Heterobicyclic carboxylates for the treatment of cancer or inflammatory diseases

Heterocyclic amide derivatives act as selective EP4 receptor antagonists, addressing the limitations of existing treatments by blocking the EP4 receptor pathway to treat inflammatory diseases and cancer, reducing inflammation and inhibiting tumor growth.

JP2026053473APending Publication Date: 2026-03-25SHENZHEN IONOVA LIFE SCI CO LTD +1
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Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2025-12-19
Publication Date
2026-03-25

AI Technical Summary

Technical Problem

Existing treatments for prostaglandin E2-mediated diseases, such as cancer and inflammatory conditions, are inadequate in effectively targeting the EP4 receptor, leading to immunosuppression and tumor progression.

Method used

Development of heterocyclic amide derivatives that function as selective EP4 receptor antagonists, inhibiting the signaling pathway of prostaglandin E2 to treat inflammatory diseases and cancer by blocking the EP4 receptor.

Benefits of technology

The EP4 receptor antagonists effectively reduce inflammation, inhibit tumor growth, and induce a memory immune response, providing therapeutic benefits in treating a wide range of diseases and conditions including cancer and inflammatory disorders.

✦ Generated by Eureka AI based on patent content.

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Abstract

We provide therapeutic products for use in the treatment of cancers and other conditions mediated by the EP4 receptor. [Solution] A therapeutic product for use in the treatment of colorectal cancer, melanoma, or lung cancer, comprising a pharmaceutically acceptable salt of a compound having the following structure: JPEG2026053473000049.jpg39159 The pharmaceutically acceptable salt is a diethanolamino salt or a tris(hydroxymethyl)aminomethane salt, and the compound is a therapeutic product that suppresses tumor growth in a dose-dependent manner in the range of 0.1 mg / kg to 150 mg / kg per body weight.
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Description

[Technical Field]

[0001] (Cross-reference to related applications) This application claims priority to PCT application number PCT / CN2018 / 075198, filed on February 5, 2018, the contents of which are incorporated herein by reference in their entirety. [Background technology]

[0002] Prostaglandins are mediators of pain, fever, and other symptoms associated with inflammation. In particular, prostaglandin E2 (PGE2) is the primary eicosanoid that detects inflammatory states. Furthermore, it is involved in various physiological and / or pathological conditions, as well as hyperalgesia, uterine contractions, gastric motility, wakeness, suppression of gastric acid secretion, blood pressure, platelet function, bone metabolism, and angiogenesis. Four PGE2 receptor subtypes (EP1, EP2, EP3, and EP4) exhibiting different pharmacological properties have been cloned. The EP4 subtype, a Gs-coupled receptor, stimulates cAMP production and is widely distributed in tissues, suggesting a major role in PGE2-mediated biological events. Patent publications WO96 / 06822, WO96 / 11902, EP752421-A1, WO03 / 16254, WO05 / 021508, and WO07 / 121578 disclose compounds useful for the treatment of prostaglandin-mediated diseases. Three review articles describe the characteristics of prostanoid receptors, their relevance to therapy, and the most commonly used selective agonists and antagonists. Eicosanoids: From Biotechnology to Therapeutic Applications, Folco, Samuelsson, Maclouf, and Velo eds, Plenum Press, New York, 1996, chap. 14, 137-154; Journal of Lipid Mediators and Cell Signaling, 1996, 14, 83-87; and Prostaglandins and Other Lipid Mediators, 2002, 69, 557-573.

[0003] PGE2 promotes inflammatory immune responses; however, PGE2 is implied to be a key component of the immunosuppressive environment created by many solid tumors (Whiteside, Expert Opinion in Biological Therapy, 2010. 10, 1019-1035), and persistent levels in the tumor microenvironment promote the accumulation of multiple immunosuppressive cells, enhancing their activity, including tumor-associated macrophages (TAMs), Treg cells, and myeloid-derived suppressor cells (MDSCs), thereby promoting the escape of tumor immunity. Accumulated evidence has shown that increased cAMP levels by EP4 are a major signal leading to immunosuppression of immune cells (Yokoyama U et al., Pharmacol. Rev., 2013, 65:1010-1052). The study also showed that prostaglandin E receptor 4 (EP4) antagonists can effectively induce inflammation by blocking prostaglandin E2 (PGE2) signaling via the interaction of PGE2 with prostaglandin E receptor 4 subtypes (Chen et al., British J Pharmacol., 2010, 160, 292-310). EP4 knockout in mice was associated with APC. min Compared to wild-type animals, the mutants showed delayed tumorigenesis in a background of mutation and demonstrated tumorigenic activity of PGE2-EP4 signaling in host immune cells (Mutoh M et al., Cancer Res., 2002, 62:28-32). Consistently, selective EP4 receptor antagonists have been shown to delay tumor progression and metastasis in various preclinical tumor models without affecting cancer cell proliferation in vitro (Yang et al., Cancer Res., 2006, 66:9665-9672; Mao Y et al., Clin. Cancer Res., 2014, 20:4096-4106).

[0004] Based on such research, antagonists of the EP4 subtype of the PGE2 receptor have therapeutic value in treating diseases or conditions such as cancer and inflammatory diseases or conditions mediated by the EP4 receptor (e.g., acute and chronic pain, osteoarthritis, rheumatoid arthritis). [Overview of the project] [Means for solving the problem]

[0005] The compounds of the present invention are EP4 receptor antagonists and are therefore useful in the treatment of diseases or symptoms mediated by prostaglandin E2. The EP4 antagonists described in this invention have antagonistic effects on prostaglandins during in vivo in vivo transformation and are therefore useful in the treatment of, in particular, pain, neuropathic pain, visceral pain, inflammatory pain, nociceptive pain, chronic pain, acute pain, inflammation associated with fever or rheumatic fever, influenza or other viral infections, colds, back pain and neck pain, bone pain, postpartum pain, dysmenorrhea, headaches, migraines, toothaches, sprains and muscle strains, myositis, neuralgia, fibromyalgia, synovitis, arthritis including rheumatoid arthritis, degenerative joint diseases (osteoarthritis), gout and ankylosing spondylitis, bursitis, radiation and corrosive chemicals (corrosive Burns, sunburns, pain after surgical and dental procedures, fractures, immune and autoimmune diseases; malignant cell transformation or metastatic tumor growth; diabetic retinopathy, tumor angiogenesis; prostanoid-induced smooth muscle contractions associated with dysmenorrhea, premature labor, allergic rhinitis, atopic dermatitis, asthma or eosinophil-related disorders, hyperglobulinemia, Castleman disease, myeloma; Alzheimer's disease, sleep disorders, endocrine disorders; glaucoma; bone loss; osteoporosis, promotion of bone formation; Paget's disease: cytoprotective effects in peptic ulcers, gastritis, focal enteritis, ulcerative colitis, diverticulitis or other gastrointestinal lesions; GI bleeding Patients receiving chemotherapy; blood coagulation disorders selected from hypoprothrombinemia, hemophilia, and other bleeding disorders; renal disease; thrombosis; occlusive vascular disease; pre-operative; and anticoagulant; sympathetic-dependent pain; pain resulting from amputation; skin diseases (e.g., eczema or psoriasis); eye diseases (e.g., glaucoma, retinitis, retinopathy, uveitis, and acute injury to eye tissue (e.g., conjunctivitis); lung disorders (e.g., bronchitis, emphysema, allergic rhinitis, respiratory distress syndrome, pigeon lover's disease, farmer's lung, or COPD); gastrointestinal disorders (e.g., aphthous ulcers, Crohn's disease, atopic gastritis, verrucous gastritis (gastritis varialoforme), ulcerative colitis, celiac disease, focal ileitis, irritable bowel syndrome, inflammatory bowel disease, or gastrointestinal reflex disease);Organ transplantation; other conditions with inflammatory elements, e.g., vascular diseases, migraines, polyarteritis nodosa, thyroiditis, aplastic anemia, Hodgkin's disease, scleroderma, myasthenia gravis, multiple sclerosis, sarcoidosis, nephrotic syndrome, Behçet's syndrome, polymyositis, gingivitis, myocardial ischemia, fever, systemic lupus erythematosus, tendinitis, bursitis, and Sjögren's syndrome; platelet dysfunction (e.g., occlusive vascular disease); diuretic effect; impotence or erectile dysfunction; bone diseases characterized by abnormal bone metabolism or reabsorption, e.g., osteoporosis; hypercalcemia, hyperparathyroidism, Paget's disease of bone; Osteosylysis, malignant hypercalcemia with or without bone metastases, rheumatoid arthritis, periodontitis, osteoarthritis, bone pain, osteopenia, cancer cachexia, calculosis, lithiasis (especially urinary tract stones), solid tumors, gout and ankylosing spondylitis, tendinitis and bursitis; bone resorption, hemodynamic side effects of NSAIDs and COX-2 inhibitors, cardiovascular disease, hypertension or myocardial ischemia; functional or organic venous insufficiency; varicose vein therapy Therapy; hemorrhoids; and shock states associated with a significant decrease in arterial pressure (e.g., septic shock); neurodegenerative diseases and neurodegeneration, such as dementia, especially degenerative dementia (including senile dementia, Alzheimer's disease, Pick's disease, Huntington's disease, Parkinson's disease and Creutzfeldt-Jakob disease, ALS, and motor neuron disease); vascular dementia (including polyinfarct dementia); and dementia associated with intracranial space-occupying lesions; trauma; infection and related conditions (including HIV infection); metabolism; toxins; anoxia and vitamin deficiencies; and mild cognitive impairment associated with aging, especially age-related memory impairment; neuroprotection, and neurodegeneration after stroke, cardiac arrest, pulmonary bypass, traumatic brain injury, or spinal cord injury; tinnitus, complications of type 1 diabetes (e.g., diabetic microangiopathy, diabetic nephropathy, macular degeneration, or glaucoma), nephrotic syndrome, aplastic anemia, uveitis, Kawasaki disease, and sarcoidosis;It is particularly useful in treating diseases or symptoms from the group consisting of renal dysfunction (e.g., nephritis, especially mesangial proliferative glomerulonephritis, or nephritis syndromes), hepatic dysfunction (e.g., hepatitis, or cirrhosis), gastrointestinal disorders (e.g., diarrhea), alcoholic cirrhosis, amyloidosis, atherosclerosis, heart disease, sclerosis, organ transplant reactions, glucocorticoid-induced osteoporosis, tooth loss, fractures, multiple myeloma, various types of edema, hypertension, premenstrual syndrome, urinary tract stones, oliguria, hyperphosphatemia, pruritus, urticaria, contact dermatitis, urticaria, frequent urination, learning disabilities, gingiritis, predontitis, lung injury, liver injury, and constipation.

[0006] The present invention relates to a method for treating inflammatory diseases, neoplasms, and cancer using heterocyclic amide derivatives that function as EP4 receptor antagonists. Pharmaceutical compositions for the same treatment are also included within the scope of the present invention.

[0007] The present invention encompasses methods for treating inflammatory diseases that are easily treated with nonsteroidal anti-inflammatory drugs, including administering a non-toxic, therapeutically effective dose of a compound of formula I to a patient who requires such treatment. Embodiments of this invention include cases where the patient also has a risk of thrombotic cardiovascular events and / or GI ulcer formation / bleeding.

[0008] Another embodiment of the present invention encompasses a method for treating a prostaglandin E2-mediated disease that is favorably treated by an activator that selectively antagonizes EP4 rather than inhibiting COX-1 / COX-2, the method comprising administering a non-toxic, therapeutically effective amount of a compound of formula I to a patient requiring such treatment. Within this embodiment, the above method also encompasses the patient being at risk of thrombotic cardiovascular events.

[0009] Exemplary methods, without limitation, the compounds described herein can be used for cancer immunotherapy targeting host immunosuppressive cells in the tumor microenvironment, which can be either myeloid or lymphoid. In one embodiment, the compounds described herein can be used to treat patients with various types of tumors, including those with high levels of bone marrow infiltration. Such levels of myeloid infiltration can be identified, for example, based on the Cancer Genome Atlas (TCGA). Such tumor types can also be identified based on protein or genetic (e.g., mRNA) expression analysis.

[0010] Tumor types include, but are not limited to, pancreatic cancer, renal clear cell carcinoma, squamous cell carcinoma of the head and neck (SCCHN), non-small cell lung cancer (NSCLC), colorectal cancer (CRC), hepatocellular carcinoma (HCC), serous epithelial ovarian cancer, cervical cancer, transitional cell bladder cancer, skin cancer, glioblastoma, renal cancer, prostate cancer, pancreatic cancer, triple-negative breast cancer (TNBC). In a further specific aspect of the invention, the provided method is a method of treating cancer and / or generating a memory immune response, comprising administering a compound of formula (I) or a pharmaceutically acceptable salt thereof.

Chemical formula

[0011] In one embodiment, [ka] teeth [ka] A, B, and C' are each independently selected from N, CH, and C(Rc); G is -C(O), -C(S), or -S(O)2-; and L is -CH2-, S, O, or NRc.

[0012] In another embodiment, [ka] teeth [ka] A, B, and C' are each independently N, CH, or C(Rc); X, L, and G are each independently bonded, -CH2-, O, S, or N(Rd); and Rd is H, aryl, or alkyl.

[0013] In another embodiment, [ka] teeth [ka] And Rc is as previously defined.

[0014] In another embodiment, [ka] teeth [ka] A, B, and C' are each independently selected from N, CH, and C(Rc).

[0015] In another embodiment, [ka] teeth [ka] And -KLM- is selected from the group consisting of the following: -C(R 3 )=C(R)-N-, -C(R 4 )=NC(R)-, -C(R 4 )=NN-, -N=C(R 4 )-N-, -N=NN-, -C(R 4 )2-N=C-, -N(R 4 )-C(R)=C-, -N(R4)-N=C-, -ON=C- and -SN=C-, where R 3 is hydrogen, halo, C 1-6 Alkyl, C 1-6 Fluoroalkyl, C 1-6 Alkoxy, C 1-6 Selected from the group consisting of fluoroalkoxys and acetyls; each R 4 These are, independently, hydrogen and C 1-6 Alkyl, C 1-6 Fluoroalkyl, C 1-6 Alkoxy, C 1-4 Selected from the group consisting of fluoroalkoxys and acetyl.

[0016] In another embodiment, [ka] The following 6,5-heterobicyclic sites are selected. [ka]

[0017] In one embodiment, the present invention relates to a compound of formula I in which R1 is methyl and R2 is hydrogen; or a compound of formula I in which R1 is methyl and R2 is methyl; or a compound of formula I in which R1 and R2, together with the carbon atoms to which they are bonded, form a 3- to 6-membered carbon ring.

[0018] In another embodiment, the present invention relates to a compound of formula I in which Ar1 is a phenyl optionally substituted with 1 to 3 Rc groups; or a compound of formula I in which Ar2 is a phenyl optionally substituted with 1 to 3 Rc groups.

[0019] The present invention also includes prodrugs of formula I. The prodrug may be an ester, amide, or other suitable group. Preferred prodrugs include ester derivatives of formula Ia, where Rd represents an alkyl group having 1 to 10 carbon atoms, or an aralkyl, aryl, or heteroaryl group having 7 to 12 carbon atoms. [ka] Equation Ia

[0020] Another preferred prodrug of formula I is an ester derivative (formula Ib) containing one or more nitric oxide-releasing groups, where T is any suitable linker. [ka] Formula Ib

[0021] One embodiment of the EP4 antagonist nitric oxide-releasing prodrug is a compound of formula Ic or a pharmaceutically acceptable salt thereof. [ka] Formula Ic [In the formula, Z is O, S, or NR e And R e is hydrogen, alkyl, or aryl; V is independently selected from the group consisting of O and S, and each V is C 1-10 It is independently bonded to one of the carbon atoms of the alkyl group; n is 1, 2, 3, or 4.

[0022] Another embodiment of the EP4 antagonist nitric oxide-releasing prodrug is the compound of formula (Id). [ka] Formula Id [In the formula, Z is O, S, or NR e And R e is hydrogen, alkyl, or aryl; V is either O or S; each V is C 1-10 It is independently bonded to one of the alkyl carbon atoms; Rf is selected from the group consisting of hydrogen, halo, alkoxy, alkylthio, CN, CF3, alkyl, alkylsulfonyl, S(O)2NH2, and S(O)2NH-alkyl; W is [ka] [is]

[0023] Preferably, the EP4 antagonist nitric oxide-releasing prodrug compound is a compound of formula Ie, If, or Ig: [ka] Formula Ie [In the formula, n is an integer from 1 to 10]; [ka] If expression [In the formula, n and m are integers between 1 and 10]; [ka] Formula Ig [In the formula, n is an integer from 1 to 6; R g [is H, halogen, alkyl, or haloalkyl]

[0024] The compounds of the present invention are useful for the treatment or prevention of neoplasms in subjects requiring such treatment or prevention. Treatment includes partial or total inhibition of neoplasm growth, spread, or metastasis, as well as partial or total destruction of neoplasmic cells. The term “prevention” includes completely preventing the development of a clinically apparent neoplasm or preventing the development of a preclinically apparent neoplasm in an individual at risk. This definition is also intended to include preventing the initiation of malignant cells or halting or reversing the progression of premalignant cells to malignant cells. This includes prophylactic treatment of subjects at risk of developing neoplasms. The term “subject” for therapeutic purposes includes any human or mammalian subject having any one of the known neoplasms, preferably a human subject. For preventive methods, the subject is any human or animal subject, preferably a human subject at risk of developing a neoplasm. Subjects may be at risk due to exposure to carcinogens or due to a genetic predisposition to having neoplasms, for example.

[0025] The antitumor activity of various combinations of EP4 antagonists with: radiation; antibodies against cytotoxic t-1 lymphocyte antigen 4 (anti-CTLA4); antibodies against programmed death ligand 1 (anti-PDL1); antibodies against programmed cell death protein 1 (anti-PD1); and antimetabolites has been investigated. The results of this investigation show that combinations of EP4 antagonists with other therapies exhibit improved and / or synergistic antitumor activity compared to monotherapy alone, and in some embodiments, this can result in a memory immune response against the tumor, even if it is against a different cancer. Thus, one aspect of the present invention provides a method for treating a target cancer in need thereof, comprising administering an EP4 antagonist in combination with a therapy selected from the group consisting of radiotherapy, antibody therapy, and antimetabolite chemotherapy. In a further aspect of the present invention, the antibody therapy is selected from the group consisting of CTLA4 antibody therapy, PDL1 antibody therapy, and PD1 antibody therapy. In some embodiments, the cancer is metastatic cancer. Another aspect of the present invention provides a method for inducing a memory immune response in a subject requiring it, comprising administering a dose of an EP4 antagonist in combination with a treatment selected from the group consisting of radiotherapy, antibody therapy, and antimetabolitic chemotherapy. In yet another, more specific aspect of the present invention, the antibody therapy is selected from the group consisting of CTLA4 antibody therapy, PDL1 antibody therapy, and PD1 antibody therapy. The present invention also encompasses methods for treating cancer using an effective amount of the compounds of the present invention, or in combination with an effective amount of the compounds of the present invention and an effective amount of radiotherapy; an antibody against cytotoxic t-lymphocyte antigen 4 (anti-CTLA4); an antibody against programmed death ligand 1 (anti-PDL1); an antibody against programmed cell death protein 1 (anti-PD1); an indoleamine-2,3-dioxygenase (IDO) inhibitor; a tryptophan-2,3-dioxygenase (TDO) inhibitor; and an antimetabolitic agent.These antibodies may be selected from, but are not limited to, MDX-010 (ipilimumab, Bristol-Myers Squibb), CP-675,206 (tremelimumab, Pfizer), MPDL3280A (Roche), MDX-1106 (nivolumab, Bristol-Myers Squibb), labolizumab (Merck), and pembrolizumab (KEYTRUDA®, Merck). [Brief explanation of the drawing]

[0026] [Figure 1] Compound 1 (INV-1121) shows an inhibitory effect on tumor growth in mice.

[0027] [Figure 2] This study demonstrates the inhibitory effects of different treatments on tumor growth in mice, depending on whether or not compound 1 is present.

[0028] [Figure 3] The results of the in vivo inhibitory effect on the proliferation of B16F10 melanoma are shown.

[0029] [Figure 4] It shows an in vivo inhibitory effect on the proliferation of Lewis lung cancer.

[0030] [Figure 5] This figure shows the temperature change of the forelimbs of mice administered the test compound.

[0031] [Figure 6] This figure shows a reduction in swelling in the forelimbs of mice administered the test compound. Detailed description of the invention

[0032] definition The abbreviations used herein have their usual meanings in the fields of chemistry and biology.

[0033] An "EP4 antagonist" refers to a compound that inhibits or blocks intracellular signaling caused by the interaction between PGE2 and the EP4 receptor. Examples include, but are not limited to, compounds of formula (1) as taught herein, including INV-1120 and INV-1121, as described in PCT / US2009 / 0537482 and WO2010 / 019796.

[0034] The term "treating prostaglandin E2-mediated diseases or conditions" means treating or preventing any chronic disease or condition that is favorably treated or prevented by a selective EP4 antagonist. This term includes the relief of pain, fever, and inflammation in a variety of conditions, including rheumatic fever, influenza or other viral infection-associated symptoms, colds, back pain, neck pain, dysmenorrhea, headaches, migraines, toothaches, sprains and muscle strains, myositis, neuralgia, synovitis, arthritis including rheumatoid arthritis, degenerative joint diseases (osteoarthritis), gout, ankylosing spondylitis, bursitis, burns, injuries, and pain and inflammation after surgical procedures. Furthermore, such compounds can inhibit the neoplastic transformation of cells and the growth of metastatic tumors, and therefore may be used in the treatment and / or prevention of cancer.

[0035] The terms “treatment,” “to treat,” or “to treat” mean to mitigate, suppress, and / or reverse the progression of cancer in the subject in need. The term “to treat” includes indicators of success in treating or improving cancer, and may include objective or subjective parameters such as reduction; remission; reduction of symptoms or making the injury, condition, or symptoms more tolerable to the subject; and slowing or mitigating the rate of progression. Measurements of treatment or improvement may be based, for example, on the results of physical examination, pathological examination, and / or diagnostic examination, as is known in this field. Treatment may also mean reducing the occurrence or development of cancer, or recurrence (such as prolonging the remission period), compared to if no measures were taken.

[0036] The term "neoplasm" includes benign and cancerous tumors, growths, and polyps. Therefore, the compounds of the present invention are useful for treating or preventing benign tumors, growths, and polyps, including squamous cell papilloma, basal cell tumor, transitional cell papilloma, adenoma, gastrinoma, cholangiocarcinoma, hepatocellular adenoma, renal tubular adenoma, oncocytoma, glomus tumor, melanocytic nevus, fibroma, myxoma, lipoma, leiomyoma, rhabdomyoma, benign teratoma, hemangioma, osteoma, chondroma, and meningioma. The compounds of the present invention are also useful for treating or preventing cancerous tumors, growths, and polyps, including squamous cell carcinoma, basal cell carcinoma, transitional cell carcinoma, adenocarcinoma, malignant gastrinoma, cholangiocarcinoma, hepatocellular carcinoma, renal cell carcinoma, malignant melanoma, fibrosarcoma, myxosarcoma, liposarcoma, leiomyosarcoma, rhabdomyosarcoma, malignant teratoma, angiosarcoma, Kaposi's sarcoma, lymphangiosarcoma, osteosarcoma, chondrosarcoma, malignant meningioma, non-Hodgkin lymphoma, Hodgkin lymphoma, and leukemia. For the purposes of this specification, “neoplasm” includes brain cancer, bone cancer, epithelial cell neoplasms (epithelial carcinomas), basal cell carcinoma, adenocarcinoma, gastrointestinal cancers such as lip cancer, oral cancer, esophageal cancer, small intestine cancer and stomach cancer, colon cancer, rectal cancer, liver cancer, bladder cancer, pancreatic cancer, ovarian cancer, cervical cancer, lung cancer, breast cancer and skin cancers such as squamous cell and basal cell carcinoma, prostate cancer, renal cell carcinoma, and other known cancers affecting epithelial, mesenchymal or systemic blood cells. The compounds of the present invention are useful in treating or preventing any of the above-mentioned cancers. The compounds of the present invention are useful for treating or preventing benign and cancerous tumors, proliferations, and polyps of the following cell types: squamous epithelium, basal cells, transitional epithelium, glandular epithelium, G cells, bile duct epithelium, hepatocytes, tubular epithelium (tubules epithelium), melanocytes, fibrous connective tissue, cardiac skeleton, adipose tissue, smooth muscle, skeletal muscle, germ cells, blood vessels, lymphatic vessels, bone, cartilage, meninges, lymphoid cells, and hematopoietic cells. The compounds may be used to treat subjects with adenomatous polyps, including familial adenomatous polyposis (FAP). Furthermore, the compounds may be used to prevent polyp formation in patients at risk of FAP. Preferably, the compounds of the present invention are useful for treating or preventing the following cancers: colorectal, esophageal, gastric, mammary gland, head and neck, skin, lung, liver, gallbladder, pancreas, bladder, endometrium, cervix, prostate, thyroid, and brain.

[0037] As used herein, "cancer" may include cancer resulting from genetic mutations. Examples of such cancers include, but are not limited to, breast cancer, cancers that may be associated with Leaf-Raumeni syndrome, such as childhood sarcomas, leukemia, and brain cancer, cancers that may be associated with Lynch syndrome, such as colorectal cancer, bile duct cancer, brain cancer, endometrial cancer, kidney cancer, ovarian cancer, pancreatic cancer, small intestine cancer, gastric cancer, and ureteral cancer, lung cancer, melanoma, prostate cancer, retinoblastoma, thyroid cancer, and uterine cancer. Furthermore, cancer may be the result of acquired mutations, such as mutations caused by diet, environment, and / or lifestyle, or somatic mutations. Examples of such cancers include adrenal cancer, adrenocortical cancer, bladder cancer, brain tumors, primary brain tumors, gliomas, glioblastomas, breast cancer, cervical cancer, colorectal cancer (non-specific examples include colorectal cancers such as colonic adenocarcinoma and colonic adenoma), endometrial cancer, epidermal cancer, esophageal cancer, gallbladder cancer, genitourinary cancer, head and neck cancer, kidney cancer, liver cancer, lung cancer (non-specific examples include adenocarcinoma, small cell lung cancer, and non-small cell lung cancer), lymphoma (non-specific examples include B-cell lymphoma, T-cell lymphoma, Hodgkin lymphoma, and non-Hodgkin lymphoma), melanoma, malignant melanoma, malignant carcinoid cancer, malignant pancreatic insulinoma, myeloma, multiple myeloma, ovarian cancer, pancreatic cancer (such as exocrine pancreatic cancer), prostate cancer, renal cell carcinoma, skin cancer, and, for example, in addition to the others mentioned above. This includes, but is not limited to, squamous cell carcinoma, gastric cancer, testicular cancer, thyroid cancer, follicular thyroid carcinoma, Wilms' tumor, choriocarcinoma, mycosis, malignant hypercalcemia, cervical hyperplasia, leukemia, acute lymphoblastic leukemia, chronic lymphocytic leukemia, capillary lymphoma, Burket's lymphoma, acute myeloid leukemia, chronic myeloid leukemia, myelodysplastic syndrome, promyelocytic leukemia, chronic granulocytic leukemia, acute granulocytic leukemia, fibrosarcoma, hubdoma sarcoma, astrocytoma, neuroblastoma, rhabdomyosarcoma, schwannoma, Kaposi's sarcoma, polycythemia, essential thrombocythopathy, Hodgkin's disease, non-Hodgkin lymphoma, soft tissue sarcoma, osteogenic sarcoma, primary macroglobulinemia, seminoma, teratogenic carcinoma, osteosarcoma, budapest dysmorphic dermatoma, keratooctoma, and retinoblastoma.

[0038] Unless otherwise specified, “alkyl” means a linear (i.e., unbranched), branched, or cyclic hydrocarbon radical, or a combination thereof, either alone or as part of another substituent, which may be fully saturated or monounsaturated, and may include divalent and polyvalent radicals. The number of carbon atoms is specified, for example, C 1-10 or C 1-6 This refers to groups with 1 to 10 or 1 to 6 carbon atoms. Examples of saturated hydrocarbon radicals include, but are not limited to, groups such as methyl, ethyl, n-propyl, isopropyl, n-butyl, t-butyl, isobutyl, sec-butyl, cyclohexyl, (cyclohexyl)methyl, cyclopropylmethyl, and homologs and isomers such as n-pentyl, n-hexyl, n-heptyl, and n-octyl. Unsaturated alkyl groups are alkyl groups having one or more double or triple bonds. Examples of unsaturated alkyl groups include, but are not limited to, vinyl, 2-propenyl, clotyl, 2-isopentenyl, 2-(butadienyl), 2,4-pentadienyl, 3-(1,4-pentadienyl), ethynyl, 1- and 3-propynyl, 3-butynyl, and higher homologs and isomers. Alkyl groups limited to hydrocarbon groups are called "homoalkyls".

[0039] "Fluoroalkyl" refers to the alkyl group defined above, in which one or more hydrogen atoms are replaced by fluoro atoms.

[0040] "Alkylene" refers to a divalent radical derived from an alkyl group, either alone or as part of another substituent, such as -CH2CH2CH2CH2-, -CH2CH=CHCH2-, -CH2C≡CCH2-, -CH2CH2CH(CH2CH2CH3)CH2-, and is not limited to these. Typically, an alkyl (or alkylene) group has 1 to 24 carbon atoms, and groups having 10 or fewer carbon atoms are preferred in this invention. "Lower alkyl" or "lower alkylene" refers to a shorter-chain alkyl or alkylene group, generally having 8 or fewer carbon atoms.

[0041] "Alkynyl" means a carbon chain containing at least one carbon-carbon triple bond, which may be linear, branched, or a combination thereof. Examples of alkynyls include ethynyl, propargyl, 3-methyl-1-pentynyl, and 2-heptynyl.

[0042] "Cycloalkyl" refers to a monocyclic or bicyclic saturated carbon ring, each containing 3 to 10 carbon atoms. A "fused analog" of a cycloalkyl refers to a monocyclic ring fused to an aryl or heteroaryl group, with the bond site located on a non-aromatic moiety. Examples of cycloalkyls and their fused analogs include cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, tetrahydronaphthyl, decahydronaphthyl, and indanyl.

[0043] "Alkoxy" refers to a linear or branched alkoxy group having the specified number of carbon atoms. For example, C 1-6 Alkoxy includes methoxy, ethoxy, propoxy, and isopropoxy compounds.

[0044] Unless otherwise specified, “heteroalkyl” means, alone or in combination with another term, a stable linear or branched chain, or a cyclic hydrocarbon radical, or a combination thereof, comprising at least one carbon atom and at least one heteroatom selected from the group consisting of O, N, P, Si, and S, wherein the nitrogen, phosphorus, and sulfur atoms may optionally be oxidized, and the nitrogen heteroatom may optionally be quaternized. The O, N, P, S, and Si atoms of the heteroatom may be located inside any of the heteroalkyl groups, or at positions where the alkyl group is bonded to the remainder of the molecule. Examples include, but are not limited to, -CH2-CH2-O-CH3, -CH2-CH2-NH-CH3, -CH2-CH2-N(CH3)-CH3, -CH2-S-CH2-CH3, -CH2-CH3, -S(O)-CH3, -CH2-CH2-S(O)2-CH3, -CH=CH-O-CH3, -Si(CH3)3, -CH2-CH=N-OCH3, -CH=CH-N(CH3)-CH3, -O-CH3, -O-CH2-CH3, and -CN. Up to two or three heteroatoms may be consecutive, for example, -CH2-NH-OCH3 and -CH2-O-Si(CH3)3. Similarly, the term "heteroalkylene" refers to a divalent radical derived from a heteroalkyl group, either alone or as part of another substituent, such as, for example, -CH2-CH2-S-CH2-CH2- and -CH2-S-CH2-CH2-NH-CH2-. For heteroalkylene groups, the heteroatom may occupy either or both of the chain ends (e.g., alkylene oxo, alkylenedioxo, alkyleneamino, and alkylenediamino). Furthermore, for alkylene and heteroalkylene linking groups, the orientation of the linking group is not indicated by the direction in which the formula of the linking group is written. For example, the formula -C(O)OR'- represents both -C(O)OR'- and -R'OC(O)-. As described above, the heteroalkyl groups used herein include groups that are bonded to the rest of the molecule through a heteroatom, such as -C(O)R', -C(O)NR', ​​-NR'R'', -OR', -SR', and / or -SO2R'.When the term "heteroalkyl" is indicated, followed by a specific heteroalkyl group, such as -NR'R'', it should be understood that the terms heteroalkyl and -NR'R'' are not redundant or mutually exclusive. Rather, the specific heteroalkyl group is indicated for clarity. Therefore, the term "heteroalkyl" should not be interpreted herein as excluding a specific heteroalkyl group, such as -NR'R''.

[0045] "Cycloalkoxy" refers to a cycloalkyl group, as defined above, bonded to an oxygen atom, such as cyclopropyloxy.

[0046] "Fluoroalkyl" refers to the alkoxy defined above, in which one or more hydrogen atoms are replaced by fluoro atoms.

[0047] "Aryl" refers to a monocyclic or bicyclic aromatic ring containing only carbon atoms. An "aryl fused analog" refers to an aryl group that has fused to a monocyclic cycloalkyl or monocyclic heterocyclyl group, with the bond site located on the aromatic moiety. Examples of aryls and their fused analogs include phenyl, naphthyl, indanyl, indenyl, tetrahydronaphthyl, 2,3-dihydrobenzofuranyl, dihydrobenzopyranyl, and 1,4-benzodioxanyl.

[0048] A "heteroaryl" refers to a monocyclic or bicyclic aromatic ring containing at least one heteroatom selected from N, O, and S, with each ring containing 5 to 6 atoms. A "fused analog" of a heteroaryl refers to a heteroaryl group that has fused to a monocyclic cycloalkyl or monocyclic heterocyclyl group, with the bond site located on the aromatic moiety. Examples of heteroaryls include pyrrolyl, isoxazolyl, isothiazolyl, pyrazolyl, pyridyl, oxazolyl, oxadiazolyl, thiadiazolyl, thiazolyl, imidazolyl, triazolyl, tetrazolyl, furanyl, triazinyl, thienyl, pyrimidyl, pyridadinyl, pyrazinyl, benzoxazolyl, benzothiazolyl, benzimidazolyl, benzofuranyl, benzothiophenyl, flu(2,3-b)pyridyl, quinolyl, indolyl, and isoquinolyl.

[0049] The aryl group and heteroaryl group referred to in the definitions of Ar1 and Ar2 are either unsubstituted or substituted with at least one substituent selected from the group consisting of substituent α;The substituent α may be a halogen atom, an alkyl group having 1 to 4 carbon atoms, an alkoxy group having 1 to 4 carbon atoms, a haloalkyl group having 1 to 4 carbon atoms, a haloalkoxy group having 1 to 4 carbon atoms, a cyano group, an alkynyl group having 2 to 6 carbon atoms, an alkanoyl group having 1 to 5 carbon atoms, a cycloalkyl group having 3 to 7 ring atoms, a heteroaryl group, an aryl group, an aralkoxy group having 7 to 10 carbon atoms, an arylcarbonyl group, two adjacent x groups optionally together to form an alkylene or alkenylene chain having 3 or 4 carbon atoms, an aminocarbonyl group, an alkenyl group having 2 to 5 carbon atoms, an alkylthio group having 1 to 4 carbon atoms, an aminosulfinyl group, an aminosulfonyl group, a hydroxyl group, a hydroxyalkyl group having 1 to 4 carbon atoms, a nitro group, an amino group, a carboxyl group, an alkoxycarbonyl group having 2 to 5 carbon atoms, an alkoxyalkyl group having 1 to 4 carbon atoms, an alkylsulfonyl group having 1 to 4 carbon atoms, or an alkanoylamino group having 1 to 4 carbon atoms. The group is selected from the following: a group, an alkanoyl(alkyl)amino group having 1 to 6 carbon atoms, an alkanoylaminoalkyl group having 1 to 6 carbon atoms in both the alkanoyl and alkyl portions, an alkanoyl(alkyl)aminoalkyl group having 1 to 6 carbon atoms in both the alkanoyl and each alkyl portion, an alkylsulfonylamino group having 1 to 4 carbon atoms, a mono or dialkylaminocarbonyl group having 1 to 6 carbon atoms, a mono or dialkylaminosulfinyl group having 1 to 6 carbon atoms, an aminoalkyl group having 1 to 4 carbon atoms, a mono or dialkylamino group having 1 to 6 carbon atoms, a mono or dialkylaminoalkyl group having 1 to 6 carbon atoms in each alkyl portion, an aralkyl group having 7 to 10 carbon atoms, a heteroarylalkyl group having 1 to 4 carbon atoms in the alkyl portion, a heteroarylalkoxy group having 1 to 4 carbon atoms in the alkoxy portion, and an alkylsulfonylamino group having 1 to 4 carbon atoms.

[0050] A "heterocyclyl" is a monocyclic or bicyclic saturated ring containing at least one heteroatom selected from N, S, and O, where each ring has 3 to 10 atoms and the bonding site may be carbon or nitrogen. A "fused analog" of a heterocyclyl is a monocyclic heterocycle fused to an aryl or heteroaryl group, with the bonding site located on a non-aromatic moiety. Examples of "heterocyclyls" and their fused analogs include pyrrolidinyl, piperidinyl, piperazinyl, imidazolidinyl, 2,3-dihydrofloh(2,3-b)pyridyl, benzoxazinyl, tetrahydrohydroquinolinyl, tetrahydroisoquinolinyl, and dihydroindolyl. The term also includes non-aromatic, partially unsaturated monocyclic rings, such as 2- or 4-pyridones linked through nitrogen or N-substituted-(1H,3H)-pyrimidine-2,4-diones (N-substituted uracils).

[0051] Unless otherwise specified, "halo" or "halogen" refers to a fluorine, chlorine, bromine, or iodine atom, either alone or as part of another substituent. Furthermore, terms such as "haloalkyl" are intended to include monohaloalkyl and polyhaloalkyl. For example, the term "halo(C) 1-4 The term "alkyl" includes, but is not limited to, trifluoromethyl, 2,2,2-trifluoroethyl, 4-chlorobutyl, and 3-bromopropyl.

[0052] A “prodrug” refers to a drug that is converted to a parent drug in vivo. Prodrugs are often useful because, in some cases, they may be easier to administer than the parent drug. For example, they may be absorbed and utilized in the body by oral administration, whereas the parent drug is not. Prodrugs may also exhibit improved solubility compared to the parent drug in a pharmaceutical composition. A non-limiting example of a prodrug is the administration of a compound of formula I as an ester ("prodrug") to facilitate delivery across cell membranes where water solubility would otherwise hinder movement, and then, once inside the cell where water solubility is advantageous, it is metabolically hydrolyzed to a carboxylic acid, the active entity. Further examples of prodrugs, and again, not intended to limit the scope of the term, include short peptides that bind to an acidic group and are converted to an active site within the cell.

[0053] The cancers to be treated are selected from the group consisting of breast cancer, cervical cancer, colorectal cancer, endometrial cancer, glioblastoma, head and neck cancer, kidney cancer, liver cancer, lung cancer, medulloblastoma, ovarian cancer, pancreatic cancer, prostate cancer, skin cancer, and urinary tract cancer.

[0054] In a more specific aspect of the present invention, the provided method is a method for treating cancer and / or a method for generating a memory immune response. Such a method comprises administering a compound of formula (I) or a pharmaceutically acceptable salt thereof to a subject requiring such treatment: [ka] Equation I [In the formula, R 1 , R 2 These are hydrogen and C, respectively. 1-6 Alkyl, C 1-6 Cycloalkyl, C 1-6 Fluorocycloalkyl, and C 1-6 Independently selected from the group consisting of fluoroalkyls; or, R 1 and R 2 They, together with the carbon atoms to which they are bonded, complete a 3-6 membered carbon ring optionally substituted with Rc; or, R 1and R 2 These, together with the carbon atoms to which they are bonded, complete a 3- to 6-membered ring containing one or two heteroatoms such as S, O, or NRb, where Rb is hydrogen, C 1-6 Alkyl, C 1-6 Cycloalkyl, C 1-6 Fluorocycloalkyl, C 1-6 Fluoroalkyl, aryl, heteroaryl, C(O)C 1-6 Selected from the group consisting of alkyl, C(O)aryl, S(O)2alkyl, and S(O)2aryl; Y is either O or S; X is a bond, =CH-, CH2, O, or S; Ar 1 and Ar 2 These are C 3-6 Independently selected from the group consisting of cycloalkyl, aryl, heteroaryl, and heterocyclyl, or C 3-6 These are fused analogs of cycloalkyl, aryl, heteroaryl, and heterocyclyl compounds, where Ar 1 and Ar 2 It is optionally substituted with 1 to 3 Rc groups; R c This is Halo and R 1 Selected independently from, R a -CO2H, -CO2M, -C(O)NHS(O)2R aa ,or [ka] It represents; R aa C 1-6 Alkyl, C 1-6 Haloalkyl, C 1-6 Cycloalkyl, C 1-6 Selected from cyclohaloalkyl, aryl, and heteroaryl; M is an ester prodrug group; [ka] This is a 6,6-5,5-5,6- or 6,5-biring template.

[0055] In one embodiment, [ka] teeth [ka] And each of A, B, and C' is independently N, CH, or C(R c ) and; G is -C(O)-, -C(S)-, or -S(O)2-; L is -CH2-, S, O and NR c Selected from.

[0056] In another embodiment, [ka] teeth [ka] A, B, and C' are each independently selected from N, CH, or C(Rc); X, L, and G are independently selected from bond, -CH2-, O, S, or N(Rd); and Rd is H, aryl, or alkyl.

[0057] In another embodiment, [ka] teeth [ka] And R c This is as previously defined.

[0058] In another embodiment, [ka] teeth [ka] where each of A, B, and C’ is independently selected from N, CH, and C(R c ).

[0059] In another embodiment,

Chem.

Chem.

[0060] In another embodiment,

Chem.

Chem.

[0061] In one embodiment, the present invention is R 1 is methyl, and R 2 A compound of formula I in which is hydrogen; or, R 1 is methyl, and R 2 Compounds of formula I in which is methyl; or R 1 and R 2 However, this relates to compounds of formula I in which these compounds, together with the carbon atoms to which they are bonded, form a 3- to 6-membered carbon ring.

[0062] In another embodiment, the present invention relates to a compound of formula I in which Ar1 is a phenyl optionally substituted with 1 to 3 Rc groups; or a compound of formula I in which Ar2 is a phenyl optionally substituted with 1 to 3 Rc groups.

[0063] The present invention also includes prodrugs of formula I. The prodrug may be an ester, amide, or other suitable group. Preferred prodrugs include ester derivatives of formula Ia, where Rd represents an alkyl group having 1 to 10 carbon atoms, or an aralkyl, aryl, or heteroaryl group having 7 to 12 carbon atoms. [ka] Equation Ia

[0064] Another preferred prodrug of formula I is an ester derivative (formula Ib) containing one or more nitric oxide-releasing groups, where T is any suitable linker. [ka] Formula Ib

[0065] One embodiment of the EP4 antagonist nitric oxide-releasing prodrug is a compound of formula Ic or a pharmaceutically acceptable salt thereof. [ka] Formula Ic [In the formula, Z is O, S, or NRe, and Re is hydrogen, alkyl, or aryl. V is independently selected from the group consisting of O and S, and each V is C 1-10 It is independently bonded to one of the carbon atoms of the alkyl group; n is 1, 2, 3, or 4.

[0066] Another embodiment of the EP4 antagonist nitric oxide-releasing prodrug is the compound of formula Id. [ka] Formula Id [In the formula, Z is O, S, or NRe, and Re is hydrogen, alkyl, or aryl; V is either O or S; each V is C 1-10 It is independently bonded to one of the alkyl carbon atoms; Rf is selected from the group consisting of hydrogen, halo, alkoxy, alkylthio, CN, CF3, alkyl, alkylsulfonyl, S(O)2NH2, and S(O)2NH-alkyl; W is [ka] [is]

[0067] Preferably, the EP4 antagonist nitric oxide-releasing prodrug compound is a compound of formula Ie, If, or Ig: [ka] Formula Ie [In the formula, n is an integer from 1 to 10]; [ka] If expression [In the formula, n and m are integers between 1 and 10]; [ka] Formula Ig [In the formula, n is an integer from 1 to 6; R g [is H, halogen, alkyl, or haloalkyl]

[0068] In some embodiments, the compound of formula (I) is [ka] or a pharmaceutically acceptable salt thereof.

[0069] Naturally, a particular compound of formula I (or a salt, prodrug, or conjugate) may exist and be isolated in isomers including tautomers, cis or trans isomers, and optically active compounds, racemates, or diastereoisomers. The present invention encompasses compounds of formula I existing as any one or a mixture thereof of tautomers; or as a mixture of diastereomers and as individual diastereomers; and the present invention also encompasses compounds of formula I existing as a mixture of enantiomers and as individual enantiomers, any of which mixtures or forms have antagonistic activity against the EP4 receptor, and methods for producing or isolating a particular form, and methods for determining antagonistic activity against the EP4 receptor by standard tests, including the tests described below, should be understood to be well known in the art.

[0070] Furthermore, the compound of formula I (or its salts, prodrugs, or conjugates) may exhibit polymorphism or form solvates with water or organic solvents. The present invention encompasses any such polymorphism, any solvate, or any mixture thereof.

[0071] As described above, the present invention comprises pharmaceutically acceptable salts of compounds of formula I. The basic compounds of the present invention have one or more functional groups that are sufficiently basic to react with any of a number of inorganic and organic acids to produce physiologically acceptable counterions and form pharmaceutically acceptable salts. The present invention also encompasses other acceptable forms of prodrugs of formula I that are formed in the usual manner with functional groups of compounds such as amino, hydroxy, or carboxyl groups.

[0072] The present invention also relates to a method of antagonizing the EP4 receptor by administering an effective amount of the compound of formula I.

[0073] The present invention also includes a method for treating a human or animal subject suffering from a condition mediated by the action of PGE2 at the EP4 receptor, the method comprising administering an effective amount of the compound of formula I to the subject.

[0074] The present invention also encompasses the use of compounds of formula I for the manufacture of agents for the treatment of diseases or conditions mediated by the action of PGE2 at the EP4 receptor.

[0075] Optical isomers - diastereomers - geometric isomers - tautomers

[0076] Compounds of formula I contain one or more chiral centers and therefore can exist as racemic compounds and racemic mixtures, single enantiomers, diastereomer mixtures, and individual diastereomers. The present invention is intended to encompass all isomers of compounds of formulas I to Ig.

[0077] Some of the compounds described herein contain olefinic double bonds and, unless otherwise specified, are intended to include both E and Z geometric isomers.

[0078] The compounds described herein may have hydrogen atoms at different bonding sites, and these are called tautomers. For example, ketones and their enol forms are known as keto-enol tautomers. Individual tautomers and mixtures thereof are encompassed by compounds of formulas I to Ig.

[0079] The compound of formula I may be separated into diastereoisomer pairs of enantiomers by fractional recrystallization from a suitable solvent such as MeOH or  or a mixture thereof. The enantiomers thus obtained may be separated into individual stereoisomers by conventional methods such as the use of an optically active amine as a resolving agent or by a chiral HPLC column.

[0080] Alternatively, any enantiomer of the compound of formula I can be obtained by stereospecific synthesis using optically pure starting materials or reagents with known configurations. salt

[0081] The term "pharmaceutically acceptable salt" refers to a salt produced from a pharmaceutically acceptable, non-toxic base or acid, including inorganic or organic bases and inorganic or organic acids. Salts derived from inorganic bases include aluminum, ammonium, calcium, copper, ferric, ferrous, lithium, magnesium, manganese salts, manganese, potassium, sodium, and zinc. Particularly preferred are ammonium, calcium, magnesium, potassium, and sodium salts. Salts derived from pharmaceutically acceptable organic non-toxic bases include primary, secondary, and tertiary amines, substituted amines including naturally occurring substituted amines, cyclic amines, and basic ion exchange resins, such as salts of arginine, betaine, caffeine, choline, N,N'-dibenzylethylenediamine, diethylamine, 2-diethylaminoethanol, 2-dimethylaminoethanol, ethanolamine, ethylenediamine, N-ethyl-morpholine, N-ethylpiperidine, glucamine, glucosamine, histidine, hydravamin, isopropylamine, lysine, methylglucamine, morpholine, piperazine, piperidine, polyamine resins, procaine, purine, theobromine, triethylamine, trimethylamine, tripropylamine, and tromethamine.

[0082] If the compound of the present invention is basic, the salt may be prepared from pharmaceutically acceptable non-toxic acids, including inorganic and organic acids. These acids include acetic acid, benzenesulfonic acid, benzoic acid, camphorsulfonic acid, citric acid, ethanesulfonic acid, fumaric acid, gluconic acid, glutamic acid, hydrobromic acid, hydrochloric acid, isethionic acid, lactic acid, maleic acid, malic acid, mandelic acid, methanesulfonic acid, mucinic acid, nitric acid, pamoic acid, pantothenic acid, phosphoric acid, succinic acid, sulfuric acid, tartaric acid, and p-toluenesulfonic acid. Particularly preferred are citric acid, hydrobromic acid, hydrochloric acid, maleic acid, phosphoric acid, sulfuric acid, and tartaric acid.

[0083] References to the compound of formula I used herein should be understood to include pharmaceutically acceptable salts as well.

[0084] The terms “crystalline polymorphism,” “polymorphism,” or “crystalline form” refer to crystalline structures in which a compound (or its salt or solvate) can crystallize in different crystalline packing arrangements, all having the same elemental composition. Different crystalline forms typically differ in X-ray diffraction patterns, infrared spectra, melting points, density hardness, crystal shape, optical and electrical properties, stability, and solubility. One crystalline form may become dominant due to factors such as the recrystallization solvent, crystallization rate, and storage temperature. Crystallographic polymorphisms of a compound can be prepared by crystallization under different conditions. It is understood that the compounds of this disclosure may exist in crystalline form, mixtures of crystalline forms, or in the form of their anhydrous or hydrated forms.

[0085] Compounds of formula I include, for example, aromatase inhibitors, anti-estrogens, anti-androgens (especially in the case of prostate cancer) or gonadrelin agonists, topoisomerase I inhibitors or topoisomerase II inhibitors, microtubule activators, alkylating agents, anti-cancer antimetabolites or platinum compounds, compounds that target / reduce protein or lipid kinase activity or protein or lipid phosphatase activity, further anti-angiogenic compounds or compounds that induce cell differentiation processes, bradykinin I receptors or angiotensin II antagonists, cyclooxygenase inhibitors, bisphosphonates, rapamycin derivatives such as everolimus, heparanase inhibitors (which prevent heparan sulfate degradation), e.g., PI 88. These can also be used in combination with chemotherapeutic agents such as biological response modifiers, preferably lymphokines or interferons, e.g., interferon if; ubiquitination inhibitors or inhibitors that block the anti-apoptotic pathway; inhibitors of Ras oncogenic isoforms, e.g., H-Ras, K-Ras or N-Ras; farnesyltransferase inhibitors, e.g., L-744, 832 or DK8G557; telomerase inhibitors, e.g., telomestatin; protease inhibitors; matrix metalloproteinase inhibitors; methionine aminopeptidase inhibitors, e.g., bengamide or its derivatives; proteasome inhibitors, e.g., PS341; or histone deacetylase inhibitors (e.g., vorinostat, MG0103 or MS275). PTP-1B inhibitors

[0086] Unless otherwise specified, references to treatment should be understood to include both treatment of established symptoms and preventive treatment.

[0087] The term “therapeutic dose” is intended to mean the amount of a drug or pharmaceutical that would induce a biological or medical response in a tissue, system, animal, or human, as sought by researchers, veterinarians, physicians, or other clinicians. The term also encompasses the amount of a pharmaceutical that would prevent or reduce the risk of the occurrence of a biological or medical event in a tissue, system, animal, or human, as sought by researchers, veterinarians, physicians, or other clinicians for preventative purposes. EP4 antagonists may be administered at dose levels up to normal dose levels. The appropriate dose level will depend on the effect of the selected EP4 antagonist, but typically, an appropriate level would be approximately 0.001–100 mg / kg / day, preferably 0.005–30 mg / kg / day, and particularly 0.05–10 mg / kg / day. The compound may be administered in a once, twice, or three times daily dosing regimen. formulation

[0088] The present invention also provides pharmaceutical compositions for use in the above-described therapeutic methods. The pharmaceutical compositions of the present invention contain, as an active ingredient, a compound of formula I or a pharmaceutically acceptable salt thereof in an amount sufficient to antagonize the EP4 receptor, and may also contain a pharmaceutically acceptable carrier and optionally other therapeutic ingredients. The term "pharmaceutically acceptable salt" refers to a salt produced from a pharmaceutically acceptable non-toxic base, including inorganic and organic bases. Salts derived from inorganic bases include aluminum, ammonium, calcium, copper, ferric, ferrous, lithium, magnesium, manganese salts, manganese, potassium, sodium, and zinc. Particularly preferred are ammonium, calcium, magnesium, potassium, and sodium salts. Salts derived from pharmaceutically acceptable organic non-toxic bases include primary, secondary, and tertiary amines, substituted amines including naturally occurring substituted amines, cyclic amines, and basic ion exchange resins, such as salts of arginine, betaine, caffeine, choline, N,N-dibenzylethylenediamine, diethylamine, 2-diethylaminoethanol, 2-dimethylaminoethanol, ethanolamine, ethylenediamine, N-ethylmorpholine, N-ethylpiperidine, glucamine, glucosamine, histidine, hydravamin, isopropylamine, lysine, methylglucamine, morpholine, piperazine, piperidine, polyamine resins, procaine, purine, theobromine, triethylamine, trimethylamine, tripropylamine, and tromethamine.

[0089] In the discussion of therapeutic methods herein, references to the compound of formula I will be understood to include pharmaceutically acceptable salts as well.

[0090] A pharmaceutical composition containing the active ingredient (i.e., the compound of formula I) may be in a suitable form for oral use, such as a tablet, lozenge, aqueous or oily suspension, dispersible powder or granule, emulsion, hard or soft capsule, syrup, or elixir. A composition intended for oral use may be manufactured according to any method well known in the art for the manufacture of pharmaceutical compositions, and the composition may contain one or more agents selected from the group consisting of sweeteners, flavoring agents, coloring agents, and preservatives in order to provide a pharmaceutically refined and palatable formulation. A tablet contains the active ingredient mixed with a non-toxic, pharmaceutically acceptable excipient suitable for the manufacture of a tablet. These excipients may include inert diluents, such as calcium carbonate, sodium carbonate, lactose, calcium phosphate, or sodium phosphate; granulators and disintegrants, such as corn starch or alginic acid; binders, such as starch, gelatin, or acacia; and lubricants, such as magnesium stearate, stearic acid, or talc. The tablets may be uncoated or coated by known techniques that delay disintegration and absorption in the gastrointestinal tract, thereby providing a long-lasting effect. For example, time-delaying substances such as glyceryl monostearate or glyceryl distearate may be used. They may be coated by techniques described in U.S. Patents 4,256,108; 4,166,452; and 4,265,874 (the contents of which are incorporated herein by reference) to form osmotic therapeutic tablets for controlled release. Combination therapy

[0091] The compound of formula I may be used in combination with other drugs useful for treating / preventing / suppressing cancer or conditions in which the compound of formula I is useful. Such other drugs may be administered simultaneously with or sequentially to the compound of formula I in the routes and amounts commonly used for them. When the compound of formula I is used simultaneously with one or more other drugs, a pharmaceutical composition containing such other drugs in addition to the compound of formula I is preferred. Therefore, the pharmaceutical compositions of the present invention include those containing one or more other active ingredients in addition to the compound of formula I. When the compound of the present invention is used in combination with other therapeutic agents, the compound may be administered sequentially or simultaneously by any convenient route.

[0092] Therefore, in a further embodiment, the present invention provides combinations comprising a compound of formula I or a pharmaceutically acceptable derivative or salt thereof, together with further therapeutic agents or drugs.

[0093] The combinations mentioned above may be conveniently available for use in the form of a pharmaceutical formulation, and a pharmaceutical formulation containing the above-defined combination with a pharmaceutically acceptable carrier or excipient constitutes a further aspect of the present invention. The individual components of the combination may be administered sequentially or simultaneously in separate or combined pharmaceutical formulations.

[0094] In some embodiments of the present invention, a method is provided for inhibiting tumor growth or treating cancer, wherein the EP4 antagonist is administered in combination with further therapies or agents useful for inhibiting tumor growth and / or treating cancer, i.e., combination therapies. As used herein, “combined” administration of two or more agents / therapies (including EP4 antagonists, radiotherapy, antibody therapy, anti-metabolite chemotherapy, or any combination thereof) means that they are administered so closely together in time that the administration or presence of one alters the biological effect of the other. Therapies may be administered simultaneously (together) or sequentially. Concurrent administration may be achieved, for example, by mixing two or more agents before administration, or by administering the agents / therapies at the same time but at different anatomical sites or using different routes of administration, or by administering them over a sufficient period of time so that the observed results are indistinguishable from the results achieved when the agents / therapies are administered at the same time. For example, the co-administration of one or more drugs with radiation may be carried out by administering the drugs at the same time as the application of radiation, or by administering them at a time close enough that the observed results are indistinguishable from the results achieved when the drugs and radiation were administered at the same time. Sequential administration may be carried out by administering the drugs / treatments at different time points, for example, by administering the drugs at some point before or after the administration of one or more other drugs / treatments, so that the combined administration of drugs / treatments enhances the therapeutic effect of cancer treatment. In some embodiments, the EP4 antagonist is administered at some point prior to the first dose of radiotherapy, antibody therapy and / or anti-metabolite chemotherapy. Alternatively, radiotherapy, antibody therapy and / or anti-metabolite chemotherapy may be administered at some point before the administration of the EP4 antagonist, and optionally again at some point after the administration of the EP4 antagonist. In some embodiments, when an EP4 antagonist is administered in combination with radiotherapy, antibody therapy, and / or anti-metabolite chemotherapy, the radiotherapy, antibody therapy, and / or anti-metabolite chemotherapy are enhanced, for example, so that lower doses of radiotherapy, antibody therapy, and / or anti-metabolite chemotherapy are effective in treatment.In some embodiments of the present invention, cancer treatment may include an abscopar effect and / or provide a memory immune response. The “abscopar” effect is a phenomenon in the treatment of metastatic cancer in which local treatment of a specific tumor or cancer, for example with radiotherapy, causes non-local disease, tumors or cancers resulting from metastases away from the locally treated site to shrink and disappear, resulting in the disappearance of the disease, tumor or cancer throughout the subject or patient. The abscopar effect is different from effects that may occur in tissues adjacent to the local treatment, such as bystander effects that may occur with radiotherapy. A “memory immune response” occurs when the cancer treatment provided facilitates the adaptation of the subject's or patient's immune system and immune response in its ability to delay, reduce, or prevent the recurrence or rectal recurrence of the disease, tumor or cancer being treated in the subject or patient, i.e., to prolong the time of remission. In some embodiments, the memory immune response may delay, reduce, or prevent the development of tumors or cancers different from the cancer being treated, for example, via epitope diffusion. The EP4 antagonists, antibodies, and / or anti-metabolites used herein can be formulated for administration in pharmaceutical carriers according to known techniques. See, for example, Remington, The Science and Practice of Pharmacy (9th Ed. 1995). In the manufacture of pharmaceutical formulations according to the present invention, the active compound (including its physiologically acceptable salts) is typically mixed with a particularly acceptable carrier. The carrier must be acceptable in the sense that it is compatible with other components in the formulation and must not be toxic to the patient. The carrier may be solid or liquid or both, and preferably the compound is formulated as a unit-dose formulation, for example, a tablet, which may contain the active compound in an amount ranging from 0.01 or 0.5% by weight to 95% or 99% by weight. The formulations of the present invention may incorporate one or more active compounds, and the formulations may be prepared by any pharmaceutically well-known technique, which includes mixing components, the components optionally including one or more adjuncts and / or excipients.In some embodiments, any of the compositions, carriers, accessories, excipients, and / or formulations of the present invention include components from natural or non-natural sources. In other embodiments, any component of the compositions, carriers, accessories, excipients, and / or formulations of the present invention may be provided in sterile form. Non-limiting examples of sterile carriers include endotoxin-free water or pyrogen-free water. EP4 antagonists, antibodies, and / or anti-metabolites may be administered to a subject by any preferred route, including orally (including oral administration, and even via an oral gastrointestinal feeding tube), intraperitoneally, parenterally, by inhalation spray, topically (i.e., both skin and mucous membrane surfaces, including the airway surface), percutaneously, rectally, transnasally (including a nasogastric feeding tube), swallowing, cheek, transvaginally, or via an implanted reservoir. As used herein, the term “parenterally” includes subcutaneous, intramuscular, intradermal, intravenous, intra-articular, intrathecal, intrathoracic, intrahepatic, intranasal, and intracranial injection or infusion techniques. In certain embodiments, the EP4 antagonist, antibody, and / or anti-metabolite are administered orally. In other specific embodiments, the EP4 antagonist, antibody, and / or anti-metabolite are administered intravenously. In some embodiments, the amount of the EP4 antagonist, antibody, and / or anti-metabolite, which may be combined with excipient materials to produce a single dosage form composition, will vary depending on the treated host and the specific route of administration. In some embodiments, the EP4 antagonist, antibody, and / or anti-metabolite are provided as part of a sterile composition / formulation comprising the EP4 antagonist, antibody, and / or anti-metabolite, as well as an acceptable carrier and / or excipient. In some embodiments, the EP4 antagonist is administered to the subject in an effective dose. The effective dose is generally 0.01 mg / kg to 500 mg / kg body weight per day. In some embodiments, pharmaceutically acceptable compositions may be formulated so that patients receiving these compositions can be administered a dose of the compound per body weight of 0.01 mg / kg to 200 mg / kg per day, or 0.01 mg / kg to 100 mg / kg (for example, a dose of 0.75 mg to 7.5 g or 15 g based on a 75 kg person).In certain embodiments, the compositions of the present invention are formulated to provide doses ranging from 0.01 mg / kg to 70 mg / kg (for example, doses ranging from 0.75 mg to 5.25 g based on a 75 kg human). In some embodiments, the effective dose of the EP4 antagonist is about 0.5 to about 250 mg / kg, about 1 to about 250 mg / kg, about 2 to about 200 mg / kg, about 3 to about 120 mg / kg, about 5 to about 250 mg / kg, about 10 to about 200 mg / kg, or about 20 to about 120 mg / kg. In some embodiments, effective doses include approximately 0.5 mg / kg, 1 mg / kg, 2 mg / kg, 3 mg / kg, 4 mg / kg, 5 mg / kg, 6 mg / kg, 8 mg / kg, 10 mg / kg, 20 mg / kg, 25 mg / kg, 40 mg / kg, 50 mg / kg, 60 mg / kg, 75 mg / kg, 100 mg / kg, 120 mg / kg, 150 mg / kg, 175 mg / kg, 200 mg / kg, 225 mg / kg, 250 mg / kg, and 300 mg / kg. The dosage form may be, for example, tablets or capsules, and the effective dose may be provided in one or more tablets, capsules, etc., once a day or throughout the day, for example, at intervals of 4 hours, 8 hours, or 12 hours. Tablets or capsules may contain, for example, 10, 25, 50, 75, 100, 150, 200, 250, 300, 350, 400, 450, 500, 600, 700, 800, 900, 1000, 1100, or 1250 mg of the compound. For example, in some embodiments, administration of an EP4 antagonist to a human subject may include a daily dose of an EP4 antagonist in the range of 100–1250, 150–1000, 200–800, or 250–750 mg, which may be administered as a whole once daily or as a portion of doses administered at intervals throughout the day. Liquid formulations may also be prepared to be easily and conveniently dispensed in any dose.Antibodies, such as anti-CTLA4, anti-PDL1, or anti-PD1, are generally mixed with a non-toxic and pharmaceutically acceptable carrier substance (e.g., ordinary saline or phosphate-buffered saline) prior to administration and can be administered using any medically appropriate procedure, including but not limited to intravenous or intra-arterial administration and injection into cerebrospinal fluid. In certain cases, intraperitoneal, intracavitary, intrathecal administration, or direct administration to the tumor or the artery supplying the tumor may be advantageous. In some embodiments, the effective dose of antibody is about 5 to about 250 mg / kg, about 10 to about 200 mg / kg, or about 20 to about 120 mg / kg. In some embodiments, effective doses include 5 mg / kg, 10 mg / kg, 20 mg / kg, 25 mg / kg, 40 mg / kg, 50 mg / kg, 60 mg / kg, 75 mg / kg, 100 mg / kg, 120 mg / kg, 150 mg / kg, 175 mg / kg, 200 mg / kg, 225 mg / kg, 250 mg / kg, and 300 mg / kg. The dosage form may be, for example, tablets or capsules, and the effective dose may be provided in one or more tablets, capsules, etc., once a day or throughout the day, for example, at intervals of 4 hours, 8 hours, or 12 hours. Tablets or capsules may contain, for example, 10, 25, 50, 75, 100, 150, 200, 250, 300, 350, 400, 450, 500, 600, 700, 800, 900, or 1000 mg of antibody. Liquid formulations may also be prepared to be easily and conveniently dispensed in any dose. In some embodiments, the antibody is administered to the subject in an effective dose. An effective dose is generally 0.01 mg / kg to 500 mg / kg body weight per day. In some embodiments, pharmaceutically acceptable compositions may be formulated so that patients receiving these compositions can be administered a dose of the compound per body weight of 0.01 mg / kg to 200 mg / kg per day, or 0.01 mg / kg to 100 mg / kg (for example, a dose of 0.75 mg to 7.5 g or 15 g based on a 75 kg person). In certain embodiments, the compositions of the present invention are pre-formulated to provide doses ranging from 0.01 mg / kg to 70 mg / kg (for example, doses ranging from 0.75 mg to 5.25 g based on a 75 kg human).The effective dose of the antibody may be, for example, 0.05 mg / kg, 0.1 mg / kg, 1 mg / kg, 2 mg / kg, 3 mg / kg, 4 mg / kg, 5 mg / kg, 6 mg / kg, 7 mg / kg, or 8 mg / kg per dose (for example, a dose from 3.75 mg to 600 mg based on a 75 kg human). The antibody dose of the present invention may be administered once, twice, three times, four times, five times or more per week, once per week, once every two weeks, or even once every three weeks during the treatment period. The timing of administration may be daily, every two days, every three days, every four days, every five days, once per week, once every two weeks, or once every three weeks. The antibody-containing formulation may be prepared to allow for easy and convenient dispensing of any dose.

[0095] The term "concomitantly administered" means administering one or more therapeutic agents substantially at the same time (concurrently). This term encompasses not only the administration of two drugs in a single dosage form, but also the administration of each active agent in its own separate pharmaceutical dosage formulation. When separate dosage formulations are used, the drugs can be administered essentially at the same time, i.e., concurrently.

[0096] The term "consecutive administration" means administering drugs at separate, staggered times. Therefore, for example, drugs may be administered consecutively so that the beneficial pharmacokinetic effects of aspirin and the compound of the present invention are realized by the patient at substantially the same time. For example, if the compound of the present invention and aspirin are both administered on a once-daily basis, the separation interval between consecutive administrations of the two drugs may be up to 12 hours.

[0097] “Effective dose” or “therapeutic effective dose” means a dose that is effective in treating cancer as determined by clinical examination and evaluation, patient observation and / or similar. “Effective dose” may further specify a dose that causes a detectable change in biological or chemical activity. A detectable change can be detected and / or further quantified by those skilled in the art with respect to the relevant mechanisms or processes. Furthermore, “effective dose” may specify a dose that maintains a desired physiological state, i.e., a dose that reduces or prevents a significant decline and / or promotes an improvement in the state. “Effective dose” may further refer to a therapeutically effective dose. As used herein, “subject” means a mammalian subject, in particular a human subject, including male or female subjects, neonatal, infant, boy, adolescent, adult or elderly subjects, and further encompassing various races and ethnicities.

[0098] As used herein, the terms “antibody” and “antibody” encompass all types of immunoglobulins, including IgG, IgM, IgA, IgD, and IgE, or fragments thereof, that may be suitable for the medical applications disclosed herein. Antibodies may be monoclonal or polyclonal and may originate from any species, including, for example, mouse, rat, rabbit, horse, or human. Antibody fragments that hold specific binding to proteins or epitopes conjugated by the antibodies used in the present invention, such as CTLA4, PDL1, or PD1, are included in the scope of the term “antibody.” Such fragments may be produced by known techniques. Antibodies of the present invention may be chimeric or humanized, particularly when used for therapeutic purposes. Antibodies of the present invention may be obtained or prepared using methods known in the art. “Antibody therapy” refers to the medical use of antibodies conjugated to target cells or proteins to treat cancer and / or to stimulate a target immune response that results in the recognition, attack, and / or destruction of target cancer cells, and, in some embodiments of the present invention, to activate or stimulate a target memory immune response that results in the subsequent recognition, attack, and / or destruction of target cancer cells. "CTLA4 antibody therapy" refers to the modification of the target immune response using antibodies that target cytotoxic T-lymphocyte antigen 4 (anti-CTLA4). In some embodiments, CTLA4 antibodies inhibit or block the action of CTLA4 signaling, which results in the inhibition of T-cell activation in the attack and destruction of cancer cells. Suitable antibodies for this use include, but are not limited to, antibodies that are CTLA4 antagonists, or CTLA4 antibodies such as those described in U.S. Patents 8,685,394 and 8,709,417. Some embodiments of the antibodies include MDX-0I0 (ipilimumab, Bristol-Myers Squibb) and CP-675,206 (tremelimumab, Pfizer). In certain embodiments, the antibody is ipilimumab. "PDL1 antibody therapy" refers to the modification of the target immune response using antibodies that target programmed death ligand 1 (anti-PDL1).In some embodiments, a PDL1 antibody inhibits or blocks the interaction between PDL1 and programmed cell death protein 1 (PD1), and blocking the interaction between PDL1 and PD1 inhibits the negative modulation of T cell activation by PD1 for attacking and destroying cancer cells. Antibodies suitable for this use include, but are not limited to, those described in U.S. Patents 8,217,149, 8,383,796, 8,552,154 and 8,617,546. In certain embodiments, the antibody is MPDL3280A (Roche). "PD1 antibody therapy" refers to the use of an antibody directed against programmed cell death protein 1 PD1 (anti-PD1) to modulate the immune response of a target. In some embodiments, a PD1 antibody inhibits or blocks the interaction between PD1 and PDL1, and inhibiting or blocking the interaction between PDL1 and PD1 inhibits the negative modulation of T cell activation by PD1 for attacking and destroying cancer cells. Suitable antibodies for this use include, but are not limited to, those described in U.S. Patents No. 7,029,674, 7,488,802, 7,521,051, 8,008,449, 8,354,509, 8,617,546 and 8,709,417. Specific embodiments of the antibodies include nibornab (Bristol-Myers Squibb), labrolizurunab (Merck), and perumbrolizurunab (KEYTRUDA, Merck).

[0099] "Anti-metabolite chemotherapy" refers to the use of anti-metabolite chemotherapy in the treatment of a target. "Anti-metabolites" refer to a group of molecules that inhibit DNA and RNA synthesis. Examples of anti-metabolites include, but are not limited to, anti-folates, fluoropyrimidines, deoxynucleoside analogs, and thiopurines. Anti-folates include methotrexate and pemetrexed. Fluoropyrimidines include fluorouracil and capecitabine. Deoxynucleoside analogs include cytarabine, gemcitabine, decitabine, 5'-azacitidine (VIDAZA), fludarabine, nerarabine, cladribine, clofarabine, and pentostatin. Thiopurines include thioguanine and mercaptopurine. In one embodiment, the anti-metabolite is gemcitabine. In another embodiment, the anti-metabolite is capecitabine. The following examples are given to allow for a more complete understanding of the invention described herein. These examples are for illustrative purposes only and should not be construed as limiting the invention in any way. (Examples) Example 1. In vivo pharmacodynamic study on the proliferation of CT26-grafted colorectal cancer tumors in mice. 1.1 Cell culture

[0100] CT26 tumor cell lines were maintained in vitro as monolayer cultures in RPMI-1640 medium supplemented with 10% heat-inactivated fetal calf serum at 37°C under an atmosphere of 5% CO2 in air. Tumor cells were routinely subcultured twice a week by trypsin-EDTA treatment, not exceeding 4-5 subculturing cycles. Cells that had grown during the exponential growth phase were harvested and counted for tumor inoculation. 1.2 Method of inoculating tumors

[0101] Each mouse was given 0.1 mL of serum-free RPMI 1640 medium containing 95% viable tumor cells (3 × 10⁶). 5 A single-cell suspension of ) was subcutaneously inoculated into the right lower flank of each mouse. Each mouse had an average tumor size of approximately 100 mm. 3The test compound of the present invention was administered when the mouse reached a certain stage. Each group consisted of six mice. The mice were randomly assigned to different treatment groups as shown in the table under "Groups and Treatments". The mice were lightly anesthetized before transplantation. Care was taken to ensure subcutaneous delivery by lifting the skin fold with sterile forceps and injecting the cells. Tumors that had grown entirely or partially intradermally (ID) or intramuscularly (IM) were not used. 1.3 In vivo antitumor pharmacology

[0102] CT26 cells were maintained at 37°C in RPMI1640 medium supplemented with 10% FBS at 37°C under a 5% CO2 atmosphere. Cell detachment was obtained using standard trypsinization, cell count quantification, and viability information using an NC-200 automated cell counter. Prior to oral administration (po) to animals, compound 1 (INV-1121) was completely suspended in 0.5% methylcellulose (MC) by sonication at 4°C for 15 minutes. 1 x 10⁶ BALB / c mice were then administered. 5 Individual 4T1 live cells were subcutaneously injected (sc) into the mice. The mice grew approximately 36 mm in 5 days. 3 The mice developed tumors. CT26 tumor-bearing mice were randomized and mapped to 5 groups of 10 mice each: Group A received a vehicle (0.5% MC); Group B received 0.1 mg / kg of compound 1; Group C received 1 mg / kg of compound 1; Group D received 25 mg / kg of compound 1; and Group E received 150 mg / kg of compound 1. All treatments involved administering compound 1 PO daily for 21 consecutive days. Tumor volume and body weight were measured twice a week. The study was concluded 27 days after tumor cell injection. Tumor volume was expressed as a mean value: t SEM. Differences in tumor volume between treated mouse groups on day 27 were analyzed using one-way ANOVA followed by Tukey's test. Values ​​of P<0.05 were considered significant. 1.4 Measurement Parameters

[0103] For routine monitoring, all test animals were monitored not only for tumor growth but also for behavioral changes such as mobility, food and water consumption (by cage side checks only), body weight (BW), eye / hair matting, and other abnormalities. All deaths and / or abnormal clinical signs were recorded. 1.4.1 Weight

[0104] The weight of all animals was measured twice a week throughout the study. The measurement dates were specified in the study design. Weight change, expressed as a percentage of body weight, was calculated using the following formula: BW change (%) = ((BW day X - BW day 0) / BW day 0) × 100 1.4.2 Tumor Measurement

[0105] Tumor size is measured twice a week using calipers, and tumor volume (mm3) is estimated using the following formula: TV = a × b² / 2, [wherein "a" and "b" are the major and minor diameters of the tumor, respectively]. TV was used to calculate the tumor growth inhibition (TGI, an indicator of antitumor effect) value using the following formula: TGI = (1 - T / C) × 100%, [wherein "T" and "C" are the mean relative tumor volume (% tumor growth) in the treatment group and control group, respectively]. The mean tumor volume was 2000 mm. 3 The experiment was terminated when the weight exceeded a certain threshold or when severe weight loss occurred. 1.5 In vivo antitumor activity

[0106] As described above, the activity of compound 1 (INV-1121) in tumor growth was investigated using a mouse colon CT26 syngenie tumor model. Daily oral administration of this compound generally suppressed tumor growth in a dose-dependent manner in the range of 0.1 mg / kg to 150 mg / kg (Figure 1). At the low doses tested (0.1 and 1.0 mg / kg), some inhibition was observed, but no statistically significant differences were found. On the other hand, significant and equivalent antitumor activity was detected at doses of 25 mg / kg and 150 mg / kg, indicating that the dose of 25 mg / kg was the optimal effective dose in vivo. At all doses, no overall toxicity was observed based on animal body weight and overall animal behavior (Figure 1), demonstrating excellent tolerability in the test animal species in vivo. The tumor growth inhibitory effect of compound 1 is shown in Figure 1. Example 2: In vivo pharmacodynamic study on colon cancer proliferation in subcutaneous purpura colon adenocarcinoma (MC38)

[0107] All animal experiments were reviewed and approved by the Animal Experimentation Committee at Beth Israel Deaconess Medical Center in Boston, Massachusetts. Animals were housed in a pathogen-free facility with unlimited access to sterile water and feed, with a maximum of 5 animals per cage. Daily welfare assessments and animal sacrifices were conducted in accordance with the committee's guidelines. MC38 mouse colon adenocarcinoma cells (Kerafast, Boston, Massachusetts, USA) were cultured in DMEM supplemented with 10% FBS, 1% GPS, 0.1 mM non-essential amino acids (MilliporeSigma), 1 mM sodium pyruvate (MilliporeSigma), 10 mM Hepes (MilliporeSigma), and 50 mg / mL gentamicin sulfate (MilliporeSigma). Adherent cells were trypsinized, pelletized, counted using a hemocytometer, and divided into 1x10⁶ cells in PBS. 6 The solution was injected into mice at a concentration of cells / mL.

[0108] Cells were subcutaneously injected at a dose of 100 μL / mouse into the midline vertebrae of 6-week-old male C57BL / 6 mice (Jackson Laboratory, Bar Harbor, Maine). The mice were systemically treated orally via abdominal administration of compound 1 (INV-1120, 60 mg / kg / day) and anti-PD1 (200 ugQ 3 days), INV-1120 (60 mg / kg / day), anti-PD1 (200 ugQ 3 days), or vehicle (0.45% methylcellulose) in a total volume of 100 μL. Treatment was initiated 10 days after tumor cell injection, and the tumor was approximately 2004 mm². 3 From 224mm 3 Treatment was initiated when it reached this point. The size of the tumor was measured with a caliper (width 2 × length × 0.52 = mm 3 ) was measured.

[0109] Fifteen days after treatment, INV-1120 at 60 mg / kg / day (n=5 mice) inhibited primary MC38 mouse colon adenocarcinoma (p<0.0001) compared to the control group (n=5 mice).

[0110] Twenty-one days after treatment, anti-PD1 (200 ugQ 3 days) (n=5 mice) inhibited primary MC38 mouse colon adenocarcinoma (p<0.01) versus control (n=5 mice).

[0111] Twenty-one days after treatment, 60 mg / kg / day of INV-1120 and anti-PD1 (200 ugQ for 3 days) (n=5 mice) inhibited MC38 primary mouse colon adenocarcinoma (p<0.00001) versus control (n=5 mice).

[0112] Figure 2 shows the inhibitory effects of different treatments on tumor growth, regardless of the presence or absence of compound 1. Example 3: In vivo pharmacodynamic study on the proliferation of B16F10 melanoma (B16F10)

[0113] B16F10 (1x10 6Cells were subcutaneously injected at a dose of 100 μL / mouse into the midline vertebrae of 6-week-old male C57BL / 6 mice (Jackson Laboratory, Bar Harbor, Maine). Mice were then systemically treated orally via abdominal administration of compound 1 (INV-1120, 90 mg / kg / day) and anti-PD1 (200 ugQ 3 days), INV-1120 (90 mg / kg / day), anti-PD1 (200 ugQ 3 days), or vehicle (0.45% methylcellulose) in a total volume of 100 μL. Treatment was initiated 10 days after tumor cell injection, and the tumor was approximately 100 mm. 3 From 116mm 3 Treatment was initiated when it reached this point. The size of the tumor was measured with a caliper (width 2 × length × 0.52 = mm 3 ) was measured.

[0114] Eight days after treatment, INV-1120 at 90 mg / kg / day (n=5 mice) inhibited primary 16F10 melanoma proliferation (p<0.001) compared to control (n=5 mice).

[0115] Eight days after treatment, anti-PD1 (200 ugQ 3 days) inhibited primary MC38 mouse colon adenocarcinoma (n=5 mice) (p<0.01) compared to control (n=5 mice).

[0116] Eight days after treatment, 90 mg / kg / day of INV-1120 and anti-PD1 (200 ug Q for 3 days) (n=5 mice) inhibited primary 16F10 melanoma proliferation (p<0.0001) compared to control (n=5 mice). Example 4: In vivo pharmacodynamic study on the proliferation of LLC (Lewis lung cancer)

[0117] LLC (1x10 6Cells were subcutaneously injected at a dose of 100 μL / mouse into the midline vertebrae of 6-week-old male C57BL / 6 mice (Jackson Laboratory, Bar Harbor, Maine). Mice were then systemically treated by oral transabdominal administration of INV-1120 (90 mg / kg / day), anti-PD1 (200 ugQ 3 days), INV-1120 (90 mg / kg / day), anti-PD1 (200 ugQ 3 days), or vehicle (0.45% methylcellulose) in a total volume of 100 μL. The tumor was approximately 249 mm. 3 ~297mm 3 Treatment was started when it reached this point. The size of the tumor was measured with a caliper (width 2 × length × 0.52 = mm 3 ) was measured.

[0118] Nine days after treatment, INV-1120 at 90 mg / kg / day (n=5 mice) inhibited primary Lewis lung cancer growth (p<0.01) compared to the control group (n=5 mice).

[0119] Nine days after treatment, anti-PD1 (200 ugQ 3 days) (n=5 mice) inhibited primary Lewis lung cancer growth; p<0.056 vs. control (n=5 mice).

[0120] Nine days after treatment, 90 mg / kg / day of INV-1120 and anti-PD1 (200 ugQ for 3 days) (n=5 mice) inhibited primary Lewis lung cancer growth (p<0.01) compared to control (n=5 mice).

[0121] Figure 4 shows the in vivo inhibitory effect on the proliferation of Lewis lung cancer.

[0122] The data described in Examples 1-4 and shown in Figures 1-4 provide evidence that the heterocyclic amide EP4 antagonist of the present invention exhibited significant antitumor growth activity in various immunodeficient animal cancer models. Combination therapy with the heterocyclic amide EP4 antagonist and a monoclonal antibody significantly improved antitumor activity compared to antibody-alone therapy, and therefore may be clinically used therapeutically for cancer treatment. Example 5. Anti-inflammatory effect in vivo

[0123] In animal experiments, the activity of the salts of formula (I) against arthritis was investigated. Animal preparation

[0124] Male Lewis rats aged 8-10 weeks were fed a fixed amount of food and free-flowing water in an environment of 45-70% humidity under 20±2°C and a 12-hour light-dark cycle. All mice were given a controlled lifestyle for 3 days before being used in the study. Of these mice, 56 were divided into 7 groups, with 8 mice in each group. One group was the control group and was given only a 1% CMCNa solution; one group was the model group and was similarly given only a 1% CMCNa solution; one group was the positive group and was given 18 mg / kg of celecoxib; and the other four groups were given solutions of the test compound at doses of 1 mg / kg, 3 mg / kg, 10 mg / kg, and 40 mg / kg, respectively. Preparation of pharmaceutical products

[0125] 100 mL of distilled water and 1.00277 g of CMC-Na were heated in a 60°C water bath until the CMC-Na was completely dissolved to prepare a 1% CMC-Na solution.

[0126] 18 mg / kg celecoxib capsules: 18.09 mg of celecoxib was placed in a pulverizer, and 10 mL of 1% CMC-Na solution was slowly added. The mixture was pulverized until the celecoxib was completely dissolved.

[0127] 10 mg / kg C-003 solution: 10.08 mg of the test compound (4-(1-{[2-methyl-4-(4-trifluoromethyl-benzyl)-4H-thieno[3,2-b]pyrrole-3-carbonyl]-amino}cyclopropyl)-benzoate diethanolamino salt (hereinafter referred to as INV-1120 diethanolamino salt) was placed in a pulverizer, and 10 mL of 1% CMC-Na solution was slowly added until the INV-1120 diethanolamino salt was completely dissolved.

[0128] 30 mg / kg INV-1120 solution: 30.3 mg of INV-1120 diethanolamino salt was placed in a grinder, and 10 mL of 1% CMC-Na solution was slowly added until the INV-1120 diethanolamino salt was completely dissolved.

[0129] INV-1120 was prepared by mixing 1.0 mL of a 10 mg / kg INV-1120 diethanolamino salt solution with 9 mL of 1% CMC-Na.

[0130] INV-1120 was prepared by mixing 1.0 mL of a 30 mg / kg INV-1120 diethanolamino salt solution with 9 mL of 1% CMC-Na to prepare a 3 mg / kg INV-1120 solution. Establishment of the AIA Model

[0131] After anesthetizing the mice, their right feet were washed with medical alcohol. The control group mice were administered 50 μL of PBS, while the other groups of mice were treated with 50 μL of CDA solution in their right feet. The base size (volume) of each mouse was measured the day before model establishment, and the model establishment day was designated as D1. From D13, the test compound was administered into the stomach at a rate of 1 mL / 100 g daily for 12 days (ending on D24). Regular checkups for animals

[0132] Every three days, the mice were examined for water intake, food intake, and body weight; every four days, their hind legs were checked for weight-bearing capacity; and every three days, the mice were examined for the amount and thickness of swelling in their legs, as well as temperature and behavior, and photographs were taken.

[0133] As shown in Figures 5-6, the test results demonstrated that the test compound reduced the temperature of the feet of arthritis mice and decreased swelling (both in volume and thickness). Furthermore, mice administered with the test compound showed greater weight gain and weight-bearing capacity compared to mice not administered with the test compound. In addition, the test animals exhibited improved behavioral patterns (e.g., balance ability). Example 6. Anti-inflammatory effect in vivo

[0134] Furthermore, 4-(1-{[2-methyl-4-(4-trifluoromethyl-benzyl)-4H-thieno[3,2-b]pyrrole-3-carbonyl]-amino}cyclopropyl}tris(hydroxymethyl)aminomethane benzoate was also used in the aforementioned studies for its activity in treating arthritis in mice. This salt more effectively reduced swelling of the arthritis-affected feet in mice and resulted in better balance or better regulatory ability in mice after treatment with this compound.

Claims

1. A therapeutic product for use in the treatment of colorectal cancer, melanoma, or lung cancer, comprising a pharmaceutically acceptable salt of a compound having the following structure: 【Chemistry 1】 The pharmaceutically acceptable salt is a diethanolamino salt or a tris(hydroxymethyl)aminomethane salt, and the compound is a therapeutic product that dose-dependently inhibits tumor growth in a range of 0.1 mg / kg to 150 mg / kg per body weight.

2. The therapeutic product according to claim 1, which is used in combination with an antibody against programmed cell death protein 1 (anti-PD1 antibody).

3. The therapeutic product according to claim 1, wherein the range is 1 to 30 mg / kg per body weight.