each well. (iii) 2× blocking solution (diluted 1:4 with 10× blocking stock solution) was prepared. The solution from the cell plate was discarded, and 100 μL of 2× blocking solution was added to each well. (iv) Primary antibody solution (Androgen receptor Rabbit mAb, Cell Signaling Technology, catalog number: 5153; diluted 1:1000) was prepared. The solution from the cell plate was discarded, and 100 μL of diluted primary antibody solution was added to each well and the plate was incubated overnight at 4°C. (v) The primary antibody solution was discarded, and the cell plate was washed with 1× wash buffer. (vi) Secondary antibody solution (Goat anti-Rabbit IgG (H+L) Secondary Antibody, HRP, Thermo, Catalog No.: 31460; diluted 1:5000) was prepared, and 100 μL of the diluted secondary antibody solution was added to each well and incubated. (vii) The secondary antibody solution in the cell plate was discarded, and the cell plate was washed with 1× Wash buffer. (viii) TMB chromogenic solution (BD, Catalog No.: 550534) was prepared, and 100 μL of the chromogenic solution was added to each well. (ix) 50 μL of stop solution (BD, Catalog No.: 550534) was added to each well. (x) Absorbance values at OD 450 nm and 570 nm were read using EnVision. (2)(i) Normalization analysis was performed for the number of cells in each well. The solution in the cell plate was discarded, and the plate was washed three times with wash buffer. (ii) A Janus diluted solution (diluted 1:3) was prepared. (iii) 50 μL of the diluted solution was added to each well and incubated. (iv) The solution in the plate was discarded and washed with deionized water. (v) 1 M hydrochloric acid (concentrated hydrochloric acid was diluted 1:24) was prepared, and 200 μL of the diluted hydrochloric acid solution was added to each well to treat the cells.(vi) The absorbance value at OD 595 nm was read using a Flex Station. (vii) The effect of the test compound on the expression of androgen receptor was calculated according to the obtained measurement values. The experimental results are shown in Table 1.
[0174] [Table 1]
[0175] Experimental Example 2: Inhibitory effect of test compounds on the proliferation of LNcap FGC cells The tumor cell line LNcap FGC (ATCC, Catalog No.: CRL-1740) was cultured in RPMI 1640 (Gibco, Catalog No.: 11875-093) and DMEM (Gibco, Catalog No.: 11965-092) media containing 10% FBS (Gibco, Catalog No.: 10099-141C), respectively.
[0176] The measurement method is as follows: LNcap FGC cells were seeded into a 384-well plate (PerkinElmer, catalog number: 6007460) at a cell density of 400 cells / well in a volume of 20 μL / well and placed in a carbon dioxide incubator (Thermo). After overnight incubation, 5 μL / well of the prepared compound solutions at different concentrations was added. The corresponding solvent controls were also added. After incubation in the incubator for 6 days, the cell plate and its contents were allowed to equilibrate at room temperature. 25 μL of Cell Titer Glor (Promega, catalog number: G7573) reagent was added to each well and mixed thoroughly by shaking. The plate was then incubated in the dark for 10 to 30 minutes. Signal values were then detected using an Envision microplate reader (PerkinElmer).
[0177] Experimental data processing method: The percent inhibition of compound-treated wells was calculated from the solvent control wells on the plate and expressed as IC 50The values were calculated by fitting the percent inhibition data corresponding to different concentrations using GraphPad Prism with a four-parameter nonlinear logistic equation. The experimental results are shown in Table 2.
[0178] [Table 2]
[0179] Experimental Example 3: In-Cell-Western Measurement of Androgen Receptor The assay evaluated the properties of the compound in VCap cells. The intracellular androgen receptor was measured by In-Cell-Western assay using the following assay steps.
[0180] Vcap cells were seeded at 50,000 cells / well in 100 μL of Vcap cell assay medium (DMEM with phenol red (Gibco, catalog number: 11995065); fetal bovine serum (FBS) (Gibco, catalog number: 10099141C)) in a 96-well cell culture plate (Corning 3599) pretreated with poly-D-lysine. Cells were cultured for at least 2 days.
[0181] 1. Cells were first treated with compounds. Compounds were gradient diluted in DMSO and cell culture medium to give 0.5% DMSO in cell culture plates - polypropylene plates were used according to the following protocol: (1) (i) A 200x stock plate was prepared in DMSO; (ii) a 10 mM stock solution was diluted 1:4 with DMSO (10 μL stock solution + 40 μL DMSO) = 2000 μM and placed in column 2; (iii) columns 2-9 were gradient diluted 1:4 (10 μL protac + 40 μL DMSO), with column 1 reserved for the 2000 μM reference compound and column 10 reserved for DMSO. (iv) Eight concentrations were used in total (final concentrations on the 200x plate were 2000 μM, 400 μM, 80 μM, etc.). (2) (i) A 3x stock solution was prepared in culture medium; (ii) 3 μL of the 200x stock solution was transferred to 197 μL of culture medium (columns 1-10 using a 12-channel pipette), i.e., the 3x stock solution plate. (iii) The stock solution plate was mixed evenly. (3) (i) The medium of the Vcap cells was replaced with fresh medium, 100 μL in volume. (ii) The mixed 3x stock solution was transferred to a cell culture plate (using a 12-channel pipette, 50 μL of stock solution was transferred to columns 1 to 10). (iii) The cells were cultured for 24 hours.
[0182] 2. The expression level of intracellular androgen receptor after compound treatment was detected and measured by the following method.
[0183] (1) (i) An equal volume of 8% paraformaldehyde was added to the cell culture plate to fix the cells. The fixative solution was discarded from the cell plate and the plate was washed three times with PBS. ii) Triton solution (stock solution diluted 1:1000) was prepared. The solution from the cell plate was discarded, and 200 μL of diluted Triton solution was added to each well. (iii) 2× blocking solution (diluted 1:4 with 10× blocking stock solution) was prepared. The solution from the cell plate was discarded, and 100 μL of 2× blocking solution was added to each well. (iv) Primary antibody solution (Androgen receptor Rabbit mAb, Cell Signaling Technology, catalog number: 5153; diluted 1:1000) was prepared. The solution from the cell plate was discarded, and 100 μL of diluted primary antibody solution was added to each well and the plate was incubated overnight at 4°C. (v) The primary antibody solution was discarded, and the cell plate was washed with 1× wash buffer. (vi) Secondary antibody solution (Goat anti-Rabbit IgG (H+L) Secondary Antibody, HRP, Thermo, Catalog No.: 31460; diluted 1:5000) was prepared, and 100 μL of the diluted secondary antibody solution was added to each well and incubated. (vii) The secondary antibody solution in the cell plate was discarded, and the cell plate was washed with 1× Wash buffer. (viii) TMB chromogenic solution (BD, Catalog No.: 550534) was prepared, and 100 μL of the chromogenic solution was added to each well. (ix) 50 μL of stop solution (BD, Catalog No.: 550534) was added to each well. (x) Absorbance values at OD 450 nm and 570 nm were read using EnVision. (2)(i) Normalization analysis was performed for the number of cells in each well. The solution in the cell plate was discarded, and the plate was washed three times with wash buffer. (ii) A Janus diluted solution (diluted 1:3) was prepared. (iii) 50 μL of the diluted solution was added to each well and incubated. (iv) The solution in the plate was discarded and washed with deionized water. (v) 1 M hydrochloric acid (concentrated hydrochloric acid was diluted 1:24) was prepared, and 200 μL of the diluted hydrochloric acid solution was added to each well to treat the cells.(vi) The absorbance value at OD 595 nm was read using a Flex Station. (vii) The effect of the test compound on the expression of androgen receptor was calculated according to the obtained measurement values. The experimental results are shown in Table 3.
[0184] [Table 3]
[0185] Experimental Example 4: Inhibitory effect of test compounds on the proliferation of VCap cells The tumor cell line Vcap (ATCC, Catalog No. CRL-2876) was cultured in DMEM (Gibco, Catalog No. 11965-092) medium supplemented with 10% FBS (Gibco, Catalog No. 10099-141C), and the Vcap cells were then cultured in DMEM medium supplemented with 5% FBS and 0.1 nM R1881 (Sigma, Catalog No. R0908).
[0186] The measurement method is as follows: Vcap cells were seeded into a 384-well plate (PerkinElmer, catalog number: 6007460) at a cell density of 1200 cells / well in a volume of 20 μL / well and placed in a carbon dioxide incubator (Thermo). After overnight incubation, 5 μL / well of the prepared compound solutions at different concentrations was added. The corresponding solvent controls were also added. After incubation in the incubator for 6 days, the cell plate and its contents were allowed to equilibrate at room temperature. 25 μL of Cell Titer Glor (Promega, catalog number: G7573) reagent was added to each well and mixed thoroughly by shaking. The plate was then incubated in the dark for 10 to 30 minutes. Signal values were then detected using an Envision microplate reader (PerkinElmer).
[0187] Experimental data processing method: The percent inhibition of compound-treated wells was calculated from the solvent control wells on the plate and expressed as IC 50The values were calculated by fitting the percent inhibition data corresponding to different concentrations using GraphPad Prism with a four-parameter nonlinear logistic equation. The experimental results are shown in Table 4.
[0188] [Table 4]
[0189] Experimental Example 5: Pharmacokinetics of the compounds of the present invention In this example, pharmacokinetics in the body was evaluated by intravenous injection and oral administration using mice.
[0190] Experimental Methods and Conditions: Male CD1 mice, 6-8 weeks old, were given a single intravenous injection of 1 mg / kg of the test compound (vehicle: 5% DMSO / 15% solutol / 80% saline) at 5, 15, 30, 1, 2, 4, 8, 24, and 48 hours after administration. Oral administration of 10 mg / kg of the test compound (vehicle: 5% DMSO / 10% solutol / 85% saline) was also performed. Blood samples were collected via the orbit at 15, 30, 1, 2, 4, 6, 8, 24, and 48 hours after administration. Each sample was at least 50 μL and anticoagulated with sodium heparin. The samples were kept on ice after collection and the plasma was centrifuged and tested within 1 hour. The plasma drug concentrations were detected by liquid phase tandem mass spectrometry (LC / MS / MS), and the measured concentrations were used to calculate pharmacokinetic parameters using Phoenix WinNonlin software. Example 158 of CN110506039 A was used as control 1, and the experimental results are shown in Tables 5 and 6.
[0191] [Table 5]
[0192] [Table 6]
[0193] Experimental Example 6. In vivo efficacy study of test compounds in a human prostate cancer VCaP cell subcutaneous xenograft tumor model in CB17 SCID mice Experimental animals: Male CB17 SCID mice, 6-8 weeks old, weighing 18-22g, Beijing Weitong Lihua Laboratory Animal Technology Co., Ltd. Shanghai Branch, Animal Certificate Number: 20170011005577. After arrival, the animals were kept in an experimental environment for 7 days before the experiment began.
[0194] Experimental Method: Human prostate cancer VCaP cells (ATCC-CRL-2876) were cultured in vitro as a monolayer in DMEM medium supplemented with 20% fetal bovine serum, 100 U / ml penicillin, and 100 μg / ml streptomycin in a 37°C, 5% CO2 incubator. They were subcultured twice a week after routine digestion using trypsin-EDTA. When the cell saturation reached 80%-90% and the required number of cells was reached, the cells were harvested, counted, and inoculated. 0.2 ml (10 x 10 6 VCaP cells (cells + Matrigel) were subcutaneously inoculated into the left upper limb of each mouse, and castration surgery was initiated 33 days after cell inoculation. The average tumor volume was 119 mm 3 When the dose reached 1 mg / kg, the mice were divided into groups and administration was initiated. The doses of Compound 14 were set to 1 mg / kg, 3 mg / kg, 10 mg / kg, and 30 mg / kg for four groups.
[0195] Daily observation of experimental animals: Animals were monitored daily for health and mortality. Regular examinations included behavioral activity, food and water intake (visual inspection only), weight changes (weighed three times a week), physical signs, or other abnormal conditions. The effects of tumor growth and drug treatment on the animals' daily behavior were observed.
[0196] Tumor measurements and experimental endpoints: The experimental endpoint was to investigate whether tumor growth was inhibited, delayed or cured. Tumor diameters were measured with calipers three times a week.
[0197] The formula for calculating tumor volume is: V = 0.5a × b 2 where a and b represent the long and short diameters of the tumor, respectively. The antitumor effect of the compound was evaluated by TGI (%) or relative tumor growth rate T / C (%). TGI (%) reflects the tumor growth inhibition rate. Calculation of TGI (%): TGI (%) = [(1 - (mean tumor volume at the end of treatment for a specific treatment group - mean tumor volume at the start of treatment for that treatment group) / (mean tumor volume at the end of treatment for the vehicle control group - mean tumor volume at the start of treatment for the vehicle control group)] × 100%. Relative tumor growth rate T / C (%): Calculation formula: T / C% = TRTV / CRTV × 100% (TRTV: treatment group RTV; CRTV: negative control group RTV). Relative tumor volume (RTV) was calculated from the results of tumor measurement, and the calculation formula is RTV = V t / V0, where V0 is the mean tumor volume measured at the time of group dosing (i.e., d0), and V t is the average tumor volume of a particular measurement, and TRTV and CRTV were taken on the same day. After the experiment was completed, tumor weights were detected and the T / Cweight percentage was calculated, where Tweight and Cweight represent the tumor weights of the treatment group and the vehicle control group, respectively.
[0198] Statistical Analysis: Statistical analysis included the mean and standard error (SEM) of tumor volume for each group at each time point. Because the treatment group completed the experiment 24 days after administration, statistical analysis was performed based on the data to evaluate differences between groups. Comparisons between two groups were performed using a t-test, and comparisons between three or more groups were performed using one-way ANOVA. If there was a significant difference in the F value, the results were analyzed using the Games-Howell method. If there was no significant difference in the F value, the results were analyzed using the Dunnett (2-sided) method. All data were analyzed using SPSS 17.0. A p<0.05 was considered significant. The body weight of the experimental animals was used as a reference index to indirectly determine drug toxicity. In this model, all treatment groups showed different degrees of weight loss during the post-administration period.
[0199] As shown in Figure 1, compound 14 exhibited a high tumor growth inhibition rate (TGI: 96%) at doses of 10mpk and 30mpk, which was significantly stronger than enzalutamide (20mpk, TGI: 45%) and reference product 1 (10mpk, TGI: 60%).Furthermore, as shown in Figure 2, compound 14 exhibited better tolerance than reference product 1 at doses of 10mpk and 30mpk.
Claims
1. Formula (II): 【Chemistry 1】 wherein ring A and ring B are each independently a 3- to 8-membered heterocycloalkyl or a 5- to 6-membered heteroaryl, and the 3- to 8-membered heterocycloalkyl and the 5- to 6-membered heteroaryl are optionally substituted with 1, 2, or 3 R; R 1 , R 2 , R 3 , R 4 are each independently CN, halogen, C 1-6 Alkyl, C 1-6 alkoxy, wherein said C 1-6 Alkyl or C 1-6 The alkoxy is optionally substituted with 1, 2 or 3 R; X is C(R) or N; T 1 , T 2 , T 3 , T 4 are each independently C(R) or N; T 5 is -(C=O)- or -CH 2 - and; L 2 are O, S, NH, C(=O), S(=O), S(=O) 2 , C 1-6 Alkyl, -C 1-6 Alkyl-O-, -C 1-3 Alkyl-NH-, —O—C 1-6 Alkyl-O-, —O—C 1-6 Alkyl-O-C 1-6 alkyl-, wherein said C 1-6 Alkyl, -C 1-6 Alkyl-O-, -C 1-3 Alkyl-NH-, —O—C 1-6 Alkyl-O-, —O—C 1-6 Alkyl-O-C 1-6 Alkyl- optionally has one, two or three R L is replaced by; R L are each independently H, halogen, OH, or NH 2 , C.N., 【Chemistry 2】 C 1-6 Alkyl, C 3-6 Cycloalkyl, C 1-6 Alkyl-C(=O)-, C 1-6 Alkoxy, C 1-6 Alkylthio, or C 1-6 alkylamino; R is H, F, Cl, Br, I, OH or C 1-6 is alkyl; R 5 is H, halogen, or C 1-6 is alkyl; The 3- to 8-membered heterocycloalkyl or 5- to 6-membered heteroaryl contains 1, 2, or 3 heteroatoms independently selected from the group consisting of —O—, —NH—, —S—, and N. A compound represented by the formula:
2. Ring A and ring B are each independently a 3- to 8-membered heterocycloalkyl or a 5- to 6-membered heteroaryl; R 1 , R 2 , R 3 and R 4 are each independently CN, halogen, C 1-6 Alkyl and C 1-6 alkoxy; X is C(R), T 1 , T 2 , T 3 and T 4 are each independently C(R) or N; T 5 is —(C═O)—, L 2 is C 1-6 Alkyl, -C 1-6 Alkyl-O-, -C 1-3 Alkyl-NH-, —O—C 1-6 Alkyl-O-, or -O-C 1-6 Alkyl-O-C 1-6 is alkyl, R 5 is H, halogen, or C 1-6 is alkyl, The compound according to claim 1, its optical isomer, or a pharmaceutically acceptable salt thereof, wherein the 3- to 8-membered heterocycloalkyl or 5- to 6-membered heteroaryl contains one or two heteroatoms independently selected from the group consisting of -NH- and N.
3. Structural Unit 【Transformation 3】 teeth, 【Chemistry 4】 3. The compound according to claim 1 or 2, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
4. 2. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein R is H, halogen, OH, methyl, ethyl, n-propyl, or isopropyl.
5. R 1 , R 2 are each independently CN, halogen, or CH 3 O- or -CF 3 3. The compound according to claim 1 or 2, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
6. R 3 , R 4 are each independently methyl, ethyl, n-propyl, or isopropyl, or an optical isomer thereof, or a pharmaceutically acceptable salt thereof according to claim 1 or 2.
7. Structural Unit 【Transformation 5】 teeth, 【Transformation 6】 3. The compound according to claim 1 or 2, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
8. L 2 are O, S, NH, C(=O), S(=O), S(=O) 2 , C 1-3 Alkyl, -C 1-4 Alkyl-O-, -C 1-3 Alkyl-NH-, —O—C 1-4 Alkyl-O-, —O—C 1-3 Alkyl-O-C 1-3 alkyl-; wherein said C 1-3 Alkyl, -C 1-4 Alkyl-O-, —O—C 1-4 Alkyl-O-, -C 1-3 Alkyl-NH- and -O-C 1-3 Alkyl-O-C 1-3 Alkyl- optionally has one, two or three R L 2. The compound of claim 1, its optical isomer, or a pharmaceutically acceptable salt thereof, substituted with:
9. R L are each independently H, halogen, OH, or NH 2 , C.N., 【Transformation 7】 C 1-3 Alkyl, C 3-6 Cycloalkyl, C 1-3 Alkyl-C(=O)-, C 1-3 Alkoxy, C 1-3 Alkylthio, or C 1-3 9. The compound according to claim 1 or 8, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, which is alkylamino.
10. L 2 is O, -C 1-3 Alkyl-, -C 1-4 Alkyl-O-, -C 1-3 Alkyl-NH-, —O—C 1-4 Alkyl-O-, —O—C 1-3 Alkyl-O-C 1-3 Alkyl-, 【Transformation 8】 wherein said -C 1-3 Alkyl-, -C 1-4 Alkyl-O-, -C 1-3 Alkyl-NH-, —O—C 1-4 Alkyl-O- and -O-C 1-3 Alkyl-O-C 1-3 Alkyl- optionally contains one, two or three R L 2. The compound of claim 1, its optical isomer, or a pharmaceutically acceptable salt thereof, substituted with:
11. L 2 is -CH 2 -, -CH 2 CH 2 -, -CH 2 CH 2 CH 2 -, or -CH(CH 3 ) - 2. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
12. The compound according to claim 1, its optical isomer, or a pharmaceutically acceptable salt thereof, wherein ring A and ring B are each independently a 4- to 6-membered heterocycloalkyl or a 5- to 6-membered heteroaryl, and the 4- to 6-membered heterocycloalkyl and the 5- to 6-membered heteroaryl are optionally substituted with one, two, or three R.
13. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein ring A is azetidinyl, piperidinyl, piperazinyl, pyrazolyl, or tetrahydropyrrolyl.
14. Ring A is 【Chemistry 9】 2. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
15. 2. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein ring B is morpholinyl, piperazinyl, tetrahydropyrrolyl, piperidinyl, azetidinyl, or piperazine-2-ketonyl.
16. Ring B is 【Chemistry 10】 2. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
17. Structural Unit 【Chemistry 11】 teeth, 【Chemistry 12】 3. The compound according to claim 2, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
18. Structural Unit 【Chemistry 13】 teeth, 【Chemistry 14】 3. The compound according to claim 1 or 2, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
19. The compound is selected from the group consisting of: 【Chemistry 15-1】 【Chemistry 15-2】 【Chemistry 15-3】 【Chemistry 15-4】 【Chemistry 15-5】 【Chemistry 16】 【Chemistry 17】 [Chemistry 18] 【Chemistry 19】 2. The compound according to claim 1, an optical isomer thereof, or a pharmaceutically acceptable salt thereof, wherein:
20. The compound has the following formula: 【Chemistry 20】 3. The compound of claim 2, or a pharmaceutically acceptable salt thereof, having the formula:
21. The compound has the following formula: 【Chemistry 21】 3. The compound of claim 2, or a pharmaceutically acceptable salt thereof, having the formula:
22. The compound has the following formula: 【Chemistry 22】 3. The compound of claim 2, or a pharmaceutically acceptable salt thereof, having the formula:
23. The compound has the following formula: 【Chemistry 23】 3. The compound of claim 2, or a pharmaceutically acceptable salt thereof, having the formula:
24. The compound has the following formula: 【Chemistry 24】 3. The compound of claim 2, or a pharmaceutically acceptable salt thereof, having the formula:
25. A pharmaceutical composition for treating cancer, comprising the compound according to any one of claims 1 to 24, an optical isomer thereof, or a pharmaceutically acceptable salt thereof.
26. 26. The pharmaceutical composition of claim 25, wherein the cancer is prostate cancer.
27. 26. The pharmaceutical composition of claim 25, wherein the cancer is breast cancer.
28. A pharmaceutical composition for treating or preventing Kennedy's disease, comprising the compound according to any one of claims 1 to 24, an optical isomer thereof, or a pharmaceutically acceptable salt thereof.
Citation Information
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