Substituted heterocyclic compounds
Novel substituted heterocyclic compounds inhibit Tyk2 signaling to modulate IL-12, IL-23, and IFNα, addressing the efflux issue of current TYK2 inhibitors, enhancing treatment efficacy for autoimmune and cancerous conditions.
Patent Information
- Application Number
- JP2023570166
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-03-10
- Filing Date
- 2022-05-13
- Publication Date
- 2026-02-20
- Estimated Expiration
- 2042-05-13
AI Technical Summary
Current TYK2 inhibitors are highly polar, leading to high efflux ratios in standard efflux models, limiting their effectiveness in treating autoimmune and cancerous conditions.
Development of novel substituted heterocyclic compounds that modulate IL-12, IL-23, and/or IFNα by inhibiting Tyk2-mediated signaling, with lower efflux ratios to enhance therapeutic efficacy.
These compounds provide effective treatment for autoimmune diseases and cancers by modulating cytokines and interferons, offering improved therapeutic outcomes with reduced efflux resistance.
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Abstract
Description
[Technical Field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 63 / 188,498, filed May 14, 2021, and U.S. Provisional Patent Application No. 63 / 318,508, filed March 10, 2022, the disclosures of which are incorporated herein by reference in their entireties.
[0002] FIELD OF THE INVENTION The present invention relates to compounds useful for modulating IL-12, IL-23, and / or IFNα by acting on Tyk-2, causing inhibition of signal transduction. Provided herein are substituted heterocyclic compounds, compositions containing such compounds, and methods for their use. The present invention further relates to pharmaceutical compositions containing at least one compound of the present invention, which are useful for treating conditions associated with the modulation of IL-12, IL-23, and / or IFNα in mammals. In particular, the present invention relates to compounds that exhibit utility in neurodegenerative diseases. [Background technology]
[0003] Interleukin (IL)-12 and IL-23, heterodimeric cytokines that share a common p40 subunit, are produced upon activation of antigen-presenting cells and are crucial for the differentiation and proliferation of Th1 and Th17 cells, two effector T cell lineages that play important roles in autoimmunity. IL-23 is composed of a p40 subunit coupled with a unique p19 subunit. IL-23 acts via a heterodimeric receptor consisting of IL-23R and IL-12Rβ1 and is essential for the survival and proliferation of Th17 cells, which produce proinflammatory cytokines such as IL-17A, IL-17F, IL-6, and TNF-α (McGeachy, MJ et al., "The link between IL-23 and Th17 cell-mediated immune pathologies," Semin. Immunol., 19:372-376 (2007)). These cytokines are crucial in mediating the pathology of many autoimmune diseases, including rheumatoid arthritis, multiple sclerosis, inflammatory bowel disease, and lupus. IL-12 contains a p35 subunit in addition to the p40 subunit shared with IL-23, and acts through a heterodimeric receptor consisting of IL-12Rβ1 and IL-12Rβ2. IL-12 is essential for the development of Th1 cells and the secretion of IFNγ, a cytokine that plays a key role in immune function by stimulating MHC expression, B cell class switching to IgG subclasses, and macrophage activation (Gracie, J.A. et al., "Interleukin-12 induces interferon-gamma-dependent switching of IgG alloantibody subclasses," Eur. J. Immunol., 26:1217-1221 (1996); Schroder, K. et al., "Interferon-gamma: an overview of signals, mechanisms, and functions," J. Leukoc. Biol., 75(2):163-189 (2004)).
[0004] The importance of p40-containing cytokines in autoimmunity is evidenced by the finding that mice lacking either p40, p19, or IL-23R are protected from disease in experimental multiple sclerosis, rheumatoid arthritis, inflammatory bowel disease, lupus, and psoriasis, among others (Kyttaris, V.C. et al., "Cutting edge: IL-23 receptor deficiency prevents the development of lupus nephritis in C57BL / 6-lpr / lpr mice," J. Immunol., 184:4605-4609 (2010); Hong, K. et al., "IL-12, independently of IFN-gamma, plays a crucial role in the pathogenesis of a murine psoriasis like skin disorder," J. Immunol., 162:7480-7491 (1999); Hue, S. et al., "Interleukin-23 drives innate and T cell-mediated intestinal "Inflammation", J. Exp. Med., 203:2473-2483(2006);Cua, DJ et al., "Interleukin-23 rather than interleukin-12 is the critical cytokine for autoimmune inflammation of the brain", Nature, 421:744-748(2003);Murphy, CA et al., "Divergent pro- and anti-inflammatory roles for IL-23 and IL-12 in "Joint autoimmune inflammation", J. Exp. Med., 198:1951-1957 (2003)).
[0005] In human disease, high expression of p40 and p19 has been measured in psoriatic lesions, and Th17 cells have been identified in brains from MS patients and in the intestinal mucosa of patients with active Crohn's disease (Lee, E. et al., "Increased expression of interleukin 23 p19 and p40 in lesional skin of patients with psoriasis vulgaris," J. Exp. Med., 199:125-130 (2004); Tzartos, JS et al., "Interleukin-17 production in central nervous system infiltrating T cells and glial cells is associated with active disease in multiple sclerosis," Am. J. Pathol., 172:146-155 (2008)). It has also been shown that p19, p40, and p40 mRNA levels are significantly higher in patients with active SLE compared to those in patients with inactive SLE (Huang, X. et al., "Dysregulated expression of interleukin-23 and interleukin-12 subunits in systemic lupus erythematosus patients," Mod. Rheumatol., 17:220-223 (2007)), and T cells derived from lupus patients have a predominant Th1 phenotype (Tucci, M. et al., "Overexpression of interleukin-12 and T helper 1 predominance in lupus nephritis," Clin. Exp. Immunol., 154:247-254 (2008)).
[0006] Moreover, genome-wide association studies have identified numerous genetic loci encoding factors that function in the IL-23 and IL-12 pathways that are associated with chronic inflammatory and autoimmune diseases. These genes include IL23A, IL12A, IL12B, IL12RB1, IL12RB2, IL23R, JAK2, TYK2, STAT3, and STAT4 (Lees, CW et al., "New IBD genetics: common pathways with other diseases," Gut, 60:1739-1753 (2011); Tao, JH et al., "Meta-analysis of TYK2 gene polymorphisms association with susceptibility to autoimmune and inflammatory diseases," Mol. Biol. Rep., 38:4663-4672 (2011); Cho, JH et al., "Recent insights into the genetics of inflammatory bowel disease," Gastroenterology, 140:1704-1712 (2011)).
[0007] Indeed, anti-p40 therapy, which inhibits both IL-12 and IL-23, and IL-23-specific anti-p19 therapy have been shown to be effective in treating autoimmune diseases, including psoriasis, Crohn's disease, and psoriatic arthritis (Leonardi, CL et al., "PHOENIX1 study investigators. Efficacy and safety of ustekinumab, a human interleukin-12 / 23 monoclonal antibody, in patients with psoriasis: 76-week results from a randomized, double-blind, placebo-controlled trial (PHOENIX1)," Lancet, 371:1665-1674 (2008); Sandborn, WJ et al., "Ustekinumab Crohn's Disease Study Group. A randomized trial of ustekinumab, a human interleukin-12 / 23 monoclonal antibody, in patients with moderate-to-severe Crohn's disease," Gastroenterology, 135:1130-1141 (2008); Gottlieb, A. et al., "Ustekinumab, a human interleukin 12 / 23 monoclonal antibody, for psoriatic arthritis: randomized, double-blind, placebo-controlled, crossover trial," Lancet, 373:633-640 (2009)). Therefore, drugs that inhibit the action of IL-12 and IL-23 may be considered therapeutically effective in human autoimmune disorders.
[0008] The type I group of interferons (IFNs), which includes IFNα members as well as IFNβ, IFNε, IFNκ, and IFNω, acts through the heterodimeric IFNα / β receptor (IFNAR). Type I INFs have multiple effects in both the innate and adaptive immune systems, including activation of both cellular and humoral immune responses and enhancement of the expression and release of self-antigens (Hall, JC et al., "Type I interferons: crucial participants in disease amplification in autoimmunity," Nat. Rev. Rheumatol., 6:40-49 (2010)).
[0009] In patients with systemic lupus erythematosus (SLE), a potentially fatal autoimmune disease, elevated serum levels of interferon (IFN) α (type I interferon) or increased expression of type I INF-regulated genes in peripheral blood mononuclear cells and infected organs (the so-called INFα signature) have been demonstrated in the majority of patients (Bennett, L. et al., "Interferon and granulopoiesis signatures in systemic lupus erythematosus blood," J. Exp. Med., 197:711-723 (2003); Peterson, K.S. et al., "Characterization of heterogeneity in the molecular pathogenesis of lupus nephritis from transcriptional profiles of laser-captured glomeruli," J. Clin. Invest., 113:1722-1733 (2004)), and several studies have shown that serum IFNα levels correlate with both disease activity and severity (Bengtsson, AA et al., "Activation of type I interferon system in systemic lupus erythematosus correlates with disease activity but not with antiretroviral antibodies," Lupus, 9:664-671 (2000)). A direct role for IFNα in the pathogenesis of lupus is evidenced by the observation that administration of IFNα to patients with malignant or viral diseases can induce a lupus-like syndrome.Furthermore, deletion of IFNAR in lupus-prone mice confers significant protection from autoimmune disease severity and mortality, and genome-wide association studies have identified lupus-associated genetic loci that encode factors acting in the type I interferon pathway, including IRF5, IKBKE, TYK2, and STAT4 (Deng, Y. et al., "Genetic susceptibility to systemic lupus erythematosus in the genomic era," Nat. Rev. Rheumatol., 6:683-692 (2010); Sandling, JK et al., "A candidate gene study of the type I interferon pathway implicates IKBKE and IL8 as risk loci for SLE," Eur. J. Hum. Genet., 19:479-484 (2011)). In addition to lupus, there is evidence that aberrant activation of the type I interferon-mediated pathway is important in the pathobiology of other autoimmune diseases, such as Sjögren's syndrome and scleroderma (Bave, U. et al., "Activation of the type I interferon system in primary Sjögren's syndrome: a possible etiopathogenic mechanism," Arthritis Rheum., 52:1185-1195 (2005); Kim, D. et al., "Induction of interferon-alpha by scleroderma sera containing autoantibodies to topoisomerase I: association of higher interferon-alpha activity with lung fibrosis," Arthritis Rheum., 58:2163-2173 (2008)). Therefore, agents that inhibit the action of type I interferon responses may have therapeutic value in human autoimmune disorders.
[0010] Tyrosine kinase 2 (Tyk2) is a member of the Janus kinase (JAK) family of non-receptor tyrosine kinases and has been shown to be important in regulating signaling cascades downstream of the receptors for IL-12, IL-23, and type I interferons in both mice and humans (in mice, Ishizaki, M. et al., "Involvement of Tyrosine Kinase-2 in Both the IL-12 / Th1 and IL-23 / Th17 Axes In Vivo," J. Immunol., 187:181-189 (2011); Prchal-Murphy, M. et al., "TYK2 kinase activity is required for functional type I interferon responses in vivo," PLoS One, 7:e39141 (2012); and in humans, Minegishi, Y. et al., "Human tyrosine kinase 2 deficiency reveals its requisite roles in multiple cytokine signals involved in innate and acquired immunity," Immunity, 25:745-755 (2006). Tyk2 mediates receptor-induced phosphorylation of STAT family members of transcription factors, an essential signal that leads to dimerization of STAT proteins and transcription of STAT-dependent inflammatory genes.Tyk2-deficient mice are resistant to experimental models of colitis, psoriasis, and multiple sclerosis, highlighting the importance of Tyk2-mediated signaling in autoimmune and related disorders (Ishizaki, M. et al., "Involvement of Tyrosine Kinase-2 in Both the IL-12 / Th1 and IL-23 / Th17 Axes In Vivo," J. Immunol., 187:181-189 (2011); Oyamada, A. et al., "Tyrosine kinase 2 plays critical roles in the pathogenic CD4 T cell responses for the development of experimental autoimmune encephalomyelitis," J. Immunol., 183:7539-7546 (2009)).
[0011] In humans, individuals expressing an inactive variant of Tyk2 are protected from multiple sclerosis and possibly other autoimmune disorders (Couturier, N. et al., "Tyrosine kinase 2 variant influences T lymphocyte polarization and multiple sclerosis susceptibility," Brain, 134:693-703 (2011)). Genome-wide association studies have shown that other variants in Tyk2 are associated with autoimmune disorders such as Crohn's disease, psoriasis, systemic lupus erythematosus, and rheumatoid arthritis, further demonstrating the importance of Tyk2 in autoimmunity (Ellinghaus, D. et al., "Combined Analysis of Genome-Wide Association Studies for Crohn's Disease and Psoriasis Identifies Seven Shared Susceptibility Loci," Am. J. Hum. Genet., 90:636-647 (2012); Graham, D. et al., "Association of polymorphisms across the tyrosine kinase gene, TYK2 in UK SLE families," Rheumatology (Oxford), 46:927-930 (2007); Eyre, S. et al., "High-density genetic mapping identifies new susceptibility loci for rheumatoid arthritis," Nat. Genet., 44:1336-1340(2012)).
[0012] TYK2 inhibition may also be utilized in both solid tumors and hematological malignancies, both as monotherapy and in combination with existing standards of care, including immunotherapy.
[0013] Ex vivo studies in T-cell acute lymphoblastic leukemia (T-ALL) have demonstrated that Tyk2 is required for T-ALL survival, suggesting that TYK2 inhibitors may be involved in a direct cancer-killing mechanism in this indication (Sanda, T. et al., TYK2-STAT1-BCL2 Pathway Dependence in T-cell Acute Lymphoblastic Leukemia. Cancer Discov. 3, 564-577 (2013)). Multiple TYK2-activating mutations have been detected and characterized in T-ALL cell lines. The NPM1-TYK2 gene fusion has also been identified in a subset of cutaneous T-cell lymphoma (CTCL), revealing TYK2 as an oncogenic driver of transformation (Kuravi, S. et al., Functional characterization of NPM1-TYK2 fusion oncogene. Npj Precis. Oncol. 6, 3 (2022)). Loss of TYK2 signaling can reduce this transforming potential.
[0014] Effective TYK2 inhibitors have been described; however, these compounds tend to be highly polar, resulting in high efflux ratios in standard efflux models (Wrobleski, ST et al., Highly selective inhibition of tyrosine kinase 2 (TYK2) for the treatment of autoimmune diseases: Discovery of the allosteric inhibitor BMS-986165, J. Med. Chem. 62, 8973-8995 (2019)). It is well established that one pathway of multidrug resistance is increased expression of efflux transporters (Gottesman, MM et al., Multidrug Resistance in Cancer: Role of ATP-Dependent Transporters. Nature Rev. Cancer 2, 48-58 (2002); Fletcher, JI et al., ABC transporters in cancer: more than just drug efflux pumps. Nature Rev. Cancer 10, 147-156 (2010)).
[0015] Therefore, compounds with low efflux ratios in in vitro experiments may potentially have a greater chance of effectively treating some carcinogenic indications.
[0016] In view of the conditions that may benefit from treatment involving modulation of cytokines and / or interferons, novel compounds capable of modulating cytokines and / or interferons, such as IL-12, IL-23 and / or IFNα, and methods of using these compounds, may provide substantial therapeutic benefit to a wide variety of patients in need thereof. Summary of the Invention
[0017] The present invention relates to compounds of formula I, particularly compounds that are useful as modulators of IL-12, IL-23 and / or IFNα by inhibiting Tyk2-mediated signaling. The present invention also provides processes and intermediates for making the compounds of the present invention. The present invention also provides pharmaceutical compositions comprising a pharmaceutically acceptable carrier and at least one compound of the present invention.
[0018] The present invention also provides methods for modulating IL-12, IL-23 and / or IFNα by inhibiting Tyk2-mediated signaling, comprising administering a therapeutically effective amount of at least one compound of the present invention to a host in need of such treatment. The present invention also provides a method for treating a neurodegenerative disease, comprising administering a therapeutically effective amount of at least one compound of the present invention to a host in need of such treatment.
[0019] The present invention also provides a compound of the invention for use in therapy. These and other features of the present invention will be described in expanded form as the present disclosure continues. DETAILED DESCRIPTION OF THE INVENTION
[0020] In a first aspect of the present invention, a compound of formula I: [ka] [In formula: X is -N- or -CH-; R 1 -C(O)R 1a and; R 1a is C 3-6 is cycloalkyl; R 2 is C 1-6 Alkoxy; R 3 is C 1-6 Alkyl or C 3-6cycloalkyl] or a stereoisomer or pharmaceutically acceptable salt thereof.
[0021] In a second embodiment of the present invention, a compound of formula: [ka] [In formula: R 1 -C(O)R 1a and; R 1a is C 3-6 is cycloalkyl; R 2 is C 1-6 Alkoxy; R 3 is C 1-6 Alkyl or C 3-6 cycloalkyl] or a stereoisomer or pharmaceutically acceptable salt thereof.
[0022] In a third aspect of the present invention, a compound of formula: [ka] [In formula: R 1 -C(O)R 1a and; R 1a is C 3-6 is cycloalkyl; R 2 is C 1-6 Alkoxy; R 3 is C 1-6 Alkyl or C 3-6 cycloalkyl] or a stereoisomer or pharmaceutically acceptable salt thereof.
[0023] In another aspect, there is provided a compound selected from the specific examples within the scope of the first aspect, or a pharmaceutically acceptable salt thereof.
[0024] In another embodiment, there is provided a compound selected from any subgroup list of compounds within the scope of any of the above embodiments.
[0025] In another aspect, N-(4-((3-methoxy-4-(2-methyl-2H-1,2,3-triazol-4-yl)pyridin-2-yl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((3-methoxy-4-(2-cyclopropyl-2H-1,2,3-triazol-4-yl)pyridin-2-yl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((4-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((3-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; and N-(4-((3-methyl-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide The present invention provides a compound (IUPAC nomenclature rules) selected from the following, or a pharmaceutically acceptable salt thereof:
[0026] In another embodiment, pharmaceutical compositions are provided comprising one or more compounds of formula I and a pharmaceutically acceptable carrier or diluent. The present invention also provides a pharmaceutical composition useful for treating diseases associated with the regulation of IL-12, IL-23 and / or IFNα by acting on Tyk2 and causing inhibition of signal transduction, the pharmaceutical composition comprising a compound of formula I or a pharmaceutically acceptable salt thereof and a pharmaceutically acceptable carrier or diluent.
[0027] The present invention further relates to a method for treating a disease associated with the regulation of IL-12, IL-23 and / or IFNα, comprising administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I. The present invention also provides processes and intermediates for making the compounds of the present invention.
[0028] The present invention also provides methods for treating proliferative, metabolic, allergic, autoimmune and inflammatory diseases (or the use of compounds of the present invention for the manufacture of medicaments for the treatment of these diseases), comprising administering to a host in need of such treatment a therapeutically effective amount of at least one compound of the present invention.
[0029] The present invention also provides a method of treating an inflammatory or autoimmune disease (or use of a compound of the invention for the manufacture of a medicament for the treatment of such a disease), which method comprises administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I.
[0030] The present invention also relates to a method of treating a disease (or use of a compound of the present invention for the manufacture of a medicament for the treatment of such a disease), which comprises administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I, wherein the disease is selected from the group consisting of rheumatoid arthritis, multiple sclerosis, systemic lupus erythematosus (SLE), lupus nephritis, cutaneous lupus, inflammatory bowel disease, psoriasis, Crohn's disease, psoriatic arthritis, Sjogren's syndrome, systemic sclerosis, ulcerative colitis, Graves' disease, and the like. Disease, discoid lupus erythematosus, adult-onset Still's disease, systemic-onset juvenile idiopathic arthritis, gout, gouty arthritis, type 1 diabetes, insulin-dependent diabetes mellitus, sepsis, septic shock, dysentery, pancreatitis (acute or chronic), glomerulonephritis, autoimmune gastritis, diabetes mellitus, autoimmune hemolytic anemia, autoimmune neutropenia, thrombocytopenia, atopic dermatitis, myasthenia gravis, pancreatitis (acute or chronic), ankylosing spondylitis, pemphigus vulgaris, Goodpasture's disease disease), antiphospholipid syndrome, idiopathic thrombocytopenia, ANCA-associated vasculitis, pemphigus, Kawasaki disease, chronic inflammatory demyelinating polyneuropathy (CIDP), dermatomyositis, polymyositis, uveitis, Guillain-Barré syndrome, autoimmune pneumonia, autoimmune thyroiditis, autoimmune inflammatory eye disease, and chronic demyelinating polyneuropathy.
[0031] The present invention also provides a method of treating a neurodegenerative disease (or use of a compound of the invention for the manufacture of a medicament for treating said disease), which method comprises administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I, wherein the disease is selected from Alzheimer's disease, Parkinson's disease, ALS, multiple sclerosis (including CIS, optic neuritis, neuromyelitis optica, RMS and / or progressive MS).
[0032] The present invention also provides a method of treating rheumatoid arthritis (or use of a compound of the invention for the manufacture of a medicament for the treatment of rheumatoid arthritis), which method comprises administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I.
[0033] Additionally, the present invention also provides a method of treating a condition (or use of a compound of the present invention for the manufacture of a medicament for the treatment of such a condition), comprising administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I, wherein the condition is selected from the group consisting of acute myeloid leukemia, chronic myeloid leukemia, metastatic melanoma, Kaposi's sarcoma, multiple myeloma, solid tumors, ocular neohemangiomas and / or infantile hemangiomas, B-cell lymphoma, systemic lupus erythematosus (SLE), rheumatoid arthritis, The method is selected from psoriatic arthritis, polyangiitis, idiopathic thrombocytopenic purpura (ITP), myasthenia gravis, allergic rhinitis, multiple sclerosis (MS), transplant rejection, type 1 diabetes, membranous nephritis, inflammatory bowel disease, autoimmune hemolytic anemia, autoimmune thyroiditis, cold-warm agglutinin disease, Evans syndrome, hemolytic uremic syndrome / thrombotic thrombocytopenic purpura (HUS / TTP), sarcoidosis, Sjogren's syndrome, peripheral neuropathy, pemphigus vulgaris, and asthma.
[0034] The present invention also provides a method of treating an IL-12, IL-23, and / or IFNα-mediated disease (or use of a compound of the invention for the manufacture of a medicament for the treatment of such a disease), comprising administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I.
[0035] The present invention also provides a method of treating an IL-12-, IL-23-, and / or IFNα-mediated disease (or use of a compound of the invention for the manufacture of a medicament for treating such a disease), comprising administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I, wherein the IL-12-, IL-23-, and / or IFNα-mediated disease is a disease modulated by IL-12, IL-23, and / or IFNα.
[0036] The present invention also provides a method of treating a disease, comprising administering to a patient in need of such treatment a therapeutically effective amount of a compound of formula I in combination with other therapeutic agents. The present invention also provides compounds of the invention for use in therapy. In another embodiment, the compound of Formula I is selected from an exemplified compound, or a combination of exemplified compounds, or other embodiments described herein.
[0037] The present invention may be embodied in other specific forms without departing from the spirit or essential attributes of the invention. The present invention includes all combinations of preferred aspects and / or embodiments of the invention described herein. It is understood that any and all embodiments of the present invention may be applied in combination with any other embodiment to describe additional, more preferred embodiments. It is also understood that each individual element of a preferred embodiment is itself an independent preferred embodiment. Furthermore, any element of an embodiment may be combined with any and all other elements from any embodiment to describe further embodiments.
[0038] Detailed Description of the Invention The following are definitions of terms used in this specification and the appended claims. The definition first given for a group or term applies to that group or term throughout the specification and claims, individually or as part of another group, unless otherwise stated.
[0039] The compounds of the present invention may contain one or more asymmetric centers. Unless otherwise specified, all chiral (enantiomers and diastereomers) and racemic forms of the compounds of the present invention are included in the present invention. Many geometric isomers of olefins, C=N double bonds, and the like can also be present in the compounds, and all such stable isomers are contemplated in the present invention. Cis and trans geometric isomers of the compounds of the present invention are described and may be isolated as a mixture of isomers or as separated isomers. The compounds of the present invention can be isolated in optically active or racemic forms. It is well known in the art how to prepare optically active forms, such as by resolving racemates or by synthesis from optically active starting materials. Unless the specific stereochemistry or isomer is specifically indicated, all chiral (enantiomers and diastereomers) and racemic forms of a structure, as well as all geometric isomers, are intended.
[0040] In any structure or formula of a compound, any variable group (e.g., R 3 When R ) occurs more than one time, its definition at each occurrence is independent of its definition at every other occurrence. Thus, for example, R 3 When a group is shown to be substituted with, then the group may be substituted with up to two R 3 R 3 is R 3 Alternatively, combinations of substituents and / or variables are permissible only if such combinations result in stable compounds.
[0041] When a bond to a substituent is shown to cross the bond connecting two atoms in a ring, then such substituent may be bonded to any atom on the ring. When a substituent is listed without indicating the atom to which such substituent is attached to the remainder of the compound represented by a given formula, then such substituent may be bonded through any atom on such substituent. Combinations of substituents and / or variables are permissible only if such combinations result in stable compounds.
[0042] Where there are nitrogen atoms (e.g., amines) on the compounds of this invention, they can be converted to N-oxides by treatment with an oxidizing agent (e.g., MCPBA and / or hydrogen peroxide) to provide other compounds of this invention. Thus, all designated and claimed nitrogen atoms are intended to include both the designated nitrogen and its N-oxide (N→O) derivative.
[0043] According to the practice used in the art, [ka] is used herein in structural formulas to represent the bond that is the point of attachment of a moiety or substituent to a core or backbone structure.
[0044] A dash "-" that is not between two letters or symbols is used to indicate the point of attachment of a substituent, for example, -CONH2 is attached through a carbon atom.
[0045] The term "optionally substituted," with reference to certain moieties in compounds of Formula I (e.g., optionally substituted heteroaryl groups), refers to moieties having zero, one, two, or more substituents. For example, "optionally substituted alkyl" encompasses both "alkyl" and "substituted alkyl" below. Those of skill in the art will understand that with respect to any group containing one or more substituents, such group is not intended to introduce any substituents or substitution patterns that are sterically impractical, synthetically impractical, and / or inherently unstable.
[0046] As used herein, the term "at least one chemical entity" is interchangeable with the term "compound."
[0047] As used herein, the terms "alkyl" or "alkylene" are intended to include both branched and straight-chain saturated aliphatic hydrocarbon groups having the specified number of carbon atoms. For example, "C1-10 "Alkyl" (or alkylene) is a group consisting of C1, C2, C3, C4, C5, C6, C7, C8, C9, and C 10 Alkyl groups are intended to encompass alkyl groups. Further, for example, "C1-C6 alkyl" refers to an alkyl having from 1 to 6 carbon atoms. An alkyl group can be unsubstituted or substituted such that one or more of its hydrogens have been replaced with another chemical group. Exemplary alkyl groups include, but are not limited to, methyl (Me), ethyl (Et), propyl (e.g., n-propyl and isopropyl), butyl (e.g., n-butyl, isobutyl, t-butyl), pentyl (e.g., n-pentyl, isopentyl, neopentyl), and the like.
[0048] Those skilled in the art will understand that when the term "CO" is used herein, it means [ka] It will be understood that this refers to
[0049] When the term "alkyl" is used with another group, such as "arylalkyl," the connection more specifically defines at least one substituent that the substituted alkyl may contain. For example, "arylalkyl" refers to a substituted alkyl group as defined above, where at least one of the substituents is an aryl, such as benzyl. Thus, aryl (C 0-4 The term "(C)alkyl" includes substituted lower alkyl groups having at least one aryl substituent, and also includes aryl groups directly bonded to another group, i.e., aryl(C)alkyl. The term "heteroarylalkyl" refers to a substituted alkyl group as defined above where at least one of the substituents is a heteroaryl.
[0050] The term "alkoxy" refers to an oxygen atom substituted with an alkyl or substituted alkyl, as defined herein. For example, the term "alkoxy" refers to -OC, such as methoxy, ethoxy, propoxy, isopropoxy, n-butoxy, sec-butoxy, tert-butoxy, pentoxy, 2-pentyloxy, isopentoxy, neopentoxy, hexoxy, 2-hexoxy, 3-hexoxy, 3-methylpentoxy, etc. 1-6 It includes alkyl groups. "Lower alkoxy" refers to alkoxy groups having 1 to 4 carbons.
[0051] It should be understood that all groups, including, for example, alkoxy, thioalkyl, and aminoalkyl, will be selected by one skilled in the art to provide stable compounds.
[0052] As used herein, the term "substituted" means that any one or more hydrogens on the designated atom or group are replaced with a selection from the indicated group, provided that the normal valence of the designated atom is not exceeded. When a substituent is oxo or keto (i.e., =0), then two hydrogens on the atom are replaced. Keto substituents are not present on aromatic moieties. Unless otherwise specified, substituents are named on the core structure. For example, if (cycloalkyl)alkyl is listed as a possible substituent, it is to be understood that the point of attachment of this substituent to the core structure is on the alkyl portion. As used herein, a ring double bond is a double bond formed between two adjacent ring atoms (e.g., C=C, C=N, or N=N).
[0053] Combinations of substituents and / or variables are permissible only if such combinations result in stable compounds or useful synthetic intermediates. A stable compound or stable structure is intended to encompass compounds that are sufficiently robust to survive isolation to a useful degree of purity from a reaction mixture, and subsequent formulation into an effective therapeutic agent. Presently, it is preferred that the compounds referred to do not contain N-halo, S(O)H, or S(O)H groups.
[0054] The term "cycloalkyl" refers to a cyclized alkyl group, including monocyclic, bicyclic, or polycyclic ring systems. C3-7 cycloalkyl is intended to encompass C3, C4, C5, C6, and C7 cycloalkyl groups. Examples of cycloalkyl groups include, but are not limited to, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, norbornyl, and the like. As used herein, "carbocycle" or "carbocyclic residue" is intended to mean any stable 3-, 4-, 5-, 6-, or 7-membered monocyclic or bicyclic, or 7-, 8-, 9-, 10-, 11-, 12-, or 13-membered bicyclic or tricyclic ring, any of which may be saturated, partially unsaturated, unsaturated, or aromatic. Examples of such carbocycles include, but are not limited to, cyclopropyl, cyclobutyl, cyclobutenyl, cyclopentyl, cyclopentenyl, cyclohexyl, cycloheptenyl, cycloheptyl, cycloheptenyl, adamantyl, cyclooctyl, cyclooctenyl, cyclooctadienyl, [3.3.0]bicyclooctane, [4.3.0]bicyclononane, [4.4.0]bicyclodecane, [2.2.2]bicyclooctane, fluorenyl, phenyl, naphthyl, indanyl, adamantyl, anthracenyl, and tetrahydronaphthyl (tetralin). As noted above, bridged rings are also included in the definition of carbocycle (e.g., [2.2.2]bicyclooctane). Preferred carbocycles, unless otherwise specified, are cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, and phenyl. When the term carbocycle is used, it is intended to include aryl. A bridged ring occurs when one or more carbon atoms link two non-adjacent carbon atoms. Preferred bridges have one or two carbon atoms. It should be noted that a bridge always converts a monocyclic ring into a bicyclic ring. When rings are bridged, the substituents present on the ring may also be present on the bridge.
[0055] The term "aryl" refers to monocyclic or bicyclic aromatic hydrocarbon groups having 6 to 12 carbon atoms in the ring portion, such as phenyl and naphthyl groups, each of which may be substituted.
[0056] Thus, in compounds of Formula I, the term "cycloalkyl" includes cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, bicyclooctyl, and the like, as well as the following ring systems: [ka] etc., which may be optionally substituted at any available atom of the ring.
[0057] Preferred cycloalkyl groups include cyclopropyl, cyclobutyl, cyclopentyl, and cyclohexyl. The term "halo" or "halogen" refers to chloro, bromo, fluoro, and iodo. The term "haloalkyl" refers to a substituted alkyl having one or more halo substituents. For example, "haloalkyl" includes mono-, bi-, and trifluoromethyl. The term "haloalkoxy" refers to an alkoxy group having one or more halo substituents. For example, "haloalkoxy" includes OCF.
[0058] The terms "heterocycle," "heterocycloalkyl," "heterocyclo," "heterocyclic," or "heterocyclyl," which may be used interchangeably, refer to substituted and unsubstituted 3- to 7-membered monocyclic groups, 7- to 11-membered bicyclic groups, and 10- to 15-membered tricyclic groups, in which at least one ring contains at least one heteroatom (O, S, or N), and the heteroatom-containing ring preferably contains 1, 2, or 3 heteroatoms selected from O, S, and N. Each ring of such a heteroatom-containing group may contain 1 or 2 oxygen or sulfur atoms and / or 1 to 4 nitrogen atoms, provided that the total number of heteroatoms in each ring is 4 or less, and further that the ring contains at least 1 carbon atom. The nitrogen and sulfur atoms may be optionally oxidized, and the nitrogen atom may be optionally quaternized. The fused rings completing a bicyclic or tricyclic group may contain only carbon atoms and may be saturated, partially saturated, or fully unsaturated. The heterocyclo group may be attached at any available nitrogen or carbon atom. As used herein, the terms "heterocycle," "heterocycloalkyl," "heterocyclo," "heterocyclic," and "heterocyclyl" include "heteroaryl," as defined below.
[0059] In addition to the heteroaryl groups described below, exemplary monocyclic heterocyclyl groups include azetidinyl, pyrrolidinyl, oxetanyl, imidazolinyl, oxazolidinyl, isoxazolinyl, thiazolidinyl, isothiazolidinyl, tetrahydrofuranyl, piperidyl, piperazinyl, 2-oxopiperazinyl, 2-oxopiperidyl, 2-oxopyrrolodinyl, 2-oxoazepinyl, azepinyl, 1-pyridonyl, 4-piperidonyl, tetrahydropyranyl, morpholinyl, thiamorpholinyl, thiamorpholinyl sulfoxide, thiamorpholinyl sulfone, 1,3-dioxolane, and tetrahydro-1,1-dioxothienyl, etc. Exemplary bicyclic heterocyclo groups include quinuclidinyl. Additional monocyclic heterocyclyl groups include: [ka] Includes:
[0060] The term "heteroaryl" refers to substituted and unsubstituted aromatic 5- or 6-membered monocyclic, 9- or 10-membered bicyclic, and 11- to 14-membered tricyclic groups containing at least one heteroatom (O, S, or N) in at least one of the rings, with the heteroatom-containing ring preferably containing 1, 2, or 3 heteroatoms selected from O, S, and N. Each ring of a heteroatom-containing heteroaryl group can contain 1 or 2 oxygen or sulfur atoms and / or 1 to 4 nitrogen atoms, provided that the total number of heteroatoms in each ring is 4 or less and each ring contains at least 1 carbon atom. The fused rings completing the bicyclic and tricyclic groups may contain only carbon atoms and may be saturated, partially saturated, or unsaturated. The nitrogen and sulfur atoms may be optionally oxidized, and the nitrogen atoms may be optionally quaternized. A bicyclic or tricyclic heteroaryl group must contain at least one fully aromatic ring, and any other fused rings may or may not be aromatic. The heteroaryl group may be attached at any available nitrogen or carbon atom of either ring. If the additional ring is a cycloalkyl or heterocyclo, it may be further optionally substituted with =O (oxo), as long as valence allows.
[0061] Exemplary monocyclic heteroaryl groups include pyrrolyl, pyrazolyl, pyrazolinyl, imidazolyl, oxazolyl, isoxazolyl, thiazolyl, thiadiazolyl, isothiazolyl, furanyl, thienyl, oxadiazolyl, pyridyl, pyrazinyl, pyrimidinyl, pyridazinyl, triazinyl, and the like.
[0062] Exemplary bicyclic heteroaryl groups include indolyl, benzothiazolyl, benzodioxolyl, benzoxazolyl, benzothienyl, quinolinyl, tetrahydroisoquinolinyl, isoquinolinyl, benzimidazolyl, benzopyranyl, indolizinyl, benzofuranyl, chromonyl, coumarinyl, benzopyranyl, cinnolinyl, quinoxalinyl, indazolyl, pyrrolopyridyl, furopyridyl, dihydroisoindolyl, tetrahydroquinolinyl, and the like.
[0063] Exemplary tricyclic heteroaryl groups include carbazolyl, benzindolyl, phenanthrolinyl, acridinyl, phenanthridinyl, xanthenyl, and the like.
[0064] In compounds of formula I, preferred heteroaryl groups include: [ka] etc., which may be optionally substituted at any available carbon or nitrogen atom.
[0065] Unless otherwise specified, when a specific name is mentioned to aryl (e.g., phenyl), cycloalkyl (e.g., cyclohexyl), heterocyclo (e.g., pyrrolidinyl, piperidinyl, and morpholinyl), or heteroaryl (e.g., tetrazolyl, imidazolyl, pyrazolyl, triazolyl, thiazolyl, and furyl), the reference is intended to include rings having 0 to 3, preferably 0 to 2, substituents selected from those given above for aryl, cycloalkyl, heterocyclo, and / or heteroaryl groups, as appropriate.
[0066] The term "carbocyclyl" or "carbocyclic" refers to a saturated or unsaturated monocyclic or bicyclic ring in which all atoms of all rings are carbon. Thus, the term encompasses cycloalkyl and aryl rings. Monocyclic carbocycles have 3 to 6 ring atoms, more typically 5 or 6 ring atoms. Bicyclic carbocycles have, for example, 7 to 12 ring atoms arranged as a bicyclo[4,5], [5,5], [5,6], or [6,6] system, or 9 or 10 ring atoms arranged as a bicyclo[5,6] or [6,6] system. Examples of monocyclic or bicyclic carbocycles include cyclopropyl, cyclobutyl, cyclopentyl, 1-cyclopent-1-enyl, 1-cyclopent-2-enyl, 1-cyclopent-3-enyl, cyclohexyl, 1-cyclohex-1-enyl, 1-cyclohex-2-enyl, 1-cyclohex-3-enyl, phenyl, and naphthyl. The carbocyclic ring may be substituted, in which case the substituents are selected from those listed above for the cycloalkyl and aryl groups.
[0067] The term "heteroatom" is intended to include oxygen, sulfur and nitrogen. When the term "unsaturated" is used herein to refer to a ring or group, the ring or group may be fully unsaturated or partially unsaturated.
[0068] Throughout the specification, groups and substituents thereof may be selected by one skilled in the art to provide stable moieties and compounds, and compounds useful as pharmaceutically acceptable compounds and / or intermediate compounds useful in preparing pharmaceutically acceptable compounds.
[0069] Compounds of Formula I may exist in a free form (non-ionized) or can form salts, which are also within the scope of the present invention. Unless otherwise specified, a reference to a compound of the present invention is understood to include both the free form and the salt. The term "salt" refers to acidic and / or basic salts formed with inorganic and / or organic acids and bases. In addition, the term "salt" may include zwitterions (inner salts), for example, when a compound of Formula I contains both a basic moiety, such as an amine or a pyridine or imidazole ring, and an acidic moiety, such as a carboxylic acid. Pharmaceutically acceptable (i.e., non-toxic, physiologically acceptable) salts are preferred, such as acceptable metal and amine salts, in which the cation does not contribute significantly to the toxicity or biological activity of the salt. However, other salts may be useful, for example, in isolation or purification steps that may be utilized during preparation, and thus are considered within the scope of the present invention. Salts of compounds of formula I can be formed, for example, by reacting a compound of formula I with an equivalent or similar amount of acid or base in a medium such that the salt precipitates, or by reaction in an aqueous medium, followed by lyophilization.
[0070] Exemplary acid addition salts include acetate (salts formed with acetic acid or trihaloacetic acids, e.g., trifluoroacetic acid), adipate, alginate, ascorbate, aspartate, benzoate, benzenesulfonate, bisulfate, borate, butyrate, citrate, camphorate, camphorsulfonate, cyclopentanepropionate, digluconate, dodecyl sulfate, ethanesulfonate, fumarate, glucoheptanoate, glycerophosphate, hemisulfinate, heptanoate, hexanoate, hydrochloride (formed with hydrochloric acid), hydrobromide (formed with hydrogen bromide), iodide, ... These include hydrochloride, 2-hydroxyethanesulfonate, lactate, maleate (formed with maleic acid), methanesulfonate (formed with methanesulfonic acid), 2-naphthalenesulfonate, nicotinate, nitrate, oxalate, pectinate, persulfate, 3-phenylpropionate, phosphate, picrate, pivalate, propionate, salicylate, succinate, sulfate (such as formed with sulfuric acid), sulfonate (such as those mentioned herein), tartrate, thiocyanate, toluenesulfonate such as tosylate, undecanoate, and the like.
[0071] Exemplary base salts include ammonium salts; alkali metal salts such as sodium, lithium, and potassium salts; alkaline earth metal salts such as calcium and magnesium salts; barium, zinc, and aluminum salts; salts with organic bases (e.g., organic amines) such as trialkylamines such as triethylamine, procaine, dibenzylamine, N-benzyl-β-phenethylamine, 1-ephenamine, N,N'-dibenzylethylenediamine, dehydroabietylamine, N-ethylpiperidine, benzylamine, dicyclohexylamine, or similar pharmaceutically acceptable amines, and salts with amino acids such as arginine, lysine, and the like. Basic nitrogen-containing groups may be quaternized with agents such as lower alkyl halides (e.g., methyl, ethyl, propyl, and butyl chlorides, bromides, and iodides), dialkyl sulfates (e.g., dimethyl, diethyl, dibutyl, and diamyl sulfates), long chain halides (e.g., decyl, lauryl, myristyl, and stearyl chlorides, bromides, and iodides), aralkyl halides (e.g., benzyl and phenethyl bromides), etc. Preferred salts include monohydrochlorides, hydrogen sulfates, methanesulfonates, phosphates, or nitrates.
[0072] The term "pharmaceutically acceptable" is used herein to refer to those compounds, materials, compositions, and / or dosage forms that are, within the scope of sound medical judgment, suitable for use in contact with the tissues of human beings and animals without undue toxicity, irritation, allergic response, or other problem or complication, and are commensurate with a reasonable benefit / risk ratio.
[0073] As used herein, "pharmaceutically acceptable salts" refers to derivatives of the disclosed compounds in which the parent compound is modified by making its acid or base salts. Examples of pharmaceutically acceptable salts include, but are not limited to, mineral or organic acid salts of basic groups such as amines; and alkali or organic salts of acidic groups such as carboxylic acids. Pharmaceutically acceptable salts include, for example, conventional non-toxic salts or quaternary ammonium salts of the parent compound formed from non-toxic inorganic or organic acids. For example, such conventional non-toxic salts include those derived from inorganic acids such as hydrochloric acid, hydrobromic acid, sulfuric acid, sulfamic acid, phosphoric acid, and nitric acid; as well as those prepared from organic acids such as acetic acid, propionic acid, succinic acid, glycolic acid, stearic acid, lactic acid, malic acid, tartaric acid, citric acid, ascorbic acid, palmoic acid, maleic acid, hydroxymaleic acid, phenylacetic acid, glutamic acid, benzoic acid, salicylic acid, sulfanilic acid, 2-acetoxybenzoic acid, fumaric acid, toluenesulfonic acid, methanesulfonic acid, ethanedisulfonic acid, oxalic acid, isothioic acid, and the like.
[0074] The pharmaceutically acceptable salts of the present invention can be synthesized from parent compounds containing a basic or acidic moiety by conventional chemical methods. Generally, such salts can be prepared by reacting the free acid or base form of these compounds with a stoichiometric amount of the appropriate base or acid in water, or in an organic solvent, or in a mixture of the two; generally, non-aqueous media such as ether, ethyl acetate, ethanol, isopropanol, or acetonitrile are preferred. A list of suitable salts can be found in Remington's Pharmaceutical Sciences, 18th Edition, Mack Publishing Company, Easton, PA (1990), the contents of which are incorporated herein by reference.
[0075] All stereoisomers of the compounds of the present invention are contemplated, either in admixture or in pure or substantially pure form. Stereoisomers can include compounds that are optical isomers due to the presence of one or more chiral atoms, as well as compounds that are optical isomers due to restricted rotation about one or more bonds (atropisomers). The definition of a compound of the present invention encompasses all possible stereoisomers and mixtures thereof. Specifically, racemates and isolated optical isomers of specific activity are included. Racemates can be resolved by physical methods, such as fractional crystallization, separation or crystallization of diastereomeric derivatives, or separation by chiral column chromatography. Individual optical isomers can be obtained from the racemate by conventional methods, such as salt formation with an optically active acid followed by crystallization.
[0076] The present invention is intended to encompass all isotopes of atoms present in the compounds of the present invention. Isotopes include those atoms having the same atomic number but different mass numbers. By way of general example and without limitation, isotopes of hydrogen include deuterium and tritium. Isotopes of carbon include 13 C and 14 C. Isotopically labeled compounds of the present invention may generally be prepared by conventional techniques known to those of skill in the art, or by methods analogous to those described herein, substituting appropriately isotopically labeled reagents for unlabeled reagents otherwise utilized.
[0077] Prodrugs and solvates of the compounds of the present invention are also contemplated. The term "prodrug" refers to a compound that, upon administration to a subject, undergoes chemical conversion by metabolic or chemical processes to yield the compound of Formula I, and / or its salts and / or solvates. Any compound that will be converted in vivo to provide a bioactive agent (i.e., a compound of Formula I) is a prodrug within the scope and spirit of the present invention. For example, compounds containing a carboxy group can form physiologically hydrolyzable esters that serve as prodrugs upon hydrolysis in the body to produce the compound of Formula I itself. In many cases, hydrolysis occurs primarily under the influence of digestive enzymes, so orally administering such prodrugs is preferred. Parenteral administration may also be used when the ester itself is active or when hydrolysis occurs in the blood. Examples of physiologically hydrolyzable esters of compounds of Formula I include C 1-6 Alkylbenzyl, 4-methoxybenzyl, indanyl, phthalyl, methoxymethyl, C 1-6 Alkanoyloxy-C 1-6 Alkyl, for example, acetoxymethyl, pivaloyloxymethyl or propionyloxymethyl, C 1-6 Alkoxycarbonyloxy-C 1-6 Included are alkyl, such as methoxycarbonyloxymethyl or ethoxycarbonyloxymethyl, glycyloxymethyl, phenylglycyloxymethyl, (5-methyl-2-oxo-1,3-dioxolen-4-yl)-methyl, and other well-known physiologically hydrolyzable esters used, for example, in the penicillin and cephalosporin fields. Such esters can be prepared by conventional techniques known in the art.
[0078] Various forms of prodrugs are well known in the art and are described in Rautio, J. et al., Nature Review Drug Discovery, 17, 559-587 (2018).
[0079] The compounds of formula I and their salts may exist in the form of their tautomers, in which hydrogen atoms are displaced to other parts of the molecule, resulting in rearrangement of the chemical bonds between the atoms of the molecule.It should be understood that all tautomeric forms are included in the present invention, insofar as they exist.In addition, the compounds of the present invention may have trans and cis isomers.
[0080] It should further be understood that solvates (eg, hydrates) of the compounds of Formula I are also within the scope of the present invention. Methods of solvation are generally known in the art.
[0081] usefulness The compounds of the present invention modulate IL-23-stimulated and IFNα-stimulated cellular functions, including gene transcription. Other types of cellular functions that may be modulated by the compounds of the present invention include, but are not limited to, responses to IL-12 stimulation.
[0082] Thus, the compounds of Formula I have utility in treating conditions associated with modulating IL-23 and / or IFNα function, particularly selectively inhibiting the function of IL-23, IL-12 and / or IFNα, by acting on Tyk2 and mediating signal transduction, including IL-23-, IL-12- or IFNα-associated diseases whose pathogenic mechanisms are mediated by these cytokines, with subsequent activation of the TyK2 pathway and subsequent inflammatory responses in peripheral and / or central compartments.
[0083] As used herein, the terms "treating" or "treatment" encompass the treatment of a condition in a mammal, particularly a human, and include (a) preventing or delaying the onset of the condition in a mammal when such mammal is predisposed to the condition but has not yet been diagnosed as such; (b) inhibiting the condition, i.e., arresting or delaying its onset; and / or (c) achieving complete or partial alleviation of the symptoms or condition, and / or palliating, ameliorating, alleviating, or curing the disease or disorder, and / or its symptoms.
[0084] In view of their activity as modulators of IL-23-, IL-12- and / or IFNα-stimulated cellular responses, the compounds of Formula I are useful in treating inflammatory diseases such as, but not limited to, Crohn's disease, ulcerative colitis, asthma, graft-versus-host disease, allograft rejection, and chronic obstructive pulmonary disease; autoimmune diseases such as Graves' disease, rheumatoid arthritis, systemic lupus erythematosus, cutaneous lupus, discoid lupus erythematosus, and psoriasis; autoinflammatory diseases including CAPS, TRAPS, FMF, adult-onset Still's disease, systemic-onset juvenile idiopathic arthritis, gout, and gouty arthritis; metabolic diseases such as type 2 diabetes, atherosclerosis, and myocardial infarction; bone resorption diseases, osteoarthritis, osteoporosis, and multiple myeloma-related bone marrow disease. proliferative disorders such as acute myeloid leukemia, chronic myeloid leukemia; angiogenic disorders such as neovascularization disorders including solid tumors, ocular neovascularization, and infantile hemangiomas; sepsis, septic shock; and infectious diseases such as dysentery; neurodegenerative diseases, e.g., Alzheimer's disease, Parkinson's disease, ALS, multiple sclerosis (RMS and / or progressive MS, including CIS, optic neuritis, neuromyelitis optica), neurodegenerative diseases due to cerebral ischemia or traumatic injury, metastatic melanoma, Kaposi's sarcoma, multiple myeloma, HIV infection and CMV retinitis, AIDS, and other neoplastic and viral diseases.
[0085] More particularly, specific conditions or diseases that may be treated with the compounds of the present invention include, but are not limited to, pancreatitis (acute or chronic), asthma, allergies, adult respiratory distress syndrome, chronic obstructive pulmonary disease, glomerulonephritis, rheumatoid arthritis, systemic lupus erythematosus, cutaneous lupus, lupus nephritis, discoid lupus erythematosus, scleroderma, chronic thyroiditis, Graves' disease, autoimmune gastritis, diabetes, autoimmune hemolytic anemia, autoimmune neutropenia, thrombocytopenia, atopic dermatitis, chronic active hepatitis, myasthenia gravis, multiple sclerosis, inflammatory bowel disease. ulcerative colitis, Crohn's disease, psoriasis, graft-versus-host disease, endotoxin-induced inflammatory responses, tuberculosis, atherosclerosis, muscle degeneration, cachexia, psoriatic arthritis, Reiter's syndrome, gout, traumatic arthritis, rubella-related arthritis, acute synovitis, pancreatic beta-cell disease; diseases characterized by massive neutrophil infiltration; rheumatoid spondylitis, gouty arthritis, and other arthritic conditions; cerebral malaria, chronic pulmonary inflammatory disease, silicosis, pulmonary sarcoidosis, bone resorption disorders, allograft rejection, fever and myalgia due to infection, and secondary infections. secondary cachexia, keloid formation, scar tissue formation, ulcerative colitis, pyresis, influenza, osteoporosis, osteoarthritis, acute myeloid leukemia, chronic myeloid leukemia, metastatic melanoma, Kaposi's sarcoma, multiple myeloma, sepsis, septic shock, and dysentery; Alzheimer's disease, Parkinson's disease, multiple sclerosis (including CIS, optic neuritis, neuromyelitis optica, RMS and / or progressive MS), neurodegenerative diseases caused by cerebral ischemia or traumatic injury; solid tumors, ocular neovascularization, and infantile hemangiomas viral diseases, including acute hepatitis infection (including hepatitis A, B, and C), HIV infection and CMV retinitis, AIDS, ARC or malignancy, and herpes; stroke, myocardial ischemia, ischemia in heart attack, organ hypoxia, vascular hyperplasia, cardiac and renal reperfusion injury, thrombosis, cardiac hypertrophy, thrombin-induced platelet aggregation, endotoxemia and / or toxic shock syndrome, conditions associated with prostaglandin-endoperoxidase synthase-2, and pemphigus vulgaris.A preferred method of treatment is one in which the condition is selected from Alzheimer's disease, Parkinson's disease, ALS, multiple sclerosis (including CIS, optic neuritis, neuromyelitis optica, RMS and / or progressive MS).
[0086] When the terms "IL-23-, IL-12- and / or IFNα-associated condition" or "IL-23-, IL-12- and / or IFNα-associated disease or disorder" are used herein, each is intended to encompass, as if repeated at length, all of the conditions listed above, as well as any other condition affected by IL-23, IL-12 and / or IFNα.
[0087] Thus, the present invention provides a method of treating such conditions, comprising administering to a subject in need thereof a therapeutically effective amount of at least one compound of Formula I, or a salt thereof. A "therapeutically effective amount" is intended to include an amount of a compound of the invention that, when administered alone or in combination, is effective to inhibit the function of IL-23, IL-12 and / or IFNα and / or treat the disease.
[0088] Methods of treating IL-23-, IL-12-, and / or IFNα-associated conditions can include administering compounds of Formula I alone, or in combination with each other and / or other appropriate therapeutic agents useful in treating such conditions. Accordingly, a "therapeutically effective amount" is also intended to encompass the amount of a combination of claimed compounds that is effective to inhibit the function of IL-23, IL-12, and / or IFNα and / or treat a disease associated with IL-23, IL-12, and / or IFNα.
[0089] Examples of such other therapeutic agents include corticosteroids, rolipram, calphostin, cytokine suppressive anti-inflammatory drugs (CSAIDs), interleukin-10, glucocorticoids, salicylates, nitric oxide, and other immunosuppressants; nuclear translocation inhibitors such as deoxyspergualin (DSG); nonsteroidal anti-inflammatory drugs (NSAIDs) such as ibuprofen, celecoxib, and rofecoxib; steroids such as prednisone or dexamethasone; antiviral agents such as abacavir; antiproliferative agents such as methotrexate, leflunomide, FK506 (tacrolimus, PROGRAF®); antimalarials such as hydroxychloroquine; cytotoxic agents such as azathiprine and cyclophosphamide; TNF-α inhibitors, e.g., tanidap, anti-TNF antibodies or soluble TNF receptors, and rapamycin (sirolimus or RAPAMUNE®) or its derivatives.
[0090] When utilized in combination with the compounds of the present invention, the above-mentioned other therapeutic agents may be used, for example, in amounts set forth in the Physicians' Desk Reference (PDR), or as otherwise determined by one of ordinary skill in the art. In the methods of the present invention, such other therapeutic agents may be administered before, simultaneously with, or after administering the compounds of the present invention. The present invention also provides pharmaceutical compositions capable of treating IL-23-, IL-12-, or IFNα-associated conditions, including IL-23-, IL-12-, and / or IFNα-mediated diseases, by inhibiting Tyk2-mediated signaling, as described above.
[0091] The compositions of the present invention may contain other therapeutic agents as described above, and may be formulated, for example, by utilizing conventional solid or liquid vehicles or diluents, as well as pharmaceutical additives (e.g., excipients, binders, preservatives, stabilizers, flavorings, etc.) of a type appropriate for the desired mode of administration, in accordance with techniques such as those well known in the art of pharmaceutical formulation. Accordingly, the present invention further includes a crude product comprising one or more compounds of Formula I and a pharmaceutically acceptable carrier.
[0092] A "pharmaceutically acceptable carrier" refers to a medium generally accepted in the art for delivering a biologically active agent to an animal, particularly a mammal. Pharmaceutically acceptable carriers are formulated according to many factors well within the purview of those skilled in the art. These factors include, but are not limited to, the type and nature of the active agent being formulated; the subject to whom the agent-containing composition will be administered; the intended route of administration of the composition; and the targeted therapeutic indication. Pharmaceutically acceptable carriers include aqueous and non-aqueous liquid media, as well as various solid and semi-solid dosage forms. Such carriers can contain many different components and additives in addition to the active agent; such additional components are included in the formulation for various reasons well known to those skilled in the art, such as stabilizing the active agent, binders, etc. Descriptions of suitable pharmaceutically acceptable carriers and the factors involved in their selection are described in a variety of readily available sources, such as, for example, Remington's Pharmaceutical Sciences, 17th Edition (1985), incorporated herein by reference in its entirety.
[0093] The compound of formula I may be administered by any means suitable for the condition to be treated, which may depend on the need for site-specific treatment or the amount of drug to be delivered.For skin-related diseases, topical administration is generally preferred, and for cancerous or precancerous conditions, systemic treatment is preferred, although other delivery methods are also contemplated.For example, the compound may be delivered orally, such as in the form of a liquid preparation including tablets, capsules, granules, powder, or syrup; topically, such as in the form of a solution, suspension, gel, or ointment; sublingually; buccally; by subcutaneous, intravenous, intramuscular, or intrasternal injection or infusion technique, parenterally (for example, as a sterile injectable aqueous or non-aqueous solution or suspension); by inhalation spray, nasally; topically, such as in the form of a cream or ointment; rectally, such as in the form of a suppository; or liposomally.A dosage unit formulation containing a non-toxic, pharmaceutically acceptable vehicle or diluent may be administered.The compound may be administered in a form suitable for immediate release or sustained release. Immediate release or sustained release may be achieved using appropriate pharmaceutical compositions or, particularly in the case of sustained release, using devices such as subcutaneous implants or osmotic pumps.
[0094] An exemplary composition for topical administration includes PLASTIBASE® (mineral oil gelled with polyethylene).
[0095] Exemplary compositions for oral administration include suspensions, which may contain, for example, microcrystalline cellulose for bulking, alginic acid or sodium alginate as a suspending agent, methylcellulose as a thickener, and sweeteners or flavoring agents known in the art; and immediate-release tablets, which may contain, for example, microcrystalline cellulose, dicalcium phosphate, starch, magnesium stearate, and / or lactose, and / or other excipients, binders, fillers, disintegrants, diluents, and lubricants known in the art. The compounds of the present invention may also be orally delivered by sublingual and / or buccal administration, for example, in molded, compressed, or freeze-dried tablets. Exemplary compositions may contain fast-dissolving diluents such as mannitol, lactose, sucrose, and / or cyclodextrins. Such formulations may also include high molecular weight excipients such as cellulose (AVICEL®) or polyethylene glycol (PEG); excipients that aid in mucoadhesion, such as hydroxypropyl cellulose (HPC), hydroxypropyl methylcellulose (HPMC), sodium carboxymethylcellulose (SCMC), and / or maleic anhydride copolymers (e.g., GANTREZ®); and agents for controlling release, such as polyacrylic acid copolymers (e.g., CARBOPOL 934®). Lubricants, glidants, flavors, colorants, and stabilizers may also be added for ease of manufacture and use.
[0096] Exemplary compositions for nasal aerosol or inhalation administration include solutions which may contain, for example, benzyl alcohol or other suitable preservatives, absorption enhancers to enhance absorption and / or bioavailability, and / or other solubilizing or dispersing agents, such as those known in the art.
[0097] Exemplary compositions for parenteral administration include injectable solutions or suspensions which may contain a suitable non-toxic parenterally acceptable diluent or solvent, such as, for example, mannitol, 1,3-butanediol, water, Ringer's solution, isotonic sodium chloride solution, or other suitable dispersing or wetting agents and suspending agents, including synthetic mono- or di-glycerides, and fatty acids, such as oleic acid.
[0098] Exemplary compositions for rectal administration include suppositories, which may contain suitable non-irritating excipients such as, for example, cocoa butter, synthetic glyceride esters or polyethylene glycols, and which are solid at ordinary temperatures but liquefy and / or melt in the rectal cavity to release the drug.
[0099] Therapeutically effective amounts of the compounds of the present invention may be determined by one skilled in the art and include exemplary dosages for mammals of about 0.05-1000 mg / kg body weight; 1-1000 mg / kg body weight; 1-50 mg / kg body weight; 5-250 mg / kg body weight; or 250-1000 mg / kg body weight of the active compound per day, which may be administered as a single dose or in the form of individual divided doses, such as 1-4 times daily. It will be understood that the specific dose level and frequency of administration for any particular subject may vary and will depend on a variety of factors, including the activity of the particular compound utilized, the metabolic stability and duration of action of that compound, the subject's species, age, body weight, general health, sex, and diet, the method and time of administration, excretion rate, drug combination, and the severity of the particular condition. Preferred subjects for treatment include animals, most preferably mammalian species such as humans, and domestic animals such as dogs, cats, and horses. Thus, when the term "subject" is used herein, it is intended to encompass all subjects, most preferably mammalian species, that are affected by modulating IL-23, IL-12 and / or IFNα-mediated functions.
[0100] Manufacturing method The compounds of the present invention can be prepared by a number of methods well known to those skilled in the art of organic synthesis. The compounds of the present invention can be synthesized by the following methods, together with synthetic methods known in the art of synthetic organic chemistry, or with modifications thereto as will be appreciated by those skilled in the art. Preferred methods include, but are not limited to, the following: All references cited herein are incorporated by reference in their entirety.
[0101] The compounds of the present invention can be prepared using the reactions and techniques described in this section. Reactions are carried out in solvents appropriate to the reagents and materials employed and are appropriate for the transformations being carried out. It should also be understood that in the description of the synthetic methods below, all proposed reaction conditions, including solvent selection, reaction environment, reaction temperature, experimental time, and workup procedures, are selected to be standard conditions for the reactions, as would be readily understood by one of ordinary skill in the art. Those skilled in the art of organic synthesis will understand that the functionality present on various portions of the molecule must be compatible with the proposed reagents and reactions. Such limitations on substituents compatible with the reaction conditions will be apparent to those skilled in the art, and in such cases, alternative methods must be used. This will sometimes necessitate judgment in modifying the order of synthetic steps or selecting one particular process scheme over another to obtain the desired compounds of the present invention. It should also be understood that another major consideration in planning any synthetic route in this field is the proper selection of protecting groups used to protect reactive functional groups present in the compounds described in this invention. An authoritative text that explains the many options to those skilled in the art is Greene and Wuts (Protective Groups In Organic Synthesis, Third Edition, Wiley and Sons, 1999).
[0102] The key intermediates shown in FIG. 1 can be assembled to give compound 1 in a variety of ways known to those skilled in the art of synthetic organic chemistry.
[0103] Figure 1 [ka]
[0104] Scheme 1 shows how intermediate Ia (where R is a simple alkyl (methyl, ethyl, etc.) and X is a halogen, such as iodide, can be combined with intermediate Ib in a suitable solvent, preferably DMF, in the presence of a suitable base, preferably potassium carbonate, to give an intermediate of formula II. When R is cyclopropyl, Ib can be treated with cyclopropylboronic acid in dichloroethane in the presence of copper(II) acetate, 2,2'-bipyridine, and sodium carbonate at elevated temperature. II can then be monodebrominated in ether at low temperature in the presence of a strong reducing base, particularly isopropylmagnesium bromide in THF, to give the intermediate of formula IIa. II can also be used as is to prepare more highly substituted 1,2,3-triazoles. IIa can be used as is or converted to the corresponding boronic acid (IIb) by metal-halogen exchange followed by quenching with a trialkylborate, specifically trimethylborate or triisopropylborate. For metal halide exchange, the preferred base may be isopropylmagnesium chloride-lithium chloride complex in THF at low temperature.
[0105] Scheme 1 [ka]
[0106] Scheme 2 illustrates how intermediate IIa or IIb can be combined with intermediate Ic (where Y is a boronate in the case of reaction with IIa and a halide in the case of reaction with IIb) to provide intermediates of general formula III. (Intermediates of general formula Ic are commercially available or can be prepared using methods well known to those skilled in the art of organic synthesis.) This transformation can be achieved by one skilled in the art using a transition metal-catalyzed coupling of an appropriate boronate with an appropriate halide. More specifically, this transformation can be achieved in a Suzuki-type coupling using PdCl(dppf)[DCM] as the catalyst and aqueous potassium phosphate tribasic as the base at elevated temperatures in a solvent such as 1,4-dioxane. Similar chemistry can be performed on intermediate II to generate fully substituted 1,2,3-triazoles (intermediates of general formula IIa). In these cases, it is necessary to remove the corresponding bromo-triazole and subject it to a palladium-catalyzed addition coupling with an alkyl or alkenyl boronate, followed by olefin reduction, i.e., catalytic hydrogenation, using methods known in the art.
[0107] Scheme 2 [ka]
[0108] Scheme 3 illustrates how one skilled in the art of organic synthesis can couple an intermediate of general formula Id (see WO 2020 / 086616) with an amide / amine to obtain an intermediate of general formula IV or IVa. In particular, preferred conditions for this reaction include the use of a Buchwald-type coupling using Pd(dba) as the catalyst, xantphos as the ligand, and CsCO as the base in 1,4-dioxane as the solvent at elevated temperatures. This catalyst / ligand / base system can be modified in ways known to those skilled in the art.
[0109] Scheme 3 [ka]
[0110] Scheme 4 illustrates how one skilled in the art of organic synthesis can couple compound IV to an appropriate substrate to produce a compound of general formula I. This involves coupling a compound of general formula IV with a primary amide of general formula Ig or an aromatic amine of general formula Ih under transition metal catalyzed conditions. In particular, preferred conditions for this reaction involve utilizing a Buchwald-type coupling using Pd(dba) as the catalyst, xantphos as the ligand, and CsCO as the base in 1,4-dioxane as the solvent at elevated temperatures. This catalyst / ligand / base system can be modified in ways known to those skilled in the art.
[0111] Scheme 4 [ka]
[0112] manufacturing Unless otherwise stated, all commercially available reagents were used without further purification. All reactions involving air- or moisture-sensitive reagents were carried out under an inert atmosphere. Proton and carbon magnetic resonance ( 1 H and 13 C NMR spectra were recorded on either a Bruker Avance 400 or a JEOL Eclipse 500 spectrometer and are reported in ppm relative to the reference solvent of the sample on which they were run. HPLC and LCMS analyses were performed at 220 or 254 nm using a Shimadzu LC-10AS liquid chromatograph and SPD UV-vis detector, and MS detection was performed on a Micromass Platform LC spectrometer.
[0113] LCMS-Method A: A linear gradient from 20% to 100% solvent B over 4 minutes, held at 100% B for 0.6 minutes, followed by a 0.1 minute gradient to 20% B and a 0.3 minute hold at 20% B. Solvent A: 5 mM ammonium formate pH 3.3:ACN (98:02) Solvent B:ACN:Buffer (98:02) Flow rate: 1.0ml / min Column: Kinetex XB-C18 (75x3.0) mm, 2.6 μm Subjected to ultraviolet ("UV") visualization at 220 nanometers ("nm").
[0114] LCMS-Method B: A linear gradient from 5% to 95% solvent B over 2.5 minutes, held at 95% B for 1.5 minutes, followed by a 0.5 minute gradient to 5% B and a 1.5 minute hold at 5% B. Solvent A: 0.1% TFA in HO Solvent B: 0.1% TFA in ACN Flow rate: 1.5ml / min Column: Xbridge C8 (50 x 4.6) mm, 3.5 μm Subjected to ultraviolet ("UV") visualization at 220 nanometers ("nm").
[0115] GCMS method: Chromatography column: HP-5 (30m x 320μm x 0.25μm) Column length: 30 m, internal diameter: 0.32 mm; thickness: 0.25 μm; inlet temperature: 250 °C; carrier gas: He; detector temperature: 300 °C; column flow: 2 mL / min; air flow: 400 mL / min; H2 flow: 40 mL / min; heating schedule: 120 °C, hold for 3 min, then increase to 300 °C at a rate of 40 °C / min and hold for 2 min; source temperature: 230 °C
[0116] [Table 1] [Table 2]
[0117] Intermediate-1: [ka]
[0118] Process-1 To a 250 mL three-necked round-bottom flask cooled to -10 °C, 4-bromopyridin-3-ol (1.70 g, 9.77 mmol) was added. Concentrated sulfuric acid (5 mL) was added dropwise over 10 minutes at -10 °C with slow stirring under a N atmosphere. The mixture was continued to stir at the same temperature for 10 minutes until 4-bromopyridin-3-ol was completely dissolved and a clear solution was formed. Nitric acid (fuming nitric acid, 437 μL, 9.77 mmol) was added dropwise over 10 minutes at -10 °C. The resulting mixture was gradually allowed to reach room temperature (approximately 1.5 hours) and stirred for 10 hours. The reaction mixture was very carefully poured into crushed ice (approximately 150 g). After complete quenching, the mixture was extracted with CHCl (3 × 50 mL). The resulting organic layer was washed with saturated brine solution (30 mL), dried over anhydrous NaSO, filtered, and concentrated under reduced pressure to give 4-bromo-2-nitropyridin-3-ol (1.01 g crude), which was used in the next step without further purification. GCMS(M) m / z:218.0[M] + ;GC retention time 7.36 minutes 1 H-NMR (400MHz, MeOH-d4): δ 8.00(d,J=4.8Hz,1H), 7.94(d,J=4.8Hz,1H)
[0119] Process-2 A 250 mL three-necked round-bottom flask equipped with a stir bar was charged with 4-bromo-2-nitropyridin-3-ol (6 g, 27.4 mmol) and DMF (100 mL). The mixture was stirred at room temperature (over approximately 5 minutes) to form a clear solution. K2CO3 (7.57 g, 54.8 mmol) was added portionwise to the solution, and the mixture was stirred at room temperature for 10 minutes. Methyl iodide (3.43 mL, 54.8 mmol) was added dropwise over 5 minutes, and the mixture was stirred at room temperature for 16 hours. The reaction mixture was quenched with water (60 mL) and extracted with EtOAc (3 x 100 mL). The organic layers were combined and washed successively with ice-cold water (2 x 100 mL) and saturated brine solution (100 mL). The resulting organic layer was dried over anhydrous Na2SO4, filtered, and concentrated under reduced pressure to give the crude product. It was purified by silica gel column chromatography using 0-25% EtOAc in petroleum ether as the mobile phase to give 4-bromo-3-methoxy-2-nitropyridine (4.61 g, 71% yield) as an off-white solid. MS(M+1) m / z:234.9[M+H] + LC retention time 0.66 min [Method B] 1 H-NMR (400MHz, DMSO-d6): δ 8.25(d,J=5.2Hz,1H), 8.20(d,J=5.2Hz,1H), 3.97(s,3H)
[0120] Process-3 A 250 mL three-neck round-bottom flask equipped with a stir bar was charged with 4-bromo-3-methoxy-2-nitropyridine (4.70 g, 21.5 mmol), AcOH (20 mL), EtOH (20 mL), and water (10 mL). The mixture was stirred at room temperature (over approximately 5 minutes) to form a clear solution. The mixture was cooled to 0°C. Iron powder (12.0 g, 151 mmol) was added portionwise over 10 minutes at 0°C. The mixture was allowed to warm to room temperature and stirred for 4 hours. The mixture was filtered through a bed of Celite, and the Celite bed was washed with EtOAc (2 x 100 mL). The filtrate was washed successively with saturated aqueous NaHCO3 (2 x 100 mL) and saturated brine solution (50 mL), dried over anhydrous Na2SO4, filtered, and concentrated under reduced pressure. The crude product was purified by silica gel chromatography (230-400 mesh) using 0% to 60% EtOAc in petroleum ether to give 4-bromo-3-methoxypyridin-2-amine (3.5 g, 80% yield) as an off-white solid. MS(M+1) m / z:205.0[M+H] + LC retention time 0.66 min [Method B] 1 H-NMR (400MHz, DMSO-d6): δ 7.54(d,J=5.2Hz,1H), 6.72(d,J=5.2Hz,1H), 3.69(s,3H)
[0121] Intermediate-2 [ka]
[0122] Process-1 To a stirred solution of 4-bromo-2-methyl-2H-1,2,3-triazole (5.0 g, 30.9 mmol) in THF (50 mL) was slowly added isopropylmagnesium chloride-lithium chloride complex (3.17 g, 30.9 mmol) at 0 °C. The reaction was stirred at this temperature for 2 h and then further cooled to −20 °C. To this solution was slowly added trimethyl borate (0.64 mL, 5.7 mmol). The reaction was stirred at −20 °C for 1 h, and then the reaction mixture was acidified with aqueous 1 N HCl to a pH of approximately 5. The resulting mixture was stirred at 0 °C for 10 min. The reaction mixture was partitioned between EtOAc (50 mL) and water (50 mL). The organic layer was collected, and the aqueous layer was extracted again with EtOAc (2 × 100 mL). The organic layers were combined, washed with brine solution (50 mL), and then dried over anhydrous NaSO. The organic solvent was removed under reduced pressure to give the crude product, which was washed with 20 mL of n-pentane to give the desired (2-methyl-2H-1,2,3-triazol-4-yl)boronic acid (2.6 g, 66.3% yield). MS(M+1) m / z:128.0[M+H] + LC retention time 0.66 min [Method B] 1 H-NMR (400MHz, DMSO-d6): δ 8.34 (s, 2H), 7.89 (s, 1H), 4.12 (S, 3H)
[0123] Process-2 A solution of 4-bromo-3-methoxypyridin-2-amine (0.3 g, 1.478 mmol) in 1,4-dioxane (3 mL) and water (0.5 mL) was added with cesium carbonate (0.963 g, 2.96 mmol), (2-methyl-2H-1,2,3-triazol-4-yl)boronic acid (0.281 g, 2.216 mmol), purged with N gas for 5 minutes, followed by the addition of tetrakis(triphenylphosphine)palladium(0) (0.085 g, 0.074 mmol), and then heated in a sealed tube at 120° C. for 3 hours. The reaction mixture was cooled to room temperature, diluted with ethyl acetate (25 mL), filtered through a pad of Celite, and washed with ethyl acetate (25 mL). The filtrate was washed successively with water (25 mL) and saturated brine solution (20 mL), dried over anhydrous NaSO, filtered, and concentrated under reduced pressure. The crude residue was purified by flash column chromatography using 0-30% EtOAc in petroleum ether to give the desired product, 3-methoxy-4-(2-methyl-2H-1,2,3-triazol-4-yl)pyridin-2-amine (0.22 g, 72.6% yield) as a yellow solid. MS(M+1) m / z:206.2[M+1] + LC retention time 0.36 min [Method A]
[0124] Intermediate-3 [ka]
[0125] Process-1 To a stirred suspension of copper(II) acetate (29.3 g, 161 mmol) in 1,2-dichloroethane (500 mL) in a 1000 mL three-neck round-bottom flask, 2,2'-bipyridine (25.2 g, 161 mmol) was added, and the reaction mixture was refluxed at 80° C. for 2 h. Cyclopropylboronic acid (34.1 g, 397 mmol), 4,5-dibromo-2H-1,2,3-triazole (30 g, 132 mmol), and sodium carbonate (28.0 g, 264 mmol) in 1,2-dichloroethane (1000 mL) were placed in a 3000 mL three-neck round-bottom flask, and the copper(II) acetate-2,2'-bipyridine complex solution prepared above was added. The reaction mixture was degassed under N gas for 5 min. The resulting reaction mixture was purged with O2 gas for 15 minutes and then stirred at 85 °C for 15 hours. Upon completion, the reaction mixture was cooled to room temperature, diluted with DCM (1000 mL), filtered through a Celite pad, and thoroughly washed with DCM (2 x 500 mL). The filtrate was collected and washed with aqueous 1.5 N HCl (2 x 1000 mL), followed by brine solution (1000 mL), then dried over anhydrous Na2SO4 and concentrated under reduced pressure. The crude residue was purified by silica gel (230-400 mesh) column chromatography using 2-5% EtOAc in petroleum ether to give 4,5-dibromo-2-cyclopropyl-2H-1,2,3-triazole (18 g, 46.4% yield) as a pale yellow liquid. GCMS(M) m / z:266.8[M] + ;GC retention time 3.25 minutes 1 H-NMR (400MHz, DMSO-d6): δ 4.01-3.98(m,1H), 1.38-1.34(m,2H), 1.16-1.11(m,2H)
[0126] Process-2 To a stirred solution of 4,5-dibromo-2-cyclopropyl-2H-1,2,3-triazole (18 g, 67.4 mmol) in THF (180 mL) was added isopropylmagnesium chloride (84 mL, 169 mmol) at −20° C. The reaction mixture was stirred at this temperature for 30 minutes, then allowed to warm to 0° C. and stirred for 2 hours. After completion of the reaction, the reaction mixture was quenched by adding saturated aqueous ammonium chloride solution (50 mL). The reaction mixture was extracted with EtOAc (2×500 mL), washed with water (500 mL) followed by brine (500 mL), and the organic extracts were combined, dried over anhydrous NaSO, and concentrated under reduced pressure. The crude residue was purified by column chromatography on silica gel (230-400 mesh) using 5% EtOAc in petroleum ether to give the desired 4-bromo-2-cyclopropyl-2H-1,2,3-triazole (12 g, 90% yield) as a pale yellow liquid. GCMS(M) m / z:186.9[M] + ;GC retention time 2.36 minutes 1 H-NMR (400MHz, DMSO-d6): δ 7.52(m,1H), 4.03-3.97(m,1H), 1.45-1.35(m,2H), 1.29-1.14(m,2H)
[0127] Process-3 To a stirred solution of 4-bromo-2-cyclopropyl-2H-1,2,3-triazole (12.0 g, 63.8 mmol) in THF (100 mL) was slowly added isopropylmagnesium chloride-lithium chloride complex (1.3 M in THF, 58.9 mL, 77 mmol) at 10°C. The reaction was stirred at 10°C for 2 hours and then further cooled to -20°C. To this solution was added trimethyl borate (2.487 g, 23.93 mmol). The resulting reaction mixture was stirred at -20°C for 1 hour. The reaction mixture was acidified to a pH of approximately 5 using aqueous 1N HCl. The resulting mixture was stirred at 0°C for 10 minutes. The reaction mixture was extracted with EtOAc (2 x 400 mL) and washed with water (200 mL) followed by brine (200 mL). The organic layer was dried over anhydrous NaSO and concentrated under reduced pressure to give the crude product. The crude residue obtained was washed with 150 mL of diethyl ether:n-pentane (1:1) to give the desired product (2-cyclopropyl-2H-1,2,3-triazol-4-yl)boronic acid (6 g, 55.3% yield) as an orange solid. MS(M+1) m / z:154.1[M+1] + LC retention time 1.03 min [Method B] 1 H-NMR (400MHz, DMSO-d6): δ 8.34(s,2H), 7.89(s,1H), 4.14-4.10(m,1H), 1.21-1.19(m,2H), 1.15-1.08(m,2H)
[0128] Process-4 To a stirred solution of 4-bromo-3-methoxypyridin-2-amine (0.11 g, 0.542 mmol) in 1,4-dioxane (3 mL) and water (0.5 mL) was added cesium carbonate (0.353 g, 1.084 mmol), (2-cyclopropyl-2H-1,2,3-triazol-4-yl)boronic acid (0.124 g, 0.813 mmol), purged under N gas for 5 minutes, followed by the addition of tetrakis(triphenylphosphine)palladium(0) (0.031 g, 0.027 mmol), and then heated to 120° C. in a sealed chamber for 2 hours. The reaction mixture was cooled to room temperature, diluted with ethyl acetate (25 mL), filtered through a pad of Celite, and washed with ethyl acetate (25 mL). The filtrate was washed successively with water (20 mL) and saturated brine solution (20 mL), dried over anhydrous NaSO, filtered, and concentrated under reduced pressure to give the crude product. The crude residue was purified by flash column chromatography using 0-2% methanol in DCM to give the desired 4-(2-cyclopropyl-2H-1,2,3-triazol-4-yl)-3-methoxypyridin-2-amine (103 mg, 82% yield) as a yellow solid. MS(M+1) m / z:232.2[M+1] + LC retention time 1.38 min [Method A]
[0129] Intermediate-4 [ka]
[0130] Process-1 To a stirred solution of 4,6-dichloronicotinaldehyde (8.5 g, 48.3 mmol) in THF (100 mL) was added ethylmagnesium bromide (48.3 mL, 145 mmol, 3.0 M in diethyl ether) at 0 °C, and the solution was stirred at 0 °C for 2 h. The reaction mixture was quenched with saturated aqueous NH Cl (100 mL) at 0 °C and extracted with ethyl acetate (2 × 200 mL). The organic layer was dried over anhydrous Na SO , filtered, and concentrated under reduced pressure to give crude material. The crude compound was purified by silica gel flash column chromatography (20% EtOAc in hexanes) to give 1-(4,6-dichloropyridin-3-yl)propan-1-one (4.35 g, 38.4% yield) as a pale yellow solid. MS(M+1) m / z:206.0[M+H] + LC retention time 1.75 min [Method B]
[0131] Process-2 To a stirred solution of 1-(4,6-dichloropyridin-3-yl)propan-1-ol (4.35 g, 21.11 mmol) in DCM (100 mL) was added Dess-Martin periodinane (17.91 g, 42.2 mmol) at 0 °C and stirred at room temperature for 2 h. The reaction mixture was quenched with 10% Na2CO3 solution (50 mL) and extracted with ethyl acetate (2 x 200 mL). The organic layers were combined, dried over Na2SO4, and then concentrated under reduced pressure to give crude material. The crude compound was purified by silica gel flash column chromatography (20% EtOAc in hexanes) to give 1-(4,6-dichloropyridin-3-yl)propan-1-one (3.7 g, 86% yield) as a pale yellow solid. MS(M+1) m / z:204.0[M+H] + LC retention time 1.44 min [Method B]
[0132] Process-3 To a stirred solution of 1-(4,6-dichloropyridin-3-yl)propan-1-one (0.2 g, 0.98 mmol) in 1,4-dioxane (5 mL) was added cyclopropanecarboxamide (0.1 g, 1.18 mmol) and cesium carbonate (0.96 g, 2.94 mmol). The reaction mixture was degassed under N gas for 5 minutes, followed by the addition of 1,1'-bis(dicyclohexylphosphino)ferrocene (0.68 g, 1.18 mmol) and Pd2dba3 (0.18 g, 0.196 mmol), followed by another 5 minutes of degassing. The reaction mixture was sealed and stirred at 80 °C for 2 hours. The reaction mixture was filtered through a syringe pad and washed with ethyl acetate (50 mL). The filtrate was concentrated under reduced pressure to give the crude material. The crude compound was purified by silica gel column chromatography (10% EtOAc in hexanes) to give N-(4-chloro-5-propionylpyridin-2-yl)cyclopropanecarboxamide (0.1 g, 40.4% yield) as a pale yellow solid. MS(M+1) m / z:253.0[M+H] + LC retention time 2.25 minutes [Method B]
[0133] Example 1 [ka]
[0134] To a solution of N-(4-chloro-5-propionylpyridin-2-yl)cyclopropanecarboxamide (200 mg, 0.791 mmol) in 1,4-dioxane (3 mL), cesium carbonate (516 mg, 1.583 mmol), 3-methoxy-4-(2-methyl-2H-1,2,3-triazol-4-yl)pyridin-2-amine (162 mg, 0.791 mmol) were added and the mixture was degassed under N gas for 5 minutes, followed by the addition of 1,1'-bis(diphenylphosphino)ferrocene (43.8 mg, 0.079 mmol) and Pd2dba3 (36.2 mg, 0.040 mmol). The reaction mixture was stirred in a sealed tube at 130 °C for 3 hours. The reaction mixture was cooled to room temperature, diluted with ethyl acetate (20 mL), filtered through a Celite pad, and concentrated under reduced pressure. The resulting crude product was purified by flash chromatography using 0-2% methanol in DCM and triturated with diethyl ether (20 mL) to give the desired product N-(4-((3-methoxy-4-(2-methyl-2H-1,2,3-triazol-4-yl)pyridin-2-yl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide (54 mg, 15.9% yield) as an off-white solid. MS(M+1) m / z:422.0[M+H] + LC retention time 2.29 minutes [Method B] 1 H-NMR (400MHz, DMSO-d6):δ 12.33(s,1H), 10.93(s,1H), 9.68(s,1H), 8.97(s,1H), 8.32(s,1H), 8.15(d,J=5.20Hz,1H), 7.46(d,J=5.20Hz,1H) ), 4.28(s,3H), 3.82(s,3H), 3.18(q,J=7.20Hz,2H), 2.08-2.07(m,1H), 1.15(t,J=7.20Hz,3H), 0.87-0.83(m,4H)
[0135] The following Example 2 was prepared in a manner similar to that of Example 1. [ka] [Table 3]
[0136] Intermediate-5 [ka]
[0137] Process-1 To a stirred solution of 4,6-dichloronicotinic acid (15.0 g, 78.0 mmol) in DMF (220 mL) was added DIPEA (27.3 mL, 156.0 mmol) and HATU (44.6 g, 117.0 mmol) at 0 °C. Then, N,O-dimethylhydroxylamine (5.73 g, 94.0 mmol) was added portionwise at 0 °C. The reaction mixture was stirred at room temperature for 6 h. Cold water (150 mL) was added to the reaction mixture, which was then extracted with ethyl acetate (3 × 150 mL). The organic extracts were combined, washed with brine solution (100 mL), dried over NaSO, and concentrated under reduced pressure. The crude residue was purified by silica gel column chromatography to give the desired product, 4,6-dichloro-N-methoxy-N-methylnicotinamide (12.5 g, 66.9% yield), as an off-white solid. MS(M+1) m / z:235.4[M+H] + LC retention time 1.36 minutes [Method B]
[0138] Process-2 To a stirred solution of 4,6-dichloro-N-methoxy-N-methylnicotinamide (0.8 g, 3.40 mmol) and 2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)aniline (0.69 g, 3.40 mmol) in THF (20 mL) was added LiHMDS (10.21 mL, 10.21 mmol, 1 M solution in THF) at 0 °C and stirred at room temperature for 2 h. The reaction mixture was cooled to 0 °C, quenched with saturated aqueous NH Cl (30 mL), and extracted with ethyl acetate (2 × 100 mL). The organic layer was dried over Na SO and then concentrated under reduced pressure to give a crude residue. The crude compound was purified by silica gel flash column chromatography (25% EtOAc in petroleum ether) to give 6-chloro-N-methoxy-4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-N-methylnicotinamide (0.85 g, 58.6% yield) as an orange solid. MS(M+1) m / z:403.1[M+H] + LC retention time: 2.06 minutes [Method B]
[0139] Process-3 To a stirred solution of 6-chloro-N-methoxy-4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-N-methylnicotinamide (0.2 g, 0.5 mmol) in THF (10 mL) was added ethylmagnesium bromide (0.5 mL, 1.5 mmol, 3.0 M solution in diethyl ether) at 0° C. and stirred at this temperature for 2 h. The reaction mixture was quenched with saturated aqueous NH4Cl (20 mL) at 0° C. and extracted with ethyl acetate (50 mL). The organic layer was dried over Na2SO4 and then concentrated under reduced pressure to give the crude material. The crude compound was purified by silica gel flash column chromatography (20% ethyl acetate in hexanes) to give 1-(6-chloro-4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)pyridin-3-yl)propan-1-one (0.14 g, 72.5% yield) as a pale yellow solid. MS(M+1) m / z:372.1[M+H] + LC retention time 2.17 minutes [Method B]
[0140] Example 3 [ka]
[0141] To a stirred solution of 1-(6-chloro-4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)pyridin-3-yl)propan-1-one (150 mg, 0.403 mmol) in 1,4-dioxane (3 mL) was added cesium carbonate (329 mg, 1.009 mmol) and cyclopropanecarboxamide (68.7 mg, 0.807 mmol) at ambient temperature. The reaction mixture was degassed under N for 5 minutes. Pd2dba3 (73.9 mg, 0.081 mmol) and Xantphos (46.7 mg, 0.081 mmol) were added to the reaction mixture, which was degassed for 5 minutes. The resulting reaction mixture was stirred under MW at 130° C. for 2 hours. The reaction mixture was filtered through a pad of Celite, washed with EtOAc (50 mL), and concentrated under reduced pressure to give the crude product. The crude residue was purified by reverse-phase preparative HPLC to give N-(4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide (40 mg, 23.16% yield) as an off-white solid. MS(M+1) m / z:421.0[M+H] + LC retention time 1.18 minutes [Method A] 1H-NMR (400MHz, DMSO-d6):δ 11.06(s,1H), 10.93(s,1H), 8.90(s,1H), 8.13(s,1H), 8.03(s,1H), 7.70(d,J=7.6Hz,1H), 7.48(d,J=7.6Hz,1H), 7.27-7 .31(m,1H), 4.24(s,3H), 3.64(s,3H), 3.14(q,J=7.2Hz,2H), 2.00-2.03(m,1H), 1.13(t,J=7.2Hz,3H), 0.78-0.79(m,4H)
[0142] Intermediate-6 [ka]
[0143] Process-1 To a stirred solution of 3-bromo-4-fluoro-2-methoxyaniline (800 mg, 3.64 mmol) and (2-methyl-2H-1,2,3-triazol-4-yl)boronic acid (554 mg, 4.36 mmol) in 1,4-dioxane (10 mL) was added 2N aqueous KPO (3.6 mL, 7.28 mmol) and degassed under N for 5 minutes. PdCl(dppf)-DCM adduct (297 mg, 0.364 mmol) was then added to the reaction mixture, which was stirred in a sealed tube at 90 °C for 6 hours. The reaction mixture was diluted with ethyl acetate (30 mL) and filtered through a Celite pad, washing the Celite pad with ethyl acetate (30 mL). The filtrate was washed successively with water (40 mL) and saturated brine solution (40 mL), dried over anhydrous NaSO, filtered, and concentrated under reduced pressure to give the crude product. The crude residue was purified by silica gel (100-200 mesh) column chromatography using 30-35% EtOAc in petroleum ether as the eluent to give the desired product, 4-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)aniline (520 mg, 64.4% yield) as a brown solid. MS(M+1) m / z:223.2[M+H] + LC retention time 1.16 minutes [Method A]
[0144] Intermediate-7 [ka]
[0145] Process-1 To a solution of 3-bromo-5-fluoro-2-methoxyaniline (2 g, 9.09 mmol) in 1,4-dioxane (20 mL) in a sealed test tube, bispin (2.308 g, 9.09 mmol) and KOAc (0.892 g, 9.09 mmol) were added at ambient temperature. The reaction mixture was purged with N gas for 5 minutes, and then PdCl(dppf)-DCM adduct (0.742 g, 0.91 mmol) was added. The reaction mixture was stirred at 90 °C for 5 hours and cooled to room temperature. The reaction mixture was diluted with EtOAc (100 mL) and filtered through a Celite pad. The filtrate was washed with water (50 mL) and saturated brine solution (50 mL). The organic layer was collected, dried over anhydrous NaSO, and concentrated under reduced pressure to give the crude product. The crude residue was purified by silica gel (100-200 mesh) column chromatography using 20-25% EtOAc in petroleum ether to give the desired product 5-fluoro-2-methoxy-3-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)aniline (2 g, 82% yield) as a white solid. MS(M+1) m / z:267.8(M+H) + LC retention time 2.43 minutes [Method A]
[0146] Process-2 To a stirred solution of 5-fluoro-2-methoxy-3-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)aniline (989 mg, 3.70 mmol) and 4-bromo-2-methyl-2H-1,2,3-triazole (500 mg, 3.09 mmol) in 1,4-dioxane (10 mL) was added 2N aqueous KPO (4.63 mL, 9.26 mmol) and purged with N gas for 5 minutes. PdCl(dppf)-DCM adduct (252 mg, 0.309 mmol) was added to the reaction mixture and stirred at 90 °C for 6 hours. The reaction mixture was diluted with ethyl acetate (50 mL) and washed with brine (25 mL). The organic layer was collected, dried over anhydrous NaSO, and concentrated under reduced pressure. The crude residue was purified by silica gel (100-200 mesh) column chromatography using 35% EtOAc in petroleum ether to give the desired product 5-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)aniline (0.6 g, 38% yield) as a brown solid. MS(M+1) m / z:223.0(M+H) + LC retention time 1.95 min [Method A]
[0147] The following intermediate 8 was prepared from 3-bromo-2-methoxy-5-methylaniline in a similar manner to the preparation of intermediate 7. [ka] [Table 4]
[0148] Example 4 [ka]
[0149] A mixture of 4-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)aniline (376 mg, 1.691 mmol), N-(4-chloro-5-propionylpyridin-2-yl)cyclopropanecarboxamide (200 mg, 0.791 mmol), and cesium carbonate (774 mg, 2.374 mmol) in 1,4-dioxane (5 mL) was degassed by bubbling N for 5 min. Next, 1,1'-bis(dicyclohexylphosphino)ferrocene (45.8 mg, 0.079 mmol) and Pd2dba3 (36.2 mg, 0.040 mmol) were added, and the reaction mixture was degassed by bubbling N for 5 min. The reaction vessel was then sealed and heated at 110 °C for 16 h. The reaction was cooled to room temperature, diluted with ethyl acetate (20 mL), filtered through a 0.45 micron nylon filter, and concentrated. The crude residue was purified by reverse-phase preparative HPLC to give N-(4-((4-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide (130 mg, 36.8% yield) as an off-white solid. MS(M+1) m / z:439.2[M+H] + LC retention time 2.517 minutes [Method B] 1 H-NMR (400MHz, DMSO-d6):δ 10.92(s,1H), 10.85(s,1H), 8.88(s,1H), 8.02(s,1H), 7.84(s,1H), 7.53-7.50(m,1H), 7.24(t,J=9.60Hz,1H), 4.25(s,3H), 3.55(s,3H), 3.13(q,J=7.20Hz,2H), 2.02-1.99(m,1H), 1.11(t,J=7.20Hz,3H), 0.80-0.78(m,4H)
[0150] The following examples (5-6) were prepared in a manner similar to that of Example 4. [ka] [Table 5] a = Rac-BINAP was used instead of dcpf as the ligand during production.
[0151] [Table 6]
[0152] Biological assays The following assays are used to demonstrate activity for the compounds of the invention.
[0153] In vivo assay of brain penetrance Pharmacokinetic studies were performed using C57BL6 wild-type mice (n=3 per experiment) to measure the exposure of the compounds of the present invention to the brain and plasma. Compounds were orally administered at 5 mL / kg in a solution of 5% ethanol; 90% PEG300; 5% TPGS at a final concentration of 10 mg / kg. One hour after administration, the mice were sacrificed, and plasma and brains were collected and frozen for analysis. Brain tissue was homogenized in a 1:1 volume with blank C57BL6 mouse plasma. The concentrations of compounds in plasma and brain homogenates were measured by LC-MS analysis.
[0154] Bidirectional permeability assay in Caco-2 cells overview The compounds described were tested in a Caco-2 bidirectional permeability assay to assess their permeability and efflux substrate potential. Compounds (at 3 μM in triplicate) were incubated with Caco-2 cells in pH 7.4 assay buffer (containing 0.5% bovine serum albumin [BSA]) for 2 hours at 37°C and then extracted for LC-MS analysis. Their concentrations in the reaction mixture were measured, and permeability coefficients, efflux fractions, and recoveries were calculated.
[0155] material and method Caco-2 (Caucasian colon adenocarcinoma) cells were obtained from the American Type Culture Collection (Manassas, VA). Dulbecco's modified Eagle's medium (DMEM), N-2-hydroxyethylpiperazine-N'-2-ethanesulfonic acid (HEPES) buffer, non-essential amino acids, L-glutamine, penicillin-G-streptomycin, and heat-inactivated fetal bovine serum (FBS) were purchased from GIBCO / Invitrogen (Carlsbad, CA). 96-well plates (surface area: 0.11 cm) were used. 2 Polycarbonate membrane transwell plates with a 0.4 μm pore size and low-binding transwell cluster plates were purchased from Sigma-Aldrich (St. Louis, MO). Low-binding 96-well plates were purchased from Corning (Corning, NY). Modified Hank's Balanced Salt Solution (MHBSS) was prepared by adjusting the pH of Hank's Balanced Salt Solution (HBSS) to 7.4 with HEPES. HBSS, digoxin, and bovine serum albumin (BSA) were purchased from Sigma (St. Louis, MO). Filtration blocks (2 mL, 96 wells) were purchased from Whatman (Freiburg, Germany). All solvents were analytical grade.
[0156] 1. Preparation of Cells 14–28 days before the assay, Caco-2 cells were plated at 1.8 × 10 cells per well onto polycarbonate filter membranes in 96-well transwell plates. 5 cells / cm 2 at a density of approximately 2.0x10 per well 4Cells were seeded at 1000 x g / mL. Cells were grown in a medium consisting of DMEM supplemented with 10% fetal bovine serum, 10 mM HEPES, 1% non-essential amino acids, 2 mM L-glutamine, 100 U / mL penicillin-G, and 100 μg / mL streptomycin. The medium was changed every 3 days, and cells were maintained at 37°C in a 95% relative humidity and 5% CO2 atmosphere. Cells were assessed for tight junction formation immediately prior to assay (see the Quality Control section below).
[0157] Compound production Compounds were dissolved in 100% DMSO to 10 mM. After visual inspection to ensure complete solubilization, 10 mM compound stocks were placed in 96-well plates and serially diluted with 100% DMSO to create a 100x stock concentration of 0.3 mM. Four control compounds were tested in parallel with the compounds listed and plated in quadruplicate at 100x the concentration of 0.3 mM.
[0158] Permeability evaluation The compounds listed were tested in triplicate in one experiment at a final concentration of 3 μM. The cell passages used in the assay met QC standards (see the Quality Control section below). Studies were performed using monolayers of Caco-2 cells cultured for 14 to 28 days, with passages between 20 and 80. The assay (transport) buffer consisted of MHBSS adjusted to pH 7.4 and 0.5% BSA. From the 100x compound plate, 8 μL of a 100% DMSO stock solution of the compound was added to 800 μL of assay buffer, mixed well, and filtered to remove any precipitate as a final preparation step before assay incubation. The target final test concentration for the listed and control compounds was 3 μM. The filtrate represented the original compound stock solution, which was used as the donor solution in the assay (in both directions). The receiver solution was assay buffer alone.
[0159] Immediately before performing the assay, each cell monolayer was washed three times with assay buffer to remove all traces of medium. Permeability studies were initiated by adding 100 μL of assay buffer + / - compound to the top compartment of a 96-well transwell low-binding cluster plate and 200 μL of assay buffer + / - compound to the basolateral compartment. For apical-to-basolateral (A→B) permeability (absorption direction), buffer containing compound or a control compound (1x donor solution) was placed in the top compartment (donor well), while buffer alone was placed in the corresponding basolateral compartment (receiver well). For basolateral-to-apical (B→A) permeability (secretion direction), buffer containing compound or a control compound (1x donor solution) was placed in the basolateral compartment (donor well), while buffer alone was placed in the corresponding upper compartment (receiver well). The transwells were then incubated for 2 hours at 37°C in an atmosphere of 95% relative humidity and 5% CO2. After incubation, 75 μL was removed from each of the apical and basolateral compartments and transferred to a 96-well low-binding plate prefilled with 75 μL / well of acetonitrile containing 250 nM propranolol, 250 nM diclofenac, and 500 nM tolbutamide as internal standards. Samples were then analyzed by LC-MS / MS to determine the concentrations of the compounds and controls.
[0160] Analysis of assay samples The concentrations of the compounds listed and the control compounds in the assay samples were measured using LC-MS / MS. The AB Sciex 4500 / 5500 / 6500 multiplex system consisted of a binary Shimadzu 20ADvp pump with two SCL-20Avp controllers for gradient elution, an LS1 autosampler, and an AB Sciex 4500 / 5500 / 6500 triple quadrupole mass spectrometer operating in electrospray ionization (ESI) mode. To obtain optimal SRM for the analysis of the samples, MS / MS optimization of each compound was performed using Discovery Quant® (AB Sciex), featuring saturation control using 5 μM standard solutions in a 1:1 mixture of methanol and water (v / v) prepared from the compound stock solutions. Optimization was performed using flow injection analysis with an injection volume of 40 μL under isocratic elution of 75% mobile phase B (0.2% formic acid in acetonitrile) and 25% mobile phase A (0.2% formic acid in water).
[0161] A 5 μL aliquot of sample was injected and then separated on a Kinetex XB-C18, 2.6 μm, 2.1×30 mm column under gradient elution with a mobile phase consisting of A (0.2% formic acid in water) and B (0.2% formic acid in acetonitrile).
[0162] [Table 7] A = 0.2% formic acid in water; B = 0.2% formic acid in acetonitrile
[0163] The Discovery Quant® automatically determined the optimal ionization polarity (anodic or cathodic), precursor and product ions, decluster potential, and collision energy for the listed and reference compounds. Optimized SRM MS / MS conditions were used for analysis of the samples. The peak area ratio of the listed or reference compounds relative to the internal standard was used for quantification. The peak area ratio of the compound in the dose solution was used to determine the concentration of the compound in the sample.
[0164] Data analysis The following results: permeability coefficient (Pc [nanometers per second]), efflux ratio, and recovery were reported for the compounds listed;
[0165] The Pc value is calculated using the following formula:
number
[0166] The emission ratio was calculated as follows:
number
[0167] Percent recovery was calculated by expressing the total amount of test compound (nmoles) present in the donor and receiver assay compartments (combined) at the end of the incubation period as a fraction (%) of the total amount of test compound (nmoles) added to the donor compartment prior to assay incubation, using the following formula:
number
[0168] quality control On the day of the assay, Caco-2 cells in one of the transwell plates were evaluated for tight junction formation by transepithelial electrical resistance (TEER) measurements. TEER was assessed using an EVOM resistance meter (World Precision Instruments, Salasola, FL). Each well of the transwell plate had a TEER value >600 Ω cm. 2 , indicating that cell passage and all plates of this plating batch were accepted for the assay.
[0169] Four control compounds, with Pc values spanning the permeability range, were tested in parallel with the compounds described in each experiment. The assay acceptance criteria required that the control compound results at 3 μM be within the historically acceptable range. The historically observed Pc values and efflux ratio acceptance ranges for these four controls are shown in Table B.
[0170] In these studies, the results for all control compounds were within the range of their respective previous results, and thus the assay data were acceptable for data analysis and evaluation of compounds that exhibit bidirectional permeability in Caco-2 cells.
[0171] [Table 8] Values are means ± standard deviations. Pc = Permeability coefficient A → B = From top to basolateral B → A = From basolateral to top
[0172] IFNα-induced STAT phosphorylation in human whole blood After incubation with compounds for 1 hour, human whole blood (drawn using ACD-A as an anticoagulant) was stimulated with 1000 U / mL recombinant human IFNα A / D (R&D Systems, 11200-2) for 15 minutes. Fix / Lyse buffer (BD 558049) was added to stop the stimulation. Cells were stained with CD3 FITC antibody (BD 555916), washed, and permeabilized with Perm III buffer (BD 558050) on ice. Cells were then stained with Alexa-Fluor 647 pSTAT5 (pY694) antibody (BD 612599) for 60 minutes and analyzed using an iQue Plus. pSTAT5 expression was quantified as median fluorescence intensity after gating on the CD3-positive population.
[0173] Table 1: Potency of Example Compounds in Human Whole Blood Assay [Table 9]
[0174] Table 2: CNS penetration properties of Examples 1 and 3 compared to Compounds A and B: [ka]
[0175] [Table 10]
[0176] Surprisingly, it has been found that the 1,2,3-substituted triazole compounds of the present invention have significantly higher brain to plasma ratios than structurally similar 1,2,4-substituted triazole compounds. Thus, the compounds of the present invention can cross the blood-brain barrier and may be useful in the treatment of certain neurological disorders.
Claims
1. Formula I: 【Chemistry 1】 [In the formula: X is —N— or —CH—; R 1 Ha-C(O)R 1a and R 1a is C 3-6 is cycloalkyl; R 2 is C 1-6 Alkoxy; R 3 is C 1-6 Alkyl or C 3-6 is cycloalkyl] or a stereoisomer or a pharmaceutically acceptable salt thereof.
2. formula: 【Chemistry 2】 [In the formula: R 1 Ha-C(O)R 1a and R 1a is C 3-6 is cycloalkyl; R 2 is C 1-6 Alkoxy; R 3 is C 1-6 Alkyl or C 3-6 is cycloalkyl] 2. The compound of claim 1, which is a compound represented by the formula: or a stereoisomer or pharmaceutically acceptable salt thereof.
3. formula: 【Transformation 3】 [In the formula: R 1 Ha-C(O)R 1a and R 1a is C 3-6 is cycloalkyl; R 2 is C 1-6 Alkoxy; R 3 is C 1-6 Alkyl or C 3-6 is cycloalkyl] 2. The compound of claim 1, which is a compound represented by the formula: or a stereoisomer or pharmaceutically acceptable salt thereof.
4. N-(4-((3-methoxy-4-(2-methyl-2H-1,2,3-triazol-4-yl)pyridin-2-yl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((3-methoxy-4-(2-cyclopropyl-2H-1,2,3-triazol-4-yl)pyridin-2-yl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((4-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; N-(4-((3-fluoro-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide; and N-(4-((3-methyl-2-methoxy-3-(2-methyl-2H-1,2,3-triazol-4-yl)phenyl)amino)-5-propionylpyridin-2-yl)cyclopropanecarboxamide or a pharmaceutically acceptable salt thereof.
5. 10. A pharmaceutical composition comprising one or more compounds of claim 1, or stereoisomers or pharmaceutically acceptable salts thereof, and a pharmaceutically acceptable carrier or diluent.
6. 10. A pharmaceutical composition comprising one or more compounds of claim 4, or pharmaceutically acceptable salts thereof, and a pharmaceutically acceptable carrier or diluent.
7. 10. A medicament for treating a neurodegenerative disease, comprising the compound of claim 1, or a stereoisomer or pharmaceutically acceptable salt thereof.
8. The method of claim 7, wherein the neurodegenerative disease is Alzheimer's disease, Parkinson's disease, ALS, or multiple sclerosis (RMS and / or progressive MS, including CIS, optic neuritis, neuromyelitis optica).
Citation Information
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