WO1993016068A1 - Disubstituted acetylenes bearing heterobicyclic groups and heteroaromatic or phenyl groups having retinoid like activity - Google Patents

Disubstituted acetylenes bearing heterobicyclic groups and heteroaromatic or phenyl groups having retinoid like activity Download PDF

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Publication number
WO1993016068A1
WO1993016068A1 PCT/US1993/001116 US9301116W WO9316068A1 WO 1993016068 A1 WO1993016068 A1 WO 1993016068A1 US 9301116 W US9301116 W US 9301116W WO 9316068 A1 WO9316068 A1 WO 9316068A1
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compound
carbons
ethyl
alkyl
formula
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PCT/US1993/001116
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French (fr)
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Roshantaha A. S. Chandraratna
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Allergan, Inc.
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Priority to EP93905819A priority Critical patent/EP0636127B1/en
Priority to JP51423993A priority patent/JP3626180B2/en
Priority to AT93905819T priority patent/ATE200284T1/en
Priority to DE69330092T priority patent/DE69330092T2/en
Priority to AU36591/93A priority patent/AU674671B2/en
Publication of WO1993016068A1 publication Critical patent/WO1993016068A1/en

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    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D335/00Heterocyclic compounds containing six-membered rings having one sulfur atom as the only ring hetero atom
    • C07D335/04Heterocyclic compounds containing six-membered rings having one sulfur atom as the only ring hetero atom condensed with carbocyclic rings or ring systems
    • C07D335/06Benzothiopyrans; Hydrogenated benzothiopyrans
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P13/00Drugs for disorders of the urinary system
    • A61P13/02Drugs for disorders of the urinary system of urine or of the urinary tract, e.g. urine acidifiers
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P15/00Drugs for genital or sexual disorders; Contraceptives
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P17/00Drugs for dermatological disorders
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P27/00Drugs for disorders of the senses
    • A61P27/02Ophthalmic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P29/00Non-central analgesic, antipyretic or antiinflammatory agents, e.g. antirheumatic agents; Non-steroidal antiinflammatory drugs [NSAID]
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P35/00Antineoplastic agents
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P37/00Drugs for immunological or allergic disorders
    • A61P37/02Immunomodulators
    • A61P37/06Immunosuppressants, e.g. drugs for graft rejection
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61PSPECIFIC THERAPEUTIC ACTIVITY OF CHEMICAL COMPOUNDS OR MEDICINAL PREPARATIONS
    • A61P9/00Drugs for disorders of the cardiovascular system
    • A61P9/10Drugs for disorders of the cardiovascular system for treating ischaemic or atherosclerotic diseases, e.g. antianginal drugs, coronary vasodilators, drugs for myocardial infarction, retinopathy, cerebrovascula insufficiency, renal arteriosclerosis
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D215/00Heterocyclic compounds containing quinoline or hydrogenated quinoline ring systems
    • C07D215/02Heterocyclic compounds containing quinoline or hydrogenated quinoline ring systems having no bond between the ring nitrogen atom and a non-ring member or having only hydrogen atoms or carbon atoms directly attached to the ring nitrogen atom
    • C07D215/12Heterocyclic compounds containing quinoline or hydrogenated quinoline ring systems having no bond between the ring nitrogen atom and a non-ring member or having only hydrogen atoms or carbon atoms directly attached to the ring nitrogen atom with substituted hydrocarbon radicals attached to ring carbon atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D311/00Heterocyclic compounds containing six-membered rings having one oxygen atom as the only hetero atom, condensed with other rings
    • C07D311/02Heterocyclic compounds containing six-membered rings having one oxygen atom as the only hetero atom, condensed with other rings ortho- or peri-condensed with carbocyclic rings or ring systems
    • C07D311/04Benzo[b]pyrans, not hydrogenated in the carbocyclic ring
    • C07D311/58Benzo[b]pyrans, not hydrogenated in the carbocyclic ring other than with oxygen or sulphur atoms in position 2 or 4
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D401/00Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom
    • C07D401/02Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing two hetero rings
    • C07D401/06Heterocyclic compounds containing two or more hetero rings, having nitrogen atoms as the only ring hetero atoms, at least one ring being a six-membered ring with only one nitrogen atom containing two hetero rings linked by a carbon chain containing only aliphatic carbon atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D405/00Heterocyclic compounds containing both one or more hetero rings having oxygen atoms as the only ring hetero atoms, and one or more rings having nitrogen as the only ring hetero atom
    • C07D405/02Heterocyclic compounds containing both one or more hetero rings having oxygen atoms as the only ring hetero atoms, and one or more rings having nitrogen as the only ring hetero atom containing two hetero rings
    • C07D405/06Heterocyclic compounds containing both one or more hetero rings having oxygen atoms as the only ring hetero atoms, and one or more rings having nitrogen as the only ring hetero atom containing two hetero rings linked by a carbon chain containing only aliphatic carbon atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D407/00Heterocyclic compounds containing two or more hetero rings, at least one ring having oxygen atoms as the only ring hetero atoms, not provided for by group C07D405/00
    • C07D407/02Heterocyclic compounds containing two or more hetero rings, at least one ring having oxygen atoms as the only ring hetero atoms, not provided for by group C07D405/00 containing two hetero rings
    • C07D407/06Heterocyclic compounds containing two or more hetero rings, at least one ring having oxygen atoms as the only ring hetero atoms, not provided for by group C07D405/00 containing two hetero rings linked by a carbon chain containing only aliphatic carbon atoms
    • CCHEMISTRY; METALLURGY
    • C07ORGANIC CHEMISTRY
    • C07DHETEROCYCLIC COMPOUNDS
    • C07D409/00Heterocyclic compounds containing two or more hetero rings, at least one ring having sulfur atoms as the only ring hetero atoms
    • C07D409/02Heterocyclic compounds containing two or more hetero rings, at least one ring having sulfur atoms as the only ring hetero atoms containing two hetero rings
    • C07D409/06Heterocyclic compounds containing two or more hetero rings, at least one ring having sulfur atoms as the only ring hetero atoms containing two hetero rings linked by a carbon chain containing only aliphatic carbon atoms

Definitions

  • the present invention is directed to novel
  • the present invention relates to compounds having an ethynyl-heteroaromatic or an ethynyl-phenyl portion and a second portion which is an alkyl-substituted thiochromanyl, chromanyl or tetrahydroquinolinyul group.
  • the present invention also relates to pharmaceutical compositions comprising these compounds and to methods of using the compounds and compositions.
  • United States Patent No. 4,326,055 discloses ethene derivatives which have a substituted phenyl ring and a substituted indane or tetrahydronaphtalene group.
  • the compounds are described as tumor inhibiting agents, and useful for treating dermatological conditions and rheumatic illnesses.
  • United States Patent No. 4,723,028 discloses 1,2-diphenylethene (stilbene) derivataves which have retinoic acid-like activity.
  • United States Patent No. 4,740,519 discloses certain aromatic heterocycle derivatives which have retinoic acid like activity.
  • European Patent Application 176034A (published April 2, 1986) discloses tetrahydronaphtalene compounds having an ethynylbenzoic group.
  • United States Patent No. 4,739,098 discloses compounds wherein three
  • olefinic units from the acid-containing moiety of retinoic acid are replaced by an ethynylphenyl
  • These compound have retinoic acid-like biological activity.
  • United States Patent No. 4,810,804 (issued on March 7, 1989) based on an application of the same inventor and assigned to the same assignee as the present application, discloses such disubstituted acetylene compounds wherein one of the substituents of the acetylene (ethyne) group is a substituted phenyl group, and the second substituent is a 4,4-dimethyl substituted 6-chromanyl, 6-thiochromanyl or 6-tetrahydroguinolinyl group.
  • the compounds disclosed and claimed in United States Patent No. 4,810,804 have retinoic acid-like biological activity.
  • United States Patent No. 4,980,369 describes compounds having retinoic acid like activity which are 2,2,4,4 tetraalkyl substituted chroman-6-yl, and
  • acetylenes also substituted by a substituted phenyl group.
  • acetylenes also substituted by a substituted heteroaryl group.
  • Retinoic acid-like activity has been generally recognized in the art to be associated with useful biological activity. Specifically, compounds having retinoic acid-like activity are useful as regulators of cell proliferation and differentiation, and
  • agents for treating dermatoses such as acne, Darier's disease, psoriasis, icthyosis, eczema and atopic dermatitis, and for treating and preventing malignant hyperproliterative diseases such as epithelial cancer, breast cancer, prostatic cancer, head and neck cancer and myeloid leukemias, for
  • hyperproliferative diseases such as endometrial
  • disorders e.g. lupus erythematosus
  • chronic inflammatory diseases such as pulmonary embosis
  • lipid metabolism and transport such as dyslipidemias, for promoting wound healing, for
  • This invention covers compounds of Formula 1
  • R 1 and R 2 independently are n-alkyl groups having 2 to 8 carbons, or cyclo or branch-chained alkyl groups of 3 to 8 carbons;
  • R 3 is hydrogen or lower alkyl
  • X is S, O or N-R 4 where R 4 is hydrogen or lower alkyl;
  • Y is phenyl or a heteroaryl group selected from a group consisting of pyridyl, thienyl, furyl,
  • A is (CH 2 ) n where n is 0-5, lower branched chain alkyl having 3 to 6 carbons, cycloalkyl having 3 to 6 carbons, alkenyl having 2 to 6 carbons and 1 or 2 double bonds, alkynyl having 2 to 6 carbons and 1 or 2 triple bonds;
  • B is hydrogen, COOH or a pharmaceutically
  • R 5 is an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or R 5 is phenyl or lower alkylphenyl
  • R 6 and R 7 independently are hydrogen, an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or phenyl or lower alkylphenyl
  • R 8 is alkyl of 1 to 10 carbons, phenyl or lower alkylphenyl
  • R 9 is lower alkyl
  • R 10 is divalent alkyl radical of 2 - 5 carbons
  • R 11 is an alkyl, cycloalkyl or alkenyl group containing 1 to 5 carbons.
  • this invention relates to the use of the compounds of Formula 1 as regulators of cell proliferation and differentiation, and particularly as agents for treating dermatoses, such as acne, Darier's disease, psoriasis, icthyosis, eczema and atopic dermatitis, and for treating and preventing malignant hyperproliterative diseases such as epithelial cancer, breast cancer, prostatic cancer, head and neck cancer and myeloid leukemias, for reversing and preventing atherosclerosis and restenosis resulting from dermatoses, such as acne, Darier's disease, psoriasis, icthyosis, eczema and atopic dermatitis, and for treating and preventing malignant hyperproliterative diseases such as epithelial cancer, breast cancer, prostatic cancer, head and neck cancer and myeloid leukemias, for reversing and preventing atherosclerosis and restenosis resulting from
  • retinopaythy and dysplasias for treating autoimmune diseases and immunological disorders (e.g. lupus erythematosus), for treating chronic inflammatory diseases such as pulmonary fibrosis, for treating and preventing diseases associated with lipid metabolism and transport such as dyslipidemias, for promoting wound healing, for treating dry eye syndrome and for reversing and preventing the effects of sun damage to skin.
  • autoimmune diseases and immunological disorders e.g. lupus erythematosus
  • chronic inflammatory diseases such as pulmonary fibrosis
  • diseases associated with lipid metabolism and transport such as dyslipidemias
  • This invention also relates to a pharmaceutical formulation comprising a compound of Formula 1 in admixture with a pharmaceutically acceptable excipient.
  • this invention relates to the process for making a compound of Formula 1 which process comprises reacting a compound of Formula 2 with a compound of Formula 3 in the presence of cuprous iodide and Pd(PQ 3 ) 2 Cl 2 (Q is phenyl) or a similar complex
  • L-Y—A—B' Formula 3 where A, R 1 through R 3 , and Y are defined as above, L is a halogen, preferably I; and B' is H, or a protected acid, alcohol, aldehyde or ketone, where B' can be identical with B as defined above, or B' is such a precursor of the group B which is converted readily through a reaction or reactions well known by the practicing organic chemist into the group B of the compounds of the present invention.
  • this invention relates to the process for making a compound of Formula 1 which process comprises reacting a a zinc salt of Formula 4 with a compound of Formula 3 in the presence of
  • R 1 through R 3 and X are defined as in connection with Formula 1 above.
  • the present invention also relates to the process of converting a compound of Formula 1 into another compound of the same general formula, or converting a compound of Formula 5 into a compound of Formula 1, such conversion being performed through a reaction or reactions well within the skill of the practicing organic chemist, and including reactions such as:
  • alkyl refers to and covers any and all groups which are known as normal alkyl, branch-chain alkyl and cycloalkyl.
  • alkenyl refers to and covers normal alkenyl, branch chain alkenyl and
  • Lower alkyl means the above-defined broad definition of alkyl groups having 1 to 6 carbons, and as applicable, 3 to 6 carbons for branch chained and cyclo-alkyl groups.
  • Lower alkenyl is defined similarly having 2 to 6 carbons for normal alkenyl, and 3 to 6 carbons for branch chained and cycloalkenyl groups.
  • esters refers to and covers any compound falling within the definition of that term as classically used in organic chemistry.
  • B is -COOH
  • this term covers the products derived from treatment of this function with alcohols , preferably with aliphatic alcohols having 1-6 carbons.
  • the ester is derived from compounds where B is -CH 2 OH, this term covers compounds of the formula
  • R 8 is any substituted or unsubstituted aliphatic, aromatic or aliphatic-aromatic group, preferably with 1-6 carbons in the aliphatic portions.
  • Preferred esters are derived from the saturated aliphatic alcohols or acids of ten or fewer carbon atoms or the cyclic or saturated aliphatic cyclic alcohols and acids of 5 to 10 carbon atoms.
  • Particularly preferred aliphatic esters are those derived from lower alkyl acids or alcohols. Also preferred are the phenyl or lower alkylphenyl esters.
  • Amide has the meaning classically accorded that term in organic chemistry. In this instance it
  • amides include the unsubstituted amides and all aliphatic and aromatic mono-and di-substituted amides.
  • Preferred amides are the mono- and di-substituted amides derived from the saturated aliphatic radicals of ten or fewer carbon atoms or the cyclic or saturated aliphatic-cyclic radicals of 5 to 10 carbon atoms. Particularly preferred amides are those derived from lower alkyl amines. Also preferred are mono- and di-substituted amides derived from the phenyl or lower alkylphenyl amines. Unsubstituted amides are also preferred.
  • Acetals and ketals include the radicals of the formula -CK where K is (-OR) 2 .
  • R is lower alkyl.
  • K may be -OR 1 O- where R 1 is lower alkyl of 2-5 carbon atoms, straight chain or branched.
  • a pharmaceutically acceptable salt may be prepared for any compound of this invention having a
  • a pharmaceutically acceptable salt may be any salt which retains the activity of the parent compound and does not impart any deleterious or untoward effect on the subject to which it is administered and in the context in which it is administered.
  • Such a salt may be derived from any organic or inorganic acid or base.
  • the salt may be a mono or polyvalent ion.
  • the inorganic ions sodium, potassium, calcium, and magnesium.
  • Organic amine salts may be made with amines, particularly ammonium salts such as mono-, di- and trialkyl amines or ethanol amines. Salts may also be formed with caffeine, tromethamine and similar molecules. Where there is a nitrogen sufficiently basic as to be capable of forming acid addition salts, such may be formed with any inorganic or organic acids or alkylating agent such as methyl iodide.
  • Preferred salts are those formed with inorganic acids such as hydrochloric acid, sulfuric acid or phosphoric acid. Any of a number of simple organic acids such as mono-, di- or tri-acid may also be used.
  • Some of the compounds of the present invention (those where A is alkenyl) contain at least one double bond and therefore may have trans and cis (E and Z) isomers. In addition, some of the compounds of the present invention may contain one or more chiral centers and therefore exist in enantiomeric and
  • the preferred compounds of the present invention are those where the R 1 and R 2 groups are identical with one another. Still more preferred are those compounds where R 1 and R 2 are normal alkyl having 2 to 6 carbons.
  • R 1 is hydrogen or methyl
  • the thiochroman and chroman rings are preferred. Between these two, still more preferred are the thiochroman derivatives (X is S).
  • the aromatic ring on the "other" side of the ethyne moeity of the compounds of the present invention compounds are preferred where the aromatic ring is phenyl, pyridyl or thienyl.
  • the Y substituent is selected from a divalent phenyl, pyridyl or thienyl radical, and among these the phenyl and pyridyl derivatives are still more preferred.
  • the substitution pattern on the phenyl group when Y is phenyl the compounds are preferred where the ethyne and A-B portions are 1 , 4 (para) to one another.
  • the preferred substitution pattern on the pyridyl radical (when Y is pyridyl) is 2 and 5 in accordance with pyridine nomenclature (equivalent to 2 and 6 in accordance with nic ⁇ tinic acid nomenclature.)
  • the A substituent on the phenyl or heteroaromatic ring compounds are preferred where A is (CH 2 ) n , and still more preferred where n is zero.
  • B is -COOH, or an alkali metal salt or organic amine salt thereof.
  • B is respresented by COOR 5 (ester where R 5 is lower alkyl) , CONR 6 R 7 (amide) -CH 2 OH (alcohol), CH 2 OCOR 8 , CH 2 OR 8 (R 8 is lower alkyl; lower alkyl esters and ethers formed with a lower alkanol) or B is -CHO or CH(OR 9 ) 2 , CHOR 10 O (acetal derivatives), where R 9 and R 10 are defined as in connection with Formula 1.
  • the most preferred compounds of the invention are shown in Formula 6.
  • the compounds of this invention may be any organic compound having the same properties as the compounds of this invention.
  • any common topical formulation such as a solution, suspension, gel, ointment, or salve and the like may be used.
  • the drug may be confected as a powder, pill, tablet or the like, or as a syrup or elixir for oral administration.
  • the compound will be prepared as a solution or suspension capable of being administered by injection. In certain cases, it may be useful to formulate these compounds in suppository form or as an extended release formulation for deposit under the skin or intermuscular injection.
  • medicaments can be added to such topical formulation for such secondary purposes as treating skin dryness, providing protection against light; other medications for treating dermatoses, preventing
  • Treatment of dermatoses or any other indications known or discovered to be susceptible to treatment by retinoic acid-like compounds will be effected by administration of the therapeutically effective dose of one or more compounds of the instant invention.
  • a therapeutic concentration will be that concentration which effects reduction of the particular condition, or retards its expansion.
  • the drug potentially could be used in a prophylactic manner to prevent onset of a particular condition.
  • a given therapeutic concentration will vary from condition to condition and in certain instances may vary with the severity of the condition being treated and the
  • a given therapeutic concentration will be best determined at the time and place through routine experimentation.
  • a formulation containing between 0.001 and 5 percent by weight, preferably about 0.01 to 1% will usually constitute a therapeutically effective concentration. If administered systemically, an amount between 0.01 and 100 mg per kg body weight per day, but preferably about 0.1 to 10 mg/kg, will effect a therapeutic result in most instances.
  • retionic acid like activity of these compounds was confirmed through the classic measure of retionic acid activity involving the effects of retionic acid on ornithine decarboxylase.
  • the original work on the correlation between retinoic acid and decrease in cell proliferation was done by Verma & Boutwell, Cancer Research. 1977, 37, 2196-2201. That reference
  • ODC ornithine decarboxylase
  • TPA 12-O-tetradecanoyl-phorbol-13-acetate
  • the compounds of this invention can be made by a number of different synthetic chemical pathways. To illustrate this invention, there is here outlined a series of steps which have been proven to provide the compounds of Formula 1 when such synthesis is followed in fact and in spirit. The synthetic chemist will readily appreciate that the conditions set out here are specific embodiments which can be generalized to any and all of the compounds represented by Formula 1.
  • the thiochroman derivatives of the present invention that is compounds of Formula 1 where X is S, are prepared in accordance with Reaction Scheme 1.
  • a 4- bromothiophenol derivative of Formula 7 is reacted with ethyl acrylate to provide the ethyl 3-(4-bromophenylthio)propionate derivative of Formula 8.
  • R 3 has the same
  • Grignard reaction is the tertiary alcohol of Formula 9 which is thereafter cyclized (under Friedel Crafts like conditions, such as in the presence of phosphorous pentoxide and methanesulfonic acid) to provide the 6-bromo-4,4-dialkylthiochroman derivative of Formula 10.
  • the compound of Formula 10 is thereafter reacted with trimethylsilylacetylene in the presence of cuprous iodide (Cul) and a suitable catalyst, typically having the formula Pd(PQ 3 ) 2 C l2 (Q is phenyl).
  • the reaction is typically conducted in the presence of bis (triphenylphosphine) palladium(II) chloride catalyst, an acid acceptor (such as triethylamine) under an inert gas (argon) atmosphere by heating in a sealed tube.
  • bis (triphenylphosphine) palladium(II) chloride catalyst an acid acceptor (such as triethylamine) under an inert gas (argon) atmosphere by heating in a sealed tube.
  • the trimethylsilyl group is removed from the resulting (4,4-dialkylthiochroman-6-yl)-trimethylsilylacetylene derivative of Formula 11 under basic conditions to provide the (4,4-dialkylthiochroman-6-yl)-acetylene derivative of Formula 12.
  • the compound is coupled with the reagent L-Y-A-B' (Formula 3) where the symbols L, Y, A and B' have the same meaning as defined in connection with Formula 3.
  • the phenyl or heteroaryl substituent is introduced into the 6-thiochromanylacetylene of Formula 12 by reacting the latter with a halogen substituted phenyl compound or heteroaromatic compound (Formula 3) in which the aromatic nucleus (Y) either has the desired substituent [A-B], or wherein the actual substituent A-B' can be readily converted to the desired substituent by means of organic reactions well known in the art.
  • Form 3 is affected directly in the presence of cuprous iodide, a suitable catalyst, typically of the formula Pd(PQ 3 ) 2 Cl 2 (Q is phenyl) and an acid acceptor, such as triethylamine, by heating in a sealed tube under an inert gas (argon) atmosphere.
  • a suitable catalyst typically of the formula Pd(PQ 3 ) 2 Cl 2 (Q is phenyl) and an acid acceptor, such as triethylamine
  • Carboxylic acids are typically esterified by refluxing the acid in a solution of the appropriate alcohol in the presence of an acid catalyst such as hydrogen chloride or thionyl chloride.
  • an acid catalyst such as hydrogen chloride or thionyl chloride.
  • the carboxylic acid can be condensed with the appropriate alcohol in the presence of
  • phenyl or heteroaromatic derivatives where B is different from COOH may also be homologated by appropriate procedures.
  • homologated acids can then be esterified by the general procedure outlined in the preceding paragraph.
  • Formula 1 where A is (CH 2 ) n and n is 1 - 5, is to subject the compounds of Formula 1, where B is an acid or other function, to homologation, using the Arndt-Eistert method referred to above, or other homologation procedures.
  • an ester of Formula 1 may be dissolved in a polar solvent such as an alkanol, preferably under an inert atmosphere at room
  • the amide may be formed by any appropriate
  • amidation means known in the art from the corresponding esters or carboxylic acids.
  • One way to prepare such compounds is to convert an acid to an acid chloride and then treat that compound with ammonium hydroxide or an appropriate amine.
  • the acid is treated with an alcoholic base solution such as ethanolic KOH (in approximately a 10% molar excess) at room
  • Alcohols are made by converting the corresponding acids to the acid chloride with thionyl chloride or other means (J. March, "Advanced Organic Chemistry", 2nd Edition, McGraw-Hill Book Company), then reducing the acid chloride with sodium borohydride (March, Ibid, pg. 1124), which gives the corresponding alcohols.
  • esters may be reduced with lithium aluminum hydride at reduced temperatures. Alkylating these alcohols with appropriate alky halides under Williamson reaction conditions (March, Ibid, pg. 357) gives the corresponding ethers. These alcohols can be converted to esters by reacting them with appropriate acids in the presence of acid catalysts or
  • Aldehydes can be prepared from the corresponding primary alcohols using mild oxidizing agents such as pyridinium dichromate in methylene chloride (Corey, E. J., Schmidt, G., Tet. Lett., 399, 1979), or dimethyl sulfoxide/oxalyl chloride in methylene chloride (Omura, K., Swern, D., Tetrahedron. 1978, 34, 1651).
  • mild oxidizing agents such as pyridinium dichromate in methylene chloride (Corey, E. J., Schmidt, G., Tet. Lett., 399, 1979), or dimethyl sulfoxide/oxalyl chloride in methylene chloride (Omura, K., Swern, D., Tetrahedron. 1978, 34, 1651).
  • Ketones can be prepared from an appropriate aldehyde by treating the aldehyde with an alkyl
  • Acetals or ketals can be prepared from the
  • Compounds where B is H can be prepared from the corresponding halogenated aromatic compound (preferably where the halogen is I) by hydrogenation.
  • the chroman derivatives of the present invention (compounds of Formula 1 where X is 0) can be prepared in a reaction seguence which is similar to the reaction sequence used for preparing the thiochroman
  • R 3 has the same definition as in Formula 1 above; when R 3 is H, then the starting material of the reaction sequence is 4-bromophenol; when R 3 is methyl then the starting material of Formula 13 is 3-methyl-4-bromophenol.
  • a Grignard reagent such as ethyl-, n- propyl-, and n-butylmagnesium bromide.
  • Grignard reagent is denoted as “R 1 ,2 " to signify that both the R 1 and the R 2 groups can be introduced in this manner, and that these groups are identical with one another in the preferred embodiments.
  • the product of the Grignard reaction is the tertiary alcohol of
  • the compound of Formula 18 is therafter coupled with the reagent L-Y-A-B ' (Formula 3).
  • the coupling of the 4,4,-dialkyl-6-chromanyl acetylene of Formula 18 with the reagent L-Y-A-B" (Formula 3) is also conducted in the presence of cuprous iodide, a suitable catalyst, typically of the formula Pd(PQ 3 ) 2 Cl 2 (Q is phenyl) and an acid acceptor, such as triethylamine, by heating in a sealed tube under an inert gas (argon) atmosphere.
  • R 1 is defined as in connection with Formula 1
  • R 2 is defined as an alkyl group one carbon shorter than the R 2 group defined above in connection with Formula 1.
  • R 2 is respectively ethyl, n-propyl and n-butyl
  • the R 2 group of the alcohol of Formula 19 is respectively methyl, ethyl, and n-propyl.
  • the unsaturated alcohol of Formula 19 can be prepared in accordance with procedures known in the art. A preferred method for preparing the phosphate of Formula
  • diphenyl chlorophosphate relative to the alcohol of Formula 19 is employed. Thereafter, the mixture is heated until the formation of the phosphate ester of Formula 20 is substantially completed. The product is then recovered by conventional means. The diphenyl phosphate ester (Formula 20) is then reacted with a phenol derivative of Formula 21 to effect formation of the 4,4-dialkylchroman of Formula 22.
  • the phosphate ester (Formula 20) is added at the reduced temperature. Both of these steps are carried out under an inert atmosphere such as argon or nitrogen.
  • an inert atmosphere such as argon or nitrogen.
  • the mixture is stirred at about ambient temperature for up to 24 hours. Then the reaction is quenched with a dilute solution of aqueous alkali metal base or the like.
  • the product 4,4-dialkylchroman of Formula 22 is recovered by extraction and other conventional means.
  • the acetylenic (ethynyl) function is introduced into the 4 ,4-disubstituted (and optionaly 7-substituted) chroman (Formula 22) by acetylation with acetyl chloride (to yield the compounds of Formula 23), and thereafter the acetyl group is converted to the ethynyl group through treatment with lithium
  • the 4,4-dialkyl-6-chromanyl acetylene compounds of Formula 18 are as follows.
  • the compound of the Formula 22 is acetylated under Fridel Crafts conditions, or the like, preferably with acetyl chloride (AlCl 3 , CH 2 Cl 2 , reflux) to provide the 4,4-dialkyl-6-acetyl-chroman of Formula 23.
  • the acetyl function of the compound of Formula 23 is converted into an acetylenic (ethynyl) function by means of lithium diisopropylamide, or a similar base, at reduced temperature.
  • reaction mechanisms Brief description of theory of reaction mechanisms (where applicable) are given to further enable and facilitate the work of a skilled artisan in the field to modify and adjust the synthetic conditions to fit particular specific intermediates and to make the several compounds of the invention, without
  • the compounds of Formula 18 are first converted to the corresponding zinc salt, and are then utilized as such in the coupling reaction with the reagent of Formula 3.
  • the formation of the zinc salts is conducted under conditions which exclude water and oxygen.
  • a dry, ether-type solvent such as dialkyl ether or a cyclic ether such as a furan or pyran, particularly a tetrahydrofuran, may be used as the solvent.
  • a solution of the compound of Formula 18 is first prepared under an inert atmosphere (argon or nitrogen) and then a strong base such as n-butyl lithium is added (in about a 10% molar excess). This reaction is begun at a reduced temperature of between -10 degrees and +10 degrees C, preferably about 0 degrees C.
  • reaction mixture is stirred for a short period, between 30 minutes and 2 hours, and then treated with about a 10% molar excess of fused zinc chloride dissolved in the reaction solvent. This mixture is stirred for an additional 1-3 hours at about the starting temperature, then the temperature is increased to about ambient temperature for 10-40 minutes.
  • Formula 1 is hydrogen.
  • the aniline derivative of Formula 24 is first acylated with the acyl chloride of the Formula 25.
  • R 3 is hydrogen, the starting material of Formula 24 is unsubstituted aniline.
  • the acyl chloride (Formula 25) carries the R 1 and R 2 substituents of on its unsaturated carbon, in the ⁇ position.
  • R 1 and R 2 are respectfully ethyl, n-propyl and n-butyl.
  • Such acid chlorides can be synthesized in accordance with procedures known in the art.
  • the amide of Formula 26 is then cyclized under Friedel-Crafts type reaction conditions (aluminum chloride) to give the 2-oxo-1,2,3,4-tetrahydroquinoline derivatives of Formula 27.
  • Lithium aluminum hydride or another acceptable reducing agent of similar type is then used to reduce the compounds of Formula 27, (preferably in inert solvent such as diethyl ether).
  • the compound is N-acetylated using acetyl chloride (in a polar solvent such as pyridine) followed by
  • the 6-acetyl group of the compounds of Formula 29 is thereafter converted into an ethynyl group in the manner described above for analogous transformation of 4,4-dialkyl-6-acetyl chromans.
  • the 4,4 dialkyl-6-ethynyl 1,2,3,4-tetrahydroquinoline (Formula 30) may be coupled directly or as the corresponding ZnCl salt, with compounds of Formula 3.
  • esters including ethyl chloronicotinate, and ethyl-6-iodomicotinate can serve as the reagents, for coupling with the correspoding ethynyl compounds or their zinc salts to provide the target compounds of the invention.
  • 6-Bromo-4,4-diethylthiochroman (Compound 25) A mixture of 1.18 g (8.3 mmol) of phosphorus pentoxide in 10 mL of methanesulfonic acid w ⁇ s heated for 45 minutes at 75°C. The solution was allowed to cool slightly and 2.58 g (8.5 mmol) of 3-ethyl-5-(4-bromophenylthio)-3-pentanol (Compound 24) was added. The resulting mixture was stirred at room temperature for 2 hours. The mixture was then cooled to 0°C and treated with 50 mL of water and extracted with 3 X 50 mL of ether.
  • triethylamine was degassed with argon for 15 minutes at -78°C.
  • To the suspension was added 6.95 g (71 mmol) of (trimethylsilyl) acetylene then 0.41 g (58 mmol) of bis (triphenylphosphine) palladium (II) chloride.
  • the solution was degassed with argon for an additional 5 minutes and the resulting mixture was allowed to warm to 0°C. The tube was sealed and the mixture heated to 55°C for 15 hours.
  • the mixture was allowed to cool to room temperature and was filtered through celite and silica gel using 200 ml. of hexane. The solvent was removed in-vacuo and the residual oil purified by flash
  • the mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate.
  • the solvents were removed in-vacuo and the residual oil was purified by flash chromatography (SiO 2 , 5% ethyl acetate in
  • the mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate.
  • the solvents were removed in-vacuo and residual oil purified by flash chromatography (SiO 2 , 5% ethyl acetate in hexanes) to give the title compound as a yellow oil.
  • the reaction was stirred at room temperature for 2 hours. The mixture was then cooled to 0°C, treated with 50 mL of water and extracted with 3 X 50 mL of ether.
  • the suspension was degassed with argon for an additional 5 minutes, the tube was sealed and the mixture stirred at 55°c for 16 hours.
  • the mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate.
  • the solvents were removed in-vacuo and residual oil purified by flash chromatography (SiO 2 , 5% ethyl acetate in hexanes) to give the title compound as a yellow oil.
  • the mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane.
  • the solvents were removed in-vacuo and the residual oil purified by flash chromatography (SiO 2 , 5% ethyl acetate in hexanes) to give the title compound as an orange oil.
  • the mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate.
  • the solvents were removed in-vacuo and the residual oil purified by flash chromatography (SiO 2 , 5% ethyl acetate in hexanes) to give the title compound as a yellow oil.
  • examplary compounds of the invention can be prepared. ethyl 6-[(4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl]nicotinate;

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Abstract

Compounds of formula (I) where R1 and R2, independently are n-alkyl groups having 2 to 8 carbons, or cyclo or branch-chained alkyl groups of 3 to 8 carbons; R3 is hydrogen or lower alkyl; X is S, O or N-R4 where R4 is hydrogen or lower alkyl; Y is phenyl or a heteroaryl group selected from a group consisting or pyridyl, thienyl, furyl, pyridazinyl, pyrimidinyl, and pyrazinyl; A is (CH2)n where n is 0-5, lower branched chain alkyl having 3 to 6 carbons, cycloalkyl having 3 to 6 carbons, alkenyl having 2 to 6 carbons and 1 or 2 double bonds, alkynyl having 2 to 6 carbons and 1 or 2 triple bonds; B is hydrogen, COOH or a pharmaceutically acceptable salt thereof, COOR5, CONR6R7, -CH2OH, CH2OR8, CH2OCOR8, CHO, CH(OR9)2, CHOR10O, -COR11, CR11(OR9)2, or CR11OR10O, where R5 is an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or R5 is phenyl or lower alkylphenyl, R6 and R7 independently are hydrogen, an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or phenyl or lower alkylphenyl, R8 is alkyl of 1 to 10 carbons, phenyl or lower alkylphenyl, R9 is lower alkyl, R10 is divalent alkyl radical of 2-5 carbons and R11 is an alkyl, cycloalkyl or alkenyl group containing 1 to 5 carbons, have retinoic acid like activity.

Description

DISUBSTITUTED ACETYLENES BEARING HETEROBICYCLIC GROUPS
AND HETEROAROMATIC OR PHENYL GROUPS HAVING
RETINOID LIKE ACTIVITY
BACKGROUND OF THE INVENTION
1. Cross-Reference to Related Application
The present application is a continuation-in-part of application serial number 07/326,191, filed on March 20, 1989, expected to be issued as United States Patent No. 5,089,509 on February 18, 1992, which in turn was a continuation-in-part of application serial number
07/246,037, filed on September 15, 1988, now abandoned, which itself was a continuation of application serial number 028,279, filed on March 20, 1987, now abandoned.
2. Field of the Invention
The present invention is directed to novel
compounds which have retinoic acid-like biological activity. More specifically, the present invention relates to compounds having an ethynyl-heteroaromatic or an ethynyl-phenyl portion and a second portion which is an alkyl-substituted thiochromanyl, chromanyl or tetrahydroquinolinyul group. The present invention also relates to pharmaceutical compositions comprising these compounds and to methods of using the compounds and compositions.
3. Related Art
United States Patent No. 4,326,055 discloses ethene derivatives which have a substituted phenyl ring and a substituted indane or tetrahydronaphtalene group. The compounds are described as tumor inhibiting agents, and useful for treating dermatological conditions and rheumatic illnesses.
United States Patent No. 4,723,028 discloses 1,2-diphenylethene (stilbene) derivataves which have retinoic acid-like activity.
United States Patent No. 4,740,519 discloses certain aromatic heterocycle derivatives which have retinoic acid like activity.
Published European Patent Application 0 130795 discloses ethene derivatives, where the ethene moiety is substituted by a substituted phenyl group and by a substitituted chroman, thiochroman or quinoline group. The compounds are useful for inhibiting the degradation of cartilage in mammals.
European Patent Application 176034A (published April 2, 1986) discloses tetrahydronaphtalene compounds having an ethynylbenzoic group. United States Patent No. 4,739,098 discloses compounds wherein three
olefinic units from the acid-containing moiety of retinoic acid are replaced by an ethynylphenyl
functionality. These compound have retinoic acid-like biological activity.
United States Patent No. 4,810,804 (issued on March 7, 1989) based on an application of the same inventor and assigned to the same assignee as the present application, discloses such disubstituted acetylene compounds wherein one of the substituents of the acetylene (ethyne) group is a substituted phenyl group, and the second substituent is a 4,4-dimethyl substituted 6-chromanyl, 6-thiochromanyl or 6-tetrahydroguinolinyl group. The compounds disclosed and claimed in United States Patent No. 4,810,804 have retinoic acid-like biological activity.
A published European patent application of the present applicant (Publication No. 0284288, published on September 28, 1988) describes compounds having retinoic acid like activity which are 4,4 dimethyl substituted chroman-6-yl, and 4,4 dimethyl-substituted thiochroman-6-yl acetylenes also substituted by a substituted heteroaryl group. This European
application is based on the earliest of the "parent" applications of the present continuation-in-part application.
United States Patent No. 4,980,369 describes compounds having retinoic acid like activity which are 2,2,4,4 tetraalkyl substituted chroman-6-yl, and
2,2,4,4 tetraalkyl substituted thiochroman-6-yl
acetylenes also substituted by a substituted phenyl group.
Several co-pending applications and recently issued patents of the present inventor, which are assigned to the assignee of the present application, are directed to further compounds having retinoic acidlike activity. Among these United States Patent No. 5,045,551 (issued on September 3, 1991 and assigned to the same assignee as the present application) describes compounds having retinoic acid like activity which are 2,2,4,4 tetraalkyl substituted chroman-6-yl, and
2,2,4,4 tetraalkyl substituted thiochroman-6-yl
acetylenes also substituted by a substituted heteroaryl group.
Retinoic acid-like activity has been generally recognized in the art to be associated with useful biological activity. Specifically, compounds having retinoic acid-like activity are useful as regulators of cell proliferation and differentiation, and
particularly as agents for treating dermatoses, such as acne, Darier's disease, psoriasis, icthyosis, eczema and atopic dermatitis, and for treating and preventing malignant hyperproliterative diseases such as epithelial cancer, breast cancer, prostatic cancer, head and neck cancer and myeloid leukemias, for
reversing and preventing atherosclerosis and restenosis resulting from neointimal hyperproliferation, for treating and preventing other non-malignant
hyperproliferative diseases such as endometrial
hyperplasia, benign prostatic hypertrophy,
proliferative vitreal retinopathy and dysplasias, for treating autoimmune diseases and immunological
disorders (e.g. lupus erythematosus), for treating chronic inflammatory diseases such as pulmonary
fibrosis, for treating and preventing diseases
associated with lipid metabolism and transport such as dyslipidemias, for promoting wound healing, for
treating dry eye syndrome and for reversing and
preventing the effects of sun damage to skin.
Summary of the Invention
This invention covers compounds of Formula 1
Figure imgf000006_0001
wherein R1 and R2, independently are n-alkyl groups having 2 to 8 carbons, or cyclo or branch-chained alkyl groups of 3 to 8 carbons;
R3 is hydrogen or lower alkyl;
X is S, O or N-R4 where R4 is hydrogen or lower alkyl; Y is phenyl or a heteroaryl group selected from a group consisting of pyridyl, thienyl, furyl,
pyridazinyl, pyrimidinyl, pyrazinyl;
A is (CH2)n where n is 0-5, lower branched chain alkyl having 3 to 6 carbons, cycloalkyl having 3 to 6 carbons, alkenyl having 2 to 6 carbons and 1 or 2 double bonds, alkynyl having 2 to 6 carbons and 1 or 2 triple bonds;
B is hydrogen, COOH or a pharmaceutically
acceptable salt thereof, COOR5, CONR6R7 , -CH2OH, CH2OR8, CH2OCOR8, CHO, CH(OR9)2, CHOR10O, -COR11,
CR11(OR9)2, or CR11OR10O, wnere R5 is an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or R5 is phenyl or lower alkylphenyl, R6 and R7 independently are hydrogen, an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or phenyl or lower alkylphenyl, R8 is alkyl of 1 to 10 carbons, phenyl or lower alkylphenyl, R9 is lower alkyl, R10 is divalent alkyl radical of 2 - 5 carbons and R11 is an alkyl, cycloalkyl or alkenyl group containing 1 to 5 carbons.
In a second aspect, this invention relates to the use of the compounds of Formula 1 as regulators of cell proliferation and differentiation, and particularly as agents for treating dermatoses, such as acne, Darier's disease, psoriasis, icthyosis, eczema and atopic dermatitis, and for treating and preventing malignant hyperproliterative diseases such as epithelial cancer, breast cancer, prostatic cancer, head and neck cancer and myeloid leukemias, for reversing and preventing atherosclerosis and restenosis resulting from
neointimal hyperproliferation, for treating and
preventing other non-malignant hyperproliferative diseases such as endometrial hyperplasia, benign prostatic hypertrophy, proliferative vitreal
retinopaythy and dysplasias, for treating autoimmune diseases and immunological disorders (e.g. lupus erythematosus), for treating chronic inflammatory diseases such as pulmonary fibrosis, for treating and preventing diseases associated with lipid metabolism and transport such as dyslipidemias, for promoting wound healing, for treating dry eye syndrome and for reversing and preventing the effects of sun damage to skin.
This invention also relates to a pharmaceutical formulation comprising a compound of Formula 1 in admixture with a pharmaceutically acceptable excipient.
In another aspect, this invention relates to the process for making a compound of Formula 1 which process comprises reacting a compound of Formula 2 with a compound of Formula 3 in the presence of cuprous iodide and Pd(PQ3)2Cl2 (Q is phenyl) or a similar complex
L-Y—A—B'
Figure imgf000008_0001
Formula 3 where A, R1 through R3, and Y are defined as above, L is a halogen, preferably I; and B' is H, or a protected acid, alcohol, aldehyde or ketone, where B' can be identical with B as defined above, or B' is such a precursor of the group B which is converted readily through a reaction or reactions well known by the practicing organic chemist into the group B of the compounds of the present invention.
Alternatively, this invention relates to the process for making a compound of Formula 1 which process comprises reacting a a zinc salt of Formula 4 with a compound of Formula 3 in the presence of
Pd(PQ3)4 (Q is phenyl) or a similar complex. In
Formula 4, R1 through R3 and X are defined as in connection with Formula 1 above.
Figure imgf000009_0001
The present invention also relates to the process of converting a compound of Formula 1 into another compound of the same general formula, or converting a compound of Formula 5 into a compound of Formula 1, such conversion being performed through a reaction or reactions well within the skill of the practicing organic chemist, and including reactions such as:
homologating an acid where A is (CH2)n' where n' is 0-4 to give an acid of Formula 1; or
converting an acid of Formula 1 to a salt; or forming an acid addition salt;
converting an acid of Formula 1 to an ester; or converting an acid of Formula 1 to an amide; or reducing an acid of Formula 1 to an alcohol or aldehyde; or
converting an alcohol of Formula 1 to an ether or ester; or
oxidizing an alcohol of Formula 1 to an aldehyde; or
converting an aldehyde of Formula 1 to an acetal; or
converting a ketone of Formula 1 to a ketal.
In Formula 5 all symbols are defined as above in connection with Formula 1 and Formula 3, as applicable,
Figure imgf000010_0001
General Embodiments
Definitions
The term alkyl refers to and covers any and all groups which are known as normal alkyl, branch-chain alkyl and cycloalkyl. The term alkenyl refers to and covers normal alkenyl, branch chain alkenyl and
cycloalkenyl groups having one or more sites of
unsaturation. Lower alkyl means the above-defined broad definition of alkyl groups having 1 to 6 carbons, and as applicable, 3 to 6 carbons for branch chained and cyclo-alkyl groups. Lower alkenyl is defined similarly having 2 to 6 carbons for normal alkenyl, and 3 to 6 carbons for branch chained and cycloalkenyl groups.
The term "ester" as used here refers to and covers any compound falling within the definition of that term as classically used in organic chemistry. Where B (of Formula 1) is -COOH, this term covers the products derived from treatment of this function with alcohols , preferably with aliphatic alcohols having 1-6 carbons. Where the ester is derived from compounds where B is -CH2OH, this term covers compounds of the formula
-CH2OOCR8 where R8 is any substituted or unsubstituted aliphatic, aromatic or aliphatic-aromatic group, preferably with 1-6 carbons in the aliphatic portions.
Preferred esters are derived from the saturated aliphatic alcohols or acids of ten or fewer carbon atoms or the cyclic or saturated aliphatic cyclic alcohols and acids of 5 to 10 carbon atoms.
Particularly preferred aliphatic esters are those derived from lower alkyl acids or alcohols. Also preferred are the phenyl or lower alkylphenyl esters.
Amide has the meaning classically accorded that term in organic chemistry. In this instance it
includes the unsubstituted amides and all aliphatic and aromatic mono-and di-substituted amides. Preferred amides are the mono- and di-substituted amides derived from the saturated aliphatic radicals of ten or fewer carbon atoms or the cyclic or saturated aliphatic-cyclic radicals of 5 to 10 carbon atoms. Particularly preferred amides are those derived from lower alkyl amines. Also preferred are mono- and di-substituted amides derived from the phenyl or lower alkylphenyl amines. Unsubstituted amides are also preferred.
Acetals and ketals include the radicals of the formula -CK where K is (-OR)2. Here, R is lower alkyl. Also, K may be -OR1O- where R1 is lower alkyl of 2-5 carbon atoms, straight chain or branched.
A pharmaceutically acceptable salt may be prepared for any compound of this invention having a
functionality capable of forming such salt, for example an acid or an amine functionality. A pharmaceutically acceptable salt may be any salt which retains the activity of the parent compound and does not impart any deleterious or untoward effect on the subject to which it is administered and in the context in which it is administered.
Such a salt may be derived from any organic or inorganic acid or base. The salt may be a mono or polyvalent ion. Of particular interest where the acid function is concerned are the inorganic ions, sodium, potassium, calcium, and magnesium. Organic amine salts may be made with amines, particularly ammonium salts such as mono-, di- and trialkyl amines or ethanol amines. Salts may also be formed with caffeine, tromethamine and similar molecules. Where there is a nitrogen sufficiently basic as to be capable of forming acid addition salts, such may be formed with any inorganic or organic acids or alkylating agent such as methyl iodide. Preferred salts are those formed with inorganic acids such as hydrochloric acid, sulfuric acid or phosphoric acid. Any of a number of simple organic acids such as mono-, di- or tri-acid may also be used.
Some of the compounds of the present invention (those where A is alkenyl) contain at least one double bond and therefore may have trans and cis (E and Z) isomers. In addition, some of the compounds of the present invention may contain one or more chiral centers and therefore exist in enantiomeric and
diastereomeric forms. The scope of the present
invention is intended to cover all such isomers per se. as well as mixtures of cis and trans isomers, mixtures of diastereomers and racemic mixtures of enantiomers (optical isomers) as well.
With respect to the groups R1 and R2 of Formula 1, the preferred compounds of the present invention are those where the R1 and R2 groups are identical with one another. Still more preferred are those compounds where R1 and R2 are normal alkyl having 2 to 6 carbons.
With respect to the R3 group in Formula 1, the compounds are preferred where R1 is hydrogen or methyl.
With regard to the heterocyclic portion of the compounds of the invention which bears the R1 and R2 groups, the thiochroman and chroman rings (X is S or O) are preferred. Between these two, still more preferred are the thiochroman derivatives (X is S).
With regard to the aromatic ring on the "other" side of the ethyne moeity of the compounds of the present invention, compounds are preferred where the aromatic ring is phenyl, pyridyl or thienyl. In other words, for the preferred compounds in Formula 1 the Y substituent is selected from a divalent phenyl, pyridyl or thienyl radical, and among these the phenyl and pyridyl derivatives are still more preferred. With regard to the substitution pattern on the phenyl group (when Y is phenyl) the compounds are preferred where the ethyne and A-B portions are 1 , 4 (para) to one another. The preferred substitution pattern on the pyridyl radical (when Y is pyridyl) is 2 and 5 in accordance with pyridine nomenclature (equivalent to 2 and 6 in accordance with nicσtinic acid nomenclature.) With regard to. the A substituent on the phenyl or heteroaromatic ring, compounds are preferred where A is (CH2)n, and still more preferred where n is zero.
With respect to the symbol B, the compounds of the invention are preferred where B is -COOH, or an alkali metal salt or organic amine salt thereof.
Alternatively, compounds are preferred where B is respresented by COOR5 (ester where R5 is lower alkyl) , CONR6R7 (amide) -CH2OH (alcohol), CH2OCOR8, CH2OR8 (R8 is lower alkyl; lower alkyl esters and ethers formed with a lower alkanol) or B is -CHO or CH(OR9)2, CHOR10O (acetal derivatives), where R9 and R10 are defined as in connection with Formula 1. The most preferred compounds of the invention are shown in Formula 6.
Figure imgf000014_0001
Formula 6
Compound 1 R1=R2=CH3CH2- Z=CH; R* 5 = ethyl;
Compound 2 R1=R2=CH3CH2- Z=CH; R* 5 = H;
Compound 3 R1=R2=CH3CH2- Z=N; R* 5 = ethyl;
Compound 4 R1=R2=CH3CH2- Z=N; R* 5 = H;
Compound 5 R1=R2=CH3(CH2)2- Z=CH ; R5 * = ethyl;
Compound 6 R1=R2=CH3(CH2)2- Z=CH ; R5 * = H;
Compound 7 R1=R2=CH3(CH2)2- Z=N ; R5 * = ethyl;
Compound 8 R1=R2=CH3(CH2)2- Z=N; R5 * = H;
Compound 9 R1=R2=CH3(CH2)3- Z=CH ; R5 * = ethyl;
Compound 10 R1=R2=CH3(CH2)3- Z=CH ; R5 * = H;
Compound 11 R1=R2=CH3(CH2)3- Z=N; R5 * = ethyl;
Compound 12 R1=R2=CH3(CH2)3- Z=N ; R5 * = H;
The compounds of this invention may be
administered systemically or topically, depending on such considerations as the condition to be treated, need for site-specific treatment, quantity of drug to be administered, and similar considerations.
In the treatment of dermatoses, it will generally be preferred to administer the drug topically, though in certain cases such as treatment of severe cystic acne, oral administration may also be used. Any common topical formulation such as a solution, suspension, gel, ointment, or salve and the like may be used.
Preparation of such topical formulations are well described in the art of pharmaceutical formulations as exemplified, for example. Remington's Pharmaceutical Science, Edition 17, Mack Publishing Company, Easton, Pennsylvania. For topical application, these compounds could also be administered as a powder or spray, particularly in aerosol form.
If the drug is to be administered systemically, it may be confected as a powder, pill, tablet or the like, or as a syrup or elixir for oral administration. For intravenous or intraperitoneal administration, the compound will be prepared as a solution or suspension capable of being administered by injection. In certain cases, it may be useful to formulate these compounds in suppository form or as an extended release formulation for deposit under the skin or intermuscular injection.
Other medicaments can be added to such topical formulation for such secondary purposes as treating skin dryness, providing protection against light; other medications for treating dermatoses, preventing
infection, reducing irritation, inflammation and the like.
Treatment of dermatoses or any other indications known or discovered to be susceptible to treatment by retinoic acid-like compounds will be effected by administration of the therapeutically effective dose of one or more compounds of the instant invention. A therapeutic concentration will be that concentration which effects reduction of the particular condition, or retards its expansion. In certain instances, the drug potentially could be used in a prophylactic manner to prevent onset of a particular condition. A given therapeutic concentration will vary from condition to condition and in certain instances may vary with the severity of the condition being treated and the
patient's susceptibility to treatment. Accordingly, a given therapeutic concentration will be best determined at the time and place through routine experimentation. However, it is anticipated that in the treatment of, for example, acne, or other such dermatoses, that a formulation containing between 0.001 and 5 percent by weight, preferably about 0.01 to 1% will usually constitute a therapeutically effective concentration. If administered systemically, an amount between 0.01 and 100 mg per kg body weight per day, but preferably about 0.1 to 10 mg/kg, will effect a therapeutic result in most instances.
The retionic acid like activity of these compounds was confirmed through the classic measure of retionic acid activity involving the effects of retionic acid on ornithine decarboxylase. The original work on the correlation between retinoic acid and decrease in cell proliferation was done by Verma & Boutwell, Cancer Research. 1977, 37, 2196-2201. That reference
discloses that ornithine decarboxylase (ODC) activity increased precedent to polyamine biosynthesis. It has been established elsewhere that increases in polyamine synthesis can be correlated or associated with cellular proliferation. Thus, if ODC activity could be
inhibited, cell hyperproliferation could be modulated. Although all causes for ODC activity increase are unknown, it is known that
12-O-tetradecanoyl-phorbol-13-acetate (TPA) induces ODC activity. Retinoic acid inhibits this induction of ODC activity by TPA. The compounds of this invention also inhibit TPA induction of ODC as demonstrated by an assay essentially following the procedure set out in Cancer Res., 35: 1662-1670, 1975.
By way of example of retinoic acid-like activity it is noted that in the assay conducted essentially in accordance with the method of Verma & Boutwell, ibid, the following examples of the preferred compounds of the present invention (Compounds 3, 7 and 11) attained an 80% inhibition of TPA induced ODC activity at the following concentrations (IC80):
Compound IC80 conc (nmols)
3 0.3
7 2.5
11 0.6
Specific Embodiments
The compounds of this invention can be made by a number of different synthetic chemical pathways. To illustrate this invention, there is here outlined a series of steps which have been proven to provide the compounds of Formula 1 when such synthesis is followed in fact and in spirit. The synthetic chemist will readily appreciate that the conditions set out here are specific embodiments which can be generalized to any and all of the compounds represented by Formula 1.
Furthermore, the synthetic chemist will readily
appreciate that the herein described synthetic steps may be varied and or adjusted by those skilled in the art without departing from the scope and spirit of the invention.
Figure imgf000019_0001
The thiochroman derivatives of the present invention, that is compounds of Formula 1 where X is S, are prepared in accordance with Reaction Scheme 1. In accordance with this sequence of reactions, a 4- bromothiophenol derivative of Formula 7 is reacted with ethyl acrylate to provide the ethyl 3-(4-bromophenylthio)propionate derivative of Formula 8. In this reaction scheme the symbol R3 has the same
definition as in Formula 1 above. It follows from the foregoing that when R3 is H, then the starting material of the reaction sequence is 4-bromothiophenol; when R3 is methyl, for example, then the starting material of Formula 7 is 3-methyl-4-bromothiophenol. To introduce the R1 and R2 substituents into the compounds of the invention the ethyl 3-(4-bromophenylthio)propionate derivative of Formula 8 is reacted with a Grignard reagent, such as ethyl-, n-propyl-, and n-butylmagnesium bromide. The Grignard reaction is preferably conducted in the presence of cerium
trichloride (CeCl3). In Reaction Scheme 1 the Grignard reagent is denoted as "R1,2" to signify that both the R1 and the R2 groups can be introduced in this manner, and that in the preferred embodiments these groups are identical with one another. The product of the
Grignard reaction is the tertiary alcohol of Formula 9 which is thereafter cyclized (under Friedel Crafts like conditions, such as in the presence of phosphorous pentoxide and methanesulfonic acid) to provide the 6-bromo-4,4-dialkylthiochroman derivative of Formula 10. The compound of Formula 10 is thereafter reacted with trimethylsilylacetylene in the presence of cuprous iodide (Cul) and a suitable catalyst, typically having the formula Pd(PQ3)2Cl2 (Q is phenyl). The reaction is typically conducted in the presence of bis (triphenylphosphine) palladium(II) chloride catalyst, an acid acceptor (such as triethylamine) under an inert gas (argon) atmosphere by heating in a sealed tube.
The trimethylsilyl group is removed from the resulting (4,4-dialkylthiochroman-6-yl)-trimethylsilylacetylene derivative of Formula 11 under basic conditions to provide the (4,4-dialkylthiochroman-6-yl)-acetylene derivative of Formula 12.
In order to introduce the phenyl or heteroaryl substituent on the acetylene (ethyne) portion of the compounds of Formula 12, the compound is coupled with the reagent L-Y-A-B' (Formula 3) where the symbols L, Y, A and B' have the same meaning as defined in connection with Formula 3. In other words, the phenyl or heteroaryl substituent is introduced into the 6-thiochromanylacetylene of Formula 12 by reacting the latter with a halogen substituted phenyl compound or heteroaromatic compound (Formula 3) in which the aromatic nucleus (Y) either has the desired substituent [A-B], or wherein the actual substituent A-B' can be readily converted to the desired substituent by means of organic reactions well known in the art.
Coupling of the 4,4,-dialkyl-6-thiochromanyl acetylene of Formula 12 with the reagent L-Y-A-B'
(Formula 3) is affected directly in the presence of cuprous iodide, a suitable catalyst, typically of the formula Pd(PQ3)2Cl2 (Q is phenyl) and an acid acceptor, such as triethylamine, by heating in a sealed tube under an inert gas (argon) atmosphere.
The resulting disubstituted acetylene compound (Formula 1, X=S) may be the target compound made in accordance with the invention, or maybe readily converted into the target compound by such steps as salt formation, esterification, deesterification, homologation, amide formation and the like. These steps are further discussed below.
The disubstituted acetylene compound (Formula 1, X=S) may also be obtained by first converting the 4,4-dialkyl-6-thiochromanyl acetylene derivative of Formula 12 into the corresponding metal salt, such as a zinc salt, and thereafter coupling the zinc salt with the reagent L-Y-A-B' (Formula 3) in the presence of a catalyst having the formula Pd(PQ3)4 (Q is phenyl), or similar complex.
Derivatization of Compound 18 is indicated in Reaction Scheme 1 as conversion to "homologs and derivatives".
More specifically with respect to either
derivatization or deblocking of protected
functionalities, or with respect to the preparation of compounds of the formula L-Y-A-B' (Formula 3), (which after coupling either directly yield the compounds of the invention, or are readily converted into them) the following is noted.
Where a protected phenyl or heteroaromatic
compound is needed to couple with the compounds of Formula 2, such may be prepared from their
corresponding acids, alcohols, ketones or aldehydes. These starting materials, the protected acids,
alcohols, aldehydes or ketones, are all available from chemical manufacturers or can be prepared by published methods. Carboxylic acids are typically esterified by refluxing the acid in a solution of the appropriate alcohol in the presence of an acid catalyst such as hydrogen chloride or thionyl chloride. Alternatively, the carboxylic acid can be condensed with the appropriate alcohol in the presence of
dicyclohexylcarbodiimide and dimethylaminopyridine. The ester is recovered and purified by conventional means. Acetals and ketals are readily made by the method described in March, "Advanced Organic
Chemistry," 2nd Edition, McGraw-Hill Book Company, p 810). Alcohols, aldehydes and ketones all may be protected by forming respectively, ethers and esters, acetals or ketals by known methods such as those described in McOmie, Plenum Publishing Press, 1973 and Protecting Groups, Ed. Greene, John Wiley & Sons, 1981.
To increase the value of n before effecting a coupling reaction, where such compounds are not
available from a commercial source, the pheny or heteroaromatic derivatives where B is -COOH are
subjected to homologation by successive treatment under Arndt-Eistert conditions or other homologation
procedures. Alternatively, phenyl or heteroaromatic derivatives where B is different from COOH, may also be homologated by appropriate procedures. The
homologated acids can then be esterified by the general procedure outlined in the preceding paragraph.
An alternative means for making compounds of
Formula 1 where A is (CH2)n and n is 1 - 5, is to subject the compounds of Formula 1, where B is an acid or other function, to homologation, using the Arndt-Eistert method referred to above, or other homologation procedures.
The acids and salts derived from Formula 1 are readily obtainable from the corresponding esters.
Basic saponification with an alkali metal base will provide the acid. For example, an ester of Formula 1 may be dissolved in a polar solvent such as an alkanol, preferably under an inert atmosphere at room
temperature, with about a three molar excess of base, for example, potassium hydroxide. The solution is stirred for an extended period of time, between 15 and 20 hours, cooled, acidified and the hydrolysate
recovered by conventional means.
The amide may be formed by any appropriate
amidation means known in the art from the corresponding esters or carboxylic acids. One way to prepare such compounds is to convert an acid to an acid chloride and then treat that compound with ammonium hydroxide or an appropriate amine. For example, the acid is treated with an alcoholic base solution such as ethanolic KOH (in approximately a 10% molar excess) at room
temperature for about 30 minutes. The solvent is removed and the residue taken up in an organic solvent such as diethyl ether, treated with a dialkyl formamide and then a 10-fold excess of oxalyl chloride. This is all effected at a moderately reduced temperature between about -10 degrees and +10 degrees C. The last mentioned solution is then stirred at the reduced temperature for 1-4 hours, preferably 2 hours. Solvent removal provides a residue which is taken up in an inert inorganic solvent such as benzene, cooled to about 0 degrees C and treated with concentrated
ammonium hydroxide. The resulting mixture is stirred at a reduced temperature for 1 - 4 hours. The product is recovered by conventional means.
Alcohols are made by converting the corresponding acids to the acid chloride with thionyl chloride or other means (J. March, "Advanced Organic Chemistry", 2nd Edition, McGraw-Hill Book Company), then reducing the acid chloride with sodium borohydride (March, Ibid, pg. 1124), which gives the corresponding alcohols.
Alternatively, esters may be reduced with lithium aluminum hydride at reduced temperatures. Alkylating these alcohols with appropriate alky halides under Williamson reaction conditions (March, Ibid, pg. 357) gives the corresponding ethers. These alcohols can be converted to esters by reacting them with appropriate acids in the presence of acid catalysts or
dicyclohexlcarbodiimide and dimethlaminopyridine.
Aldehydes can be prepared from the corresponding primary alcohols using mild oxidizing agents such as pyridinium dichromate in methylene chloride (Corey, E. J., Schmidt, G., Tet. Lett., 399, 1979), or dimethyl sulfoxide/oxalyl chloride in methylene chloride (Omura, K., Swern, D., Tetrahedron. 1978, 34, 1651).
Ketones can be prepared from an appropriate aldehyde by treating the aldehyde with an alkyl
Grignard reagent or similar reagent followed by
oxidation.
Acetals or ketals can be prepared from the
corresponding aldehyde or ketone by the method
described in March, Ibid, p 810.
Compounds where B is H can be prepared from the corresponding halogenated aromatic compound (preferably where the halogen is I) by hydrogenation.
Figure imgf000026_0001
The chroman derivatives of the present invention (compounds of Formula 1 where X is 0) can be prepared in a reaction seguence which is similar to the reaction sequence used for preparing the thiochroman
derivatives, with the major difference being that instead of a suitable thiophenol derivative the
corresponding phenol derivative is used as a starting material. Thus, with reference to Reaction Scheme 2, the 4-bromophenol derivative of Formula 13 is reacted with ethylacrylate to provide the ethyl 3-(4-bromophenyl)propionate derivative of Formula 14. (The symbol R3 has the same definition as in Formula 1 above; when R3 is H, then the starting material of the reaction sequence is 4-bromophenol; when R3 is methyl then the starting material of Formula 13 is 3-methyl-4-bromophenol.) To introduce the R1 and R2 substituents into the compounds of the invention the ethyl 3-(4-bromophenyl)propionate derivative of Formula 14 is reacted with a Grignard reagent, such as ethyl-, n- propyl-, and n-butylmagnesium bromide. As in the previous reaction scheme in this scheme also, the
Grignard reagent is denoted as "R1 ,2" to signify that both the R1 and the R2 groups can be introduced in this manner, and that these groups are identical with one another in the preferred embodiments. The product of the Grignard reaction is the tertiary alcohol of
Formula 15 which is thereafter cyclized (under Friedel Crafts like conditions) to provide the 6-bromo-4,4-dialkylchroman derivative of Formula 16. The compound of Formula 16 is thereafter reacted with trimethylsilylacetylene in the presence of cuprous iodide (CoI) and a suitable catalyst, typically having the formula Pd(PQ3)2Cl2 (Q is phenyl). As the reaction of the corresponding thiochromans (Formula 10) this reaction also is typically conducted in the presence of
bis (triphenylphosphine)palladium(II) chloride catalyst, an acid acceptor (such as triethylamine) under an inert gas (argon) atmosphere by heating in a sealed tube.
The trimethylsilyl group is removed from the resulting (4,4-dialkylchroman-6-yl)-trimethylsilylacetylene derivative of Formula 17 under basic conditions to provide the (4,4-dialkylchroman-6-yl)-acetylene
derivative of Formula 18. The compound of Formula 18 is therafter coupled with the reagent L-Y-A-B ' (Formula 3). In analogy to the coupling of the corresponding thiochroman compounds of Formula 12 with the compounds of Formula 3, the coupling of the 4,4,-dialkyl-6-chromanyl acetylene of Formula 18 with the reagent L-Y-A-B" (Formula 3) is also conducted in the presence of cuprous iodide, a suitable catalyst, typically of the formula Pd(PQ3)2Cl2 (Q is phenyl) and an acid acceptor, such as triethylamine, by heating in a sealed tube under an inert gas (argon) atmosphere.
The resulting disubstituted acetylene compound (Formula 1, X=O) may be the target compound made in accordance with the invention, or maybe readily
converted into the target compound by such steps as salt formation, esterification, deesterification, homologation, amide formation and the like.
An alternative method for preparing the compounds of Formula 1 where X=O, and specifically for preparing the intermediate of Formula 18 which is suitable for coupling with the reagent L-Y-A-B' (Formula 3) is a modification of the procedure disclosed in United
States Patent No. 4,810,804 and depicted in Reaction Scheme 2 of that patent. For this reason, the specification of United States Patent No. 4,810,804 is expressly incorporated herein by reference. The procedure as applied to compounds of Formula 1 where R1 and R2 would be methyl, is also disclosed in the parent of the present continuation-in-part application serial number 07/326,191, filed on March 20, 1989, expected to be issued as United States Patent No. 5,089,509. The sequence of reactions according to this procedure is shown in Reaction Scheme 3 and is summarized below.
Figure imgf000029_0001
Thus, diphenyl chlorophosphate indicated as (QO)2POCl (commercially available e. g. from Aldrich, or prepared by means known in the art) and the alcohol of Formula 19 are reacted to form the phosphate of Formula 20. In the structure of the alcohol of Formula
19 R1 is defined as in connection with Formula 1, and R2 is defined as an alkyl group one carbon shorter than the R2 group defined above in connection with Formula 1. In other words, where as in the most preferred compounds of the invention R2 is respectively ethyl, n-propyl and n-butyl, the R2 group of the alcohol of Formula 19 is respectively methyl, ethyl, and n-propyl. The unsaturated alcohol of Formula 19 can be prepared in accordance with procedures known in the art. A preferred method for preparing the phosphate of Formula
20 is to dissolve the alcohol of Formula 19 in an excess of pyridine or the like under an inert
atmosphere cooled to approximately -10 degrees to 10 degrees C. This solution is then added drop-wise, under an inert atmosphere, to a solution of diphenyl chlorophosphate in about an equal amount of the
reaction solvent. About a 2-5% molar excess of
diphenyl chlorophosphate relative to the alcohol of Formula 19 is employed. Thereafter, the mixture is heated until the formation of the phosphate ester of Formula 20 is substantially completed. The product is then recovered by conventional means. The diphenyl phosphate ester (Formula 20) is then reacted with a phenol derivative of Formula 21 to effect formation of the 4,4-dialkylchroman of Formula 22. For the
synthesis of the compounds of the invention where R3 is hydrogen, unsubstituted phenol is the reagent of
Formula 21. In the event R3 is methyl, for example, then the reagent of Formula 21 is 3-methylphenol. Examplary conditions for the reaction of the phenol of Formula 21 and the phosphate of Formula 20 are as follows. The phenol or substituted phenol is added to a flask already containing stannic chloride which has been cooled to between -10 degrees to 10 degrees C.
After thorough mixing of this combination at the reduced temperature, the phosphate ester (Formula 20) is added at the reduced temperature. Both of these steps are carried out under an inert atmosphere such as argon or nitrogen. When the addition of the phosphate ester of Formula 20 is completed, the mixture is stirred at about ambient temperature for up to 24 hours. Then the reaction is quenched with a dilute solution of aqueous alkali metal base or the like. The product 4,4-dialkylchroman of Formula 22 is recovered by extraction and other conventional means.
The acetylenic (ethynyl) function is introduced into the 4 ,4-disubstituted (and optionaly 7-substituted) chroman (Formula 22) by acetylation with acetyl chloride (to yield the compounds of Formula 23), and thereafter the acetyl group is converted to the ethynyl group through treatment with lithium
diisopropylamide, dialkyl chlorophosphate and another treatment with lithium diisopropylamide. The
generalized conditions (and likely reaction
mechanisms) for these latter transformation which yield the 4,4-dialkyl-6-chromanyl acetylene compounds of Formula 18 are as follows. The compound of the Formula 22 is acetylated under Fridel Crafts conditions, or the like, preferably with acetyl chloride (AlCl3, CH2Cl2, reflux) to provide the 4,4-dialkyl-6-acetyl-chroman of Formula 23. The acetyl function of the compound of Formula 23 is converted into an acetylenic (ethynyl) function by means of lithium diisopropylamide, or a similar base, at reduced temperature. An intermediate derived from the compound of Formula 23 (presumably a lithium salt of the corresponding enol, not shown on Reaction Scheme 3) is esterified by treatment with diethychlorophosphate (or the like) and is again reacted at reduced temperature (e.g. - 78 degrees C) with lithium diisopropylamide, to form the triple bond (presumably by an elimination reaction) and to yield the 4,4-dialkyl-6-chromanyl acetylene derivative
(Formula 18).
It is noted at this point that the present
invention is not intended to be limited or bound by the above-mentioned and other theories of reaction
mechanisms. Brief description of theory of reaction mechanisms (where applicable) are given to further enable and facilitate the work of a skilled artisan in the field to modify and adjust the synthetic conditions to fit particular specific intermediates and to make the several compounds of the invention, without
departing from the scope and spirit of the invention.
The 4,4-dialkyl-6-chromanyl acetylene obtained in this manner is coupled with the reagent of Formula 3 as indicated in Reaction Scheme 2. The generalized conditions of this coupling are described above.
Alternatively, the compounds of Formula 18 are first converted to the corresponding zinc salt, and are then utilized as such in the coupling reaction with the reagent of Formula 3. In general terms, the formation of the zinc salts is conducted under conditions which exclude water and oxygen. A dry, ether-type solvent such as dialkyl ether or a cyclic ether such as a furan or pyran, particularly a tetrahydrofuran, may be used as the solvent. A solution of the compound of Formula 18 is first prepared under an inert atmosphere (argon or nitrogen) and then a strong base such as n-butyl lithium is added (in about a 10% molar excess). This reaction is begun at a reduced temperature of between -10 degrees and +10 degrees C, preferably about 0 degrees C. The reaction mixture is stirred for a short period, between 30 minutes and 2 hours, and then treated with about a 10% molar excess of fused zinc chloride dissolved in the reaction solvent. This mixture is stirred for an additional 1-3 hours at about the starting temperature, then the temperature is increased to about ambient temperature for 10-40 minutes.
The foregoing general description for the
preparation of the ZnCl salts of compounds symbolized by Formula 18, are also applicable, with such
modifications which will be readily apparent to the skilled artisan in the field, to the preparation of all ZnCl salts of the appropriate acetylene (ethyne) intermediates leading to the compounds of the present invention.
A synthetic sequence which is suitable for
preparing the compounds of Formula 1 where X=NR4, and specifically for preparing a 4,4-dialkyl-6-tetrahydroquinolinyl acetylene intermediate which is suitable for coupling with the reagent L-Y-A-B'
(Formula 3) is a modification of the procedure
disclosed in United States Patent No. 4,810,804 and depicted in Reaction Scheme 3 of that patent. The procedure as applied to compounds of Formula 1 where R1 and R2 would be methyl, is also disclosed in the parent of the present continuation-in-part application serial number 07/326,191, filed on March 20, 1989, expected to be issued as United States Patent No. 5,089,509. The sequence of reactions according to this procedure, which itself follows a procedure of European Patent Application 0130795 (published Sept. 1, 1985) is shown in Reaction Scheme 4 and is summarized below.
Figure imgf000034_0001
Figure imgf000035_0001
Thus, with reference to Reaction Scheme 4, the reaction sequence is hereinafter described with primary emphasis to preferred embodiments where R4 (of
Formula 1) is hydrogen. Thus, the aniline derivative of Formula 24 is first acylated with the acyl chloride of the Formula 25. In the event R3 is hydrogen, the starting material of Formula 24 is unsubstituted aniline. The acyl chloride (Formula 25) carries the R1 and R2 substituents of on its unsaturated carbon, in the β position. For the most preferred embodiments R1 and R2 are respectfully ethyl, n-propyl and n-butyl. Such acid chlorides can be synthesized in accordance with procedures known in the art. The amide of Formula 26 is then cyclized under Friedel-Crafts type reaction conditions (aluminum chloride) to give the 2-oxo-1,2,3,4-tetrahydroquinoline derivatives of Formula 27. Lithium aluminum hydride or another acceptable reducing agent of similar type is then used to reduce the compounds of Formula 27, (preferably in inert solvent such as diethyl ether). In order to introduce the acetyl (ethyne) group into the 6-position of the 4,4-dialkyl-tetrahydroquinoline derivative of Formula 28, the compound is N-acetylated using acetyl chloride (in a polar solvent such as pyridine) followed by
acetylation under Friedel Crafts type conditions
(aluminum chloride) to give an intermediate which is thereafter subjected to base hydrolysis to remove the N-acetyl group and give compounds of Formula 29.
The 6-acetyl group of the compounds of Formula 29 is thereafter converted into an ethynyl group in the manner described above for analogous transformation of 4,4-dialkyl-6-acetyl chromans. The 4,4 dialkyl-6-ethynyl 1,2,3,4-tetrahydroquinoline (Formula 30) may be coupled directly or as the corresponding ZnCl salt, with compounds of Formula 3.
Alternatively compounds of Formula 1 where X= is NR4 can also be prepared by starting from the
corresponding 4-bromo-aniline derivative, in analogy to the sequence outlined in Reaction Scheme 4 up to the step of obtaining the 6-bromo analog of the compound of Formula 28. Thereafter, the acetylene (ethyne) group is introduced into the molecule in analogy to the corresponding steps outlined in Reaction Scheme 1.
These steps will be self-evident to those skilled in the art in light of the analogous reactions disclosed above.
The following examples of specific compounds of the invention, and specific examples of the synthetic steps in which the compounds and certain intermediates are made, are set out to illustrate the invention, not to limit its scope.
Specific Examples
Ethyl 6-chloronicotinate (Compound 20)
A mixture of 15.75 g (0.1 mol) 6-chloronicotinic acid, 6.9 g (0.15 mol) ethanol, 22.7 g (0.11 mol) dicyclohexylcarbodiimide and 3.7 g
dimethylaminopyridine in 200 ml methylene chloride was heated at reflux for 2 hours. The mixture was allowed to cool, solvent removed in vacuo and residue subjected to flash chromatography to give the title compound as a low-melting white solid. PMR (CDCl3) : δ 1.44 (3H, t, J-6.2 Hz) 4.44 (2H, q, J-4.4 Hz), 7.44 (1H, d, J-8.1 Hz), 8.27 (1H, dd, J-8.1 Hz, 3 Hz), 9.02 (1H, d, J-3 Hz).
The foregoing procedure may be used to esterify any of the other halo-substituted acids employed in the making of these compounds such as:
ethyl 2-(2-chloropyrid-5-yl)acetate;
ethyl 5-(2-chloropyrid-5-yl)pentanoate;
ethyl 2-(2-iodofur-5-yl)acetate;
ethyl 5-(2-iodofur-5-yl)pentanoate;
ethyl 2-(2-iodothien-5-yl)acetate;
ethyl 5-(2-iodothien-5-yl)pentanoate;
ethyl 2-(3-chloropyridazin-6-yl)acetate;
ethyl 5-(3-chloropyridazin-6-yl)pentanoate; and the corresponding chloro, or other halo, substituted pyrimidinyl or pyrazinyl analogues of such esters. The just mentioned esters (including ethyl chloronicotinate, and ethyl-6-iodomicotinate can serve as the reagents, for coupling with the correspoding ethynyl compounds or their zinc salts to provide the target compounds of the invention.
6-Iodo-nicotinic acid
A mixture of 15.962 g ((0.106 mol) of sodium iodide in 51 g (30 ml, 40 mmol) of hydriodic acid were stirred for 5 minutes. To the mixture was added 17.184 g (0.109 mol) of 6-chloro-nicotinic acid and the resulting mixture refluxed at 100 - 130 C°C for 40 hours. The dark brown mixture was then taken up in 300 ml of acetone and stirred to dissolve the excess NaI. The product was collected by suction filtration, rinsed with 100 mL in 1N NaHSO3 and dried to give the title compound as a yellow solid.
PMR (DMSO-d6) : 5 3.36 (1H, s), 7.89 (1H, dd, J = 2.5, 8.2 Hz), 8.00 (1H, d, J = 7.5 Hz), 8.79 (1H, d, J = 2.4 Hz).
Ethyl 6-Iodo-nicotinoate (Compound 21)
A mixture of 16.230 g (84.5 mmol) of 1-(3-dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride in 90 ml of methylene chloride was cannulated into a mixture of 17.80 g (71.2 mmol) of 6-iodo-nicotinic acid in 30 ml of methylene chloride. The resulting mixture was stirred and 7.85 g (0.171 mmol) of ethanol, and then 0.826 g (6.8 mmol) of 4-dimethylaminopyridine was added and the resulting mixture refluxed at 55°C for 20 hours and then stirred at room temperature for 12 hours. Ether and water were added and the layers separated. The aqueous layer was extracted with 2 X 40 ml of ether and the organic portions combined, washed with saturated NaCl, dried over Na2SO4, and
concentrated yielding a white solid which was purified by flash chromatography (SiO2, 10% ethyl acetate in hexanes) to give the title compound as a white solid.
PMR (CDCl3): δ 1.41 (3H, t, J = 7.1 Hz), 4.41 (2H, q, J = 7.1 Hz), 7.83 (1H, d, J = 8.2 Hz), 7.89 (1H, dd, J = 2.4, 8.2 Hz), 8.93 (1H, d, J = 2.1 Hz).
Ethyl-4-iodobenzoate (Compound 22)
To a suspension of 10 g (40.32 mmol) of 4-iodobenzoic acid in 100 ml absolute ethanol was added 2 ml thionyl chloride and the mixture was then heated at reflux for 3 hours. Solvent was removed in vacuo and the residue was dissolved in 100 ml ether. The ether solution was washed with saturated NaHCO3 and saturated NaCl solutions and dried (MgSO4). Solvent was then removed in vacuo and the residue kugelrohr distilled (100 degrees C; 0.55 mm) to give the title compound as a colorless oil, PMR (CDCl3): δ 1.42 (3H, t, J-7 Hz), 4,4 (2H, q, J-7 Hz), 7.8 (4H).
In the same manner, but substituting for 4-iodobenzoic acid the appropriate acid, the following examples of compounds can be prepared:
ethyl 4-iodophenylacetate;
ethyl 3-(4-iodophenyl)propionate;
ethyl 4-(4-iodophenyl)butanoate; and
ethyl 5-(4-iodophenyl)pentanoate.
Ethyl 3-(4-bromophenylthio)propionate (Compound 23)
To a solution of 10.4 g (55.2 mmol) of 4-bromothiophenol and 6.49 g (55.4 mmol of ethyl acrylate in 5 mL of dichloromethane was added 4.13 g (41 mmol) of triethylamine at 0°C under argon. The resulting solution was warmed to room temperature and stirred for 12 hours. The solution was then treated with 50 mL 10% aqueous NaOH and the product extracted into 3 X 100 mL ether. The combined ether extracts were washed with saturated aqueous NaCl, dried (MgSO4), filtered and the solvent removed under reduced pressure. The residue was purified by flash chromatography (SiO2, 10% ethyl acetate in hexanes) to give the title compound as a white solid.
PMR (CDCl3) : δ 1.26 (3H, t, J = 7.1 Hz), 2.61 (2H, t, J = 7.4 Hz), 3.15 (2H, t, J = 7.5 Hz), 4.15 (2H, q, J = 7.2 Hz), 7.24 (2H, dd, J = 6.4, 8.5 Hz), 7.43 (2H, dd, J = 6.4, 8.5 Hz).
3-Ethyl-5-(4-bromophenylthio)-3-pentanol (Compound 24)
To a stirred suspension of 20 g (81 mmol) of cerium trichloride in 50 mL of tetrahydrofuran was added 19.9 g of ethylmagnesium bromide (35 mmol, 1M in THF). The resulting mixture was stirred for 1 hour and then cooled to 0°C. A solution of 4.71 g (17.36 mmol) of ethyl 3-(4-bromophenylthio)propionate (Compound 23) in 25 mL of tetrahydrofuran was then cannulated into the cool mixture and the resulting suspension stirred at room temperature for 16 hours. The reaction mixture was then cooled to 0°C and treated with 200 mL of water and extracted with 5 X 50 mL of ether.
The ether extracts were combined and washed successively with 2 X 20 mL of saturated aqueous NaCl and dried (Na2SO4). The solvent was removed in-vacuo and the residue purified by flash chromatography (SiO2, 10% ethyl acetate in hexanes) to give the title
compound as an orange oil.
PMR (CDCl3) : δ 0.86 (6H, t, J = 7.6 Hz), 1.49 (4H, q, J = 7.4 Hz), 1.74 (2H, m ), 2.05 (1H, s), 2.96 (2H, m), 7.21 (2H, dd, J = 2.0, 6.5 Hz), 7.41 (2H, dd, J = 2.0, 6.5 Hz).
6-Bromo-4,4-diethylthiochroman (Compound 25) A mixture of 1.18 g (8.3 mmol) of phosphorus pentoxide in 10 mL of methanesulfonic acid wεs heated for 45 minutes at 75°C. The solution was allowed to cool slightly and 2.58 g (8.5 mmol) of 3-ethyl-5-(4-bromophenylthio)-3-pentanol (Compound 24) was added. The resulting mixture was stirred at room temperature for 2 hours. The mixture was then cooled to 0°C and treated with 50 mL of water and extracted with 3 X 50 mL of ether.
The ether extracts were combined and washed with saturated aqueous NaCl and then dried (Na2SO4). The solvent was removed in-vacuo and the residual oil purified by flash chromatography (SiO2, 10% ethyl acetate in hexanes) to give the title compound as an orange oil.
PMR (CDCl3) : δ 0.78 (6H, t, J = 7.5 Hz), 1.66 (4H, m), 1.94 (2H, m), 2.98 (2H, m), 6.96 (1H, d, J = 8.4 Hz), 7.12 (1H, dd, J = 2.3, 8.6 Hz), 7.30 (1H, d, J = 2.2 Hz).
(4,4-Diethylthiochroman-6-yl)(trimethylsilyl)acetylene (Compound 26)
A mixture of 1.96 g (6.90 mmol) of 6-bromo-4,4-diethylthiochroman (Compound 25), 0.11 g (0.59 mmol) of copper (I) iodide and 4.36 g (4.31 mmol) of
triethylamine was degassed with argon for 15 minutes at -78°C. To the suspension was added 6.95 g (71 mmol) of (trimethylsilyl) acetylene then 0.41 g (58 mmol) of bis (triphenylphosphine) palladium (II) chloride. The solution was degassed with argon for an additional 5 minutes and the resulting mixture was allowed to warm to 0°C. The tube was sealed and the mixture heated to 55°C for 15 hours.
The mixture was allowed to cool to room temperature and was filtered through celite and silica gel using 200 ml. of hexane. The solvent was removed in-vacuo and the residual oil purified by flash
chromatography (SiO2, 100% hexane) to give the title compound as an orange oil.
PMR (CDCl3): δ 0.00 (9H, s), 0.79 (6H, t, J = 7.7 Hz), 1.69 (4H, m), 1.95 (2H, m), 3.00 (2H, m), 6.96 (1H, δ , H = 8.4 Hz), 7.13 (1H, dd, J = 2.2, 8.3 Hz), 7.30 (1H, d, J = 2.2 Hz).
(4 ,4-Diethylthiochroman-6-yl)acetylene (Compound 27) A solution of 2.21 g (39 mmol) of potassium hydroxide in 2.0 mL of water and 20.0 mL of ethanol was added to 1.49 g (4.93 mmol) of (4,4-diethylthiochroman-6-yl)(trimethylsilyl)acetylene (Compound 26) and the resulting mixture stirred at room temperature for 5 hours during which time it became homogeneous. The solvent was removed in-vacuo and the residue was acidified with 5% aqueous H2SO4. The product was extracted with 2 X 50 mL of ether.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3 and saturated aqueous NaCl. The solvent was removed in-vacuo and the residue purified by Kugelrohr distillation (135°C, 0.75 mm) to give the title compound as an orange oil.
PMR (CDCl3): δ 0.79 (6H, t, J = 7.6 Hz), 1.68 (4H, m), 1.96 (2H, m), 3.02 (3H, overlapping m, s), 7.04 (1H, d, J = 8.1 Hz), 7.14 (1H, dd, J = 7.1, 8.2 Hz), 7.32 (1H, s).
Ethyl 2-[2-(4,4-diethylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinate (Compound 3)
A mixture of 0.632 g (2.75 mmol) of (4,4-diethylthiochroman-6-yl)acetylene (Compound 27), 64 mg (0.33 mmol) of copper (I) iodide, and 5.08 g (50.3 mmol) of triethylamine were degassed with argon for 15 minutes. To the suspension was added 0.83 g (3.00 mmol) of ethyl 6-iodo-nicotinate (Compound 21) and then 0.15 g (0.22 mmol) of Bis (triphenylphosphine) palladium (II) chloride. The suspension was degassed with argon for an additional 5 minutes, the tube was sealed and the mixture stirred at 55°C for 16 hours.
The mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate. The solvents were removed in-vacuo and the residual oil was purified by flash chromatography (SiO2, 5% ethyl acetate in
hexanes) to give the title compound as a yellow oil.
PMR (CDCl3): δ 0.81 (6H, t, J = 7.3 Hz), 1.43 (3H, t, J = 6.8 Hz), 1.64 (2H, m), 1.79 (2H, m), 1.98 (2H, t, J = 6.1 Hz), 3.04 (2H, t, J = 6.3 Hz), 4.32 (2H, q, J = 7.1 Hz), 7.10 (1H, dd, J = 1.6 Hz), 7.46 (1H, d, J = 1.6 Hz), 7.58 (1H, d, J = 8.2 Hz), 8.27 (1H, dd, J = 2.2, 8.2 Hz), 9.19 (1H, d, J = 2.2 Hz).
Ethyl 4-[2-(4,4-diethylthiochroman-6-yl)-ethyn-1-yl)benzoate (Compound 1)
A mixture of 0.338 g (1.47 mmol) of (4,4-diethylthiochroman-6-yl)acetylene, 24 mg (0.13 mmol) of copper (I) iodide, and 2.54 g (25 mmol) of
triethylamine were degassed with argon for 15 minutes. To the suspension was added 0.57 g (2.07 mmol) of ethyl 4-iodobenzoate (Compound 22) and then 0.12 g (0.17 mmol) of bis(triphenylphosphine)palladium (II)
chloride. The suspension was degassed with argon for an additional 5 minutes, the tube was sealed and the mixture stirred at 55°C for 16 hours.
The mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate. The solvents were removed in-vacuo and residual oil purified by flash chromatography (SiO2, 5% ethyl acetate in hexanes) to give the title compound as a yellow oil.
PMR (CDCl3): δ 0.82 (6H, t, J = 7.4 Hz), 1.41 (3H, t, J = 7.1 Hz), 1.65 (2H, m), 1.79 (2H, m). 1.98 (2H, t, J = 6.1 Hz), 3.03 (2H, t, J = 6.2 Hz), 4.38 (2H, q, J = 7.1 Hz), 7.08 (1H, d, J = 1.6, 8.2 Hz), 7.20 (1H, dd, J = 1.67, 8.2 Hz), 7.37 (1H, s), 7.57 (1H, d, J = 8.4 Hz), 8.01 (1H, d, J = 8.4 Hz).
4-Propyl-6-(4-bromophenylthio)-4-hexanol (Compound 28)
To a stirred suspension of 14 g (57 mmol) of cerium trichloride in 40 mL of tetrahydrofuran was added 6.18 g of ethylmagnesium bromide (60 mmol, 2M in THF). The resulting mixture was stirred for 1 hour and cooled to 0°C. A solution of 4.91 g (17.0 mmol) of ethyl 3-(4-bromophenylthio)propionate (Compound 23) in 20 mL of tetrahydrofuran was then cannulated into the cool mixture and the resulting mixture stirred at room temperature for 16 hours. The reaction mixture was then cooled to 0°C and treated with 200 mL of water and extracted with 5 X 50 mL of ether.
The ether extracts were combined and washed successively with 2 X 20 mL of saturated aqueous NaCl and dried (Na2SO4). The solvent was removed in-vacuo and the residue purified by flash chromatography (SiO2; 10% ethyl acetate in hexanes) to give the title
compound as a greenish oil.
PMR (CDCl3): δ 0.92 (6H, t, J = 7.0 Hz), 1.29 (5H, m), 1.43 (4H, m) 1.75 (2H, m), 2.95 (2H, s), 7.20 (2H, dd, J = 2.0, 6.5 Hz), 7.40 (2H, dd, J = 2.1, 6.7 Hz). 6-Bromo-4,4-dipropylthiochroman (Compound 29)
A mixture of 1.13 g (7.92 mmol) of phosphorus pentoxide in 10 mL of methanesulfonic acid was heated for 45 minutes at 75°C. The solution was allowed to cool slightly and 3.25 g (9.85 mmol) of 4-propyl-6-(4-bromophenylthio)-4-hexanol (Compound 28) was added.
The reaction was stirred at room temperature for 2 hours. The mixture was then cooled to 0°C, treated with 50 mL of water and extracted with 3 X 50 mL of ether.
The ether extracts were combined and washed with saturated aqueous NaCl and then dried (Na2SO4) . The solvent was removed in-vacuo and the residual oil purified by flash chromatography (SiO2, 10% ethyl acetate in hexanes) to give the title compound as an orange oil.
PMR (CDCl3) : δ 0.89 (6H, t, J = 7.5 Hz), 1.20 (4H, m), 1.59 (4H, m), 1.97 (2H, m) , 2.99 (2H, m), 6.96 (1H, d, J = 8.3 Hz), 7.13 (1H, dd, J = 2.1, 8.4 Hz), 7.30 (1H, s).
(4,4-Dipropylthiochroman-6-yl)(trimethylsilyl)acetylene (Compound 30)
A mixture of 2.04 g (6.54 mmol) of 6-bromo-4,4-dipropylthiochroman (Compound 29), 0.12 g(0.64 mmol) of copper (I) iodide and 5.4 g (54 mmol) of triethylamine was degassed using argon for 15 minutes at -78°C. To the suspension was added 1.95 g (19.8 mmol) of
(trimethylsilyl)acetylene then 0.41 g (58 mmol) of bis(triphenylphosphine)palladium (II) chloride. The solution was degassed with argon for an additional 5 minutes and the resulting mixture was allowed to warm to 0°C. The tube was sealed and the mixture heated to 55°C for 15 hours.
The mixture was allowed to cool to room
temperature and was filtered through celite and silica gel using 200 mL of hexane. The solvent was removed in-vacuo and the residual oil purified by flash
chromatography (SiO2, 100% hexane) to give the title compound as an orange oil.
PMR (CDCl3) : δ 0.23 (9H, s), 0.86 (6H, t, J = 7.4 Hz), 1.17 (5H, m), 1.58 (4H, m), 1.95 (2H, m), 2.98 (2H, m), 6.96 (1H, d, H = 8.1 Hz), 7.09 (1H, dd, J = 1.7, 8.1 Hz), 7.26 (1H, d, J = 1.7 Hz).
(4,4-Dipropylthiochroman-6-yl)acetylene (Compound 31) A solution of 1.82 g (32.4 mmol) of potassium hydroxide in 1.8 mL of water and 10.0 mL of ethanol was added to 1.22 g (3.70 mmol) of
(4,4-dipropylthiochroman-6-yl)(trimethylsilyl)acetylene (Compound 30) and the resulting mixture stirred at room temperature for 5 hours during which time it became homogeneous. The solvent was removed in-vacuo and the residue was acidified with 5% aq H2SO4 and the product was extracted with 2 X 50 mL of ether.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3 and saturated aqueous NaCl. The solvent was removed in-vacuo and the residue purified by Kugelrohr distillation (135°C, 0.75 mm) to give the title compound as a yellow oil.
PMR (CDCl3) : δ 0.88 (6H, t, J = 7.3 Hz), 1.20 (4H, m), 1.59 (4H, m), 1.98 (2H, m), 3.01 (3H, overlapping m, s), 7.02 (1H, d, J = 8.1 Hz), 7.13 (1H, dd, J = 1.8, 8.1 Hz), 7.32 (1H, d, J = 1.7 Hz).
Ethyl
2-[2-(4,4-dipropylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinate (Compound 7)
A mixture of 0.760 g (2.95 mmol) of (4,4-dipropylthiochroman-6-yl)acetylene, (Compound 31), 61 mg (0.32 mmol) of copper (I) iodide, and 3.6 g (3 mmol) of triethylamine were degassed with argon for 15 minutes. To the suspension was added 0.89 g (3.22 mmol) of ethyl-6-iodo-nicotinate (Compound 21) and then 0.30 g (0.43 mmol) of bis (triphenylphosphine) palladium (II) chloride. The suspension was degassed with argon for an additional 5 minutes, the tube was sealed and the mixture stirred at 55°C for 16 hours and at room temperature for six days.
The mixture was then filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate. The solvents were removed in-vacuo and residual oil purified by flash chromatography (SiO2, 5% ethyl acetate in hexanes) to give the title compound as an- orange oil.
PMR (CDCl3): δ 0.89 (6H, t, J = 7.3 Hz), 1.23 (4H, m), 1.43 (3H, t, J = 7.1 Hz), 1.62 (4H, m), 2.00 (2H, m), 3.03 (2H, m), 4.42 (2H, q, J = 7.1 Hz), 7.09 (1H, d, J = 8.1 Hz), 7.25 (1H, dd, J = 1.7, 8.5 Hz), 7.46 (1H, d, J = 1.7 Hz), 7.57 (1H, dd, J = 0.8, 8.2 Hz), 8.27 (1H, dd, J = 2.2, 8.2 Hz), 9.19 (1H, d, J = 2.1 Hz).
Ethyl 4-(2-(4,4-dipropylthiochroman-6-yl)-ethyn-1-yl]benzoate (Compound 5)
A mixture of 0.338 g (1.47 mmol) of 4,4-dipropylthiochroman-6-yl)acetylene (Compound 31), 24 mg, (0.13 mmol) of copper (I) iodide, and 2.54 g (25 mmol of triethylamine were degassed with argon for 15 minutes. To the suspension was added 0.57 g (2.07 mmol) of ethyl 4-iodobenzoate (Compound 22) and then 0.12 g (0.17 mmol) of bis(triphenylphosphine)palladium (II) chloride. The suspension was degassed with argon for an additional 5 minutes, the tube was sealed and the mixture stirred at 55°c for 16 hours. The mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate. The solvents were removed in-vacuo and residual oil purified by flash chromatography (SiO2, 5% ethyl acetate in hexanes) to give the title compound as a yellow oil.
PMR (CDCl3): δ 0.89 (6H, t, J = 7.3 Hz), 1.22 (4H, m), 1.40 (3H, t, J = 7.2 Hz), 1.55 (2H, m), 1.68 (2H, m), 1.98 (2H, m), 3.01 (2H, m), 4.37 (2H, q, J = 7.1 Hz), 7.06 (1H, d, J = 8.2 Hz), 7.18 (1H, dd, J = 1.7,
8.1 Hz), 7.36 (1H, d, J = 1.7 Hz), 7.58 (2H, d, J = 8.7 Hz), 8.01 (2H, d, J = 8,1 Hz).
5-Butyl-7-(4-bromophenylthio)-5-heptanol (Compound 32)
To a stirred suspension of 9.5 g (39 mmol) of cerium trichloride in 30 mL of tetrahydrofuran was added 5.9 g of butylmagnesium bromide (50 mmol, 2M in THF) . The resulting mixture was stirred for 1 hour at room temperature and then cooled to 0°C. A solution of 4.29 g (14.8 mmol) of ethyl 3-(4-bromophenylthio)propionate (Compound 23) in 15 mL of tetrahydrofuran was then cannulated into the cool mixture and the resulting suspension stirred at room temperature for 12 hours. The reaction mixture was then recooled to 0°C and treated with 200 mL of water and extracted with 5 X 50 mL of ether.
The ether extracts were combined and washed successively with 2 X 20 mL of saturated aqueous NaCl and dried (Na2SO4). The solvent was removed in-vacuo and the residue purified by flash chromatography (SiO2, 10% ethyl acetate in hexanes) to give the title
compound as an orange oil.
PMR (CDCl3) : δ 0.91 (6H, t, J = 7.2 Hz), 1.26 (8H, m), 1.43 (4H, m), 1.75 (2H, m), 2.97 (2H, m), 7.20 (2H, d, J = 1.9 Hz), 7.41 (2H, d, J = 1.9 Hz).
6-Bromo-4, 4-dibutylthiochroman (Compound 33)
A mixture of 0.87 g (6.1 mmol) of phosphorus pentoxide in 8 mL of methanesulfonic acid was heated for 45 minutes at 75°C. The solution was allowed to cool slightly and 3.59 g (10.0 mmol) of 5-butyl-7-(4-bromophenylthio)-5-heptanol (Compound 32) was added. The resulting mixture was stirred at room temperature for 2 hours. The mixture was then cooled to 0°C and treated with 50 mL of water and extracted with 3 X 40 mL of ether.
The ether extracts were combined and washed with saturated aqueous NaCl and then dried (Na2SO4). The solvent was removed in-vacuo and the residual oil purified by flash chromatography (SiO2, 5% ethyl acetate in hexanes) to give the title compound as an orange oil.
PMR (CDCl3): δ 0.88 (6H, t, J = 7.3 Hz), 1.22 (8H, m), 1.66 (4H, m), 1.97 (2H, m), 2.98 (2H, m), 6.96 (1H, d, J = 8.7 Hz), 7.13 (1H, dd, J = 2.0, 8.3 Hz), 7.31 (1H, d, J = 2.1 Hz).
(4,4-Dibutylthiochroman-6-yl)(trimethylsilyl)acetylene (Compound 34)
A mixture of 1.68 g (5.38 mmol) of 6-bromo-4,4-dibutylthiochroman (Compound 33), 0.28 g (1.5 mmol) of copper (I) iodide and 2.5 g (25 mmol) of triethylamine was degassed with argon for 15 minutes at -78°C. To the suspension was added 1.18 g (71 mmol) of
(trimethylsilyl) acetylene and 0.24 g (0.35 mmol) of bis(triphenylphosphine)palladium (II) chloride. The solution was degassed with argon for an additional 5 minutes and the resulting mixture was allowed to warm to 0°C. The tube was sealed and the mixture was heated to 55°C for 22 hours.
The mixture was allowed to cool to room
temperature and was filtered through celite and silica gel using 200 mL of hexane. The solvent was removed in-vacuo and the residual oil purified by flash
chromatography (SiO2, 100% hexane) to give the title compound as an orange oil.
PMR (CDCl3): δ 0.25 (9H, s), 0.88 (6H, t, J = 7.3 Hz), 1.25 (8H, m), 1.65 (4H, m), 1.98 (2H, m), 3.00 (2H, m), 7.05 (1H, d, H = 8.1 Hz), 7.11 (1H, dd J = 1.7, 8.8 Hz), 7.29 (1H, d, J = 1.7 Hz).
(4,4-Dibutylthiochroman-6-yl)acetylene (Compound 35) A solution of 1.41 g (25 mmol) of potassium hydroxide in 1.4 mL of water and 10.0 mL of ethanol was added to 1.44 g (4.00 mmol) of (4,4-dibutylthiochroman-6-yl)(trimethylsilyl)acetylene (Compound 34) and the resulting mixture stirred at room temperature for 16 hours during which time it became homogeneous. The solvent was removed in-vacuo and the residue was acidified with 5% aqueous H2SO4. The product was extracted with 2 X 50 mL of ether.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3 and saturated aqueous NaCl. The solvent was removed in-vacuo and the residue purified by Kugelrohr distillation (165°C, 3mm) to give the title compound as an orange oil.
PMR (CDCl3): δ 0.88 (6H, t, J = 7.3 Hz), 1.22 (8H, m), 1.66 (4H, m), 1.97 (2H, m), 3.00 (3H, overlapping m, s), 7.02 (1H, d,J = 8.1 Hz), 7.13 (1H, dd, J = 1.8, 8.1 Hz), 7.32 (1H, d, J = 1.7 Hz).
Ethyl 2-[2-(4,4-dibutylthiochroman-6-yl)-ethyn-1-yl]-5- nicotinate (Compound 11)
A mixture of 0.49 g (1.72 mmol) of (4,4-dibutylthiochroman-6-yl)acetylene (Compound 35), 52 mg (0.27 mmol) of copper (I) iodide, 2.20 g (22 mmol) of triethylamine and 0.49 g (1.75 mmol) of ethyl 6-iodonicotinate (Compound 21) was degassed with argon for 10 minutes. To the suspension was added 0.10 g (0.15 mmol) of bis(triphenylphosphine)palladium (II)
chloride. The suspension was degassed with argon for an additional 5 minutes, the tube was sealed, and the mixture stirred at 55°C for 8 hours and at room
temperature for 24 hours.
The mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane. The solvents were removed in-vacuo and the residual oil purified by flash chromatography (SiO2, 5% ethyl acetate in hexanes) to give the title compound as an orange oil.
PMR (CDCl3): δ 0.88 (6H, t, J = 7.2 Hz), 1.25 (8H, m), 1.43 (3H, t, J = 7.1 Hz) 1.64 (4H, m), 2.00 (2H, m), 3.03 (2H, m), 4.42 (2H, q, J = 7.1 Hz), 7.09 (1H, d, J = 8.2 Hz), 7.26 (1H, dd, J = 1.7, 7.8 Hz), 7.47 (1H, d, J = 1.7 Hz), 7.58 (1H, d, J = 8.3 Hz), 8.27 (1H, dd, J = 2.2, 8.3 Hz), 9.20 (1H, d, J = 3.3 Hz)
Ethyl 4-[2-(4,4-dibutylthiochroman-6-yl)-ethyn-1-yl]benzoate (Compound 9)
A mixture of 0.234 g (0.82 mmol) of (4,4-dibutylthiochroman-6-yl)acetylene (Compound 35), 21 mg (0.11 mmol) of copper (I) iodide, and 1.45 g (14 mmol) of triethylamine were degassed with argon for 15 min. To the suspension was added 0.49 g (1.8 mmol) of ethyl 4-iodobenzoate (Compound 21) and then 0.065 g (0.09 mmol) of bis(triphenyliphosphine)palladium (II) chloride. The suspension was degassed with argon for an additional 5 minutes, the tube was sealed and the mixture stirred at 55°C for 20 hours.
The mixture was cooled to room temperature and filtered through celite and silica gel using 200 mL of hexane and 20 mL of ethyl acetate. The solvents were removed in-vacuo and the residual oil purified by flash chromatography (SiO2, 5% ethyl acetate in hexanes) to give the title compound as a yellow oil.
PMR (CDCl3) : δ 0.89 (6H, t, J = 7.3 Hz), 1.24 (8H, m), 1.41 (3H, t, J = 7.2 Hz), 1.60 (2H, m), 1.72 (2H, m), 2.00 (2H, m), 3.02 (2H, m), 4.38 (2H, q, J = 7.2 Hz), 7.07 (1H, d, J = 8.1 Hz), 7.19 (1H, dd, J = 1.7, 8.1 Hz), 7.36 (1H, d, J = 1.7 Hz), 7.58 (1H, d, J = 8.4 Hz), 8.02 (1H, d, J = 8.4 Hz).
[ 2-(4,4-diethylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinic acid (compound 4)
A solution of 1.15 g (20.5 mmol) of potassium hydroxide in 1.0 mL of water and 10.0 mL of ethanol was added to 0.456 g (1.20 mmol) of ethyl 2-[2-(4,4-diethylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinate
(Compound 3) and the resulting mixture was stirred at room temperature for 16 hours during which time it became homogeneous. The solvent was removed in-vacuo and the residue was acidified with 5% aqueous H2SO4. The product was extracted with 2 X 65 mL of 15% ether in methylene chloride.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3, saturated aqueous Nacl, and dried over Na2SO4. The solvent was removed in-vacuo yielding a yellow solid which was
recrystallized using EtOH to give the title compound as a yellow solid. PMR (DMSO) : δ 0.70 (6H, t, J = 7.5 Hz), 1.54 (2H, m), 1.73 (2H, m), 1.86 (2H, m), 3.01 (2H, m), 7.11 (1H, d, J = 8.1 Hz), 7.26 (1H, dd, J = 1.7, 8.3 Hz), 7.44 (1H, d, J = 1.5 Hz), 7.73 (1H, d, J = 8.2 Hz), 8.25 (1H, dd, J = 2.2, 8.1 Hz), 9.04 (1H, d, J = 1.3 Hz). 4-[2-(4,4-dipropylthiochroman-6-yl)-ethyn-1-yl]benzoic acid (Compound 6)
A solution of 1.15 g (20.5 mmol) of potassium hydroxide in 1.0 mL of water and 10.0 mL of ethanol was added to 0.381 g (0.94 mmol) of ethyl 4-[2-(4,4-dipropylthiochroman-6-yl)-ethyn-1-yl]benzoate (Compound 5) and the resulting mixture stirred at room
temperature for 15 hours during which time it became homogeneous. The solvent was removed in-vacuo and the residue was acidified with 5% aqueous H2SO4. The product was extracted with 2 X 65 mL of 15% ether in methylene chloride.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3, saturated aqueous NaCl, and dried over Na2SO4. The solvent was removed in-vacuo yielding a yellow solid which was
recrystallized using EtOH to give the title compound as a yellow solid.
PMR (DMSO): δ 0.82 (6H, t, J = 7.4 Hz), 1.13 (5H, m), 1.51 (2H, m), 1.67 (2H, m), 1.92 (2H, m), 3.01 (2H, m), 7.08 (1H, d, J = 8.1 Hz), 7.20 (1H, dd, J = 1.7, 8.1 Hz), 7.40 (1H, d, J = 1.66 Hz), 7.53 (1H, d, J = 8.3 Hz), 7.91 (1H, d, J = 8.3 Hz).
2-[2-(4,4-dipropylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinic acid (Compound 8)
A solution of 1.08 g (19.3 mmol) of potassium hydroxide in 1.0 mL of water and 10.0 mL of ethanol was added to 0.470 g (1.15 mmol) of ethyl 2-[2-(4,4- dipropylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinoate (Compound 7) and the resulting mixture stirred at room temperature for 15 hours during which time it became homogeneous . The solvent was removed in-vacuo and the residue was acidified with 5% aqueous H2SO4. The product was extracted with 2 X 65 mL of 15% ether in methylene chloride.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3, saturated aqueous NaCl, and dried over Na2SO4. The solvent was removed in-vacuo yielding a yellow solid which was
recrystallized using EtOH to give the title compound as a yellow solid.
PMR (DMSO): δ 0.85 (6H, t, J = 7.3 Hz), 1.14 (4H, m), 1.52 (2H, m), 1.70 (2H, m), 1.93 (2H, m), 3.03 (2H, m), 3.32 (1H, s), 7.13 (1H, d, J = 8.1 Hz), 7.27 (1H, dd, J = 1.6, 8.1 Hz), 7.47 (1H, d, J = 1.5 Hz), 7.75 (1H, d, J = 8.3 Hz), 8.27 (1H, dd, J = 2.2, 8.2 Hz), 9.20 (1H, d, J = 2.1 Hz).
2-[2-(4,4-dibutylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinic acid (Compound 12)
A solution of 1.05 g (18.8 mmol) of potassium hydroxide in 1.0 mL of water and 10.0 mL of ethanol was added to 0.341 g (0.78 mmol) of ethyl 2-[2-(4,4-dibutylthiochroman-6-yl)-ethyn-1-yl]-5-nicotinoate
(Compound 11) and the resulting mixture stirred at room temperature for 15 hours during which time it became homogeneous. The solvent was removed in-vacuo and the residue was acidified with 5% aqueous H2SO4. The product was extracted with 2 X 65 mL of 15% ether in methylene chloride.
The combined ether extracts were washed
successively with 10% aqueous NaHCO3, saturated aqueous NaCl, and dried over Na2SO4. The solvent was removed in-vacuo yielding a yellow solid which was
recrystallized using EtOH to give the title compound as a yellow solid.
PMR (DMSO): δ 0.83 (6H, t, J = 7.3 Hz), 1.09 (4H, m), 1.23 (4H, m), 1.54 (2H, m), 1.72 (2H, m), 1.92 (2H, m), 3.02 (2H, m), 3.32 (1H, m), 7.12 (1H, d, J = 8.1 Hz), 7.27 (1H, dd, J = 1.7, 8.2 Hz), 7.47 (1H, d, J = 1.7 Hz), 7.74 (1H, dd, J = 0.8, 8.3 Hz), 8.26 (1H, dd, J = 2.2, 8.2 Hz), 9.04 (1H, dd, J = 0.8, 2.2 Hz).
Using as an example the method for the preparation of Compound 1, but substituting the appropriately substituted ethynylthiochroman (Formula 12 in Reaction Scheme 1) and the appropriate halo substituted phenyl ester (Formula 3, prepared for example as specifically described for Compound 22) the following further examplary compounds of the invention can be prepared: ethyl 4-[(4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl]benzoate;
ethyl 4-[(4,4,7-tri-ethylthiochroman-6-yl)-ethynyl]benzoate;
ethyl 4-[(4,4-diethyl-7-propylthiochroman-6-yl)-ethynyl]benzoate;
ethyl 4-[(4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl]benzoate;
ethyl 2-[4-[(4,4-diethylthiochroman-6-yl)ethynyl)-phenyl]acetate;
ethyl 2-[[4-(4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-phenyl]acetate;
ethyl 2-[4-(4,4,7-triethylthiochroman-6-yl)-ethynyl)phenyl]acetate;
ethyl 2-[4-(4,4-diethyl-7-hexylthiochroman-6-yl)ethynyl)phenyl]acetate; ethyl 3-[4-(4,4-diethylthiochroman-2-yl)-ethynyl)phenyl]propionate;
ethyl 3-[4-(4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)phenyl]propionate;
ethyl 3-[4-(4,4-triethylthiochroman-6-yl)-ethynyl)phenyl]propionate;
ethyl 3-[4-(4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)phenyl]propionate;
ethyl 5-[4-(4,4-diethylthiochroman-6-yl)ethynyl)-phenyl]pentanoate;
ethyl 5-[4-(4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)phenyl]pentanoate;
ethyl 5-[4-(4,4,7-triethylthiochroman-6-yl)-ethynyl)phenyl]pentanoate, and the corresponding free carboxylic acid derivatives.
Using the following examplary intermediates of Formula 18 in Reaction Scheme 2 or 3,
4,4,7-triethyl-6-ethynyl-chroman;
4,4-diethyl-6-ethynyl-7-propylchroman;
4,4-diethyl-6-ethynyl-7-butylchroman;
4,4-diethyl-6-ethynyl-7-pentylchroman;
4,4-diethyl-6-ethynyl-7-hexylchroman;
the following examplary compounds of the invention can be prepared:
ethyl 4-[(4,4,7-triethylchroman-6-yl)-ethynyl]benzoate;
ethyl 4-[(4,4-diethyl-7-propylchroman-6-yl)-ethynyl]benzoate;
ethyl 4-[(4,4-diethyl-7-hexylchroman-6-yl)-ethynyl]benzoate;
ethyl [2-(4-(4,4-diethylchroman-6-yl)ethynyl)-phenyl]acetate;
ethyl [2-(4-(4,4-diethyl-7-methylchroman-6- yl)ethynyl)-phenyl]acetate;
ethyl [2-(4-(4,4,7-triethylchroman-6-yl)-ethynyl)phenyl]acetate;
ethyl [2-(4-(4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)phenyl]acetate;
ethyl 3-[4-(4,4-diethylchroman-2-yl)-ethynyl)phenyl]propionate;
ethyl 3-[4-(4,4-diethyl-7-methylchroman-6-yl)-ethynyl)-phenyl]propionate;
ethyl 3-[4-(4,4,7-triethylchroman-6-yl)-ethynyl)phenyl]propionate;
ethyl 3-[4-(4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)phenylpropionate;
ethyl 5-[4-(4,4-diethylchroman-6-yl)ethynyl)-phenyl]pentanoate;
ethyl 5-[4-(4,4-diethyl-7-methylchroman-6-yl)-ethynyl)phenyl]pentanoate;
ethyl 5-[4-(4,4,7-triethylchroman-6-yl)-ethynyl)phenyl]pentanoate, and the corresponding fee carboxylic acid derivatives.
The positional isomers of the above-noted examples (and of analogous compounds) can also be prepared in accordance with the foregoing procedures or by apparent modifications of such procedures.
Still further, substituting the appropriate 6-ethynylthiochroman or-6-ethynylchroman of Formula 12 and 18, respectively, and reacting them with the appropriate halogenated heteroaromatic compound as per Reaction Schemes 1 and 2, the following further
examplary compounds of the invention can be prepared. ethyl 6-[(4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl]nicotinate;
ethyl 6-[(4,4,7-triethylthiochroman-6-yl)- ethynyl]nicotinate;
ethyl 6-[(4,4-diethyl-7-propylthiochroman-6-yl)-ethynyl]nicotinate;
ethyl 6-[(4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl]nicotinate;
ethyl [(4,4-diethylthiochroman-6-yl)ethynyl)-pyrid-5-yl]acetate;
ethyl [((4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-pyrid-5-yl]acetate;
ethyl [((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyrid-5-yl]acetate;
ethyl [((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)pyrid-5-yl]acetate;
ethyl 3-[((4,4-diethylthiochroman-2-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 3-[((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 3-[((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 3-[(4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 5-[((4,4-diethylthiochroman-6-yl)ethynyl)-pyrid-5-yl]pentanoate;
ethyl 5-[((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)pyrid-5-yl]pentanoate;
ethyl 5-[((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyrid-5-yl]pentanoate;
ethyl [5-((4,4-diethylthiochroman-6-yl)ethynyl)-fur-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-fur-2-yl]acetate;
ethyl [5-((4,4,7-triethylthiochroman-6-yl)-ethynyl)fur-2-yl]acetate; ethyl [5-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)fur-2-yl]acetate;
ethyl 5-[((4,4-diethylthiochroman-6-yl)ethynyl)-fur-2-yl]pentanoate;
ethyl 5-[5((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)fur-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-triethylthiochroman-6-yl)-ethynyl)fur-2-yl]pentanoate;
ethyl 5-[5-((4,4-dietyl-7-hexylthiochroman-6-yl)-ethynyl)fur-2-yl]pentanoate;
ethyl [5-((4,4-diethylthiochroman-6-yl)ethynyl)-thien-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-thien-2-yl]acetate;
ethyl [5-((4,4,7-triethylthiochroman-6-yl)-ethynyl)thien-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)thien-2-yl]acetate;
ethyl 5-[5-4,4-diethylthiochroman-6-yl)-ethynyl)-thien-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)thien-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-triethylthiochroman-6-yl)-ethynyl)thien-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)thien-2-yl]pentanoate;
ethyl [6-((4,4-diethylthiochroman-6-yl)ethynyl)-pyridazin-3-yl]acetate;
ethyl [6((4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-pyridazin-3-yl]acetate;
ethyl [6-((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyridazin-3-yl]acetate;
ethyl [6-((4,4-diethyl-7-hexylthiochroman-6-yl)- ethynyl)pyridazin-3-yl]acetate;
ethyl-5-[6((4,4-diethylthiochroman-6-yl)ethynyl)-pyridazin-3-yl]pentanoate;
ethyl 5-[6-((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)pyridazin-3-yl]pentanoate;
ethyl 5-[6-((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyridazin-3-yl]pentanoate;
ethyl 5-[6-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)pyridazin-3-yl]pentanoate;
ethyl [5-((4,4-diethylthiochroman-6-yl)ethynyl)-pyrimidin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-pyrimidin-2-yl]acetate;
ethyl [5-((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyrimidin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)pyrimidin-2-yl]acetate;
ethyl 5-[5-(4,4-diethylthiochroman-6-yl)ethynyl)-pyrimidin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)pyrimidin-2-yl]pentanoate;
ethyl 5-[5-((2,2,4,4,7-triethylthiochroman-6-yl)-ethynyl)pyrimidin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)pyrimidin-2-yl]pentanoate;
ethyl [5-((4,4-diethylthiochroman-6-yl)ethynyl)-pyrazin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylthiochroman-6-yl)ethynyl)-pyrazin-2-yl]acetate;
ethyl [5-((2,2,7-triethylthiochroman-6-yl)-ethynyl)pyrazin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylthiochroman-6-yl)-ethynyl)pyrazin-2-yl]acetate; ethyl 5-[5-((4,4-diethylthiochroman-6-yl)ethynyl)-pyrazin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-methylthiochroman-6-yl)-ethynyl)pyrazin-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-triethylthiochroman-6-yl)-ethynyl)pyrazin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-hexylthiochroman-6-yl)ethynyl)pyrazin-2-yl]pentanoate;
ethyl 6-[4,4-diethylchroman-6-yl)-ethynyl]nicotinate;
ethyl 6-[(4,4-diethyl-7-hexylchroman-6-yl)-ethynyl]nicotinate;
ethyl [2-((4,4-diethylchroman-6-yl)ethynyl)-pyrid-5-yl]acetate;
ethyl [2-((4,4-diethyl-7-methylchroman-6-yl)ethynyl)-pyrid-5-yl]acetate;
ethyl [2-((4,4,7-triethylchroman-6-yl)-ethynyl)pyrid-5-yl]acetate;
ethyl [2-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyrid-5-yl]acetate;
ethyl 3-[2-((4,4-diethylchroman-2-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 3-[2-((4,4-diethyl-7-methylchroman-6-yl)-ethynyl)-pyrid-5-yl]propionate;
ethyl 3-[2((4,4,7-triethylchroman-6-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 3-[2((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyrid-5-yl]propionate;
ethyl 5-[2-((4,4-diethylchroman-6-yl)ethynyl)-pyrid-5-yl]pentanoate;
ethyl 5-[2-((4,4-diethyl-7-methylchroman-6-yl)-ethynyl)pyrid-5-yl]pentanoate;
ethyl 5-[2-((4,4,7-triethylchroman-6-yl)- ethynyl)pyrid-5-yl]pentanoate;
ethyl 5-[2-((4,4-diethylchroman-6-yl)ethynyl)-fur-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylchroman-6-yl)ethynyl)-fur-2-yl]acetate;
ethyl
[5-((4,4,7-triethylchroman-6-yl)-ethynyl)fur-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl-fur-2-yl]acetate;
ethyl 5-[5-((4,4-diethylchroman-6-yl)ethynyl)-fur-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-pentamethylchroman-6-yl)-ethynyl)fur-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-triethylchroman-6-yl)-ethynyl)fur-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)fur-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethylchroman-6-yl)ethynyl)-thien-2-yl]acetate;
ethyl [-((4,4-diethyl-7-methylchroman-6-yl)ethynyl)-thien-2-yl]acetate;
ethyl [5-((4,4,7-triethylchroman-6-yl)-ethynyl)thien-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)thien-2-yl]acetate;
ethyl
5-[5((4,4-diethylchroman-6-yl)ethynyl)-thien-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-methylchroman-6-yl)-ethynyl)-thien-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-triethylchroman-6-yl)-ethynyl)thien-2-yl]pentanoate; ethyl 5-[5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)thien-2-yl]pentanoate;
ethyl [6-((4,4-diethylchroman-6-yl)ethynyl)-pyridazin-3-yl]acetate;
ethyl [6-((4,4-diethyl-7-methylchroman-6-yl)ethynyl)-pyridazin-3-yl]acetate;
ethyl [6-((4,4,7-triethylchroman-6-yl)ethynyl)pyridazin-3-yl]acetate;
ethyl [6-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyridazin-3-yl]acetate;
ethyl 5-[6-((4,4-diethylchroman-6-yl)ethynyl)-pyridazin-3-yl]pentanoate;
ethyl 5-[6-((4,4-diethyl-7-methylchroman-6-yl)-ethynyl)-pyridazin-3-yl]pentanoate;
ethyl 5-[6-((4,4,7-triethylchroman-6-yl)-ethynyl)pyridazin-3-yl]pentanoate;
ethyl 5-[6-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyradazin-3-yl]pentanoate;
ethyl [5-((4,4-diethylchroman-6-yl)ethynyl)-pyrimidin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylchroman-6-yl)ethynyl)-pyrimidin-2-yl]acetate;
ethyl [5-((4,4,7-triethylchroman-6-yl)-ethynyl)pyrimidin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyrimidin-2-yl]acetate;
ethyl 5-[5-((4,4-diethylchroman-6-yl)ethynyl)-pyrimidin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-methylchroman-6-yl)-ethynyl)-pyrimidin-2-yl]pentanoate;
ethyl 5-[4-((4,4,7-triethylchroman-6-yl)-ethynyl)pyrimidin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-hexylchroman-6-yl)- ethynyl)pyrimidin-2-yl]pentanoate;
ethyl [5-((4,4-diethylchroman-6-yl)ethynyl)-pyrazin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-methylchroman-6-yl)ethynyl)-pyrazin-2-yl]acetate;
ethyl [5-((4,4,7-triethylchroman-6-yl)-ethynyl)pyrazin-2-yl]acetate;
ethyl [5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyrazin-2-yl]acetate;
ethyl [5-[5-((4,4-diethylchroman-6-yl)ethynyl)-pyrazin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-methylchroman-6-yl)-ethynyl)-pyrazin-2-yl]pentanoate;
ethyl 5-[5-((4,4,7-triethylchroman-6-yl)-ethynyl)pyrazin-2-yl]pentanoate;
ethyl 5-[5-((4,4-diethyl-7-hexylchroman-6-yl)-ethynyl)pyrazin-2-yl]pentanoate, and the corresponding free carboxylic acids.

Claims

WHAT IS CLAIMED IS :
1. A compound of the formula
Figure imgf000065_0001
wherein R1 and R2, independently are n-alkyl groups having 2 to 8 carbons, or cyclo or branch-chained alkyl groups of 3 to 8 carbons;
R3 is hydrogen or lower alkyl;
X is S, O or N-R4 where R4 is hydrogen or lower alkyl;
Y is phenyl or a heteroaryl group selected from a group consisting of pyridyl, thienyl, furyl,
pyridazinyl, pyrimidinyl, and pyrazinyl;
A is (CH2)n where n is 0-5, lower branched chain alkyl having 3 to 6 carbons, cycloalkyl having 3 to 6 carbons, alkenyl having 2 to 6 carbons and 1 or 2 double bonds, alkynyl having 2 to 6 carbons and 1 or 2 triple bonds;
B is hydrogen, COOH or a pharmaceutically
acceptable salt thereof, COOR5, CONR6R7, -CH2OH, CH2OR8, CH2OCOR8, CHO, CH(OR9)2, CHOR10O, -CORllf
CR11(OR9)2, or CR11OR10O, where R5 is an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or R5 is phenyl or lower alkylphenyl, R6 and R7 independently are hydrogen, an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or phenyl or lower alkylphenyl, R8 is alkyl of 1 to 10 carbons, phenyl or lower alkylphenyl, R9 is lower alkyl, R10 is divalent alkyl radical of 2 - 5 carbons and R11 is an alkyl, cycloalkyl or alkenyl group containing 1 to 5 carbons.
2. A compound in accordance with Claim 1 where X is S.
3. A compound in accordance with Claim 1 where X is O.
4. A compound in accordance with Claim 1 where X is NH.
5. A compound in accordance with Claim 1 where the R1 and R2 groups are identical with one another.
6. A compound in accordance with Claim 1 where the R1 and R2 groups are both n-alkyl.
7. A compound in accordance with Claim 1 where Y is phenyl.
8. A compound in accordance with Claim 1 where Y is selected from a group consisting of pyridyl,
thienyl, furyl, pyridazinyl, pyrimidinyl, and
pyrazinyl.
9. A compound in accordance with Claim 8 where Y is selected from a group consisting of pyridyl and thienyl.
10. A compound of the formula
Figure imgf000066_0001
where R1 and R2, independently are n-alkyl groups having 2 to 8 carbons; R3 is hydrogen or lower alkyl;
X is S or O;
A is (CH2)n where n is 0-5, and
B is hydrogen, COOH or a pharmaceutically
acceptable salt thereof, COOR5, CONR6R7 , -CH2OH, CH2OR8, CH2OCOR8, CHO, CH(OR9)2, CHOR10O, -COR11, CR11(OR9)2, or CR11OR10O, where R5 is an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or R5 is phenyl or lower alkylphenyl, R6 and R7 independently are hydrogen, an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or phenyl or lower alkylphenyl, R8 is alkyl of 1 to 10 carbons, phenyl or lower alkylphenyl, R9 is lower alkyl, R10 is divalent alkyl radical of 2 - 5 carbons and R11 is an alkyl, cycloalkyl or alkenyl group containing 1 to 5 carbons.
11. A compound in accordance with Claim 10 where X is S.
12. A compound in accordance with Claim 11 where A is (CH2)n and where n is 0.
13. A compound in accordance with Claim 12 where B is COOH, COOR5, CONR6R7 or a pharmaceutically acceptable salt thereof.
14. A compound in accordance with Claim 10 where x is 0.
15. A compound in accordance with Claim 14 where A is (CH2)n and where n is 0.
16. A compound in accordance with Claim 15 where B is COOH, COOR5, CONR6R7 or a pharmaceutically acceptable salt thereofe
17. A compound of the formula
Figure imgf000068_0001
where R1 and R2, independently are n-alkyl groups having 2 to 8 carbons;
R3 is hydrogen or lower alkyl;
X is S or O;
A is (CH2)n where n is 0-5, and
B is hydrogen, COOH or a pharmaceutically
acceptable salt thereof, COOR5, CONR6R7, -CH20H, CH2OR8, CH2OCOR8, CHO, CH(OR9)2, CHOR10O, -COR11,
CR11(OR9)2, or CR11OR10O, where R5 is an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or R5 is phenyl or lower alkylphenyl, R6 and R7 independently are hydrogen, an alkyl group of 1 to 10 carbons, or a cycloalkyl group of 5 to 10 carbons, or phenyl or lower alkylphenyl, R8 is alkyl of 1 to 10 carbons, phenyl or lower alkylphenyl, R9 is lower alkyl, R10 is divalent alkyl radical of 2 - 5 carbons and R11 is an alkyl, cycloalkyl or alkenyl group containing 1 to 5 carbons.
18. A compound in accordance with Claim 17 where X is S.
19. A compound in accordance with Claim 18 where A is (CH2)n and where n is 0.
20. A compound in accordance with Claim 19 where B is COOH, COOR5, CONR6R7 or a pharmaceutically acceptable salt thereof.
21. A compound in accordance with Claim 17 where X is O.
22. A compound in accordance with Claim 21 where A is (CH2)n and where n is 0.
23. A compound in accordance with Claim 22 where B is COOH, COOR5, CONR6R7 or a pharmaceutically acceptable salt thereof.
24. A compound of the formula
Figure imgf000069_0001
where where R1 and R2 are identical and are selected from the group consisting of ethyl, n-propyl and n-butyl;
Z is N or CH, and
R5 is ethyl or hydrogen.
25. A compund of claim 24 where R1 and R2 are ethyl.
26. A compound of Claim 25 where Z is CH.
27. A compound of Claim 25 where Z is N.
28. A compund of claim 24 where R1 and R2 are n-propyl.
29. A compound of Claim 28 where Z is CH.
30. A compound of Claim 28 where Z is N.
31. A compund of claim 24 where R1 and R2 are n-butyl.
32. A compound of Claim 31 where Z is CH.
33. A compound of Claim 31 where Z is N.
PCT/US1993/001116 1992-02-14 1993-02-08 Disubstituted acetylenes bearing heterobicyclic groups and heteroaromatic or phenyl groups having retinoid like activity WO1993016068A1 (en)

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Publication number Priority date Publication date Assignee Title
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WO1998019999A1 (en) * 1996-11-05 1998-05-14 Allergan Sales, Inc. N-aryl substituted tetrahydroquinolines ligands for retinoid receptors having agonist, antagonist or inverse agonist type activity
WO1998056783A1 (en) * 1997-06-13 1998-12-17 Galderma Research & Development Bi-aromatic compounds and pharmaceutical and cosmetic compositions containing same
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Families Citing this family (78)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5234926A (en) * 1987-03-20 1993-08-10 Allergan, Inc. Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
US5602130A (en) * 1987-03-20 1997-02-11 Allergan Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
US5264578A (en) * 1987-03-20 1993-11-23 Allergan, Inc. Disubstituted acetylenes bearing heterobicyclic groups and heteroaromatic or phenyl groups having retinoid like activity
US5183827A (en) * 1989-09-19 1993-02-02 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a 2-substituted chromanyl, thiochromanyl or 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity
US5272156A (en) * 1989-09-19 1993-12-21 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a 2-substituted 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity
US5399561A (en) * 1989-09-19 1995-03-21 Allergan, Inc. Acetylenes disubstituted with a phenyl or heteroaryl group and a 2-oxochromanyl, 2-oxothiochromanyl or 2-oxo-1,2,3,4-tetrahydro-quinolinyl group having retinoid-like biological activity
US5264456A (en) * 1989-12-29 1993-11-23 Allergan, Inc. Acetylenes disubstituted with a furyl group and a substituted phenyl group having retinoid like activity
US5134159A (en) * 1991-03-26 1992-07-28 Allergan, Inc. 7-chromanyl esters of phenols and benzoic acids having retinoid-like activity
AU3659293A (en) * 1992-02-11 1993-09-03 Allergan, Inc. Heteroaryl substituted phenylethenyl compounds having retinoid-like biological activity
US5324840A (en) 1992-06-11 1994-06-28 Allergan, Inc. Method of treatment with compounds having retinoid-like activity and reduced skin toxicity and lacking teratogenic effects
US5455265A (en) 1993-02-11 1995-10-03 Allergan, Inc. Method of treatment with compounds having selective agonist-like activity on RXR retinoid receptors
US6172115B1 (en) 1993-02-11 2001-01-09 Allergan Sales, Inc. Method for preventing onset of restenosis after angioplasty employing an RXR-specific retinoid
US5457129A (en) * 1993-05-17 1995-10-10 Research Development Foundation Inhibition of nitric oxide production by retinoic acid
US5475022A (en) * 1993-10-18 1995-12-12 Allergan, Inc. Phenyl or heteroaryl and tetrahydronaphthyl substituted diene compounds having retinoid like biological activity
US5430049A (en) * 1993-12-08 1995-07-04 Gaut; Zane N. Treating hyperproliferative disorders
US5426118A (en) * 1993-12-30 1995-06-20 Allergan, Inc. [4-(1,2-epoxycyclohexanyl)but-3-en-1-ynyl]aromatic and heteroaromatic acids and derivatives having retinoid-like biological activity
US5451605A (en) * 1993-12-30 1995-09-19 Allergan, Inc. 1,2-epoxycyclohexanyl and bicyclic aromatic substituted ethyne compounds having retinoid-like biological activity
US5470999A (en) * 1993-12-30 1995-11-28 Allergan, Inc. Cyclohexene and bicyclic aromatic substituted ethyne compounds having retinoid-like biological activity
US5585244A (en) * 1994-06-10 1996-12-17 Ligand Pharmaceuticals Incorporated Detection of retinoid X receptor subtype γ proteins
US5498755A (en) * 1994-08-23 1996-03-12 Chandraratna; Roshantha A. Disubstituted aryl and heteroaryl imines having retinoid-like biological activity
US5556996A (en) * 1994-12-29 1996-09-17 Allergan Oxiranyls disubstituted with a phenyl group and a substituted chromanyl or tetrahydroquinolinyl group having retinoid like activity
US5534641A (en) * 1994-12-29 1996-07-09 Allergan Acetylenes disubstituted with 2-tetrahydropyranoxyaryl and aryl or heteroaryl groups having retinoid-like biological activity
US5648514A (en) * 1994-12-29 1997-07-15 Allergan Substituted acetylenes having retinoid-like biological activity
US5618931A (en) * 1994-12-29 1997-04-08 Allergan Acetylenes disubstituted with a 5 substituted dihydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5489584A (en) * 1994-12-29 1996-02-06 Allergan, Inc. Acetylenes disubstituted with a 5-amino or substituted 5-amino substituted tetrahydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5618943A (en) * 1994-12-29 1997-04-08 Allergan Acetylenes disubstituted with a 5 OXO substituted tetrahydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5514825A (en) * 1994-12-29 1996-05-07 Allergan, Inc. Acetylenes disubstituted with a 5 substituted tetrahydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5599967A (en) * 1994-12-29 1997-02-04 Allergan Acetylenes disubstituted with a 5 substituted tetrahydronaphthyl group and with an aryl of heteroaryl group having retinoid-like biological activity
US5543534A (en) * 1994-12-29 1996-08-06 Allergan Acetylenes disubstituted with a 5 substituted tetrahydronaphthyl group and with an aryl or heteroaryl groups having retinoid-like biological activity
US5559248A (en) * 1995-04-05 1996-09-24 Bristol-Myers Squibb Co. Retinoid-like heterocycles
US6025388A (en) * 1995-04-26 2000-02-15 Allergan Sales, Inc. Method for inhibiting gene expression promoted by AP1 protein with RARβ selective retinoids and method for treatment of diseases and conditions with such retinoids
US5616712A (en) * 1995-05-16 1997-04-01 Allergan Acetylenes disubstituted with a phenyl or heteroaryl group and a 2-thio-1,2,3,4-tetrahdroquinolinyl, 2-alkylthio-3,4-dihydroquinolinyl or 2-alkoxy-3,4-dihydroquinolinyl group having retinoid-like biological activity
US5675033A (en) * 1995-06-06 1997-10-07 Allergan 2,4-pentadienoic acid derivatives having retinoid-like biological activity
US5917082A (en) * 1995-06-06 1999-06-29 Allergan Sales, Inc. 2,4-pentadienoic acid derivatives having retinoid-like biological activity
GB9515311D0 (en) 1995-07-26 1995-09-20 3D Scanners Ltd Stripe scanners and methods of scanning
US5958954A (en) * 1995-09-01 1999-09-28 Allergan Sales, Inc. Synthesis and use of retinoid compounds having negative hormone and/or antagonist activities
US6942980B1 (en) 1995-09-01 2005-09-13 Allergan, Inc. Methods of identifying compounds having nuclear receptor negative hormone and/or antagonist activities
US6218128B1 (en) 1997-09-12 2001-04-17 Allergan Sales, Inc. Methods of identifying compounds having nuclear receptor negative hormone and/or antagonist activities
US6008204A (en) 1995-09-01 1999-12-28 Allergan Sales, Inc. Synthesis and use of retinoid compounds having negative hormone and/or antagonist activities
US5952345A (en) * 1995-09-01 1999-09-14 Allergan Sales, Inc. Synthesis and use of retinoid compounds having negative hormone and/or antagonist activities
AU7598596A (en) * 1995-11-01 1997-05-22 Allergan, Inc. Sulfides, sulfoxides and sulfones disubstituted with a tetrahydronaphthalenyl, chromanyl, thiochromanyl or tetrahydroquinolinyl and substituted phenyl or heteroaryl group, having retinoid-like biological activity
US5663357A (en) * 1995-11-22 1997-09-02 Allergan Substituted heteroarylamides having retinoid-like biological activity
US5675024A (en) * 1995-11-22 1997-10-07 Allergan Aryl or heteroaryl amides of tetrahydronaphthalene, chroman, thiochroman and 1,2,3,4,-tetrahydroquinoline carboxylic acids, having an electron withdrawing substituent in the aromatic or heteroaromatic moiety, having retinoid-like biological activity
US5688957A (en) * 1995-12-29 1997-11-18 Allergan (3"-thioxacyclohex-1"-enyl)!-but-3'-ene-1'-ynyl!aryl and (3"-thioxacyclohex-1"-enyl)!-but-3'-ene-1'-ynyl!heteroaryl carboxylic acids and esters having retinoid-like biological activity
US5965606A (en) 1995-12-29 1999-10-12 Allergan Sales, Inc. Methods of treatment with compounds having RAR.sub.α receptor specific or selective activity
US20030219832A1 (en) * 1996-03-11 2003-11-27 Klein Elliott S. Synthesis and use of retinoid compounds having negative hormone and/or antagonist activities
FR2746098B1 (en) * 1996-03-14 1998-04-30 BIAROMATIC PROPYNYL COMPOUNDS
US6555690B2 (en) 1996-06-21 2003-04-29 Allergan, Inc. Alkyl or aryl substituted dihydronaphthalene derivatives having retinoid and/or retinoid antagonist-like biological activity
US5808124A (en) * 1996-06-21 1998-09-15 Allergan O- or S-substituted dihydronaphthalene derivatives having retinoid and/or retinoid antagonist-like biological activity
US5723666A (en) * 1996-06-21 1998-03-03 Allergan Oxime substituted tetrahydronaphthalene derivatives having retinoid and/or retinoid antagonist-like biological activity
US5747542A (en) * 1996-06-21 1998-05-05 Allergan Oxo-substituted tetrahydronaphthalene derivatives having retinold and/or retinoid antagonist-like biological activity
US5773594A (en) * 1996-06-21 1998-06-30 Allergan Alkyl or aryl substituted dihydronaphthalene derivatives having retinoid and/or retinoid antagonist-like biological activity
US5741896A (en) 1996-06-21 1998-04-21 Allergan O- or S- substituted tetrahydronaphthalene derivatives having retinoid and/or retinoid antagonist-like biological activity
US5763635A (en) * 1996-06-21 1998-06-09 Allergan Tetrahydronaphthalene derivatives substituted in the 8 position with alkyhidene groups having retinoid and/or retinoid antagonist-like biological activity
US5728846A (en) * 1996-12-12 1998-03-17 Allergan Benzo 1,2-g!-chrom-3-ene and benzo 1,2-g!-thiochrom-3-ene derivatives
US5760276A (en) * 1997-03-06 1998-06-02 Allergan Aryl-and heteroarylcyclohexenyl substituted alkenes having retinoid agonist, antagonist or inverse agonist type biological activity
US6037488A (en) 1997-04-19 2000-03-14 Allergan Sales, Inc. Trisubstituted phenyl derivatives having retinoid agonist, antagonist or inverse agonist type biological activity
US6077850A (en) * 1997-04-21 2000-06-20 G.D. Searle & Co. Substituted benzopyran analogs for the treatment of inflammation
US5919970A (en) 1997-04-24 1999-07-06 Allergan Sales, Inc. Substituted diaryl or diheteroaryl methanes, ethers and amines having retinoid agonist, antagonist or inverse agonist type biological activity
US6048873A (en) * 1998-10-01 2000-04-11 Allergan Sales, Inc. Tetrahdroquinolin-2-one 6 or 7-yl, tetrahdroquinilin-2-thione 6 or 7-yl pentadienoic acid and related derivatives having retinoid-like biological activity
US6906057B1 (en) 1999-06-11 2005-06-14 Allergan, Inc. Methods for modulating FXR receptor activity
US6127382A (en) * 1999-08-16 2000-10-03 Allergan Sales, Inc. Amines substituted with a tetrahydroquinolinyl group an aryl or heteroaryl group and an alkyl group, having retinoid-like biological activity
US6903121B1 (en) 2000-08-17 2005-06-07 Allergan, Inc. Treatment of tumors with acetylenes disubstituted with a phenyl or heteroaromatic group and a substituted chromanyl, thiochromanyl or tetrahydroquinolinyl group in combination with other anti-tumor agents
US6291677B1 (en) 2000-08-29 2001-09-18 Allergan Sales, Inc. Compounds having activity as inhibitors of cytochrome P450RAI
US6369225B1 (en) 2000-08-29 2002-04-09 Allergan Sales, Inc. Compounds having activity as inhibitors of cytochrome P450RAI
US6252090B1 (en) 2000-08-29 2001-06-26 Allergan Sales, Inc. Compounds having activity as inhibitors of cytochrome P450RAI
US6313107B1 (en) * 2000-08-29 2001-11-06 Allergan Sales, Inc. Methods of providing and using compounds having activity as inhibitors of cytochrome P450RAI
US6380256B1 (en) 2000-08-29 2002-04-30 Allergan Sales, Inc. Compounds having activity as inhibitors of cytochrome P450RAI
US6740676B2 (en) * 2002-03-19 2004-05-25 Allergan, Inc. 4-[(8-ethynyl, 8-vinyl or 8-ethynyl-methyl)-6-chromanoyl]-benzoic and 2-[4-[(8-ethynyl, 8-vinyl or 8-ethynyl-methyl)-6-chromanoyl]-phenyl]-acetic acid, their esters and salts having cytochrome p450rai inhibitory activity
US6683092B1 (en) 2003-04-09 2004-01-27 Allergan, Inc. [3-(c5-14alkyl-2-oxo-1,2,3,4-tetrahydro-quinolin-6-yl)-3-oxo-propenyl]-phenyl and [3-(c5-14alkyl-2-oxo-1,2,3,4- tetrahydro-quinolin-6-yl)-3-oxo-propenyl]-heteroaryl derivatives having anti-tumor activity
US6734193B1 (en) 2003-06-03 2004-05-11 Allergan, Inc. (1,2,3,4-tetrahydroquinolin-8-yl)-heptatrienoic acid derivatives having serum glucose reducing activity
KR20070051768A (en) * 2003-12-02 2007-05-18 알러간, 인코포레이티드 Prevention and/or reduction of photoreceptor degeneration with retinoids
US20060020037A1 (en) * 2004-07-22 2006-01-26 Allergan, Inc. Tazarotenic acid and esters thereof for treating autism
EP1978971A4 (en) * 2005-12-30 2012-03-28 Revance Therapeutics Inc Arginine heteromers for topical administration
EP2056814B1 (en) 2006-08-16 2014-05-21 Amderma Pharmaceuticals, Llc 2,5-dihydroxybenzene compounds for the treatment of psoriasis
HUE031712T2 (en) 2007-01-15 2017-08-28 Chongxi Yu Positively charged water-soluble prodrugs of retinoids and retinoid-like compounds with very high skin penetration rates
CA2766027C (en) * 2009-06-16 2020-07-07 Cold Power Systems Inc. Energy transfer machines
JP7163288B2 (en) 2017-07-04 2022-10-31 第一三共株式会社 Drugs for retinal degenerative diseases associated with photoreceptor degeneration

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0284288A1 (en) * 1987-03-20 1988-09-28 Allergan, Inc Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
US4810804A (en) * 1987-03-26 1989-03-07 Allergan, Inc. Acetylenes disubstituted with a phenyl group and a heterobicyclic group having retinoid-like activity
US4980369A (en) * 1989-09-19 1990-12-25 Allergan, Inc. Acetylenes disubstituted with a phenyl group and a 2-substituted chromanyl or thiochromanyl group having retinoid-like activity
EP0419132A2 (en) * 1989-09-19 1991-03-27 Allergan, Inc. Process and intermediates for preparing compounds having a disubstituted acetylene moiety and retinoic acid-like biological activity
US5045551A (en) * 1989-09-19 1991-09-03 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a 2-substituted chromanyl, thiochromanyl or 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity

Family Cites Families (107)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4085091A (en) * 1976-12-16 1978-04-18 E. I. Dupont De Nemours And Company Thermally stable, rigid polyesters from thermally stable, rigid dibasic acids and aromatic dihydroxy compounds
US4326055A (en) * 1977-12-22 1982-04-20 Hoffmann-La Roche Inc. Stilbene derivatives
DE2920947A1 (en) * 1979-05-23 1980-12-04 Bayer Ag 2-PHENYL-ALKEN-1-YL-CYCLOPROPANE-CARBONIC ACID ESTER, METHOD FOR THE PRODUCTION THEREOF AND THEIR USE AS INSECTICIDES AND ACARICIDES AND INTERMEDIATE PRODUCTS FOR THEIR PRODUCTION
EP0047817A3 (en) * 1980-08-14 1982-05-26 F. HOFFMANN-LA ROCHE & CO. Aktiengesellschaft Hydrogenated naphthalines, their preparation and application, and mixtures containing such naphthalines
CH651034A5 (en) * 1982-05-12 1985-08-30 Hoffmann La Roche CHROMAN, THIOCHROMAN OR 1,2,3,4-TETRAHYDROCHINOLIN DERIVATIVES AND THEIR USE AS MEDICINAL ACTIVE SUBSTANCES.
DK158947C (en) * 1982-07-06 1991-01-21 Hoffmann La Roche TETRAHYDRONAPHTHALIN, BENZOFURAN AND BENZOTHIOPHENDER DERIVATIVES, PREPARATION AND USE THEREOF, AND RODENTICID CONTAINING SUCH DERIVATIVES
US5068255A (en) * 1982-08-02 1991-11-26 The Dow Chemical Company Ion exchange resins prepared by sequential monomer addition
US4539154A (en) * 1983-06-15 1985-09-03 Hoffmann-La Roche Inc. Polyene compounds
EP0130795B1 (en) * 1983-07-05 1988-11-23 Pfizer Inc. Carboxylic acid derivatives useful for inhibiting the degradation of cartilage
EP0155940A1 (en) * 1983-08-08 1985-10-02 Sri International Benzonorbornenyl, benzopyranyl and benzothiopyranyl retinoic acid analogues
FR2562539B1 (en) * 1984-04-06 1987-04-17 Chauvin Blache Lab NOVEL VINYL-4 BENZOIC ACID DERIVATIVES, PREPARATION METHOD THEREOF AND THERAPEUTIC APPLICATIONS THEREOF AND AS LIGANDS
US4826984A (en) * 1984-04-09 1989-05-02 The Board Of Regents For The Oklahoma Agricultural And Mechanical College Acting For And On Behalf Of Oklahoma State University Heteroarotinoid compounds as anticancer agents
JPS60222445A (en) * 1984-04-19 1985-11-07 Yoshitomi Pharmaceut Ind Ltd Phthalic acid compound
EP0170105B1 (en) * 1984-07-07 1990-10-17 Koichi Prof. Dr. Shudo Benzoic acid derivatives
JPS6122046A (en) * 1984-07-07 1986-01-30 Koichi Shiyudo Stilbene derivative
LU85544A1 (en) * 1984-09-19 1986-04-03 Cird AROMATIC HETEROCYCLIC DERIVATIVES, THEIR PREPARATION PROCESS AND THEIR APPLICATION IN THE THERAPEUTIC AND COSMETIC FIELDS
DE3434946A1 (en) * 1984-09-22 1986-04-03 Basf Ag, 6700 Ludwigshafen DIARYLACETYLENE, THEIR PRODUCTION AND USE
DE3434947A1 (en) * 1984-09-22 1986-04-03 Basf Ag, 6700 Ludwigshafen ISOXAZOLIC CARBONIC ACID DERIVATIVES, THEIR PRODUCTION AND USE
DE3434942A1 (en) * 1984-09-22 1986-04-03 Basf Ag, 6700 Ludwigshafen TETRALINE DERIVATIVES, THEIR PRODUCTION AND USE
IL80270A0 (en) * 1985-10-11 1987-01-30 Cird Naphthalene derivatives,their preparation and pharmaceutical compositions containing them
DE3602473A1 (en) * 1986-01-28 1987-07-30 Basf Ag VINYLPHENOL DERIVATIVES, THEIR PRODUCTION AND USE
LU86351A1 (en) * 1986-03-12 1987-11-11 Oreal BENZOPYRANNYL AND BENZOTHIOPYRANNYL BENZOIC COMPOUNDS, PROCESS FOR THEIR PREPARATION AND THEIR USE IN COSMETICS AND HUMAN AND VETERINARY MEDICINE
DE3615157A1 (en) * 1986-05-05 1987-11-12 Schwabe Willmar Gmbh & Co 5-ARYLALKYL-4-ALKOXY-2 (5H) -FURANONE, INTERMEDIATE PRODUCTS AND METHOD FOR THE PRODUCTION THEREOF AND THEIR USE AS THERAPEUTIC ACTIVE SUBSTANCES
ZW6587A1 (en) * 1986-05-13 1987-12-02 Hoffmann La Roche Tetrahydro naphthanline derivatives
ZW7487A1 (en) * 1986-05-23 1987-12-16 Hoffmann La Roche Tetrahydronaphthaline and indane derivatives
ZW10287A1 (en) * 1986-07-15 1988-01-13 Hoffmann La Roche Tetrahydronaphthaline and indane derivatives
FR2601670B1 (en) * 1986-07-17 1988-10-07 Cird NOVEL AROMATIC BICYCLIC DERIVATIVES, THEIR PREPARATION PROCESS AND THEIR USE IN HUMAN AND VETERINARY MEDICINE AND IN COSMETICS
US4739098A (en) * 1986-09-22 1988-04-19 Allergan, Inc. Ethynylphenyl-containing retinoic acid derivatives
US4923884A (en) * 1986-12-24 1990-05-08 Allergan, Inc. Ethynylheteroaromatic-acids having retinoic acid-like activity
US4927947A (en) * 1986-12-24 1990-05-22 Allergan, Inc. Ethynylheteroaromatic-acids having retinoic acid-like activity
NZ222968A (en) * 1986-12-24 1990-05-28 Allergan Inc Ethynylheteroaromatic derivatives and medicaments
US5149705A (en) * 1987-03-13 1992-09-22 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a tetralin group and having retinoid like activity
US5602130A (en) * 1987-03-20 1997-02-11 Allergan Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
US5264578A (en) 1987-03-20 1993-11-23 Allergan, Inc. Disubstituted acetylenes bearing heterobicyclic groups and heteroaromatic or phenyl groups having retinoid like activity
US5089509A (en) * 1988-09-15 1992-02-18 Allergan, Inc. Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
US5234926A (en) * 1987-03-20 1993-08-10 Allergan, Inc. Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
IL85896A (en) * 1987-04-06 1993-01-14 Riker Laboratories Inc Substituted di-tert.- butylphenols and pharmaceutical compositions containing them
DE3726806A1 (en) * 1987-08-12 1989-02-23 Basf Ag ARYLPHOSPHOR DERIVATIVES, THEIR PRODUCTION AND USE
ZA885192B (en) * 1987-08-19 1989-04-26 Hoffmann La Roche Pharmaceutical preparations
CA1298309C (en) * 1987-11-06 1992-03-31 Michael Klaus Benzocycloheptene derivatives
US5231113A (en) * 1988-04-11 1993-07-27 Allergan, Inc. Tetralin esters of phenols or benzoic acids having retinoid like activity
KR0139216B1 (en) * 1988-04-11 1998-05-01 제임스 엠. 캐내지 Tetralin esters of phenols or benzoic acids having retinoic like activity
US4895868A (en) * 1988-06-29 1990-01-23 Allergan, Inc. Thiochroman esters of phenols and terephthallates having retinoid-like activity
US5015658A (en) * 1988-06-29 1991-05-14 Allergan, Inc. Thiochroman esters of phenols and terephthallates having retinoid-like activity
AU626881B2 (en) * 1988-07-14 1992-08-13 F. Hoffmann-La Roche Ag Benzofused heterocyclics used as pharmaceuticals
US5068252A (en) * 1989-07-26 1991-11-26 Allergan, Inc. Methods of using phenylethenyl compounds having retinoid-like activity
US4992468A (en) * 1989-07-26 1991-02-12 Allergan, Inc. Phenylethenyl compounds having retinoid-like activity
DE3926148A1 (en) 1989-08-08 1991-02-28 Basf Ag DIARYLACETYLENE, THEIR MANUFACTURE AND USE
FR2651494B1 (en) * 1989-09-05 1993-01-08 Rhone Poulenc Sante PROCESS FOR THE PREPARATION OF OPTICALLY ACTIVE ARYL-2 PROPIONIC ACIDS.
US5272156A (en) * 1989-09-19 1993-12-21 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a 2-substituted 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity
US5053523A (en) * 1989-09-19 1991-10-01 Allergan, Inc. Ethynyl-chroman compounds
US5248777A (en) * 1989-09-19 1993-09-28 Allergan, Inc. Process and intermediates for preparing compounds having a disubstituted acetylene moiety and retinoic acid-like biological activity
US5399561A (en) * 1989-09-19 1995-03-21 Allergan, Inc. Acetylenes disubstituted with a phenyl or heteroaryl group and a 2-oxochromanyl, 2-oxothiochromanyl or 2-oxo-1,2,3,4-tetrahydro-quinolinyl group having retinoid-like biological activity
US5183827A (en) * 1989-09-19 1993-02-02 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a 2-substituted chromanyl, thiochromanyl or 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity
US5162546A (en) * 1989-09-19 1992-11-10 Allergan, Inc. Acetylenes disubstituted with a phenyl group and a 2-substituted chromanyl, thiochromanyl or 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity
US5005550A (en) * 1989-12-19 1991-04-09 Chrysler Corporation Canister purge for turbo engine
US5175185A (en) * 1989-12-29 1992-12-29 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a substituted phenyl group having retinoid like activity
US5013744B1 (en) * 1989-12-29 1994-09-20 Allegran Inc Acetylenes disubstituted with a pyridinyl group and a substituted phenyl group having retinoid like activity
US5006550A (en) * 1989-12-29 1991-04-09 Allergan, Inc. Chroman esters of phenols and benzoic acids having retinoid-like activity
US5264456A (en) * 1989-12-29 1993-11-23 Allergan, Inc. Acetylenes disubstituted with a furyl group and a substituted phenyl group having retinoid like activity
US5202471A (en) * 1990-02-06 1993-04-13 Allergan, Inc. Alkyl, alkoxy and thioalkoxy substituted diphenyl acetylenes having retinoid like activity
US5214202A (en) 1990-03-20 1993-05-25 Shionogi & Co., Ltd. Method for preparing benzoic acid derivatives
EP0525109A4 (en) * 1990-04-16 1993-06-30 Rhone-Poulenc Rorer International (Holdings) Inc. Styryl-substituted monocyclic and bicyclic heteroaryl compounds which inhibit egf receptor tyrosine kinase
LU87821A1 (en) * 1990-10-12 1992-05-25 Cird Galderma BI-AROMATIC COMPOUNDS, AND THEIR USE IN HUMAN AND VETERINARY MEDICINE AND IN COSMETICS
US5563292A (en) * 1990-10-17 1996-10-08 Schering Corporation Lipoxygenase inhibitors
WO1992014725A1 (en) * 1991-02-13 1992-09-03 Allergan, Inc. Chroman and thiochromans with phenylethynyl substituents at the 7-position having retinoid-like biological activity
JP3157523B2 (en) * 1991-03-26 2001-04-16 アラーガン、インコーポレイテッド Chromans and thiochromans having a heteroarylethynyl substituent at position 7 with retinoid-like biological activity
US5134159A (en) * 1991-03-26 1992-07-28 Allergan, Inc. 7-chromanyl esters of phenols and benzoic acids having retinoid-like activity
FR2676440B1 (en) 1991-05-15 1993-07-30 Cird Galderma NOVEL AROMATIC COMPOUNDS DERIVED FROM IMINE, THEIR PREPARATION PROCESS AND THEIR USE IN HUMAN AND VETERINARY MEDICINE AND IN COSMETICS.
US5326898A (en) * 1992-02-11 1994-07-05 Allergan, Inc. Substituted phenylethenyl compounds having retinoid-like biological activity
AU3659293A (en) * 1992-02-11 1993-09-03 Allergan, Inc. Heteroaryl substituted phenylethenyl compounds having retinoid-like biological activity
US5420145A (en) * 1993-03-22 1995-05-30 Koichi Shudo Carboxylic acid derivative
EP0617020A1 (en) 1992-04-02 1994-09-28 Shudo, Koichi, Prof. Dr. Carboxylic acid derivatives having retinoic acid-like activity
US5324840A (en) * 1992-06-11 1994-06-28 Allergan, Inc. Method of treatment with compounds having retinoid-like activity and reduced skin toxicity and lacking teratogenic effects
US5466861A (en) * 1992-11-25 1995-11-14 Sri International Bridged bicyclic aromatic compounds and their use in modulating gene expression of retinoid receptors
US5455265A (en) * 1993-02-11 1995-10-03 Allergan, Inc. Method of treatment with compounds having selective agonist-like activity on RXR retinoid receptors
US5399586A (en) * 1993-03-11 1995-03-21 Allergan, Inc. Treatment of mammals afflicted with tumors with compounds having RXR retinoid receptor agonist activity
EP0619116A3 (en) 1993-04-05 1994-11-23 Hoechst Japan Use of synthetic retinoids for osteopathy.
US5344959A (en) * 1993-05-18 1994-09-06 Allergan, Inc. Tetrahydronaphthyl and cyclopropyl substituted 1,3-butadienes having retinoid-like activity
US5475022A (en) 1993-10-18 1995-12-12 Allergan, Inc. Phenyl or heteroaryl and tetrahydronaphthyl substituted diene compounds having retinoid like biological activity
FR2713635B1 (en) 1993-12-15 1996-01-05 Cird Galderma New bi-aromatic propynyl compounds, pharmaceutical and cosmetic compositions containing them and uses.
US5426118A (en) * 1993-12-30 1995-06-20 Allergan, Inc. [4-(1,2-epoxycyclohexanyl)but-3-en-1-ynyl]aromatic and heteroaromatic acids and derivatives having retinoid-like biological activity
US5451605A (en) * 1993-12-30 1995-09-19 Allergan, Inc. 1,2-epoxycyclohexanyl and bicyclic aromatic substituted ethyne compounds having retinoid-like biological activity
US5470999A (en) * 1993-12-30 1995-11-28 Allergan, Inc. Cyclohexene and bicyclic aromatic substituted ethyne compounds having retinoid-like biological activity
CA2138000A1 (en) 1994-01-03 1995-07-04 John E. Starrett, Jr. Retinoid-like compounds
CA2137997A1 (en) 1994-01-03 1995-07-04 John E. Starrett, Jr. Retinoid-like compounds
US5498755A (en) * 1994-08-23 1996-03-12 Chandraratna; Roshantha A. Disubstituted aryl and heteroaryl imines having retinoid-like biological activity
IL116259A (en) 1994-12-19 2000-07-16 American Cyanamid Co Analogs of 9-cis retinoic acid and their use
US5534641A (en) 1994-12-29 1996-07-09 Allergan Acetylenes disubstituted with 2-tetrahydropyranoxyaryl and aryl or heteroaryl groups having retinoid-like biological activity
US5599967A (en) * 1994-12-29 1997-02-04 Allergan Acetylenes disubstituted with a 5 substituted tetrahydronaphthyl group and with an aryl of heteroaryl group having retinoid-like biological activity
US5556996A (en) * 1994-12-29 1996-09-17 Allergan Oxiranyls disubstituted with a phenyl group and a substituted chromanyl or tetrahydroquinolinyl group having retinoid like activity
US5618943A (en) * 1994-12-29 1997-04-08 Allergan Acetylenes disubstituted with a 5 OXO substituted tetrahydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5514825A (en) * 1994-12-29 1996-05-07 Allergan, Inc. Acetylenes disubstituted with a 5 substituted tetrahydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5489584A (en) * 1994-12-29 1996-02-06 Allergan, Inc. Acetylenes disubstituted with a 5-amino or substituted 5-amino substituted tetrahydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5543534A (en) * 1994-12-29 1996-08-06 Allergan Acetylenes disubstituted with a 5 substituted tetrahydronaphthyl group and with an aryl or heteroaryl groups having retinoid-like biological activity
US5498795A (en) * 1994-12-29 1996-03-12 Allergan, Inc. Acetylenes disubstituted with hydroxyaryl and aryl or heteroaryl groups having retinoid-like biological activity
US5648514A (en) * 1994-12-29 1997-07-15 Allergan Substituted acetylenes having retinoid-like biological activity
US5618931A (en) * 1994-12-29 1997-04-08 Allergan Acetylenes disubstituted with a 5 substituted dihydronaphthyl group and with an aryl or heteroaryl group having retinoid-like biological activity
US5559248A (en) * 1995-04-05 1996-09-24 Bristol-Myers Squibb Co. Retinoid-like heterocycles
US5616712A (en) * 1995-05-16 1997-04-01 Allergan Acetylenes disubstituted with a phenyl or heteroaryl group and a 2-thio-1,2,3,4-tetrahdroquinolinyl, 2-alkylthio-3,4-dihydroquinolinyl or 2-alkoxy-3,4-dihydroquinolinyl group having retinoid-like biological activity
US5675033A (en) * 1995-06-06 1997-10-07 Allergan 2,4-pentadienoic acid derivatives having retinoid-like biological activity
AU7598596A (en) * 1995-11-01 1997-05-22 Allergan, Inc. Sulfides, sulfoxides and sulfones disubstituted with a tetrahydronaphthalenyl, chromanyl, thiochromanyl or tetrahydroquinolinyl and substituted phenyl or heteroaryl group, having retinoid-like biological activity
US5663357A (en) * 1995-11-22 1997-09-02 Allergan Substituted heteroarylamides having retinoid-like biological activity
US5675024A (en) * 1995-11-22 1997-10-07 Allergan Aryl or heteroaryl amides of tetrahydronaphthalene, chroman, thiochroman and 1,2,3,4,-tetrahydroquinoline carboxylic acids, having an electron withdrawing substituent in the aromatic or heteroaromatic moiety, having retinoid-like biological activity
US5688957A (en) 1995-12-29 1997-11-18 Allergan (3"-thioxacyclohex-1"-enyl)!-but-3'-ene-1'-ynyl!aryl and (3"-thioxacyclohex-1"-enyl)!-but-3'-ene-1'-ynyl!heteroaryl carboxylic acids and esters having retinoid-like biological activity
US5723666A (en) 1996-06-21 1998-03-03 Allergan Oxime substituted tetrahydronaphthalene derivatives having retinoid and/or retinoid antagonist-like biological activity
US5728846A (en) 1996-12-12 1998-03-17 Allergan Benzo 1,2-g!-chrom-3-ene and benzo 1,2-g!-thiochrom-3-ene derivatives

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0284288A1 (en) * 1987-03-20 1988-09-28 Allergan, Inc Disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups having retinoid like activity
US4810804A (en) * 1987-03-26 1989-03-07 Allergan, Inc. Acetylenes disubstituted with a phenyl group and a heterobicyclic group having retinoid-like activity
US4980369A (en) * 1989-09-19 1990-12-25 Allergan, Inc. Acetylenes disubstituted with a phenyl group and a 2-substituted chromanyl or thiochromanyl group having retinoid-like activity
EP0419132A2 (en) * 1989-09-19 1991-03-27 Allergan, Inc. Process and intermediates for preparing compounds having a disubstituted acetylene moiety and retinoic acid-like biological activity
US5045551A (en) * 1989-09-19 1991-09-03 Allergan, Inc. Acetylenes disubstituted with a heteroaromatic group and a 2-substituted chromanyl, thiochromanyl or 1,2,3,4-tetrahydroquinolinyl group having retinoid-like activity

Cited By (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO1996012701A1 (en) * 1994-10-25 1996-05-02 Allergan Method for preparing esters of halonicotinic acids
WO1998019999A1 (en) * 1996-11-05 1998-05-14 Allergan Sales, Inc. N-aryl substituted tetrahydroquinolines ligands for retinoid receptors having agonist, antagonist or inverse agonist type activity
US6849658B2 (en) 1997-06-13 2005-02-01 Galderma Research & Development Biaromatic compounds and pharmaceutical and cosmetic compositions comprising them
WO1998056783A1 (en) * 1997-06-13 1998-12-17 Galderma Research & Development Bi-aromatic compounds and pharmaceutical and cosmetic compositions containing same
FR2764604A1 (en) * 1997-06-13 1998-12-18 Cird Galderma BI-AROMATIC COMPOUNDS LINKED BY A PROPYNYLENE OR ALLENYLENE RADICAL AND PHARMACEUTICAL AND COSMETIC COMPOSITIONS CONTAINING THEM
US6103762A (en) * 1997-06-13 2000-08-15 Galderma Research & Development Bi-aromatic compounds and pharmaceutical and cosmetic compositions containing same
US6346546B1 (en) 1997-06-13 2002-02-12 Galderma Research & Development Biaromatic compounds and pharmaceutical and cosmetic compositions comprising them
WO2005003125A1 (en) * 2003-07-04 2005-01-13 Glenmark Pharmaceuticals Limited Process for the preparation of 4,4-dimethyl-6-ethynylthiochroman
US7414143B2 (en) 2003-07-04 2008-08-19 Glenmark Pharmaceuticals Limited Process for the preparation of 4,4-dimethyl-6-ethynylthiochroman
WO2005123713A1 (en) * 2004-06-17 2005-12-29 Glenmark Pharmaceuticals Limited Process for the preparation of disubstituted acetylenes bearing heteroaromatic and heterobicyclic groups
US10759762B2 (en) 2014-10-10 2020-09-01 High Force Research Limited Fluorescent synthetic retinoids
WO2017152725A1 (en) * 2016-03-11 2017-09-14 中国科学院上海有机化学研究所 Retinoid compound, preparation method therefor, intermediates thereof and application thereof
CN107176945A (en) * 2016-03-11 2017-09-19 中国科学院上海有机化学研究所 A kind of retinoid compound, its preparation method, intermediate and application
US10556879B2 (en) 2016-03-11 2020-02-11 Shanghai Institute Of Organic Chemistry, Chinese Acadmeny Of Sciences Retinoid compound, preparation method therefor, intermediates thereof and application thereof
CN107176945B (en) * 2016-03-11 2021-06-08 中国科学院上海有机化学研究所 Retinoid compound, preparation method, intermediate and application thereof

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US5663347A (en) 1997-09-02
US5468879A (en) 1995-11-21
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DE69330092T2 (en) 2001-09-27
AU674671B2 (en) 1997-01-09
US6090826A (en) 2000-07-18
JP3626180B2 (en) 2005-03-02
US5264578A (en) 1993-11-23
CA2129973A1 (en) 1993-08-19
AU3659193A (en) 1993-09-03
EP0636127A1 (en) 1995-02-01
JPH07503733A (en) 1995-04-20
US5677451A (en) 1997-10-14
DE69330092D1 (en) 2001-05-10
US5750693A (en) 1998-05-12
EP0636127B1 (en) 2001-04-04

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