Concentrated thiophene derivatives as hypoxia-inducible factor (HIF) inhibitors

Thiophene derivatives are developed to target HIF-2α, addressing the limitations of current inhibitors by effectively reducing HIF-2α levels in cancers, particularly renal cell carcinoma, and are formulated for therapeutic use in pharmaceutical compositions.

JP7769629B2Active Publication Date: 2025-11-13MERCK PATENT GMBH +1
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Patent Information

Application Number
JP2022556702
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-11-26
Filing Date
2020-11-24
Publication Date
2025-11-13
Estimated Expiration
2040-11-24

AI Technical Summary

Technical Problem

Current HIF-2α inhibitors for cancer treatment have limitations in efficacy and specificity, particularly in conditions like clear cell renal cell carcinoma, and there is a need for compounds that effectively target HIF-2α without significant toxicity.

Method used

Development of thiophene derivatives that inhibit HIF-2α, which are designed to target and reduce HIF-2α levels in various cancers, including renal cell carcinoma, by stabilizing under hypoxic conditions, and are formulated as pharmaceutical compositions for therapeutic use.

Benefits of technology

The thiophene derivatives exhibit high activity against HIF-2α, providing effective treatment options for cancers by reducing undesirable cell populations while maintaining patient viability, with potential applications in various human diseases.

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Abstract

Formula I [Formula 1] JPEG2023505388000067.jpg49163 The compounds of the formula (wherein R1, R2, R3, R4, R5, n and m have the meanings in claim 1) are HIF-2α inhibitors and can be employed for the treatment of diseases such as cancer.
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Description

[Technical Field]

[0001] Background of the Invention [Background technology]

[0002] The present invention aims to find new compounds with valuable properties, in particular compounds that can be used in the preparation of pharmaceuticals. The present invention relates to thiophene derivatives that inhibit HIF-2α (HIF-2 alpha) (hypoxia-inducible factor). Thus, the compounds of the present invention are useful in the treatment of diseases such as cancer. The present invention also provides methods for preparing these compounds, pharmaceutical compositions containing these compounds, and methods for treating diseases utilizing pharmaceutical compositions containing these compounds.

[0003] Adequate oxygen supply to tissues is essential for maintaining mammalian cellular and physiological function. Inadequate tissue oxygen supply is characteristic of numerous pathophysiological conditions, such as ischemic injury, cancer, and atherosclerosis, in which blood flow is insufficient to provide adequate oxygen supply. A hypoxic (low oxygen) environment in tissues activates signaling cascades that induce or suppress the transcription of numerous genes involved in events such as angiogenesis (new blood vessel formation), glucose metabolism, and cell survival / death. The transcription factor hypoxia-inducible factor (HIF) is key to this hypoxic transcriptional response. HIF is regulated in a vast array of cancers by hypoxia-dependent and -independent mechanisms, and its expression correlates with poor patient prognosis. Hypoxia-inducible factors (HIFs), including HIF-1α and HIF-2α, are transcription factors that mediate the cellular response to reduced oxygen supply. These proteins are stabilized under hypoxia (low oxygen) and subsequently activate the expression of genes that promote cell survival and proliferation. HIF proteins are activated in many types of cancer and have been implicated in cancer initiation, progression, and metastasis. The role of HIF-2α is particularly important in clear cell renal cell carcinoma (ccRCC). In the majority of ccRCC tumors, the tumor suppressor von Hippel-Lindau protein (pVHL), which targets HIF-2 for degradation, is inactivated, leading to the accumulation of HIF-2 and the transcription of genes that drive renal cancer tumorigenesis. Certain cancers, including renal cell carcinoma, have been shown to be dependent on high levels of HIF-2 and HIF-2α signaling.

[0004] HIF-2α protein has been detected in a variety of human tumors of the bladder, breast, colon, liver, ovary, pancreas, prostate, and kidney, as well as in tumor-associated macrophages. The compounds of the present invention exhibit high activity against HIF-2α in multiple relevant settings, including biochemical, biophysical and cellular assays. The compounds according to the invention and their salts have been found to possess extremely valuable pharmaceutical properties whilst being well tolerated.

[0005] The host or patient may belong to any mammalian species, such as primate species, particularly humans; rodents, including mice, rats, and hamsters; rabbits; horses, cows, dogs, cats, etc. Animal models are of interest for experimental investigations and provide models for the treatment of human diseases. The sensitivity of specific cells to treatment with the compounds of the present invention can be determined by in vitro testing. Typically, cell cultures are combined with the compounds of the present invention at various concentrations for a sufficient time, usually about 1 hour to 1 week, for an active agent such as anti-IgM to induce a cellular response, such as the expression of surface markers. In vitro testing can be performed using cultured cells taken from blood or biopsy samples. The amount of expressed surface markers is evaluated by flow cytometry using specific antibodies that recognize the markers.

[0006] Doses will vary depending on the particular compound used, the particular disease, the patient's condition, etc. A therapeutic dose is typically sufficient to reduce the undesirable cell population in the target tissue while maintaining patient viability. Treatment is generally continued until a significant reduction has occurred, e.g., at least about a 50% reduction in cell burden, and may be continued until essentially no undesirable cells are detectable in the body. prior art Other HIF-2α inhibitors for the treatment of cancer are described in WO 2018 / 031680 A1, WO 2015 / 035223 A1, WO 2016 / 145045 A1, WO 2016 / 145032 A1, WO 2016 / 144825 A1, WO 2016 / 144826 A1 and WO 2016 / 168510 A1.

[0007] Preclinical on-target efficacy studies of HIF-2 antagonists are described in H. Cho et al. Nature, Vol. 539, 2016, 107-122 (doi:10.1038 / nature19795) and W. Chen et al. Nature, Vol. 539, 2016, 112-130 (doi:10.1038 / nature19796). A review of HIF-2 targeting approaches is described by SE Wilkins ChemMedChem, 2016, 11, 773-786. SUMMARY OF THE INVENTION Summary of the Invention

[0008] The present invention relates to a compound of formula I [ka] During the ceremony, R 1 is A, [C(R 6 )2] q Ar, [C(R 6 )2] q Cyc, [C(R 6 )2] q Represents Het or COA, R 2 are SO2A, SOA, SA, SO2NHA, SO2NA2, S(=NH,=O)A, S(=NH)2A, NO2, Hal, CN, A, Het 1 , COOH or COOA, R 3 represents H or Hal, R 4 represents H or Hal, R 5 represents H or Hal, R 6 represents H or A',

[0009] A represents unbranched or branched alkyl having 1-8 C atoms, in which 1-5 H atoms may be replaced by OH, OA, F, Cl and / or Br, and / or in which 1 or 2 non-adjacent CH groups may be replaced by O and / or NH groups, A' represents unbranched or branched alkyl having 1, 2, 3 or 4 C atoms, Cyc represents a cyclic alkyl having 3, 4, 5, 6 or 7 C atoms, in which 1-5 H atoms may be replaced by OH, OA, F and / or Cl, Ar represents phenyl, which is unsubstituted or selected from the group consisting of Hal, A, NH2, NHA, NA2, COOH, COOA, CONH2, CONHA, CONA2, CONHAr, S(O)p mono-, di-, or tri-substituted by A, NHCH2Ar, CN, OH, and / or OA; Het represents a monocyclic or bicyclic aromatic, unsaturated or saturated heterocycle having 1 to 4 N, O and / or S atoms, which may be unsubstituted or may be substituted with Hal, A, NH2, NHA, NA2, COOH, COOA, CONH2, CONHA, CONA2, CONHAr, S(O) p may be mono-, di-, or tri-substituted by A, NHCHAr, CN, OH, and / or OA;

[0010] Het 1 represents a monocyclic or bicyclic aromatic, unsaturated or saturated heterocycle having 1 to 4 N, O and / or S atoms, which may be unsubstituted or mono-, di- or trisubstituted by Hal, A, COOA, NH2, NHA and / or NA2, Hal represents F, Cl, Br or I; n represents 1 or 2; m represents 0, 1, 2 or 3; p represents 1, 2 or 3; q represents 0, 1 or 2; or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof, and mixtures thereof in any proportion.

[0011] The present invention also relates to the optically active forms (stereoisomers), enantiomers, racemates, diastereomers, hydrates and solvates of these compounds. The present invention further relates to pharmaceutically acceptable derivatives of the compounds of formula I. The term solvates of a compound is used to denote adductions of inert solvent molecules onto a compound, which form due to their mutual attractive force. Solvates are, for example, monohydrates, dihydrates or alkoxides.

[0012] It will be understood that the present invention also relates to solvates of the salts. The term pharmaceutically acceptable derivatives means, for example, the salts of the compounds according to the invention and so-called prodrug compounds. As used herein, and unless otherwise indicated, the term "prodrug" refers to a derivative of a compound represented by Formula I that can be hydrolyzed, oxidized, or otherwise reacted under biological conditions (in vitro or in vivo) to provide an active compound, particularly a compound represented by Formula I. Examples of prodrugs include, but are not limited to, derivatives and metabolites of a compound represented by Formula I that contain a biohydrolyzable moiety, such as biohydrolyzable amides, biohydrolyzable esters, biohydrolyzable carbamates, biohydrolyzable carbonates, biohydrolyzable ureides, and biohydrolyzable phosphate analogs. In certain embodiments, prodrugs of compounds with carboxyl functional groups are lower alkyl esters of the carboxylic acid. Carboxylic acid esters are conveniently formed by esterifying any of the carboxylic acid moieties present on the molecule. Prodrugs may be prepared using well-known methods, typically as described by Burger's Medicinal Chemistry and Drug Discovery 6th ed. (Donald J. Abraham ed., 2001, Wiley) and Design and Application of Prodrugs (H. Bundgaard ed., 1985, Harwood Academic Publishers Gmfh).

[0013] The expression "effective amount" refers to an amount of a drug or pharmaceutical active ingredient that elicits the biological or medical response sought by, for example, a researcher or physician, in a tissue, system, animal or human. Furthermore, the expression "therapeutically effective amount" refers to an amount that has the following results compared to a corresponding subject who does not re-ingest this amount: Improved treatment, healing, prevention or elimination of a disease, syndrome, condition, complaint, disorder or side effect, or a reduction in the progression of a disease, complaint or disorder. The expression "therapeutically effective amount" also encompasses the amounts which are effective for increasing normal physiological function. The invention also relates to the use of mixtures of compounds of formula I, for example mixtures of two diastereomers, for example in ratios of 1:1, 1:2, 1:3, 1:4, 1:5, 1:10, 1:100 or 1:1000.

[0014] These are particularly preferably mixtures of stereoisomeric compounds. "Tautomers" refer to isomers of a compound that are in equilibrium with each other. The concentrations of isomers may depend on the environment in which the compound is found, for example, whether the compound is a solid or in an organic or aqueous solution. The present invention relates to compounds of formula I and salts thereof, and processes for the preparation of compounds of formula I and pharmaceutically acceptable solvates, salts, tautomers, and stereoisomers thereof, a) a compound represented by formula II [ka] wherein R1, R2, R3, R4, R5, n and m have the meanings given above and in claim 1, are reacted with NaBH4 or any other reducing agent; and / or The acid or base of formula I is converted into one of its salts.

[0015] Above and below, R1, R2, R3, R4, R5, m and n have the meanings given for formula I unless otherwise specified. A represents alkyl, which is unbranched (linear) or branched and has 1, 2, 3, 4, 5, 6, 7 or 8 C atoms. A preferably represents methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl or tert-butyl, furthermore also pentyl, 1-, 2- or 3-methylbutyl, 1,1-, 1,2- or 2,2-dimethylpropyl, 1-ethylpropyl, hexyl, 1-, 2-, 3- or 4-methylpentyl, 1,1-, 1,2-, 1,3-, 2,2-, 2,3- or 3,3-dimethylbutyl, 1- or 2-ethylbutyl, 1-ethyl-1-methylpropyl, 1-ethyl-2-methylpropyl, 1,1,2- or 1,2,2-trimethylpropyl, and even more preferably, for example, trifluoromethyl.

[0016] A very particularly preferably represents alkyl having 1, 2, 3, 4, 5 or 6 C atoms, preferably alkyl having methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, hexyl, trifluoromethyl, pentafluoroethyl or 1,1,1-trifluoroethyl. Moreover, A preferably represents CH2OCH3, CH2CH2OH or CH2CH2OCH3.

[0017] Furthermore, A preferably represents unbranched or branched alkyl having 1-6 C atoms, wherein 1-5 H atoms may be replaced by OH and / or F, and / or wherein 1 or 2 non-adjacent CH groups may be replaced by O and / or NH groups. A' preferably denotes alkyl having 1, 2, 3 or 4 C atoms, preferably methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl or tert-butyl. R1 preferably represents A, [C(R6)2]qAr, [C(R6)2]qCyc or [C(R6)2]qHet. R2 preferably represents SO2A, most preferably SO2CH3. R3 preferably represents H or F. R4 preferably represents H or F. R5 preferably represents H.

[0018] Cyc preferably represents cycloprolyl, cyclobutyl, cyclopentyl, cyclohexyl or cycloheptyl, in which 1-5 H atoms may be replaced by OH, OA, F and / or Cl. Irrespective of further substitution, Het may be, for example, 2- or 3-furyl, 2- or 3-thienyl, 1-, 2- or 3-pyrrolyl, 1-, 2, 4- or 5-imidazolyl, 1-, 3-, 4- or 5-pyrazolyl, 2-, 4- or 5-oxazolyl, 3-, 4- or 5-isoxazolyl, 2-, 4- or 5-thiazolyl, 3-, 4- or 5-isothiazolyl, 2-, 3- or 4-pyridyl, 2-, 4-, 5- or 6-pyrimidinyl, even more preferably 1,2,3-triazol-1-, -4- or -5-yl, 1,2,4-triazol-1-, -3- or -5-yl, 1- or 5-tetrazolyl, 1,2,3-oxadiazol-4- or -5-yl, 1,2,4-oxadiazol-3- or -5-yl, 1,3,4-thiadiazol-2- or -5-yl, 1,2,4-thiadiazol-3- or -5-yl, 1,2,3-thia 4- or 5-diazol-yl, 3- or 4-pyridazinyl, pyrazinyl, 1-, 2-, 3-, 4-, 5-, 6- or 7-indolyl, 4- or 5-isoindolyl, indazolyl, 1-, 2-, 4- or 5-benzimidazolyl, 1-, 3-, 4-, 5-, 6- or 7-benzopyrazolyl, 2-, 4-, 5-, 6- or 7-benzoxazolyl, 3-, 4-, 5-, 6- or 7- benzisoxazolyl, 2-, 4-, 5-, 6- or 7-benzothiazolyl, 2-, 4-, 5-, 6- or 7-benzisothiazolyl, 4-, 5-, 6- or 7-benz-2,1,3-oxadiazolyl, 2-, 3-, 4-, 5-, 6-, 7- or 8-quinolyl, 1-, 3-, 4-, 5-, 6-, 7- or 8-isoquinolyl, 3-, 4-, 5-, 6-, 7- or 8-cinnolinyl, 2-, 4-, 5-, 6-, 7- or 8-quinazolinyl, 5- or 6-quinoxalinyl, 2-, 3-, 5-, 6-, 7- or 8-2H-benzo-1,4-oxazinyl, pyrrolopyridinyl, purinyl, more preferably It represents 1,3-benzodioxol-5-yl, 1,4-benzodioxan-6-yl, 2,1,3-benzothiadiazol-4- or -5-yl, 2,1,3-benzoxadiazol-5-yl, azabicyclo[3.2.1]-octyl or dibenzofuranyl.

[0019] The heterocyclic radical may also be partially or fully hydrogenated. Irrespective of further substitution, Het can thus be, for example, 2,3-dihydro-2-, -3-, -4- or -5-furyl, 2,5-dihydro-2-, -3-, -4- or 5-furyl, tetrahydro-2- or -3-furyl, 1,3-dioxolan-4-yl, tetrahydro-2- or -3-thienyl, 2,3-dihydro-1-, -2-, -3-, -4- or -5-pyrrolyl. 2,5-dihydro-1-, -2-, -3-, -4- or -5-pyrrolyl, 1-, 2- or 3-pyrrolidinyl, tetrahydro-1-, -2- or -4-imidazolyl, 2,3-dihydro-1-, -2-, -3-, -4- or -5-pyrazolyl, tetrahydro-1-, -3- or -4-pyrazolyl, 1,4-dihydro-1-, -2-, -3- or -4-pyridyl, 1,2,3,4-tetrahydro-1-, -2-, -3-, -4-, -5- or -6-pyridyl, 1-, 2-, 3- or 4-piperidinyl, 2-, 3- or 4-morpholinyl, tetrahydro-2-, -3- or -4-pyranyl, 1,4-dioxanyl, 1,3-dioxan-2-, -4- or -5-yl, hexahydro-1-, -3- or -4-pyridazinyl, hexahydro- 1-, 2-, 4-, or 5-pyrimidinyl, 1-, 2-, or 3-piperazinyl, 1,2,3,4-tetrahydro-1-, -2-, -3-, -4-, -5-, -6-, -7-, or -8-quinolyl, 1,2,3,4-tetrahydro-1-, -2-, -3-, -4-, -5-, -6-, -7-, or -8-isoquinolyl, 2-, 3-, 5-, 6-, 7-, or 8-tetrahydro- 3,4-dihydro-2H-benzo-1,4-oxazinyl, even more preferably 2,3-methylenedioxyphenyl, 3,4-methylenedioxyphenyl, 2,3-ethylenedioxyphenyl, 3,4-ethylenedioxyphenyl, 3,4-(difluoromethylenedioxy)phenyl, 2,3-dihydrobenzofuran-5- or 6-yl, 2,3-(2-oxomethylenedioxy)phenyl, or 3,4-dihydro-2H-1,5-benzodioxepin-6- or -7-yl, even more preferably 2,3-dihydrobenzofuranyl, 2,3-dihydro-2-oxofuranyl, 3,4-dihydro-2-oxo-1H-quinazolinyl, 2,3-dihydrobenzoxazolyl, 2-oxo-2,It may also represent 3-dihydrobenzoxazolyl, 2,3-dihydrobenzimidazolyl, 1,3-dihydroindole, 2-oxo-1,3-dihydroindole or 2-oxo-2,3-dihydrobenzimidazolyl.

[0020] Irrespective of further substitutions, Het1 may be, for example, 2- or 3-furyl, 2- or 3-thienyl, 1-, 2- or 3-pyrrolyl, 1-, 2, 4- or 5-imidazolyl, 1-, 3-, 4- or 5-pyrazolyl, 2-, 4- or 5-oxazolyl, 3-, 4- or 5-isoxazolyl, 2-, 4- or 5-thiazolyl, 3-, 4- or 5-isothiazolyl, 2-, 3- or 4-pyridyl, 2-, 4-, 5- or 6-pyrimidinyl, and even more preferably 1,2,3-triazol-1-, -4- or -5-yl, 1,2,4-triazol-1-, -3- or -5-yl, 1- or 5-tetrazolyl, 1,2,3-oxadiazol-4- or -5-yl, 1,2,4-oxadiazol-3- or -5-yl, 1,3,4-thiadiazol-2- or -5-yl, 1,2,4-thiadiazol-3- or -5-yl, 1,2,3-thia 4- or 5-diazol-yl, 3- or 4-pyridazinyl, pyrazinyl, 1-, 2-, 3-, 4-, 5-, 6- or 7-indolyl, 4- or 5-isoindolyl, indazolyl, 1-, 2-, 4- or 5-benzimidazolyl, 1-, 3-, 4-, 5-, 6- or 7-benzopyrazolyl, 2-, 4-, 5-, 6- or 7-benzoxazolyl, 3-, 4-, 5-, 6- or 7- benzisoxazolyl, 2-, 4-, 5-, 6- or 7-benzothiazolyl, 2-, 4-, 5-, 6- or 7-benzisothiazolyl, 4-, 5-, 6- or 7-benz-2,1,3-oxadiazolyl, 2-, 3-, 4-, 5-, 6-, 7- or 8-quinolyl, 1-, 3-, 4-, 5-, 6-, 7- or 8-isoquinolyl, 3-, 4-, 5-, 6-, 7- or 8-cinnolinyl, 2-, 4-, 5-, 6-, 7- or 8-quinazolinyl, 5- or 6-quinoxalinyl, 2-, 3-, 5-, 6-, 7- or 8-2H-benzo-1,4-oxazinyl, pyrrolopyridinyl, purinyl, more preferably It represents 1,3-benzodioxol-5-yl, 1,4-benzodioxan-6-yl, 2,1,3-benzothiadiazol-4- or -5-yl, 2,1,3-benzoxadiazol-5-yl, azabicyclo[3.2.1]-octyl or dibenzofuranyl.

[0021] The heterocyclic radical may be partially or fully hydrogenated. Irrespective of further substitutions, Het1 can thus be, for example, 2,3-dihydro-2-, -3-, -4- or -5-furyl, 2,5-dihydro-2-, -3-, -4- or 5-furyl, tetrahydro-2- or -3-furyl, 1,3-dioxolan-4-yl, tetrahydro-2- or -3-thienyl, 2,3-dihydro-1-, -2-, -3-, -4- or -5-pyrrolyl. aryl, 2,5-dihydro-1-, -2-, -3-, -4- or -5-pyrrolyl, 1-, 2- or 3-pyrrolidinyl, tetrahydro-1-, -2- or -4-imidazolyl, 2,3-dihydro-1-, -2-, -3-, -4- or -5-pyrazolyl, tetrahydro-1-, -3- or -4-pyrazolyl, 1,4-dihydro-1-, -2-, -3- or -4-pyridyl, 1,2,3,4-tetrahydro-1-, -2-, -3-, -4-, -5- or -6-pyridyl, 1-, 2-, 3- or 4-piperidinyl, 2-, 3- or 4-morpholinyl, tetrahydro-2-, -3- or -4-pyranyl, 1,4-dioxanyl, 1,3-dioxan-2-, -4- or -5-yl, hexahydro-1-, -3- or -4-pyridazinyl, hexahydro- 1-, 2-, 4-, or 5-pyrimidinyl, 1-, 2-, or 3-piperazinyl, 1,2,3,4-tetrahydro-1-, -2-, -3-, -4-, -5-, -6-, -7-, or -8-quinolyl, 1,2,3,4-tetrahydro-1-, -2-, -3-, -4-, -5-, -6-, -7-, or -8-isoquinolyl, 2-, 3-, 5-, 6-, 7-, or 8-tetrahydro- 3,4-dihydro-2H-benzo-1,4-oxazinyl, even more preferably 2,3-methylenedioxyphenyl, 3,4-methylenedioxyphenyl, 2,3-ethylenedioxyphenyl, 3,4-ethylenedioxyphenyl, 3,4-(difluoromethylenedioxy)phenyl, 2,3-dihydrobenzofuran-5- or 6-yl, 2,3-(2-oxomethylenedioxy)phenyl, or also 3,4-dihydro-2H-1,5-benzodioxepin-6- or -7-yl, even more preferably 2,3-dihydrobenzofuranyl, 2,3-dihydro-2-oxofuranyl, 3,4-dihydro-2-oxo-1H-quinazolinyl, 2,3-dihydrobenzoxazolyl, 2-oxo-2,It may also represent 3-dihydrobenzoxazolyl, 2,3-dihydrobenzimidazolyl, 1,3-dihydroindole, 2-oxo-1,3-dihydroindole or 2-oxo-2,3-dihydrobenzimidazolyl.

[0022] Het preferably represents a monocyclic saturated heterocycle having 1 to 4 N, O and / or S atoms, which may be unsubstituted or mono-, di- or trisubstituted by Hal, A, CN, OH and / or OA. Het particularly preferably denotes tetrahydrofuryl, 1,3-dioxolanyl, tetrahydro-thienyl, pyrrolidinyl, piperidinyl, morpholinyl, tetrahydro-pyranyl or piperazinyl.

[0023] Ar may be, for example, phenyl, o-, m- or p-tolyl, o-, m- or p-ethylphenyl, o-, m- or p-propylphenyl, o-, m- or p-isopropylphenyl, o-, m- or p-tert-butylphenyl, o-, m- or p-hydroxyphenyl, o-, m- or p-nitrophenyl, o-, m- or p-aminophenyl, o-, m- or p-(N-methylamino)phenyl, o-, m- or p-(N-methylaminocarbonyl)phenyl, o-, m- or p-acetamidophenyl, o-, m- or p-methoxyphenyl, o-, m- or p-ethoxyphenyl, o-, m- or p-ethoxycarbonylphenyl, o-, m- or p-(N,N-dimethylphenyl). and more preferably o-, m- or p-(N,N-dimethylaminocarbonyl)phenyl, o-, m- or p-(N-ethylamino)phenyl, o-, m- or p-(N,N-diethylamino)phenyl, o-, m- or p-fluorophenyl, o-, m- or p-bromophenyl, o-, m- or p-chlorophenyl, o-, m- or p-(methylsulfonamido)phenyl, o-, m- or p-(methylsulfonyl)phenyl, o-, m- or p-cyanophenyl, o-, m- or p-carboxyphenyl, o-, m- or p-methoxycarbonylphenyl, o-, m- or p-aminosulfonylphenyl, o-, m- or p-(benzylamino)phenyl, and 2,3-, 2,4-, 2,5-, 2,6-, 3,4- or 3,5-difluorophenyl, 2,3-, 2,4-, 2,5-, 2,6-, 3,4- or 3,5-dichlorophenyl, 2,3-, 2,4-, 2,5-, 2,6-, 3,4- or 3,5-dibromophenyl, 2,4- or 2,5-dinitrophenyl, 2,5- or 3,4-dimethoxyphenyl, 3-nitro-4-chlorophenyl, 3 -amino-4-chloro-, 2-amino-3-chloro-, 2-amino-4-chloro-, 2-amino-5-chloro- or 2-amino-6-chlorophenyl, 2-nitro-4-N,N-dimethylamino- or 3-nitro-4-N,N-dimethylaminophenyl, 2,3-diaminophenyl, 2,3,4-, 2,3,5-, 2,3,6-, 2,4,6- or 3,4,5-trichlorophenyl, 2,4,6-trimethoxyphenyl, 2-hydroxy-3,5-dichlorophenyl, p-iodophenyl, 3,6-dichloro-4-aminophenyl, 4-fluoro-3-chlorophenyl, 2-fluoro-4-bromophenyl, 2,5-difluoro-4-bromophenyl, 3-bromo-6-methoxyphenyl, 3-chloro-6-methoxyphenyl, 3-chloro-4-acetamidophenyl, 3-fluoro-4-methoxyphenyl, 3-amino-6-methylphenyl, 3-chloro-4-acetamidophenyl or 2,5-dimethyl-4-chlorophenyl.

[0024] Ar particularly preferably represents phenyl, which may be unsubstituted or mono-, di- or trisubstituted by Hal and / or CN. Particularly preferred compounds of formula I are [ka] is. Throughout this invention, all radicals occurring more than once may be the same or different, ie, unrelated to one another. The compounds of formula I may have one or more chiral centers and therefore may occur in various stereoisomeric forms, and formula I encompasses all of these forms.

[0025] Consequently, the present invention relates, inter alia, to compounds of formula I in which at least one of the radicals has one of the preferred meanings indicated above. Some preferred groups of compounds can be represented by the following sub-formulae Ia to Ih, which sub-formulae comply with formula I and in which the radicals not specified in more detail have the meanings indicated for formula I, In Ia, R1 represents A, [C(R6)2]qAr, [C(R6)2]qCyc or [C(R6)2]qHet; In Ib, R2 represents SO2A;

[0026] In Ic, R3 represents H or F; R4 represents H or F; In Id, A represents A, which preferably represents unbranched or branched alkyl having 1-6 C atoms, in which 1-5 H atoms may be replaced by OH and / or F, and / or in which 1 or 2 non-adjacent CH groups may be replaced by O and / or NH groups, In Ie, Ar represents phenyl, which is unsubstituted or mono-, di- or trisubstituted by Hal and / or CN, In If, Het represents a monocyclic saturated heterocycle having 1 to 4 N, O and / or S atoms, which is unsubstituted or mono-, di- or trisubstituted by Hal, A, CN, OH and / or OA, In Ig, Het represents tetrahydrofuryl, 1,3-dioxolanyl, tetrahydro-thienyl, pyrrolidinyl, piperidinyl, morpholinyl, tetrahydro-pyranyl or piperazinyl, In Ih, R1 represents A, [C(R6)2]qAr, [C(R6)2]qCyc or [C(R6)2]qHet; R2 represents SO2A, R3 represents H or F; R4 represents H or F;

[0027] R5 represents H; R6 represents H or A'; A represents unbranched or branched alkyl having 1-8 C atoms, in which 1-5 H atoms may be replaced by OH and / or F and / or 1 or 2 non-adjacent CH2 groups may be replaced by O and / or NH groups, A' represents unbranched or branched alkyl having 1, 2, 3 or 4 C atoms, Cyc represents cyclic alkyl having 3, 4, 5, 6 or 7 C atoms, in which 1-5 H atoms may be replaced by OH, OA, F and / or Cl, Ar represents phenyl, which is unsubstituted or mono-, di- or trisubstituted by Hal and / or CN; Het represents tetrahydrofuryl, 1,3-dioxolanyl, tetrahydro-thienyl, pyrrolidinyl, piperidinyl, morpholinyl, tetrahydro-pyranyl or piperazinyl,

[0028] Hal represents F, Cl, Br or I; N represents 1 or 2, M represents 0, 1, 2 or 3; p represents 1, 2 or 3; q represents 0, 1 or 2; and their pharmaceutically acceptable solvates, salts, tautomers and stereoisomers, and mixtures thereof in any proportion. The compounds of formula I and the starting materials for their preparation can furthermore be prepared by methods known per se under reaction conditions known and suitable for the reactions described in the literature (for example, standard works such as Houben-Weyl, Methoden der organischen Chemie [Methods of Organic Chemistry], Georg-Thieme-Verlag, Stuttgart), more precisely. Also, known variants not mentioned in more detail here can be used.

[0029] The compound of formula I can be preferably obtained by reacting the compound of formula II with a hydride complex such as NaBH4 in an inert solvent such as MeOH or THF, and the reaction is generally carried out at a temperature between 0°C and 75°C, preferably between 10°C and 40°C.

[0030] Pharmaceutical Salts and Other Forms The compounds according to the present invention can be used in their final non-salt form. On the other hand, the present invention also encompasses the use of these compounds in the form of their pharmaceutically acceptable salts, which can be derived from various organic and inorganic acids and bases by procedures known in the art. Pharmaceutically acceptable salt forms of the compounds of Formula I are generally prepared by conventional methods. When the compound of Formula I contains a carboxyl group, a suitable salt can be formed by reacting the compound with a suitable base to give the corresponding base addition salt. Examples of such bases include alkali metal hydroxides, including potassium hydroxide, sodium hydroxide, and lithium hydroxide; alkaline earth metal hydroxides, such as barium hydroxide and calcium hydroxide; alkali metal alkoxides, such as potassium ethoxide and sodium propoxide; and various organic bases, such as peridine, diethanolamine, and N-methyl-glutamine. Aluminum salts of the compounds of Formula I are also encompassed. In the case of certain compounds of formula I, acid addition salts may be formed by treating these compounds with pharmaceutically acceptable organic and inorganic acids, for example, hydrogen halides such as hydrogen chloride, hydrogen bromide, or hydrogen iodide; other mineral acids such as sulfates, nitrates, or phosphates, and the like, and the corresponding salts thereof; and alkyl- and monoarylsulfonates such as ethanesulfonate, toluenesulfonate, and benzenesulfonate; and other organic acids such as acetate, trifluoroacetate, tartrate, maleate, succinate, citrate, benzoate, salicylate, ascorbate, and the like, and the corresponding salts thereof.

[0031] Thus, pharmaceutically acceptable acid addition salts of compounds of Formula I include acetate, adipate, alginate, aspartate, benzoate, benzenesulfonate (besylate), bisulfate, bisulfite, bromide, butyrate, camphorate, camphorsulfonate, caprylate, chloride, chlorobenzoate, citrate, cyclopentanepropionate, digluconate, dihydrogenphosphate, dinitrobenzoate, dodecyl sulfate, and ethanesulfone. Acid, fumaric acid, formic acid, galactic acid (from mucic acid), galacturonic acid, glucoheptanoate, gluconic acid, glutamic acid, glycerophosphate, hemisuccinic acid, hemisulfate, heptanoate, hexanoate, hippurate, hydrochloride, hydrobromide, hydroiodide, 2-hydroxyethanesulfonate, iodide, isethionic acid, isobutyrate, lactic acid, lactobiate, malate, malonic acid, mandelic acid, metaphosphate, methanesulfonate, methylbenzoate, monohydrogenphosphate, 2-naphthalenesulfonate, nicotinate, nitrate, oxalate, oleate, palmoate, pectinate, persulfate, phenylacetic acid, 3-phenylpropionic acid, phosphoric acid, phosphatic acid, phthalic acid, but this list is not intended to express limitation.

[0032] Furthermore, base salts of the compounds according to the present invention include, but are not intended to be limiting, aluminum, ammonium, calcium, copper, iron(III), iron(II), lithium, magnesium, manganese(III), manganese(II), potassium, sodium, and zinc salts. Of the above salts, ammonium; the alkali metal salts sodium and potassium; and the alkaline earth metal salts calcium and magnesium are preferred. Salts of the compounds of Formula I derived from pharmaceutically acceptable organic non-toxic bases include primary, secondary, and tertiary amines, substituted amines, naturally occurring substituted amines, cyclic amines, basic amines, basic ion exchange resins, such as, for example, arginine, betaine, caffeine, chloroprocaine, choline, N,N'-dibenzylethylenediamine (benzathine), dicyclohexylamine, diethanolamine, diethylamine, 2-diethylaminoethanol, 2-dimethylaminoethanol, ethanolamine, Also included, but this is not intended to represent a limitation, are ethylenediamine, N-ethylmorpholine, N-ethylpiperidine, glucamine, glucosamine, histidine, hydrabamine, isopropylamine, lidocaine, lysine, meglumine, N-methyl-D-glucamine, morpholine, piperazine, piperidine, polyamine resins, procaine, purines, theobromine, triethanolamine, TEA, trimethylamine, tripropylamine, and tris(hydroxymethyl)methylamine (tromethamine).

[0033] Compounds of the invention containing a basic nitrogen-containing group may be quaternized using agents such as (C1-C4) alkyl halides, e.g., methyl, ethyl, isopropyl, and tert-butyl chlorides, bromides, and iodides; di(C1-C4) alkyl sulfates, e.g., dimethyl, diethyl, and diamyl sulfate; (C10-C18) alkyl halides, e.g., decyl, dodecyl, lauryl, myristyl, and stearyl chlorides, bromides, and iodides; and aryl(C1-C4) alkyl halides, e.g., benzyl chloride and phenethyl bromide. Such salts can be used to prepare both water- and oil-soluble compounds according to the invention.

[0034] Preferred such pharmaceutical salts include, but are not intended to represent a limitation, acetate, trifluoroacetate, besylate, citrate, fumarate, gluconate, hemisuccinate, hippurate, hydrochloride, hydrobromide, isethionate, mandelate, meglumine, nitrate, oleate, phosphonate, pivalate, sodium phosphate, stearate, sulfate, sulfosalicylate, tartrate, thiomalate, tosylate, and tromethamine. Particularly preferred are the hydrochloride, dihydrochloride, hydrobromide, maleate, mesylate, phosphate, sulfate and succinate salts.

[0035] Acid addition salts of basic compounds of Formula I are prepared by contacting the free base form with a sufficient amount of the desired acid, causing the formation of the salt in a conventional manner. The free base can be regenerated by contacting the salt form with a base and isolating the free base in a conventional manner. The free base forms may differ in some respects from the corresponding salt forms with respect to certain physical properties, such as solubility in polar solvents, but for purposes of this invention, the salts otherwise correspond to the respective free base forms.

[0036] As mentioned, pharmaceutically acceptable base addition salts of the compounds of formula I are formed with metals or amines, such as alkali metals and alkaline earth metals or organic amines. Preferred metals are sodium, potassium, magnesium, and calcium. Preferred organic amines are N,N'-dibenzylethylenediamine, chloroprocaine, choline, diethanolamine, ethylenediamine, N-methyl-D-glucamine, and procaine. The base addition salts of acidic compounds according to the invention are prepared by contacting the free acid form with a sufficient amount of the desired base to form the salt in the conventional manner. The free acid can be regenerated by contacting the salt form with an acid and isolating the free acid in the conventional manner. The free acid forms will differ in some respects from the corresponding salt forms with respect to certain physical properties, such as solubility in polar solvents, but for purposes of this invention the salts will otherwise correspond to the respective free acid forms.

[0037] Where a compound according to the present invention contains multiple groups capable of forming such pharmaceutically acceptable salts, the present invention also encompasses multiple salts. Representative multiple salt forms include, for example, but are not intended to represent a limitation, diacetate, difumarate, dimeglumine, diphosphate, disodium, and trihydrochloride. In this context, the expression "pharmaceutically acceptable salt" can be understood to mean an active ingredient comprising a compound of formula I in the form of one of its salts, especially when this salt form confers improved pharmacokinetic properties on the active ingredient compared to the free form of the active ingredient or other salt forms of the active ingredient previously used. A pharmaceutically acceptable salt form of an active ingredient can also confer for the first time on this active ingredient desired pharmacokinetic properties that it did not previously possess, and can even positively influence the pharmacology of this active ingredient with regard to its therapeutic effect in the body.

[0038] Isotopes Furthermore, the compounds of Formula I are intended to include their isotopically labeled forms. Isotopically labeled forms of the compounds of Formula I are identical to the compounds except that one or more atoms of the compound are replaced by an atom or atoms having an atomic mass or mass number different from the atomic mass or mass number of the normally occurring atom. Examples of isotopes that are readily commercially available and can be incorporated into compounds of Formula I by well-known methods include isotopes of hydrogen, carbon, nitrogen, oxygen, phosphorus, fluorine, and chlorine, such as 2H, 3H, 13C, 14C, 15N, 18O, 17O, 31P, 32P, 35S, 18F, and 36CI, respectively. Compounds of Formula I or any pharmaceutically acceptable salts containing one or more of the above isotopes and / or isotopes of other atoms are intended to be part of the present invention. Isotopically labeled compounds of Formula I can be used in many useful ways. Isotopically labeled compounds of Formula I incorporating radioactive isotopes such as H or C are suitable for drug and / or substrate tissue distribution assays. These radioisotopes, i.e., tritium (H) and carbon-14 (C), are particularly preferred due to their simple preparation and excellent detectability. Incorporation of heavier isotopes, such as deuterium (H), into compounds of Formula I offers therapeutic advantages due to the increased metabolic stability of the isotopically labeled compounds. Increased metabolic stability translates directly into increased in vivo half-life or lower dosages, which will represent a preferred embodiment of the present invention under most circumstances. Isotopically labeled compounds of Formula I can often be prepared by following the procedures disclosed in the synthetic schemes and associated description, examples, and preparation sections herein, substituting readily available isotopically labeled reactants for non-isotopically labeled ones.

[0039] Deuterium (2H) can also be incorporated into compounds of Formula I to manipulate their oxidative metabolism through the primary kinetic isotope effect. Primary kinetic isotope effects occur because the exchange of isotopes alters the rate of a chemical reaction, thereby changing the ground-state energy required for covalent bond formation after isotope exchange. Exchange of heavy isotopes typically lowers the ground-state energy of a chemical bond, thereby slowing the rate of rate-limiting bond cleavage. If bond cleavage occurs in or near a saddle-point region along the coordinate of a multicomponent reaction, significant changes in product distribution ratios can occur. For example, when deuterium is attached to a non-exchanged carbon atom, a reaction rate difference of kM / kD = 2-7 ​​is typical. When successfully applied to easily oxidized compounds of Formula I, this rate difference can dramatically alter the in vivo profile of the compound, resulting in improved pharmacokinetic properties.

[0040] When discovering and developing therapeutic agents, those skilled in the art attempt to optimize pharmacokinetic parameters while retaining desirable in vitro properties. It is reasonable to assume that many compounds with poor pharmacokinetic profiles are susceptible to oxidative metabolism. Currently available in vitro liver microsome assays provide valuable information regarding the course of this type of oxidative metabolism, allowing the rational design of deuterated compounds of Formula I with improved stability due to resistance to such oxidative metabolism. Significant improvements in the pharmacokinetic profile of compounds of Formula I are thereby obtained, which can be quantified in terms of increases in in vivo half-life (t), concentration at maximum therapeutic effect (C), area under the dose-response curve (AUC), and F, as well as reductions in clearance, dosage, and material costs.

[0041] The following is intended to illustrate the above: A compound of Formula I having multiple potential oxidative metabolic attack sites, such as benzylic hydrogen atoms and hydrogen atoms attached to nitrogen atoms, can be prepared as a series of analogs in which various combinations of hydrogen atoms are replaced with deuterium atoms, with some, most, or all of these hydrogen atoms replaced with deuterium atoms. Determination of half-life advantageously and accurately allows for the determination of the degree to which resistance to oxidative metabolism has been improved. Thus, it can be determined that the half-life of the parent compound can be extended by up to 100% as a result of this type of deuterium-hydrogen exchange.

[0042] Deuterium-hydrogen exchange in compounds of Formula I may also be used to achieve favorable modification of the metabolic spectrum of the starting compound to reduce or eliminate undesired toxic metabolites. For example, if a toxic metabolite arises by oxidative carbon-hydrogen (CH) bond cleavage, it can be reasonably assumed that a deuterated analog will significantly reduce or eliminate the production of the undesired metabolite, even if the specific oxidation is not the rate-limiting step. Further information on the state of the art regarding deuterium-hydrogen exchange can be found, for example, in Hanzlik et al., J. Org. Chem. 55, 3992-3997, 1990, Reider et al., J. Org. Chem. 52, 3326-3334, 1987, Foster, Adv. Drug Res. 14, 1-40, 1985, Gillette et al., Biochemistry 33(10) 2927-2937, 1994, and Jarman et al. Carcinogenesis 16(4), 683-688, 1993. The present invention also relates to medicaments comprising at least one compound of formula I and / or its pharmaceutically acceptable solvates, salts and stereoisomers, and mixtures thereof in any ratio, and optionally excipients and / or adjuvants.

[0043] Pharmaceutical formulations may be administered in the form of dosage units containing a predetermined amount of active ingredient per dosage unit. Such units may contain, for example, 0.5 mg to 1 g, preferably 1 mg to 700 mg, particularly preferably 5 mg to 100 mg of a compound according to the present invention, depending on the condition to be treated, the method of administration, and the age, weight, and condition of the patient. Alternatively, pharmaceutical formulations may be administered in the form of dosage units containing a predetermined amount of active ingredient per dosage unit. Preferred dosage unit formulations contain a daily dose or subdose of the active ingredient, as indicated above, or a corresponding fraction thereof. Furthermore, pharmaceutical formulations of this type may be prepared using processes commonly known in the pharmaceutical arts.

[0044] Pharmaceutical formulations may be adapted for administration in any desired suitable manner, for example, oral (including buccal or sublingual), rectal, nasal, topical (including buccal, sublingual or transdermal), vaginal or parenteral (including subcutaneous, intramuscular, intravenous or intradermal) manner. Such formulations may be prepared, for example, by combining the active ingredient with excipients or adjuvants, using any process known in the pharmaceutical art. Pharmaceutical formulations adapted for oral administration may be administered as discrete units, for example, capsules or tablets; powders or granules; solutions or suspensions in aqueous or non-aqueous liquids; edible foams or foam foods; or oil-in-water or water-in-oil liquid emulsions. Thus, for example, for oral administration in the form of a tablet or capsule, the active ingredient components may be combined with an oral, non-toxic, and pharmaceutically acceptable inert excipient, such as, for example, ethanol, glycerol, water, etc. Powders are prepared by comminuting the compound to a suitable fine size and mixing with a pharmaceutical excipient comminuted in a similar manner, for example, an edible carbohydrate, such as, for example, starch or mannitol. Flavors, preservatives, dispersing agents, and dyes may also be present.

[0045] Capsules are produced by preparing a powder mixture as described above and filling it into formed gelatin shells.Before filling, glidants and lubricants such as highly dispersed silicic acid, talc, magnesium stearate, calcium stearate or solid polyethylene glycol may be added to the powder mixture.Disintegrants or solubilizers such as agar-agar, calcium carbonate or sodium carbonate may also be added to improve the availability of the medicament after taking the capsule.

[0046] Additionally, when desired or necessary, suitable binders, lubricants, and disintegrating agents, as well as dyes, may also be incorporated into the mixture. Suitable binders include starch, gelatin, natural sugars such as glucose or beta-lactose, sweeteners made from corn, for example, acacia, tragacanth, or sodium alginate, carboxymethylcellulose, polyethylene glycol, natural and synthetic gums such as waxes, etc. Lubricants used in these dosage forms include sodium oleate, sodium stearate, magnesium stearate, sodium benzoate, sodium acetate, sodium chloride, and the like. Disintegrants include, but are not limited to, starch, methylcellulose, agar, bentonite, xanthan gum, and the like. Tablets are formulated, for example, by preparing a powder mixture, granulating or dry-pressing the mixture, adding a lubricant and disintegrant, and pressing the entire mixture to give tablets. The powder mixture is prepared by mixing the compound, suitably ground, with a diluent or base as described above, optionally with a binder such as, for example, carboxymethylcellulose, alginic acid, gelatin, or polyvinylpyrrolidone, a solution retarder such as, for example, paraffin, an absorption accelerator such as, for example, a quaternary salt, and / or an absorvan such as, for example, bentonite, kaolin, or dicalcium phosphate.

[0047] The powder mixture can be granulated by wetting it with a binder, such as syrup, starch paste, acadia mucilage, or solutions of cellulose or polymer materials, and pressing it through a sieve. As an alternative to granulation, the powder mixture can be passed through a tablet press, giving non-uniformly shaped lumps that are broken up to form granules. The granules can be lubricated with the addition of stearic acid, a stearate salt, talc, or mineral oil to prevent adhesion to the tablet dies. The lubricated mixture is then pressed to obtain tablets. The compounds of the present invention can also be combined with free-flowing inert excipients and directly pressed to obtain tablets without the need for granulation or dry-pressing. A transparent or opaque protective layer consisting of a shellac sealing layer, a layer of sugar or polymeric material, and a gloss layer of wax can be present. Dyes can be added to these coatings to distinguish different dosage units.

[0048] For example, oral liquids such as solutions, syrups, elixirs, etc. can be prepared in dosage unit form, so that a predetermined amount contains a predetermined amount of compound.Syrups can be prepared by dissolving compounds in aqueous solutions with suitable flavors, while elixirs are prepared using non-toxic alcoholic vehicles.Suspensions can also be prepared by dispersing compounds in non-toxic vehicles.Solubilizers and emulsifiers, such as ethoxylated isostearyl alcohol and polyoxyethylene sorbitol ether, preservatives, flavor additives, such as peppermint oil or natural sweeteners or saccharin, or other artificial sweeteners, can also be added. Dosage units for oral administration may, if desired, be encapsulated in microcapsules. Formulations may also be prepared in such a way that release is extended or delayed, for example, by coating or embedding particulate matter in polymers, waxes, etc.

[0049] The compounds of Formula I and their pharmaceutically solvates, salts, tautomers, and stereoisomers may also be administered in the form of liposome delivery systems, such as small unilamellar vesicles, large unilamellar vesicles, and multilamellar vesicles. Liposomes can be formed from various phospholipids, such as cholesterol, stearylamine, or phosphatidylcholines.

[0050] The compounds of Formula I and their solvates, salts, tautomers, and stereoisomers may also be delivered using monoclonal antibodies as individual carriers to which the compound molecules are coupled. The compounds may also be coupled to soluble polymers to serve as targeted drug carriers. Such polymers include polyvinylpyrrolidone, pyran copolymers, polyhydroxypropylmethacrylamidephenol, polyhydroxyethylaspartamidephenol, or palmitoyl-substituted polyethylene oxide polylysine. The compounds may also be coupled to a variety of biodegradable polymers suitable for achieving controlled release of pharmaceuticals, such as polylactic acid, poly-epsilon-caprolactone, polyhydroxybutyric acid, polyorthoesters, polyacetals, polydihydroxypyrans, polycyanoacrylates, and crosslinked hydrogels or amphiphilic block copolymers.

[0051] Pharmaceutical formulations adapted for transdermal administration may be administered as independent plasters for prolonged, intimate contact with the epidermis of the recipient. Thus, the active ingredient may be delivered from the plaster by iontophoresis, as described, for example, in Pharmaceutical Research, 3(6), 318 (1986). Pharmaceutical compounds adapted for topical administration may be formulated as ointments, creams, suspensions, lotions, powders, solutions, pastes, gels, sprays, aerosols or oils. For treating eye or other external tissue, for example mouth and skin, preparation is preferably applied as topical ointment or cream.When preparing to give ointment, active ingredient can be used with either paraffin or water-miscible cream base.Alternatively, active ingredient can be formulated to give cream with oil-in-water cream base or water-in-oil base.

[0052] Pharmaceutical formulations adapted for topical application to the eye include eye drops, in which the active ingredient is dissolved or suspended in a suitable carrier, especially an aqueous solvent. Pharmaceutical formulations adapted for topical application in the mouth encompass lozenges, pastilles and gargles and mouthwashes. Pharmaceutical formulations adapted for rectal administration can be administered in the form of suppositories or enemas.

[0053] Pharmaceutical formulations adapted for nasal administration in which the carrier substance is a solid include, for example, a coarse powder having a particle size in the range of 20 to 500 microns and are administered in the manner in which a sniff is taken, i.e., by rapid inhalation through the nasal passage from a container containing the powder held close to the nose. Suitable formulations for administration as a nasal spray or nasal drops, having a liquid as the carrier substance, include solutions of the active ingredient in water or oil. Pharmaceutical formulations adapted for administration by inhalation encompass fine particle dusts or mists, which may be generated by various types of pressurized dispensers with aerosols, nebulizers, or insufflators. Pharmaceutical formulations adapted for vaginal administration may be administered as pessaries, tampons, creams, gels, pastes, foams or spray formulations.

[0054] Preparations suitable for parenteral administration include aqueous and non-aqueous sterile injection solutions containing antioxidants, buffers, bacteriostats, and solutes to render the preparation isotonic with the blood of the treated recipient; and aqueous and non-aqueous sterile suspensions may contain a suspending medium and a thickening agent. The preparations may be administered in single-dose or multi-dose containers, such as sealed ampoules and vials, and may be stored in a freeze-dried or lyophilized state, requiring only the addition of a sterile carrier liquid, such as water for injection, immediately prior to use. Injection solutions and suspensions prepared according to this method may be prepared from sterile powders, granules, and tablets.

[0055] It will be appreciated that in addition to the ingredients particularly mentioned above, the formulations may include other agents conventional in the art having regard to the particular type of formulation; thus, for example, formulations suitable for oral administration may include flavors. The therapeutically effective amount of a compound of Formula I will depend on many factors, including, for example, the age and weight of the animal, the precise condition requiring treatment and its severity, the nature of the formulation, and the method of administration, and is ultimately determined by the treating physician or veterinarian. However, effective amounts of compounds according to the present invention will generally be in the range of 0.1 to 100 mg / kg of recipient (mammal) body weight per day, and more typically in the range of 1 to 10 mg / kg of body weight per day. Thus, the actual daily amount for a 70 kg adult mammal will usually be between 70 and 700 mg, which may be administered as a single dose or in a series of partial doses (e.g., 2, 3, 4, 5, or 6, etc.) per day to achieve the same total daily amount. An effective amount of a salt or solvate, or a physiologically functional derivative thereof, may be determined as a fraction of the effective amount of the compound according to the present invention itself. Similar doses may be expected to be suitable for treating the other conditions mentioned above. This type of combination treatment may be achieved by way of the simultaneous, sequential, or separate dosing of the individual components of the treatment. This type of combination product employs a compound according to the present invention.

[0056] The present invention further relates to a medicament comprising at least one compound of formula I and / or its pharmaceutically acceptable salts, tautomers and stereoisomers (including mixtures thereof in all ratios), and at least one further pharmaceutically active ingredient.

[0057] The present invention provides (a) an effective amount of a compound of Formula I, and / or its pharmaceutically acceptable solvates, salts, tautomers, or stereoisomers, and mixtures thereof in all ratios; and, (b) an effective amount of a further pharmaceutically active ingredient This relates to a set (kit) consisting of separate packs of: The set comprises suitable containers such as boxes, individual bottles, bags or ampoules. The set may, for example, comprise separate ampoules each containing an effective amount of a compound of formula I and / or pharmaceutically acceptable salts, tautomers and stereoisomers thereof (including mixtures thereof in all proportions) and an effective amount of a further pharmaceutically active ingredient in dissolved or lyophilized form. As used herein, "treatment" means alleviating all or part of the symptoms associated with a disease or disorder, or slowing or stopping the further progression or worsening of those symptoms, or preventing or prophylaxis of a disease or disorder in a subject at risk of developing the disease or disorder.

[0058] The term "effective amount" in reference to a compound of Formula (I) may mean an amount that is capable of alleviating all or part of the symptoms associated with the disorder or disease, or slowing or halting further progression or worsening of those symptoms, or providing prevention or prophylaxis of the disease or disorder, in a subject having or at risk of developing a disease disclosed herein, such as an inflammatory condition, immune condition, cancer, or metabolic condition. In one embodiment, an effective amount of a compound of Formula (I) is an amount that inhibits HIF-2α in a cell, eg, in vitro or in vivo. In some embodiments, an effective amount of a compound of Formula (I) inhibits HIF-2α in cells by 10%, 20%, 30%, 40%, 50%, 60%, 70%, 80%, 90% or 99% compared to the activity of HIF-2α in untreated cells.

[0059] The effective amount of the compound represented by formula (I) may be, for example, a level in a pharmaceutical composition that exerts a desired effect; for example, a unit dosage of about 0.005 mg / kg to about 10 mg / kg of the subject's body weight for both oral and parenteral administration.

[0060] use The compounds of the present invention are suitable as pharmaceutical active ingredients in the treatment of cancer in mammals, particularly humans. The present invention encompasses the use of compounds of formula I and / or pharmaceutically acceptable salts, tautomers and stereoisomers thereof for the preparation of a medicament for the treatment or prevention of cancer. Furthermore, the present invention encompasses compounds of Formula I and / or pharmaceutically acceptable salts, tautomers and stereoisomers thereof for the treatment or prevention of cancer.

[0061] It also covers the use of a compound of Formula I and / or its pharmaceutically acceptable solvates, salts, tautomers and stereoisomers for the preparation of a medicament for the treatment or prevention of a HIF-2α-induced disease or condition in a mammal, in which a therapeutically effective amount of a compound according to the invention is administered to a diseased mammal in need of such treatment. The therapeutically effective amount will vary depending on the particular disease and can be determined by one skilled in the art without undue effort. The present invention specifically relates to compounds of formula I and their pharmaceutically acceptable salts, solvates, tautomers and stereoisomers (including mixtures thereof in all ratios) for use in the treatment of diseases in which the inhibition, regulation and / or modulation of HIF-2α plays a role.

[0062] The present invention specifically relates to the use of compounds of formula I and their pharmaceutically acceptable salts, solvates, tautomers and stereoisomers (including mixtures thereof in all ratios) for the inhibition of HIF-2α. Representative cancers that the compounds of Formula I are useful for treating or preventing include, but are not limited to, cancer of the head, neck, eye, mouth, throat, esophagus, bronchus, larynx, pharynx, breast, bone, lung, colon, rectum, stomach, prostate, bladder, uterus, cervix, breast, ovaries, testicles or other reproductive organs, skin, thyroid, blood, lymph nodes, kidney, liver, pancreas, brain, central nervous system, solid tumors, and blood-borne tumors.

[0063] Moreover, representative cancers that the compounds of Formula I are useful for treating or preventing include glioblastoma, renal cell carcinoma (RCC), and clear cell renal carcinoma (ccRCC). Additionally, the present invention encompasses compounds of Formula I and / or pharmaceutically acceptable salts, tautomers and stereoisomers thereof for the treatment or prevention of von Hippel-Lindau (VHL) disease. Furthermore, the present invention encompasses compounds of Formula I and / or pharmaceutically acceptable salts, solvates, tautomers and stereoisomers thereof for the treatment or prevention of cardiovascular disease.

[0064] Preferably, the present invention relates to a method for treating cancer, comprising administering an effective amount of a compound of formula I according to the present invention to a subject in need thereof. Particularly preferably, the present invention relates to a method wherein the disease is cancer and the administration is simultaneous, sequential or alternating with the administration of at least one other active agent. The disclosed compounds of Formula I may be administered in combination with other known therapeutic agents, including anti-cancer agents. As used herein, the term "anti-cancer agent" refers to any agent administered to a patient with cancer for the purpose of treating the cancer. The anti-cancer treatment defined above may be applied as a monotherapy or may involve conventional surgery or radiation therapy or drug therapy in addition to the compound of formula I disclosed herein. Such drug therapy, e.g., chemotherapy or targeted therapy, may include one or more, preferably one, of the following anti-tumor agents:

[0065] Alkylating agents Altretamine, bendamustine, busulfan, carmustine, chlorambucil, chlormethine, cyclophosphamide, dacarbazine, ifosfamide, improsulfan, tosylate, lomustine, melphalan, mitobronitol, mitolactol, nimustine, ranimustine, temozolomide, thiotepa, treosulfan, mechlorethamine, carboquone; apaziquone, fotemustine, glufosfamide, palifosfamide, pipobroman, trofosfamide, uramustine, TH-3024, VAL-0834, etc.

[0066] platinum compound Voplatin, cisplatin, eptaplatin, miriplatin hydrate, oxaliplatin, lobaplatin, nedaplatin, picoplatin, satraplatin, etc.;

[0067] DNA modifying agents Amrubicin, bisantrene, decitabine, mitoxantrone, procarbazine, trabectedin, clofarabine, etc.; Amsacrine, brostallicin, pixantrone, laromustine 1,3, etc.;

[0068] Topoisomerase inhibitors toposide, irinotecan, razoxane, sobuzoxane, teniposide, topotecan, etc.; Amonafide, belotecan, elliptinium acetate, voreloxin;

[0069] microtubule modifier Cabazitaxel, docetaxel, eribulin, ixabepilone, paclitaxel, vinblastine, vincristine, vinorelbine, vindesine, vinflunine, etc.; fosbretabine, tesetaxel, etc.

[0070] Antimetabolites Asparaginase 3, azacitidine, calcium levofolinate, capecitabine, cladribine, cytarabine, enocitabine, floxuridine, fludarabine, fluorouracil, gemcitabine, mercaptopurine, methotrexate, nelarabine, pemetrexed, pralatrexate, azathioprine, thioguanine, carmofur; doxifluridine, elacitarabine, raltitrexed, sapacitabine, tegafur 2,3, trimetrexate;

[0071] Anticancer antibiotics Bleomycin, dactinomycin, doxorubicin, epirubicin, idarubicin, levamisole, miltefosine, mitomycin C, romidepsin, streptozocin, valrubicin, zinostatin, zorubicin, daunurobicin, plicamycin; Aclusrubicin, peplomycin, pirarubicin, etc.

[0072] Hormones / antagonists Abarelix, abiraterone, bicalutamide, buserelin, calsterone, chlorotrianisene, degarelix, dexamethasone, estradiol, fluocortolone Fluoxymesterone, flutamide, fulvestrant, goserelin, histrelin, leuprorelin, megestrol, mitotane, nafarelin, nandrolone, nilutamide, octreotide, prednisolone, raloxifene, tamoxifen, thyrotropin alfa, toremifene, trilostane, triptorelin, diethylstilbestrol; acolbifene, danazol, deslorelin, epithiostanol, orteronal, enzalutamide 1, 3; etc.

[0073] Aromatase inhibitors Aminoglutethimide, anastrozole, exemestane, fadrozole, letrozole, testolactone; Formestane; etc.

[0074] Small Molecule Kinase Inhibitors Crizotinib, dasatinib, erlotinib, imatinib, lapatinib, nilotinib, pazopanib, regorafenib, ruxolitinib, sorafenib, sunitinib, vandetanib, vemurafenib, bosutinib, gefitinib, axitinib; Afatinib, alisertib, dabrafenib, dacomitinib, dinaciclib, dovitinib, enzastaurin, nintedanib, lenvatinib, linifanib, lincitinib, masitinib, midostaurin, motesanib, neratinib, orantinib, perifosine, ponatinib, radotinib, rigosertib, tipifarnib, tivantinib, tivozanib, trametinib, pimasertib, brivanib alaninate, cediranib, apatinib 4, cabozantinib S-malate 1,3, ibrutinib 1,3, icotinib 4, bupalisib 2, sipatinib 4, cobimetinib 1,3, idelalisib 1,3, fedratinib 1, XL-6474; etc.

[0075] Photosensitizers Methoxsalen 3; Porfimer sodium, talaporfin, temoporfin; etc.

[0076] antibody alemtuzumab, besilesomab, brentuximab vedotin, cetuximab, denosumab, ipilimumab, ofatumumab, panitumumab, rituximab, tositumomab, trastuzumab, bevacizumab, pertuzumab2,3; Catumaxomab, elotuzumab, epratuzumab, farletuzumab, mogamulizumab, necitumumab, nimotuzumab, obinutuzumab, ocaratuzumab, oregovomab, ramucirumab, rilotumumab, siltuximab, tocilizumab, zalutumumab, zanolimumab, matuzumab, dalotuzumab1,2,3, onartuzumab1,3, racotumomab1, tabalumab1,3, EMD-5257974, avelumab, nivolumab1,3; etc.

[0077] cytokines Aldesleukin, interferon alpha 2, interferon alpha 2a3, interferon alpha 2b2,3; celmoleukin, tasonermin, teseleukin, oprelvekin 1,3, recombinant interferon beta-1a4, etc.

[0078] Drug conjugates denileukin diftitox, ibritumomab tiuxetan, iobenguane I123, prednimustine, trastuzumab emtansine, estramustine, gemtuzumab, ozogamicin, aflibercept; Syntredequin-besudotox, edotreotide, inotuzumab-ozogamicin, naptumomab-estafenatox, oportuzumab-monatox, technetium (99mTc) arcitumomab1,3, vintafolide1,3;

[0079] vaccine Sipuleucel-3; Vitespen-3, Emepimut-S3, OncoVAX-4, Lindopepimut-3, troVax-4, MGN-16014, MGN-17034; etc.

[0080] Miscellaneous Alitretinoin, bexarotene, bortezomib, everolimus, ibandronate, imiquimod, lenalidomide, lentinan, metyrosine, mifamurtide, pamidronate, pegaspargas, pentostatin, sipuleucel-3, sizofiran, tamivarotin, temsirolimus, thalidomide, tretinoin, vismodegib, zoledronic acid, vorinostat; Celecoxib, cilengitide, entinostat, etanidazole, ganetespib, idronoxyl, iniparib, ixazomib, lonidamine, nimorazole, panobinostat, peretinoin, plitidepsin, pomalidomide, procodazole, ridaforolimus, tasquinimod, telotristat, thymalfasin, tirapazamine, tosedostat, travedersen, ubenimex, valspodar, gendicin 4, picibanil 4, leolysin 4, letaspimycin hydrochloride 1,3, trebananib 2,3, viruzin 4, carfilzomib 1,3, endostatin 4, imcocel 4, belinostat 3, MGN-17034;

[0081] PARP inhibitors Olaparib, veliparib. 1 Prop. INN (Proposed International Nonproprietary Name) 2 Rec. INN (Recommended International Nonproprietary Names) 3 USAN (United States Adopted Name) 4 no INN.

[0082] The following abbreviations refer to the definitions below: aq (aqueous), h (hours), g (grams), L (liters), mg (milligrams), MHz (megahertz), min (minutes), mm (millimeters), mmol (millimolar), mM (millimolar), mp (melting point), eq (equivalent), mL (milliliter), μL (microliter), ACN (acetonitrile), AcOH (acetic acid), CDCl3 (deuterated chloroform), CD3OD (deuterated methanol), c-hex (cyclohexane), DCC (dicyclohexyl carbodiimide), DCM (dichloromethane), DIC (diisopropyl carbodiimide), DIEA (diisopropylethyl-amine), DMF (dimethylformamide), DMSO (dimethyl sulfoxide), DMSO-d6 (deuterated dimethyl sulfoxide), EDC (1-(3-dimethyl-amino-propyl)-3-ethylcarbodiimide), ESI (electrospray ionization), EtOAc (Ethyl Acetate), Et2O (Diethyl Ether), EtOH (Ethanol), HATU (Dimethylamino-([1,2,3]triazolo[4,5-b]pyridin-3-yloxy)-methylene]-dimethyl-ammonium hexafluorophosphate), HPLC (High Performance Liquid Chromatography), i-PrOH (2-Propanol), K2CO3 (Potassium Carbonate), LC (Liquid Chromatography), MeOH (Methanol), MgSO4 (Magnesium Sulfate), MS (Mass Spectrometry), MTBE (Methyl tert-Butyl Ether), NaHCO3 (Sodium Bicarbonate), NaBH4 (Sodium Borohydride), NMM (N-Methyl Morpholine), NMR (Nuclear Magnetic Resonance), PE (Petroleum Ether) PyBOP (Benzotriazol-1-yl-oxy-tris-pyrrolidine o-phosphonium hexafluorophosphate), RT (Room Temperature), Rt (Retention Time), SPE (Solid Phase Evaporation) extraction), TBTU (2-(1-H-benzotriazol-1-yl)-1,1,3,3-tetramethyluronium tetrafluoroborate, TEA (triethylamine), TFA (trifluoroacetic acid), THF (tetrahydrofuran), TLC (thin layer chromatography), UV (ultraviolet light), WL (wavelength light).

[0083] All temperatures, both above and below, are given in °C. In the following examples, "conventional workup" means adding water if necessary, adjusting the pH to a value between 2 and 10 depending on the final product composition, extracting the mixture with EtOAc or DCM, separating the phases, drying the organic phase over sodium sulfate and evaporating, and purifying the residue by chromatography on silica gel and / or crystallization. Rf values ​​on silica gel; eluent: EtOAc / MeOH 9:1.

[0084] 1H NMR was recorded on a Bruker DPX-300, DRX-400, AVII-400, or 500 MHz spectrometer, using the residual signal of the deuterated solvent as the internal reference. Chemical shifts (δ) are reported in ppm relative to the residual solvent signal (δ = 2.49 ppm for 1H NMR in DMSO-d6). 1H NMR data are reported as chemical shifts (multiplicity, coupling constants, number of hydrogens). Multiplicities are abbreviated as follows: d (singlet), d (doublet), t (triplet), q (quartet), m (multiplet), and br (broad).

[0085] Analysis method LCMS

[0086] Method A Column: Ascentis Express C18, 3.0x50 mm, 2.7 μm Mobile phase: A: Water with 0.05% TFA, B: ACN with 0.05% TFA Gradient: 5% B to 100% B until min 2.1, hold until min 2.8, 100% B to 5% B until min 2.85, stop after 3.00 Flow: 1.5 mL / min Wavelength: 254nm

[0087] Method B Column: Kinetex EVO C18, 3.0x50 mm, 2.6 μm Mobile phase: A: water with 0.04% NH4OH, B: ACN Gradient: 10% B to 95% B until min 2.1, hold until min 2.7, then 95% B to 10% B until min 2.75, stop after 3.00 Flow: 1.2 mL / min Wavelength: 254nm

[0088] Method C Column: Ascentis Express C18, 3.0x50 mm, 2.7 μm Mobile phase: A: Water with 0.05% TFA, B: ACN with 0.05% TFA Gradient: 5% B to 60% B until min 3.0, 60% B to 100% B until min 4.2, hold until min 5.2, 100% B to 5% B until min 5.3, stop after 5.60 Flow: 1.5 mL / min Wavelength: 254nm

[0089] Method D Column: Kinetex EVO C18, 3.0x50 mm, 2.6 μm Mobile phase: A: water with 0.04% NH4OH, B: ACN Gradient: 10% B to 60% B until min 3.0, 60% B to 95% B until min 4.0, hold until min 4.8, 95% B to 10% B until min 4.9, stop after 5.20 Flow: 1.2 mL / min Wavelength: 254nm

[0090] Method E Column: Cortecs C18+, 2.1x50 mm, 2.7 μm Mobile phase: A: Water with 0.1% FA, B: ACN with 0.1% FA Gradient: 10% B to 100% B until min 2.0, hold until min 2.6, 100% B to 10% B until min 2.7, stop after 2.90 Flow: 1.0 mL / min Wavelength: 254nm

[0091] Method F Column: Shim-pack GIST C18, 3.0x50 mm, 2.0 μm Mobile phase: A: water with 5 mM NH4CO3, B: ACN Gradient: 10% B to 95% B until min 2.1, hold until min 2.7, 95% B to 10% B until min 2.75, stop after 3.00 Flow: 1.2 mL / min Wavelength: 254nm

[0092] Method G Column: Dura Shell C18, 3.0x50 mm, 2.1 μm Mobile phase: A: water with 0.04% NH4OH, B: ACN Gradient: 10% B to 95% B until min 2.1, hold until min 2.7, 95% B to 10% B until min 2.75, stop after 3.00 Flow: 1.2 mL / min Wavelength: 254nm

[0093] Method H Column: Titank C18, 3.0x50 mm, 3.0 μm Mobile phase: A: Water with 5 mM NH4CO3, B: ACN Gradient: 10% B to 95% B until min 2.1, hold until min 2.7, 95% B to 10% B until min 2.75, stop after 3.00 Flow: 1.2 mL / min Wavelength: 254nm

[0094] Method I Column: Poroshell HPH-C18, 3.0x50 mm, 2.7 μm Mobile phase: A: water with 0.04% NH4OH, B: ACN Gradient: 10% B to 95% B until min 2.1, hold until min 2.7, 95% B to 10% B until min 2.75, stop after 3.00 Flow: 1.2 mL / min Wavelength: 254nm

[0095] Method J Column: Cortecs C18+, 2.1x50 mm, 2.7 μm Mobile phase: A: Water with 0.1% FA, B: ACN with 0.1% FA Gradient: 10% B to 60% B until min 3.0, 60% B to 100% B until min 4.0, hold until min 4.7, 100% B to 10% B until min 4.8, stop after 5.00 Flow: 1.0 mL / min Wavelength: 254nm

[0096] Method K Column: Cortecs C18+, 2.1x50 mm, 2.7 μm Mobile phase: A: Water with 0.1% FA, B: ACN with 0.1% FA Gradient: 10% B to 100% B until min 1.10, hold until min 1.6, 100% B to 10% B until min 1.61, stop after 1.90 Flow: 1.0 mL / min Wavelength: 254nm

[0097] Method L Column: Cortecs C18+, 2.1x50 mm, 2.7 μm Mobile phase: A: Water with 0.1% FA, B: CAN with 0.1% FA Gradient: 5% B to 100% B until min 2.0, hold until min 2.6, 100% B to 5% B until min 2.7, stop after 2.90 Flow: 1.0 mL / min Wavelength: 254nm

[0098] HPLC Method A Column: XSELECT HSS T3 100x4.6 mm Mobile phase: A = water + 0.05% TFA, B = ACN + 0.05% TFA Gradient: Start 5% B, 95% B after 8 min, 5% B after 10.2 min, stop after 12 min Flow: 1.2 mL / min Wavelength: 254nm

[0099] Method B Column: Ascentis Express C18 2.7 μm, 100x4.6 mm Mobile phase: A = water + 0.05% TFA, B = ACN + 0.05% TFA Gradient: Start 5% B, 95% B after 8 min, 5% B after 10.2 min, stop after 12 min Flow: 1.5 mL / min Wavelength: 254nm

[0100] Chiral Separation Analysis Method A Method: HPLC Column: ChiralPak IG-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 7:3 Wavelength: 254nm Flow: 1.0 mL / min

[0101] Method B Method: HPLC Column: ChiralPak IG-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 8:2 Wavelength: 254nm Flow: 1.0 mL / min

[0102] Method C Method: HPLC Column: ChiralPak IC-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 7:3 Wavelength: 254nm Flow: 1.0 mL / min

[0103] Method D Method: HPLC Column: ChiralPak IF-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 7:3 Wavelength: 254nm Flow: 1.0 mL / min

[0104] Method E Method: HPLC Column: ChiralPak IG-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 9:1 Wavelength: 254nm Flow: 1.0 mL / min

[0105] Method F Method: HPLC Column: ChiralPak IG-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 6:4 Wavelength: 254nm Flow: 1.0 mL / min

[0106] Method G Method: HPLC Column: ChiralPak IC-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / IPA = 1:1 Wavelength: 254nm Flow: 1.0 mL / min

[0107] Method H Method: HPLC Column: ChiralPak IF-3, 0.46x5 cm, 3 μm Mobile phase: Hex(10 mmol NH3) / EtOH = 5:5 Wavelength: 254nm Flow: 1.0 mL / min

[0108] Method I Method: HPLC Column: Chiral cellulose-SB, 0.46x10 cm, 3 μm Mobile phase: Hex(0.1% DEA) / IPA = 3:1 Wavelength: 254nm Flow: 1.0 mL / min

[0109] Method J Method: HPLC Column: ChiralPak IG-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 1:1 Wavelength: 254nm Flow: 1.0 mL / min

[0110] Method K Method: HPLC Column: ChiralPak IE-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / EtOH = 85:15 Wavelength: 254nm Flow: 1.0 mL / min

[0111] Method L Method: HPLC Column: ChiralPak IC-3, 0.46x5 cm, 3 μm Mobile phase: Hex(0.1%DEA) / IPA = 65:35 Wavelength: 254nm Flow: 1.0 mL / min

[0112] biological activity AlphaScreen protein interaction assay. To assess functional disruption of the interaction between the PAS B domains of HIF-2α and HIF-1β, an AlphaScreen assay was set up. The assay was performed in a 384-well light gray Perkin Elmer microtiter plate in a total volume of 7 μl. Human rec His6Gb1-TEV-GEFKGL-HIF2 (240-350aa)-G (fc 143 nM) and human rec ARNT His6Gb1-TEV-GEFKGL-ARNT(356-470aa)-FLAG-E362R (fc 143 nM) were incubated with the target compound for 15 minutes at 23°C in 20 mM Hepes, 150 mM NaCl, 0.05% Tween 20, 2 mL DTT, 0.1% (w / v) BSA, 0.3% DMSO, pH 7.5. Protein interaction detection was performed by adding AlphaLISA® Anti-FLAG Acceptor beads (fc 20 μg / mL) and AlphaScreen® Nickelate Donor beads (fc 9 μg / mL) (both PerkinElmer), and the reaction was incubated in the dark at 23°C for 240 minutes. The interaction between the HIF2alpha PAS B and HIF-1β PAS B domains resulted in the close proximity of the donor and acceptor beads, resulting in an emission signal at 615 nm after excitation at 680 nm. The PPI-disrupting activity of compounds was calculated directly from the loss of the Alphascreen signal. The Alphascreen signal was measured using an Envision multimode reader (PerkinElmer LAS Germany GmbH). The control value used was a reaction without inhibitor. The pharmacological zero value used was measured in the absence of HIF-1β. Inhibition values ​​(IC50) were calculated using a GeneData Assay analyzer.

[0113] The compounds inhibit HIF-2 in the assay with IC50's A<50 nM, 50≦B≦1000 nM, C>1000 nM, as shown in the table below.

[0114] [Table 1-1] [Table 1-2]

[0115] ITC ITC measurements were performed using a VP-ITC microcalorimeter manufactured by MicroCal / Malvern (UK). For all titration experiments, the protein and each compound were formulated in 30 mM HEPES buffer, pH 7.5, 150 mM NaCl, and 5 mM β-mercaptoethanol. The protein, HIF2a (240-350)-G, was prepared by recombinant overexpression and multistep chromatographic purification. Compounds were used from concentrated DMSO stock solutions. The final protein concentration in the injection syringe was 100 μM. A 10 mM ligand stock solution in DMSO was diluted with buffer to a concentration of 10 μM and loaded into the sample cell. All buffers were adjusted to a final concentration of 1% (v / v) DMSO. The titrant and titrant solutions were degassed before filling the calorimeter cell and injection syringe. ITC titrations were performed at a constant temperature of 303 K. ITC data analysis was performed using custom calorimetric software based on Origin 7 (OriginLab Cooperation Northampton, USA) from MicroCal / Malvern (UK). The integrated thermal data were fitted with a one-site binding model to determine apparent values ​​for affinity, enthalpy, and stoichiometry of binding.

[0116] Compounds bind to HIF-2α in the assay with KDs of A < 100 nM, 100 ≦ B ≦ 1000 nM, and C > 1000 nM, as shown in the table below.

[0117] [Table 2]

[0118] Cell Mechanistic Assay 786-O HRE-luc2P Reporter Assay This reporter assay was designed to monitor the binding of the HIF2α-HIF1β complex to a specific DNA fragment called the hypoxia response element (HRE) in a physiologically relevant cell line. The 786-O HRE-luc2P cells were derived from the 786-O human renal cell adenocarcinoma cell line by stably incorporating an HRE Luc reporter construct (pGL4.42 [luc2P / HRE / Hygro] Vector, Promega, cat no. E4001), which drives luciferase expression under the control of the HRE sequence. The HRE is present in the promoters of various genes regulated by hypoxia-inducible factors. 786-O cells express only HIF2α. Therefore, this reporter assay allows monitoring HIF2α-HIF1β activity by measuring the activity of the produced luciferase. Cell culture was performed in RPMI medium supplemented with 10% FBS, sodium pyruvate, penicillin / streptomycin, glutamine, and 200 μg / mL Hygromycin Gold.

[0119] The assay was performed in 384-well white opaque microtiter plates with clear bottoms (Greiner Bio-one, Frickenhausen). 786-O HRE-luc2P cells were resuspended at 4 x 104 cells / mL in fresh, prewarmed medium (RPMI, 10% FBS, SP, P / S, Q) without hygromycin. 50 μl of cell suspension (2000 cells) was dispensed per well of the microtiter plate and cultured overnight in a 37°C, 5% CO2 incubator. Compounds were added using a Labcyte Echo dispenser (fc 0.3% DMSO, 9 dilutions starting from 30 μM). The plate was incubated for 48 hours in a 37°C, 5% CO2 incubator. Then, 45 μl of prewarmed ONE-Glo™ EX Reagent was added to each well. The plate was placed on an orbital shaker at 1200 rpm for 3 minutes. Plates were sealed and luminescence was measured on a Tecan Spark 20M microplate reader (endpoint measurement with a 0.1 second read time). Values ​​were normalized to DMSO control and cell-free wells (medium control). The decrease in luminescence directly correlates to inhibition of HIF2α activity. EC50 and % effect values ​​were calculated by fitting to a sigmoidal function with variable slope using the Ryvu Therapeutics (formerly Selvita SA) DRC application or GraphPad Prism software.

[0120] The compounds inhibit HIF-2a in the assay with IC50s of A<50 nM, 50≦B≦1000 nM, and C>1000 nM, as shown in the table below.

[0121] [Table 3-1] [Table 3-2]

[0122] synthesis General Procedure [ka]

[0123] Synthesis of 3-(2,5-dichlorothiophen-3-yl)propanoic acid (2) [ka] To 3-(thiophen-3-yl)propanoic acid (6.00 g, 36.49 mmol, 95%) in a 250 mL round-bottom flask was added toluene (70 mL) and SO2Cl2 (11.92 g, 83.90 mmol, 95%). The resulting solution was stirred at 69 °C for 4 h. The reaction was then quenched by the addition of 100 mL of water / ice and extracted with 4 x 100 mL of EtOAc. The combined organic layers were dried over sodium sulfate, filtered, and the solvent was evaporated. The residue was purified by column chromatography eluting with 0–8% EtOAc in PE to give 8.89 g of 3-(2,5-dichlorothiophen-3-yl)propanoic acid as a colorless solid. 1H NMR (400 MHz, DMSO-d6): δ 12.00 (s, 1H), 7.07 (s, 1H), 2.75-2.70 (m, 2H), 2.54-2.48 (m, 2H); LC-MS (Method D): [MH]- = 222.75, Rt = 0.89 min.

[0124] Synthesis of 3-(2,5-dichlorothiophen-3-yl)propanoyl chloride (3) [ka] To 3-(2,5-dichlorothiophen-3-yl)propanoic acid (8.89 g, 36.89 mmol, 93.4%) in a nitrogen-purged 250 mL round-bottom flask was added thionyl chloride (80.00 mL, 1.05 mol, 95%). The resulting solution was stirred at 25° C. for 3 hours, after which the mixture was concentrated under reduced pressure to give 8.32 g of 3-(2,5-dichlorothiophen-3-yl)propanoyl chloride as an orange oil, which was used without further purification. Synthesis of 1,3-dichloro-5H,6H-cyclopenta[c]thiophen-4-one (4) [ka] 3-(2,5-Dichlorothiophen-3-yl)propanoyl chloride (8.32 g, 32.04 mmol, 93.8%) was dissolved in DCM (80 mL) in a nitrogen-purged 500 mL round-bottom flask, and the solution was cooled to 0–5 °C. AlCl3 (35.98 g, 256.3 mmol, 95%) was added slowly. The resulting mixture was stirred at 25 °C for 5 h, then poured into 1 L of water / ice and extracted with 3 x 300 mL of EtOAc. The combined organic layers were dried over sodium sulfate, filtered, and the solvent was evaporated. The residue was purified by column chromatography eluting with 0–10% EtOAc in PE to give 4.02 g of 1,3-dichloro-5H,6H-cyclopenta[c]thiophen-4-one as a pale yellow solid. 1H NMR (400 MHz, CDCl3): δ 3.01-2.95 (m, 2H), 2.87-2.81 (m, 2H); LC-MS (Method D): [M+H]+ = 206.80, Rt = 0.95 min.

[0125] Synthesis of 1-chloro-3-(methylsulfanyl)-4H,5H,6H-cyclopenta[c]thiophen-4-one [ka] A 250 mL round-bottom flask purged with nitrogen was charged with 1,3-dichloro-5H,6H-cyclopenta[c]thiophen-4-one (4.57 g, 21.10 mmol), tetrahydrofuran (97 mL), and (methylsulfanyl)sodium (1.77 g, 23.99 mmol). The resulting solution was stirred at 25 °C for 4 h. The reaction was then quenched by the addition of HO. The resulting solution was extracted with 100 mL of ethyl acetate. The organic layer was dried, filtered, and the solvent was evaporated. The residue was applied to a silica gel column with ethyl acetate / petroleum ether (1:20) to afford 3.3 g (71%) of 1-chloro-3-(methylsulfanyl)-4H,5H,6H-cyclopenta[c]thiophen-4-one as a red solid. LC-MS (Method K): [M+H]+ = 218.85, Rt = 0.92 min.

[0126] Synthesis of 1-chloro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-one [ka] A 50 mL round-bottom flask purged and maintained with an inert atmosphere of nitrogen was charged with 1-chloro-3-(methylsulfanyl)-4H,5H,6H-cyclopenta[c]thiophen-4-one (3.3 g, 15.0 mmol), dichloromethane (31 mL), and m-CPBA (17.2 g, 74.75 mmol, 75%). The resulting solution was stirred at 25 °C for 2 h and quenched with water. The resulting solution was extracted with 4 x 50 mL of ethyl acetate, and the organic layers were combined, dried over sodium sulfate, filtered, and concentrated under vacuum to afford 3.3 g (85%) of 1-chloro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-one as a white solid. LC-MS (Method K): [M+H] = 250.85, Rt = 0.71 min.

[0127] Synthesis of 1-chloro-3-methanesulfonyl-5,6-dihydrospiro[cyclopenta[c]thiophene-4,2'-[1,3]dioxolane] [ka] A nitrogen-purged 250 mL round-bottom flask was charged with 1-chloro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-one (3.00 g, 10.0 mmol), ethane-1,2-diol (1.30 g, 20.0 mmol), TsOH (0.36 g, 1.996 mmol), and toluene (100 mL). The resulting solution was stirred at 125 °C for 16 h. The mixture was concentrated, and the residue was purified by column chromatography (ethyl acetate:petroleum ether = 1:3). This afforded 2.8 g (94%) of 1-chloro-3-methanesulfonyl-5,6-dihydrospiro[cyclopenta[c]thiophene-4,2'-[1,3]dioxolane] as a yellow solid. LC-MS (Method K): [M+H]+ = 294.95, Rt = 0.94 min.

[0128] Synthesis of 3-methanesulfonyl-1-(2-methylpropoxy)-5,6-dihydrospiro[cyclopenta[c]thiophene-4,2'-[1,3]dioxolane] [ka] A nitrogen-purged 20 mL vial was charged with 2-methylpropan-1-ol (1286 mg, 16.5 mmol) and DMF (20 mL). Potassium isobutoxide (1.04 g, 8.8 mmol) was added. The mixture was stirred at 0 °C for 20 min. 1-Chloro-3-methanesulfonyl-5,6-dihydrospiro[cyclopenta[c]thiophene-4,2'-[1,3]dioxolane] (900 mg, 2.75 mmol) and 15-crown-5 (955.71 mg, 4.1 mmol) were added. The resulting solution was stirred in an oil bath at 55 °C for 3 h, then cooled to room temperature and quenched with water. The resulting solution was extracted with 3 x 50 mL of ethyl acetate. The organic layers were combined, filtered, and concentrated in vacuo. The residue was applied to a silica gel column with ethyl acetate / petroleum ether (1:4). This resulted in 566 mg (53%) of 3-methanesulfonyl-1-(2-methylpropoxy)-5,6-dihydrospiro[cyclopenta[c]thiophene-4,2'-[1,3]dioxolane] as a brown solid. LC-MS (Method K): [M+H]+ = 333.05, Rt = 1.06 min.

[0129] Synthesis of 3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one [ka] A 100 mL round-bottom flask was charged with 3-methanesulfonyl-1-(2-methylpropoxy)-5,6-dihydrospiro[cyclopenta[c]thiophene-4,2-[1,3]dioxolane] (556 mg, 1.5 mmol), DCM (10 mL), and TFA (1.5 mL, 19.2 mmol). The resulting solution was stirred at 25 °C for 3 h. The reaction was then quenched by the addition of 30 mL of NaHCO. The resulting solution was extracted with ethyl acetate, and the combined organic layers were dried over sodium sulfate, filtered, and concentrated in vacuo. This afforded 500 mg (74.9% purity, 86%) of 3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one as a brown solid. LC-MS (Method K): [M+H]+ = 288.95, Rt = 0.94 min.

[0130] Synthesis of 5-fluoro-3-methanesulfonyl-4,4-dimethoxy-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophene [ka] A 20 mL vial purged and maintained under an inert atmosphere of nitrogen was charged with 3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one (560 mg, 1.45 mmol, 74.9%), MeOH (10 mL), selectfluor (1376 mg, 3.7 mmol), and H2SO4 (0.25 mL, 4.5 mmol). The resulting solution was stirred in an oil bath at 60 °C for 3 h. The resulting solution was extracted with 3 x 30 mL of ethyl acetate, and the organic layers were combined, filtered, and concentrated in vacuo. This afforded 550 mg (39% purity, 42%) of 5-fluoro-3-methanesulfonyl-4,4-dimethoxy-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophene as a brown solid. LC-MS (Method K): [M+H-CH3-OCH3]+ = 306.95, Rt = 1.09 min.

[0131] Synthesis of 5-fluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one. [ka] A 100 mL round-bottom flask was charged with 5-fluoro-3-methanesulfonyl-4,4-dimethoxy-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophene (550 mg, 0.858 mmol, 39%), DCM (10 mL), and TFA (2 mL, 25.580 mmol). The resulting solution was stirred at 25 °C for 2 h. The reaction was then quenched by the addition of water. The resulting mixture was extracted with 3 x 20 mL of ethyl acetate, and the organic layers were combined, filtered, and concentrated in vacuo. This afforded 520 mg of 5-fluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one (45% purity, 89%) as a solid. LC-MS (Method K): [M+H]+ = 306.95, Rt = 1.10 min.

[0132] Synthesis of tert-butyl({[5-fluoro-1-methanesulfonyl-3-(2-methylpropoxy)-4H-cyclopenta[c]thiophen-6-yl]oxy})dimethylsilane [ka] A nitrogen-purged 50 mL three-necked round-bottom flask was charged with 5-fluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one (100 mg, 0.29 mmol), DCM (5 mL), TEA (160 mg, 1.50 mmol, 95%), and TBSOTf (252 mg, 0.91 mmol). The resulting mixture was stirred at room temperature for 3 h and concentrated in vacuo. The residue was purified by column chromatography (ethyl acetate:petroleum ether = 1:5). This afforded 100 mg (74%) of tert-butyl({[5-fluoro-1-methanesulfonyl-3-(2-methylpropoxy)-4H-cyclopenta[c]thiophen-6-yl]oxy})dimethylsilane as a yellow oil. LC-MS (Method K): [M+H]+ = 421.10, Rt = 1.36 min.

[0133] Synthesis of 5,5-difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one. [ka] A 25 mL round-bottom flask was charged with tert-butyl({[5-fluoro-1-methanesulfonyl-3-(2-methylpropoxy)-4H-cyclopenta[c]thiophen-6-yl]oxy})dimethylsilane (90 mg, 0.19 mmol), MeCN (4 mL), and selectfluor (151.5 mg, 0.41 mmol). The resulting solution was stirred at room temperature for 2 hours. The resulting solution was diluted with ethyl acetate (50 mL). The resulting mixture was washed with 2 x 30 mL of aqueous NaCl, dried over anhydrous sodium sulfate, filtered, and concentrated under vacuum. This afforded 60 mg (86%) of 5,5-difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one as a yellow solid. LC-MS (Method K): [M+H] = 325.05, Rt = 0.97 min.

[0134] Synthesis of 5,5-difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol [ka] A 25 mL round-bottom flask was charged with 5,5-difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-one (30 mg, 0.08 mmol), THF (4 mL), and NaBH4 (7.0 mg, 0.18 mmol). The resulting solution was stirred at room temperature for 2 h and diluted with ethyl acetate (30 mL). The resulting mixture was washed with 2 x 20 mL of aqueous NaCl, dried over anhydrous sodium sulfate, filtered, and concentrated. 5,5-Difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol was obtained as a white solid.

[0135] Chiral Resolution of 5,5-Difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (8) [ka] 5,5-Difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (8) was separated by Chiral-Prep-HPLC under the following conditions: HPLC column: ChiralPak IG-3, 0.46 x 5 cm, 3 μm; mobile phase: Hex(0.1% DEA): Hex(0.1% DEA) / EtOH = 9:1; wavelength: 254 nm; flow rate: 1.0 mL / min. This afforded 30.3 mg of (4S)-5,5-difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (8a) as a white solid with a melting point of 65–68 °C. 8a: 1H NMR (300 MHz, CD3OD): δ = 5.04 (dd, J = 11.6, 2.8 Hz, 1H), 3.97 (d, J = 6.5 Hz, 2H), 3.25 (s, 3H), 3.24-3.12 (m, 2H), 2.18-2.00 (m, 1H), 1.03 (d, J = 6.7 Hz, 6H); LC-MS (Method E): Rt = 1.24 min, [M+HCOO]- = 370.75; HPLC (Method B): 99.1% purity, Rt 5.28 min; Chiral HPLC (Method E): 98.0% er, Rt 3.95 min, (8b: Rt = 3.53 min).

[0136] The following compounds were obtained analogously: (4S)-1-(Cyclohexyloxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (1a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.06-5.02 (m, 1H), 4.31-4.23 (m, 1H), 3.27 (s, 3H), 3.21-3.08 (m, 2H), 2.06 (m, 2H), 1.80-1.74 (m, 2H), 1.66-1.58 (m, 3H), 1.52-1.35 (m, 3H); LC-MS (Method A): Rt = 1.47 min, [M+Na]+ = 274.9; HPLC (Method A): Purity 99.7%, Rt 6.70 min; Chiral HPLC (Method A): >99.5% ee, Rt 2.2 min. The (4R)-enantiomer was obtained analogously.

[0137] (4S)-1-(2,2-dimethylpropoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (2a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 5.06 (dd, J = 11.5, 2.9 Hz, 1H), 3.88 (s, 2H), 3.28 (s, 3H), 3.23 (ddd, J = 16.2, 9.0, 5.4 Hz, 2H), 1.06 (s, 9H); LC-MS (Method B): Rt = 1.66 min, [M+NH]+ = 358.1; HPLC (Method B): Purity 98.6%, Rt 5.72 min; Chiral HPLC (Method B): >99.5% ee, Rt 1.53 min. The (4R)-enantiomer was obtained analogously.

[0138] (4S)-1-Cyclobutoxy-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (3a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.06-5.02 (m, 1H), 4.80-4.73 (m, 1H), 3.26-3.14 (m, 5H), 2.55-2.45 (m, 2H), 2.31-2.18 (m, 2H), 1.95-1.85 (m, 1H), 1.78-1.68 (m, 1H); LC-MS (Method A): Rt = 1.52 min, [M+Na]+ = 346.9; HPLC (Method A): Purity 99.5%, Rt 6.0 min; Chiral HPLC (Method B): 99.8% ER, Rt 2.26 min. The (4R)-enantiomer was obtained analogously.

[0139] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(2-methylbutoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (4a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.06 (dd, J = 11.4, 2.7 Hz, 1H), 4.08-3.96 (m, 2H), 3.31 (s, 3H), 3.22-3.14 (m, 2H), 1.94-1.83 (m, 1H), 1.62-1.48 (m, 1H), 1.36-1.21 (m, 1H), 1.03-0.93 (m, 6H); LC-MS (Method C): Rt = 2.75 min, [M+Na]+ = 363.0; HPLC (Method A): Purity 97.4%, Rt 6.75 min; Chiral HPLC (Method C): >99.5% ee, Rt 1.24 min. The (4R)-enantiomer was obtained analogously.

[0140] (4S)-1-(2,2-Difluoroethoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (5a) [ka] Prepared according to the general procedure; H NMR (300 MHz, DMSO-d): δ = 6.69 (m, 1H), 6.56-6.21 (m, 1H), 4.97 (m, 1H), 4.62-4.52 (m, 2H), 3.44-3.28 (m, 5H); LC-MS (Method A): Rt = 1.06 min, [M+Na]+ = 356.8; HPLC (Method A): Purity 99.9%, Rt 5.16 min; Chiral HPLC (Method A): 99.5% ee, Rt 1.9 min. The (4R)-enantiomer was obtained analogously.

[0141] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(3,3,3-trifluoro-2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (6a) [ka] Prepared according to the general procedure; H NMR (300 MHz, DMSO-d): δ = 6.69 (d, J = 7.1 Hz, 1H), 5.03-4.87 (m, 1H), 4.34 (d, J = 5.4 Hz, 2H), 3.28 (d, J = 5.6 Hz, 5H), 2.97 (d, J = 7.6 Hz, 1H), 1.18 (d, J = 7.1 Hz, 3H); LC-MS (Method D): Rt = 2.52 min, [M+NH]+ = 398.1; HPLC (Method A): Purity 99.5%, Rt 6.20 min; Chiral HPLC (Method B): >99.5% ee, Rt 2.13 min. The (4R)-stereoisomer was obtained analogously.

[0142] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(2,2,2-trifluoroethoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (7a) [ka] Prepared according to the general procedure; H NMR (300 MHz, DMSO-d): δ = 5.08 (d, J = 6.9 Hz, 1H), 5.07-4.99 (m, 3H), 3.40-3.35 (m, 5H); LC-MS (Method E): Rt = 1.14 min, [M+HCOO] = 396.7; HPLC (Method A): Purity 99.6%, Rt 5.6 min; Chiral HPLC (Method D): >99.5% ee, Rt 1.22 min. The (4R)-enantiomer was obtained analogously.

[0143] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(2-methylpropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (8a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.04 (dd, J = 11.6, 2.8 Hz, 1H), 3.97 (d, J = 6.5 Hz, 2H), 3.25 (s, 3H), 3.24-3.12 (m, 2H), 2.18-2.00 (m, 1H), 1.03 (d, J = 6.7 Hz, 6H); LC-MS (Method E): Rt = 1.24 min, [M+HCOO] = 370.75; HPLC (Method B): Purity 99.1%, Rt 5.28 min; Chiral HPLC (Method E): 98.0% ER, Rt 3.95 min. The (4R)-enantiomer was obtained analogously.

[0144] (4S)-5,5-Difluoro-3-methanesulfonyl-1-{[1,1,1-trifluorobutan-2-yl]oxy}-4H,5H,6H-cyclopenta[c]thiophen-4-ol (9a) [ka] Prepared according to the general procedure; H NMR (400 MHz, CD3OD): δ = 5.08 (dd, J = 11.1, 3.0 Hz, 1H), 4.74-4.65 (m, 1H), 3.28 (s, 3H), 3.26-3.18 (m, 2H), 2.01-1.83 (m, 2H), 1.13 (t, J = 7.6 Hz, 3H); LC-MS (Method E): Rt = 1.44 min, [M+HCOO] = 424.75; HPLC (Method B): Purity 99.6%, Rt 5.44 min; Chiral HPLC (Method B): 99.8% ER, Rt 2.36 min. "Or" in the formula means an unknown configuration. The stereoisomers were obtained analogously.

[0145] (4S)-1-{[1,1-difluoropropan-2-yl]oxy}-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (10a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 6.18 - 5.81 (m, 1H), 5.08 - 5.03 (m, 1H), 4.62 - 4.47 (m, 1H), 3.29 - 3.14 (m, 5H), 1.45 (s, 3H); LC-MS (Method D): Rt = 2.14 min, [M+NH]+ = 366.0; HPLC (Method B): Purity 96.5%, Rt 4.50 min; Chiral HPLC (Method A): >99.5% ee, Rt 2.17 min. "Or" in the formula means an unknown configuration. The stereoisomers were obtained analogously.

[0146] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(3,3,3-trifluoropropoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (11a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.07 (dd, J = 11.5, 3.0 Hz, 1H), 4.44 (t, J = 5.8 Hz, 2H), 3.29 (s, 3H), 3.26-3.19 (m, 2H), 2.86-2.71 (m, 2H); LC-MS (Method B): Rt = 1.41 min, [M+NH4]+ = 384.0; HPLC (Method A): Purity 96.1%, Rt 4.74 min; Chiral HPLC (Method B): >99.5%, Rt 1.61 min. The (4R)-enantiomer was obtained analogously.

[0147] (4S)-5,5-Difluoro-3-methanesulfonyl-1-propoxy-4H,5H,6H-cyclopenta[c]thiophen-4-ol (12a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.08 (m, 2H), 4.19-4.15 (m, 2H), 3.25-3.11 (m, 5H), 1.91-1.80 (m, 2H), 1.08-1.06 (m, 3H); LC-MS (Method F): Rt = 1.77 min, [MH] = 311.0; HPLC (Method A): Purity 98.9%, Rt 5.91 min; Chiral HPLC (Method F): >99.5% ee, Rt 1.10 min. The (4R)-enantiomer was obtained analogously.

[0148] (4S)-1-(Cyclopropylmethoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (13a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.08 (dd, J = 11.1, 3.0 Hz, 1H), 4.05 (d, J = 7.2Hz, 2H), 3.27-3.15 (m, 5H), 1.39-1.26 (m, 1H), 0.71-0.60 (m, 2H), 0.45-0.39 (m, 2H); LC-MS (Method G): Rt = 1.41 min, [M+NH4]+ = 342.1; HPLC (Method A): Purity 99.8%, Rt 5.79 min; Chiral HPLC (Method B): >99.5% ee, Rt 5.45 min. The (4R)-enantiomer was obtained analogously.

[0149] (4S)-1-{[1,1-difluoropropan-2-yl]oxy}-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (14a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 6.19-5.81 (m, 1H), 5.08-5.03 (m, 1H), 4.62-4.47 (m, 1H), 3.30-3.14 (m, 5H), 1.44 (s, 3H); LC-MS (Method D): Rt = 2.14 min, [M+NH4]+ = 366.1; HPLC (Method B): Purity 96.8%, Rt 4.52 min; Chiral HPLC (Method A): >99.5% ee, Rt 1.74 min. "Or" in the formula means an unknown configuration. The stereoisomers were obtained similarly.

[0150] (4S)-1-(2,2-Difluoropropoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (15a) [ka] Prepared according to the general procedure; H NMR (400 MHz, CDCl): 5.24 (dd, J = 11.5, 4.8 Hz, 1H), 4.28 - 4.20 (t, J = 11.2 Hz, 2H), 3.40 - 3.14 (m, 6H), 1.78 (t, J = 18.8 Hz, 3H); LC-MS (Method H): Rt = 1.62 min, [MH] = 346.9; HPLC (Method B): Purity 99.5%, Rt 4.7 min; Chiral HPLC (Method A): >99.5% ee, Rt 2.21 min. The (4R)-enantiomer was obtained analogously.

[0151] (4S)-5,5-Difluoro-3-methanesulfonyl-1-[(1-methoxycyclobutyl)methoxy]-4H,5H,6H-cyclopenta[c]thiophen-4-ol (16a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.08 (dd, J = 11.4, 2.7 Hz, 1H), 4.33 (s, 2H), 3.36-3.30 (m, 4H), 3.28-3.17 (m, 4H), 2.30-2.19 (m, 2H), 2.11-2.03 (m, 2H), 1.90-1.67 (m, 2H); LC-MS (Method E): Rt = 1.09 min, [M+COO] = 412.8; HPLC (Method A): Purity 99.8%, Rt 5.71 min; Chiral HPLC (Method A): >99.5% ee, Rt 1.55 min. The (4R)-enantiomer was obtained analogously.

[0152] (4S,5S)-5-Fluoro-3-methanesulfonyl-1-(2,2,2-trifluoroethoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (17a) [ka] Prepared according to the general procedure; H NMR (400 MHz, CDOD): δ = 5.39-5.19 (m, 2H), 4.79-4.73 (m, 2H), 3.37-3.32 (m, 3H), 3.15-3.03 (m, 2H); LC-MS (Method B): Rt = 1.24 min, [MH] = 332.9; HPLC (Method B): Purity 98.0%, Rt 4.08 min; Chiral HPLC (Method A): >99.5% ee, Rt 3.67 min. The stereoisomers were obtained similarly.

[0153] (4S)-1-[(3,3-Difluorocyclobutyl)methoxy]-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (18a) [ka] Prepared according to the general procedure; H NMR (300 MHz, DMSO-d): δ = 6.68 (d, J = 7.0 Hz, 1H), 5.06-4.88 (m, 1H), 4.28 (d, J = 6.0 Hz, 2H), 3.29 (d, J = 16.1 Hz, 5H), 2.83-2.57 (m, 3H), 2.49 (s, 2H); LC-MS (Method B): Rt = 1.49 min, [M+NH]+ = 392.1; HPLC (Method B): Purity 99.5%, Rt 4.98 min; Chiral HPLC (Method A): >99.5% ee, Rt 1.42 min. The (4R)-enantiomer was obtained analogously.

[0154] (4S)-1-(Cyclobutylmethoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (19a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 5.08 (dd, J = 2.7 Hz, 1H), 4.18 (d, J = 6.3 Hz, 2H), 3.27 (s, 3H), 3.24-3.16 (m, 2H), 2.88-2.78 (m, 1H), 2.21-2.09 (m, 2H), 2.06-1.80 (m, 4H); LC-MS (Method E): Rt = 1.28 min, [M+Na]+ = 362.0; HPLC (Method A): Purity 99.8%, Rt 6.47 min; Chiral HPLC (Method A): >99.5% ee, Rt 2.20 min. The (4R)-enantiomer was obtained analogously.

[0155] (4S)-1-(1-Cyclobutylethoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (20a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.08 (dd, J = 11.7, 2.7 Hz, 1H), 4.31-4.23 (m, 1H), 3.29-3.06 (m, 5H), 2.64-2.51 (m, 1H), 2.07-1.77 (m, 6H), 1.28 (d, J = 6 Hz, 3H); LC-MS (Method E): Rt = 1.41 min, [2M+H]+ = 705.1; HPLC (Method A): Purity 99.4%, Rt 6.78 min; Chiral HPLC (Method B): 99.2% ER, Rt 1.45 min. The stereoisomers were obtained similarly.

[0156] (4S)-1-(3,3-Difluorobutoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (21a) [ka] Prepared according to the general procedure; H NMR (300 MHz, DMSO-d): δ = 6.71 (d, J = 7.0 Hz, 1H), 5.06-4.92 (m, 1H), 4.43-4.32 (m, 2H), 3.34 (s, 3H), 3.31-3.19 (m, 2H), 2.49-2.36 (m, 2H), 1.76-1.61 (m, 3H); LC-MS (Method H): Rt = 2.86 min, [M+NH]+ = 380.0; HPLC (Method B): Purity 97.4%, Rt 4.71 min; Chiral HPLC (Method A): >99.5% ee, Rt 1.25 min. The (4R)-enantiomer was obtained analogously.

[0157] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(oxan-4-yloxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (22a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CD3OD): δ = 5.08-5.04 (m, 1H), 4.55-4.47 (m, 1H), 3.99-3.91 (m, 2H), 3.63-3.55 (m, 2H), 3.32-3.14 (m, 5H), 2.14-2.08 (m, 2H), 1.86-1.75 (m, 2H); LC-MS (Method F): Rt = 1.35 min, [M+Na]+ = 376.9; HPLC (Method A): Purity 99.9%, Rt 4.96 min; Chiral HPLC (Method G): >99.5% ee, Rt 2.07 min. The (4R)-enantiomer was obtained analogously.

[0158] (4S)-5,5-Difluoro-3-methanesulfonyl-1-[2-(trifluoromethoxy)ethoxy]-4H,5H,6H-cyclopenta[c]thiophen-4-ol (23a) [ka] Prepared according to the general procedure; H NMR (400 MHz, CDOD): δ = 5.07 (dd, J = 11.4, 3.0 Hz, 1H), 4.48-4.42 (m, 2H), 4.42-4.35 (m, 2H), 3.29 (s, 3H), 3.36-3.15 (m, 2H); LC-MS (Method B): Rt = 2.42 min, [M+NH]+ = 400.0; HPLC (Method B): Purity 99.0%, Rt 4.90 min; Chiral HPLC (Method E): >99.5% ee, Rt 2.71 min. The (4R)-enantiomer was obtained analogously.

[0159] 1-(3,4-Difluorophenoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (24a) [ka] Prepared according to the general procedure; 1H NMR (300 MHz, CDCl3): δ = 7.23-7.17 (m, 1H), 7.05-6.98 (m, 1H), 6.93-6.87 (m, 1H), 5.27-5.21 (m, 1H), 3.49 (s, 1H), 3.26 (s, 3H), 3.19-2.96 (m, 2H); LC-MS (Method E): Rt = 1.24 min, [M+H]+ = 404.9; HPLC (Method A): Purity 99.3%, Rt 6.44 min; racemic.

[0160] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(propan-2-yloxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (25a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 5.05 (m, 1H), 4.53 (m, 1H), 3.28-3.25 (s, 3H), 3.24-3.13 (m, 2H), 1.42 (d, 6H); LC-MS (Method I): Rt = 1.37 min, [M+NH]+ = 330.0; HPLC (Method B): Purity 99.8%, Rt 4.4 min; Chiral HPLC (Method G): >99.5% ee, Rt 1.38 min. The (4R)-enantiomer was obtained analogously.

[0161] 3-Chloro-5-{[(4S)-5,5-difluoro-4-hydroxy-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-1-yl]oxy}benzonitrile (26a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 7.69 (t, 1H), 7.59-7.54 (m, 2H), 5.14 (m, 1H), 3.34 (s, 3H), 3.11 (m, 2H); LC-MS (Method E): Rt = 1.29 min, [M+Na]+ = 429.0; HPLC (Method A): Purity 99.9%, Rt 6.45 min; Chiral HPLC (Method G): >99.5% ee, Rt 1.70 min. The (4R)-enantiomer was obtained analogously.

[0162] (4S)-1-(3,5-Difluorophenoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (27a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 7.00-6.73 (m, 3H), 5.15 (dd, J = 11.2, 3.2 Hz, 1H), 3.35 (s, 3H), 3.23-2.95 (m, 2H); LC-MS (Method I): Rt = 1.61 min, [M+NH]+ = 400.2; HPLC (Method A): Purity 9.74%, Rt 6.5 min; Chiral HPLC (Method H): >99.5% ee, Rt 1.35 min. The (4R)-enantiomer was obtained analogously.

[0163] 3-{[(4S)-5,5-difluoro-4-hydroxy-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-1-yl]oxy}-5-fluorobenzonitrile (28a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 7.52-7.42 (m, 2H), 7.38 (m, 1H), 5.16 (m, 1H), 3.36 (s, 3H), 3.13 (m, 2H); LC-MS (Method I): Rt = 1.50 min, [MH] = 367.9; HPLC (Method A): Purity 99.1%, Rt 6.09 min; Chiral HPLC (Method A): >99.5% ee, Rt 2.87 min. The (4R)-enantiomer was obtained analogously.

[0164] (4S)-5,5-Difluoro-1-(4-fluorophenoxy)-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (29a) [ka] Prepared according to the general procedure; H NMR (400 MHz, CDOD): δ = 7.36 - 7.09 (m, 4H), 5.10 (dd, J = 11.3, 3.1 Hz, 1H), 3.30 (s, 3H), 3.19 - 2.87 (m, 2H); LC-MS (Method B): Rt = 1.55 min, [M+NH]+ = 382.2; HPLC (Method A): Purity 99.7%, Rt 6.29 min; Chiral HPLC (Method C): >99.5% ee, Rt 1.53 min. The (4R)-enantiomer was obtained analogously.

[0165] (4S)-1-(3-chloro-5-fluorophenoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (30a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 7.19-7.09 (m, 2H), 7.00 (m, 1H), 5.16 (m, 1H), 3.36 (s, 3H), 3.12 (m, 2H); LC-MS (Method J): Rt = 2.71 min, [M+Na]+ = 420.8; HPLC (Method A): Purity 99.4%, Rt 7.26 min; Chiral HPLC (Method I): >99.5% ee, Rt 2.31 min. The (4R)-enantiomer was obtained analogously.

[0166] 3-{[(4S)-5,5-difluoro-4-hydroxy-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-1-yl]oxy}benzonitrile (31a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 7.67-7.58 (m, 3H), 7.53 (m, 1H), 5.14 (dd, 1H), 3.14 (d, 3H), 3.12-3.00 (m, 2H); LC-MS (Method E): Rt = 1.16 min, [M+H]+ = 371.9; HPLC (Method A): Purity 98.7%, Rt 5.90 min; Chiral HPLC (Method J): >99.5% ee, Rt 1.35 min. The (4R)-enantiomer was obtained analogously.

[0167] (4S)-1-Ethoxy-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (32a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDOD): δ = 5.05 (dd, J = 11.4, 2.7 Hz, 1H), 4.27-4.20 (m, 2H), 3.31 (s, 3H), 3.22-3.14 (m, 2H), 1.43 (t, J = 6.9 Hz, 3H); LC-MS (Method L): Rt = 1.05 min, [M+H]+ = 299.00; HPLC (Method B): purity 99.2%, Rt 4.15 min; Chiral HPLC (Method L): >99.5% ee, Rt 1.30 min. The (4R)-enantiomer was obtained analogously.

[0168] (4S)-5,5-Difluoro-3-methanesulfonyl-1-(4,4,4-trifluorobutoxy)-4H,5H,6H-cyclopenta[c]thiophen-4-ol (33a) [ka] Prepared according to the general procedure; H NMR (300 MHz, DMSO-d): δ = 6.68 (d, J = 7.2 Hz, 1H), 4.97-4.95 (m, 1H), 4.26 (t, J = 6.3 Hz, 2H), 3.29-3.22 (m, 5H), 2.44-2.38 (m, 2H), 1.99-1.93 (m, 2H); LC-MS (Method D): Rt = 2.63 min, [M+NH]+ = 398.1; HPLC (Method B): Purity 99.5%, Rt 5.18 min; Chiral HPLC (Method K): >99.5% ee, Rt 2.31 min. The (4R)-stereoisomer was obtained analogously.

[0169] (4S)-1-(3,4-Difluorophenoxy)-5,5-difluoro-3-methanesulfonyl-4H,5H,6H-cyclopenta[c]thiophen-4-ol (34a) [ka] Prepared according to the general procedure; H NMR (300 MHz, CDCl): δ = 7.23-7.17 (m, 1H), 7.05-6.98 (m, 1H), 6.93-6.87 (m, 1H), 5.27-5.21 (m, 1H), 3.49 (s, 1H), 3.26 (s, 3H), 3.19-2.96 (m, 2H); LC-MS (Method E): Rt = 1.24 min, [M+H]+ = 404.85; HPLC (Method A): Purity 99.3%, Rt 6.44 min. The (4R)-stereoisomer was obtained analogously.

[0170] The following compounds can be prepared in an analogous manner: [ka] [ka] The following examples relate to pharmaceuticals:

[0171] Example A: Injection vial A solution of 100 g of the active ingredient of formula I and 5 g of disodium hydrogen phosphate in 3 L of distilled water was adjusted to pH 6.5 with 2 N hydrochloric acid, sterile filtered, transferred into injection vials, lyophilized under sterile conditions, and sealed under sterile conditions, each injection vial containing 5 mg of the active ingredient.

[0172] Example B: Suppositories A mixture of 20 g of the active ingredient of formula I with 100 g of soybean lecithin and 1400 g of cocoa butter is melted, poured into molds and allowed to cool. Each suppository contains 20 mg of the active ingredient.

[0173] Example C: Solution A solution is prepared by dissolving 1 g of the active ingredient of formula I, 9.38 g of NaH2PO4·2H2O, 28.48 g of Na2HPO4·12H2O, and 0.1 g of benzalkonium chloride in 940 mL of bidistilled water. The pH is adjusted to 6.8, the solution made up to 1 L, and sterilized by irradiation. This solution can be used in the form of eye drops.

[0174] Example D: Ointment 500 mg of the active ingredient of formula I is mixed with 99.5 g of petrolatum under aseptic conditions.

[0175] Example E: Tablets A mixture of 1 kg of active ingredient of formula I, 4 kg of lactose, 1.2 kg of potato starch, 0.2 kg of talc and 0.1 kg of magnesium stearate is pressed in a conventional manner to give tablets, each containing 10 mg of the active ingredient.

[0176] Example F: Dragees Tablets were pressed similarly to Example E and subsequently coated in a conventional manner with a coating of sucrose, potato starch, talc, tragacanth and dye.

[0177] Example G: Capsule 2 kg of the active ingredient of formula I is conventionally incorporated into hard gelatin capsules so that each capsule contains 20 mg of the active ingredient.

[0178] Example H: Ampoule 1 kg of the active ingredient of formula I is dissolved in 60 L of distilled water, sterile filtered, transferred into ampoules, lyophilized under aseptic conditions and sealed under aseptic conditions, each containing 10 mg of the active ingredient.

Claims

1. Formula I 【Chemistry 1】 During the ceremony, R 1 is A or [C(R 6 ) 2 ] q stands for Cyc, R 2 SO 2 represents A, R 3 represents H or F, R 4 represents H or F, R 5 represents H, R 6 represents H or A', A represents unbranched or branched alkyl having 1-8 C atoms, in which 1-5 H atoms may be replaced by OH, OA, F, Cl and / or Br, and / or in which 1 or 2 non-adjacent CH 2 groups may be replaced by O and / or NH groups, A' represents unbranched or branched alkyl having 1, 2, 3 or 4 C atoms, Cyc represents a cyclic alkyl having 3, 4, 5, 6 or 7 C atoms, in which 1-5 H atoms may be replaced by OH, OA, F and / or Cl, n represents 1 or 2; m represents 0, 1, 2 or 3; q represents 0, 1 or 2; or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof.

2. R 1 represents A, or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof.

3. A represents unbranched or branched alkyl having 1-8 C-atoms, where 1-5 H atoms may be replaced by OH and / or F, and / or where 1 or 2 non-adjacent CH 2 groups may be replaced by O and / or NH groups, 3. A compound according to claim 1 or 2, or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof.

4. R 1 is represented by A, R 2 But SO 2 represents A, R 3 represents H or F, R 4 represents H or F, R 5 represents H, A represents unbranched or branched alkyl having 1-8 C atoms, wherein 1-5 H atoms may be replaced by OH and / or F, and / or wherein 1 or 2 non-adjacent CH 2 groups may be replaced by O and / or NH groups, n represents 1 or 2; m represents 0, 1, 2 or 3; 4. The compound according to any one of claims 1 to 3, wherein:

5. group Table 1-1 Table 1-2 Table 1-3 Table 1-4 10. The compound of claim 1 selected from: or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof.

6. A process for the preparation of a compound of formula I according to any one of claims 1 to 5, or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof, comprising: a) a compound represented by formula II 【Chemistry 2】 (In the formula, R 1 , R 2 , R 3 , R 4 , R 5 , n and m have the meanings given in claim 1), 4 It is responded with, and / or The process, characterized in that the acid or base of formula I is converted into one of its salts.

7. A medicament comprising at least one compound of formula I according to any one of claims 1 to 5, and / or a pharmaceutically acceptable solvate, salt, tautomer, or stereoisomer thereof, and optionally a pharmaceutically acceptable carrier, excipient, or vehicle.

8. The pharmaceutical according to claim 7, for use in the treatment and / or prevention of cancer and / or von Hippel-Lindau disease (VHL).

9. 9. A medicament according to claim 7 or 8 for the treatment and / or prevention of diseases selected from the group: cancers of the head, neck, eyes, mouth, throat, esophagus, bronchi, larynx, pharynx, chest, bones, lungs, colon, rectum, stomach, prostate, bladder, uterus, cervix, breast, ovaries, testicles or other reproductive organs, skin, thyroid, blood, lymph nodes, kidneys, liver, pancreas, brain, central nervous system, solid tumours and blood-borne tumours, glioblastoma, renal cell carcinoma (RCC) and renal clear cell carcinoma (ccRCC).

10. A medicament comprising at least one compound of formula I according to any one of claims 1 to 5 and / or a pharmaceutically acceptable solvate, salt or stereoisomer thereof, and at least one further pharmaceutically active ingredient.

11. (a) an effective amount of a compound of formula I according to any one of claims 1 to 5, and / or a pharmaceutically acceptable salt, solvate, salt, and stereoisomer thereof; and, (b) an effective amount of a further pharmaceutically active ingredient A set (kit) consisting of separate packs of:

Citation Information

Patent Citations

  • Aryl ethers and their uses

    JP2016534134A

  • Substituted pyridines and uses thereof

    WO2016144826A1

  • Compositions for use in treating glioblastoma

    WO2016145045A1

  • Methods of reducing inflammation of the digestive system with inhibitors of HIF-2-alpha

    WO2019191227A1

  • Thiophene derivatives

    WO2019219731A1