EP1286984A2

Method for the preparation of tetrahydrobenzothiepines

Abstract

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EP1286984A2, drawing sheet 1
Sheet 1 of 277

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Projected expiry passed 8 March 2021, 5.5 years ago.

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302 claims: 29 independent, 273 dependent

  1. 1
    Claims of equivalent WO 0168637 A2 CLAIMS What is claimed is:1. A method for the preparation of a benzylammonium compound having the structure of Formula 60 wherein the method comprises treating a benzyl alcohol ether compound having the structure of Formula (61) under derivatization conditions to form a derivatized benzyl ether compound having the structure of Formula (62) and contacting the derivatized benzyl ether compound with an amine having the structure of Formula (42) under amination conditions thereby producing the benzylammonium compound or a derivative thereof, wherein: R 1 and R^ independently are C j to about C Q hydrocarbyl;R- R 4 , and R 5 independently are selected from the group consisting of H and C j to about C 2 Q hydrocarbyl, wherein optionally one or more carbon atom of the hydrocarbyl is replaced by O, N, or S, and wherein optionally two or more of R , R4 ;and R^ taken together with the atom to which they are attached form a cyclic structure;R" is selected from the group consisting of H, hydrocarbyl, hydroxyalkyl, alkoxyalkyl, aminoalkyl, alkylaminoalkyl, ammoniumalkyl, polyalkoxyalkyl, heterocyclyl, heteroaryl, quaternary heterocycle, quaternary heteroaryl, OR 3 , NR 3 R 4 , N + R 3 R 4 R 5 A " , SR 3 , S(O)R 3 , SO 2 R 3 , SO 3 R 3 , oxo, CO 2 R 3 , CN, halogen, NCO, CONR 3 R 4 , SO 2 OM, SO 2 NR 3 R 4 , PO(OR 23 )OR 24 , P + R 3 R 4 R 5 A " , S + R 3 R 4 A " , and C(O)OM;R 23 and R 24 are independently selected from the substituents 3 constituting R and M;n is a number from 0 to 4;A " is a pharmaceutically acceptable anion and M is a pharmaceutically acceptable cation;and X is a nucleophilic substitution leaving group. A method for the preparation of a benzylammonium compound having the structure of Formula (1) wherein the method comprises treating a benzyl alcohol ether compound having the structure of Formula (6) under derivatization conditions to form a derivatized benzyl ether compound having the structure of Formula (
  2. 2
    2) and contacting the derivatized benzyl ether compound with an amine having the structure of Formula (42):under amination conditions thereby producing the benzylammonium compound or a derivative thereof, wherein: R 1 and R^ independently are C_ to about C 2 hydrocarbyl;R , R , and R^ independently are selected from the group consisting of H and C j to about C 2 Q hydrocarbyl, wherein optionally one or more carbon atom of the hydrocarbyl is replaced by O, N, or S, and wherein optionally two or more of R , R , and R taken together with the atom to which they are attached form a cyclic structure;and X is a nucleophilic substitution leaving group.
  3. 5
    6. The method of claim 5 wherein R , R , and R^ independently are C^ to about Cg hydrocarbyl. The method of claim 6 wherein R , R , and R- independently are selected from the group consisting of methyl, ethyl, and propyl. The method of claim 7 wherein R , R , and R^ each are methyl. The method of claim 2 wherein the amine comprises a heterocycle.
  4. 22
    26. The method of claim 22 wherein the hydrophilic solvent comprises methyl ethyl ketone and water.
  5. 71
    75. The method of claim 71 wherein the deprotecting step comprises treating the protected phenol compound with a deprotection reagent.
  6. 107
    111. The method of claim 107 wherein the solvent is an alcohol.
  7. 127
    138. A method for the preparation of a benzylammonium compound having the structure of Formula (Y) wherein the method comprises the steps of:(a) treating a protected phenol compound having the structure of Formula (14) with a substituted benzoyl compound having the structure of Formula (15) under acylation conditions to produce a substituted benzophenone compound having the structure of Formula (13) (b) reducing the substituted benzophenone compound to produce a substituted diphenyl methane compound having the structure of Formula (11) (c) coupling the substituted diphenyl methane compound with a substituted propionaldehyde compound having the structure of Formula (12) in the presence of a source of sulfur to form a nitro sulfide aldehyde compound having the structure of Formula (10) (d) oxidizing the nitro sulfide aldehyde compound to form a nitro sulfone aldehyde compound having the structure of Formula (9) (e) reductively alkylating the nitro sulfone aldehyde compound to form an amino sulfone aldehyde compound having the structure of Formula (8) (f) treating the amino sulfone aldehyde compound under cyclization conditions to form protected phenol compound having the structure of Formula (7) (g) deprotecting the protected phenol compound to form a phenol compound having the structure of Formula (4) (h) coupling the phenol compound with a substituted xylene having the structure of Formula (5) under substitution conditions to produce a benzyl alcohol ether compound having the structure of Formula (6) (i) treating the benzyl alcohol ether compound with a leaving group- forming reagent to produce a derivatized benzyl ether compound having the structure of Formula (2) ω treating the derivatized benzyl ether compound with an amine having the structure of Formula (42): .3 I l ( 42 ) ^ under amination conditions to produce the benzylammonium compound;wherein: R 1 and R 2 independently are C j to about C 2 Q hydrocarbyl;Rx R , and R^ independently are selected from the group consisting of H and C \ to about C 2 Q hydrocarbyl, wherein optionally one or more carbon atom of the hydrocarbyl is replaced by O, N, or S, and wherein optionally two or more of R , R 4 , and R^ taken together with the atom to which they are attached form a cyclic structure;R" is a protecting group;X and X 4 independently are nucleophilic leaving groups;~ Xr is selected from the group consisting of chloro, bromo, iodo, methanesulfonato, trifluoromethanesulfonato, benzenesulfonato, and toluenesulfonato;X^ is an aromatic substitution leaving group;and X^ is selected from the group consisting of hydroxy and halo.
  8. 130
    141. A method for the preparation of a derivatized benzyl ether compound having the structure of Formula (2) wherein the method comprises treating a benzyl alcohol ether compound having the structure of Formula (6) with a halogenating agent to form the derivatized benzyl ether compound, wherein R 1 and R? 1 independently are C^ to about C Q hydrocarbyl, and X is halo.
  9. 132
    143. A method for the preparation of a benzyl alcohol ether compound having the structure of Formula (6) wherein the method comprises contacting a phenol compound having the structure of Formula (4) with a substituted xylene compound having the structure of Formula (5) under substitution conditions to produce the benzyl alcohol ether compound, wherein R and independently are C j to about C Q hydrocarbyl, and X 2 is selected from the group consisting of chloro, bromo, iodo, methanesulfonato, trifluoromethylsuflonato, and toluenesulfonato .
  10. 148
    159. A method for the preparation of a phenol compound having the structure of Formula (4) wherein the method comprises deprotecting a protected phenol compound having the structure of Formula (7) to form the phenol compound, wherein R and R 2 independently are C j to about C 2 Q hydrocarbyl, and R" is a protecting group.
  11. 150
    161. A method for the preparation of a protected phenol compound having the structure of Formula (7) wherein the method comprises cyclizing an amino sulfone aldehyde compound having the structure of Formula (8) under cyclization conditions to form the protected phenol compound, wherein R 1 and R 2 independently are C j to about C 2 Q hydrocarbyl, and R" is a protecting group. The method of claim 161 wherein the protected phenol compound produced by the method comprises a (4R,5R) enantiomer that preponderates over a (4S,5S) enantiomer.
  12. 151
    163. A method for the preparation of an amino sulfone aldehyde compound having the structure of Formula (8) wherein the method comprises reductively alkylating a nitro sulfone aldehyde compound having the structure of Formula (9) to form the amino sulfone aldehyde compound, wherein R 1 and R 2 independently are C j to about C 2Q hydrocarbyl, and RP is a protecting group.
  13. 152
    164. A method for the preparation of a nitro sulfone aldehyde compound having the structure of Formula (9) wherein the method comprises oxidizing a nitro sulfide aldehyde compound having the structure of Formula (10) to form the nitro sulfone aldehyde compound, wherein R and ? independently are C j to about C 2 Q hydrocarbyl, and R° is a protecting group. A method for the preparation of a nitro sulfide aldehyde having the structure of Formula (10) wherein the method comprises coupling a substituted diphenyl methane compound having the structure of Formula (11) with a substituted propionaldehyde compound having the structure of Formula (12) in the presence of a source of sulfur to form the nitro sulfide aldehyde, wherein:R 1 and R 2 independently are Cj to about C 2 o hydrocarbyl;R" is a protecting group;X 3 is an aromatic substitution leaving group;and X 4 is a nucleophilic substitution leaving group.
  14. 153
    166. A method for the preparation of a substituted diphenyl methane compound having the structure of Formula (11) wherein the method comprises reducing a substituted benzophenone compound having the structure of Formula (13) to form the substituted diphenyl methane compound, wherein:R" is a protecting group;and X 3 is an aromatic substitution leaving group.
  15. 154
    167. A method for the preparation of a substituted benzophenone compound having the structure of Formula (13) wherein the method comprises reacting a protected phenol compound having the structure of Formula (14) with a substituted benzoyl compound having the structure of Formula (15) under acylation conditions to produce the substituted benzophenone compound, wherein:R" is a protecting group;X 3 is an aromatic substitution leaving group;X 5 is selected from the group consisting of hydroxy, bromo, iodo, and -OR 14 ;and R 14 is an acyl group.
  16. 165
    178. A method for the preparation of a substituted benzophenone compound having the structure of Formula (13) wherein the method comprises reacting an aryl metal complex having the structure of Formula (56) with a substituted benzoyl compound having the structure of Formula (15) under acylation conditions to produce the substituted benzophenone compound, wherein:R" is a protecting group;L is a metal-containing moiety;X 3 is an aromatic substitution leaving group;X 5 is selected from the group consisting of halo and -OR 4 ;and R 14 is an acyl group. The method of claim 178 wherein L is selected from the group consisting of MgX 6 , Na, and Li, wherein X 6 is a halogen.
  17. 166
    180. A method for the preparation of an amino sulfone aldehyde compound having the structure of Formula (17) wherein the method comprises reducing and reductively alkylating an alkenyl sulfone aldehyde compound having the structure of Formula (16) to form the amino sulfone aldehyde compound wherein R 1 is a C^ to about C20 hydrocarbyl group;R° is a protecting group;and R' is selected from the group consisting of H and Cl to about C17 hydrocarbyl.
  18. 167
    181. A method for the preparation of an alkenyl sulfone aldehyde compound having the structure of Formula (16) wherein the method comprises thermolyzing an acetal compound having the structure of Formula (18) to form the alkenyl sulfone aldehyde compound, wherein R 1 is a Ci to about C20 hydrocarbyl group; R" is a protecting group; R ' is selected from the group consisting of H and C j to about γη hydrocarbyl; and R 13 is selected from the group consisting of H and C j to about C20 hydrocarbyl. A method for the preparation of an acetal compound having the structure of Formula (18) wherein the method comprises reacting a monoalkyl sulfone aldehyde compound having the structure of Formula (19) with an allyl alcohol having the structure of Formula (20) optionally in the presence of a hydroxylated solvent having the structure HOR 13 to form the acetal compound, wherein:R 1 is a C j to about C20 hydrocarbyl;R" is a protecting group;R' is selected from the group consisting of H and a Cγ to about γη hydrocarbyl;and R 13 is selected from the group consisting of H and C γ to about C20 hydrocarbyl.
  19. 172
    187. A method for the preparation of a monoalkyl sulfone aldehyde compound having the structure of Formula (19) wherein the method comprises reacting a substituted diphenyl methane compound having the structure of Formula (11) under sulfination conditions to produce a sulfination mixture and contacting the sulfination mixture with a 2-hydrocarbyl acrolein compound having the structure of Formula (21) thereby forming the monoalkyl sulfone aldehyde compound, wherein:R is a C j to about C20 hydrocarbyl;R" is a protecting group;and X 3 is an aromatic substitution leaving group.
  20. 173
    188. A method for the preparation of a 3-sulfur-propionaldehyde olefin compound having the structure of Formula 49 wherein the method comprises contacting a 3-sulfur-propionaldehyde compound having the structure of Formula 48 with an allyl alcohol coir Lpound having the structure of Formula 50 in the presence of a source of acid, thereby forming the 3-sulfur- propionaldehyde olefin compound, wherein:R 15 is selected from the group consisting of H, alkyl, alkenyl, alkynyl, aryl, alkylaryl, arylalkylaryl, and acyl, wherein alkyl, alkenyl, alkynyl, aryl, alkylaryl, arylalkylaryl, and acyl optionally are substituted with at least one ^ group;R 16 , R 1 ^, R-^ a , and R^ 1 D are independently selected from the group consisting of H and hydrocarbyl;R 2 ^ is selected from the group consisting of H, -NO2, amino, C j to about CJQ alkylamino, di(C j to about C^alkylamino, C j to about CJQ alkylthio, hydroxy, C^ to about CJQ alkoxy, cyanato, isocyanato, halogen, OR 6 , SR 6 , SR 6 R 6a , and NR 6 R 6a ;R 6 and R 6a independently are selected from the group consisting of H and a protecting group;and q is 0, 1, or 2. The method of claim 188 wherein R 1 ^ is selected from the group consisting of aryl, alkylaryl, and arylalkylaryl.
  21. 188
    204. The method of claim 188 wherein the contacting is performed in the presence of a solvent.
  22. 190
    206. A method of treating a diastereomer of a tetrahydrobenzothiepine compound having the structure of Formula (22) wherein Formula (22) comprises a (4,5)-diastereomer selected from the group consisting of a (4S,5S) diastereomer, a (4R,5R) diastereomer, a (4R,5S) diastereomer, and a (4S,5R) diastereomer, to produce a mixture comprising the (4S,5S) diastereomer and the (4R,5R) diastereomer, wherein the method comprises contacting a base with a feedstock composition comprising the diastereomer of the tetrahydrobenzothiepine compound, thereby producing a mixture of diastereomers of the tetrahydrobenzothiepine compound;and wherein R 1 and R 2 independently are C ι to about C20 hydrocarbyl;R 8 is selected from the group consisting of H, hydrocarbyl, heterocyclyl, ((hydroxyalkyl)aryl)-alkyl, ((cycloalkyl)alkylaryl)alkyl, ((heterocycloalkyl)alkylaryl)alkyl, ((quaternary heterocycloalkyl)alkylaryl)alkyl, heteroaryl, quaternary heterocycle, quaternary heteroaryl, and quaternary heteroarylalkyl, wherein hydrocarbyl, heterocycle, heteroaryl, quaternary heterocycle, quaternary heteroaryl, and quaternary heteroarylalkyl optionally have one or more carbons replaced by a moiety selected from the group consisting of O, NR 3 , N + R 3 R 4 A " , S, SO, SO 2 , S + R 3 A " , PR 3 , P R R A " , P(O)R , phenylene, carbohydrate, amino acid, peptide, and polypeptide, and R 8 is optionally substituted with one or more moieties selected from the group consisting of sulfoalkyl, quaternary heterocycle, quaternary heteroaryl, OR 3 , NR 3 R 4 , N + R 3 R 4 R 5 A " , SR 3 , S(O)R 3 , SO 2 R 3 , SO3R 3 , oxo, CO 2 R 3 , CN, halogen, CONR 3 R 4 , SO 2 OM, SO 2 NR 3 R 4 , PO(OR 23 )OR 24 , P + R 3 R 4 R 5 A " , S + R 3 R 4 A " , and C(O)OM;R 23 and R 24 are independently selected from the substituents 3 constituting R and M;A " is a pharmaceutically acceptable anion and M is a pharmaceutically acceptable cation;and R" is selected from the group consisting of H, hydrocarbyl, hydroxyalkyl, alkoxyalkyl, aminoalkyl, alkylaminoalkyl, ammoniumalkyl, polyalkoxyalkyl, heterocyclyl, heteroaryl, quaternary heterocycle, quaternary heteroaryl, OR 3 , NR 3 R 4 , N + R 3 R 4 R 5 A " , SR 3 , S(O)R 3 , SO 2 R 3 , SO 3 R 3 , oxo, CO 2 R 3 , CN, halogen, NCO, CONR 3 R 4 , SO 2 OM, SO 2 NR 3 R 4 , PO(OR 23 )OR 24 , P + R 3 R 4 R 5 A " , S + R 3 R 4 A " , and C(O)OM;R 3 , R 4 , and R^ independently are selected from the group consisting of H and C j to about C 2 Q hydrocarbyl, wherein optionally one or more carbon atom of the hydrocarbyl is replaced by O, N, or S, and wherein optionally two or more of R , R 4 , and R^ taken together with the atom to which they are attached form a cyclic structure;n is a number from 0 to 4;and x is 1 or 2.
  23. 219
    235. A method of treating a diastereomer of a tetrahydrobenzothiepine compound having the structure of Formula (22) wherein Formula (22) comprises a (4,5)-diastereomer selected from the group consisting of a (4S,5S) diastereomer, a (4R,5R) diastereomer, a (4R,5S) diastereomer, and a (4S,5R) diastereomer, to produce a mixture comprising the (4S,5S) diastereomer and the (4R,5R) diastereomer, wherein the method comprises treating the diastereomer of the tetrahydrobenzothiepine compound under elimination conditions to produce a dihydrobenzothiepine compound having the structure of Formula (23) and oxidizing the dihydrobenzothiepine compound thereby producing the mixture comprising the (4S,5S) diastereomer and the (4R,5R) diastereomer, wherein R 1 and R 2 independently are C j to about C 2 Q hydrocarbyl;R is selected from the group consisting of H, hydrocarbyl, heterocyclyl, ((hydroxyalkyl)aryl)-alkyl, ((cycloalkyl)alkylaryl)alkyl, ((heterocycloalkyl)alkylaryl)alkyl, ((quaternary heterocycloalkyl)alkylaryl)alkyl, heteroaryl, quaternary heterocycle, quaternary heteroaryl, and quaternary heteroarylalkyl, wherein hydrocarbyl, heterocycle, heteroaryl, quaternary heterocycle, quaternary heteroaryl, and quaternary heteroarylalkyl optionally have one or more carbons replaced by a moiety selected from the group consisting of O, NR 3 , N + R 3 R 4 A " , S, SO, SO 2 , S + R 3 A " , PR 3 , P R R A " , P(O)R , phenylene, carbohydrate, amino acid, peptide, and polypeptide, and R 8 is optionally substituted with one or more moieties selected from the group consisting of sulfoalkyl, quaternary heterocycle, quaternary heteroaryl, OR 3 , NR 3 R 4 , N + R 3 R 4 R 5 A " , SR 3 , S(O)R 3 , SO 2 R 3 , SO 3 R 3 , oxo, CO 2 R 3 , CN, halogen, CONR 3 R 4 , SO 2 OM, SO 2 NR 3 R 4 , PO(OR 23 )OR 24 , P + R 3 R 4 R 5 A " , S + R 3 R 4 A " , and C(O)OM;R 3 , R 4 , and R 5 independently are selected from the group consisting of H and C j to about C 2 Q hydrocarbyl, wherein optionally one or more carbon atom of the hydrocarbyl is replaced by O, N, or S, and wherein optionally two or more of R , R 4 , and R-> taken together with the atom to which they are attached form a cyclic structure;R 23 and R 24 are independently selected from the substituents 3 constituting R and M;A " is a pharmaceutically acceptable anion and M is a pharmaceutically acceptable cation;and R" is selected from the group consisting of H, hydrocarbyl, hydroxyalkyl, alkoxyalkyl, aminoalkyl, alkylaminoalkyl, ammoniumalkyl, polyalkoxyalkyl, heterocyclyl, heteroaryl, quaternary heterocycle, quaternary heteroaryl, OR 3 , NR 3 R 4 , N + R 3 R 4 R 5 A " , SR 3 , S(O)R 3 , SO 2 R 3 , SO 3 R 3 , oxo, CO 2 R 3 , CN, halogen, NCO, CONR 3 R 4 , SO 2 OM, SO 2 NR 3 R 4 , PO(OR 23 )OR 24 , P + R 3 R 4 R 5 A " , S + R 3 R 4 A " , and C(O)OM;n is a number from 0 to 4;X ' is selected from the group consisting of S, NH, and O;and x is 0, 1, or 2.
  24. 227
    243. A compound having the structure of Formula (2) wherein R 1 and R 2 independently are C _ to about C Q hydrocarbyl and X is selected from the group consisting of Br, I, and a nucleophilic substitution leaving group covalently bonded to the compound via an oxygen atom.
  25. 240
    256. A compound having the structure of Formula (28)
  26. 242
    258. A compound having the structure of Formula (24) wherein Formula (22) represents a (4,5)-diastereomer selected from the group consisting of a (4S,5S) diastereomer, a (4R,5R) diastereomer, a (4R,5S) diastereomer, and a (4S,5R) diastereomer.
  27. 244
    260. A compound having the structure of Formula (29)
  28. 245
    261. A compound having the structure of Formula (30)
  29. 246
    262. 2-Bromomethyl-2-butylhexanal.
  30. 247
    263. 2-Bromomethyl-2-butylhexanol.
  31. 248
    264. l-Acetato-2-butyl-2-(hydroxymethyl)hexane.
  32. 249
    265. A compound having the structure of Formula (31) wherein Formula (31) represents a compound having either an E or a Z configuration about the butenyl double bond.
  33. 252
    268. A compound having the structure of Formula (32)
  34. 253
    269. A compound having the structure of Formula (11) wherein R 6 is a protecting group and X 3 is an aromatic substitution leaving group.
  35. 260
    276. A compound having the structure of Formula (13) wherein R 6 is a protecting group and X 3 is an aromatic substitution leaving group.
  36. 267
    283. A method for the preparation of a substituted propionaldehyde compound having the structure of Formula 12 wherein the method comprises oxidizing a substituted propanol compound having the structure of Formula 35 wherein R 1 and R 2 independently are C_ to about C 2 Q hydrocarbyl and X 4 is a nucleophilic substitution leaving group.
  37. 287
    305. A crystalline form of a tetrahydrobenzothiepine compound having the structure of Formula 71 or an enantiomer thereof wherein the crystalline form has a melting point or a decomposition point of about 278°C to about 285°C
  38. 302
    320. A crystalline form of a tetrahydrobenzothiepine compound wherein the tetrahydrobenzothiepine compound has the structure of Formula 71 and that after a sample of the crystalline form is dried at essentially 0% relative humidity at about 25°C under a purge of essentially dry nitrogen until the sample exhibits essentially no weight change as a function of time, the sample gains less than 1% of its own weight when equilibrated under about 80% relative humidity air at about 25°C 321. A crystalline form of a tetrahydrobenzothiepine compound wherein the tetrahydrobenzothiepine compound has the structure of Formula 71 and wherein the crystalline form is produced by crystallizing the tetrahydrobenzothiepine compound from a solvent comprising methyl ethyl ketone. A method for the preparation of a crystalline form of a tetrahydrobenzothiepine compound having the structure of Formula 63 wherein the method comprises crystallizing the tetrahydrobenzothiepine compound from a solvent comprising methyl ethyl ketone, and wherein:R 1 and R 2 independently are C j to about C 2 Q hydrocarbyl;R 3 , R 4 , and R^ independently are selected from the group consisting of H and C^ to about C 2 Q hydrocarbyl, wherein optionally one or more carbon atom of the hydrocarbyl is replaced by O, N, or S, and wherein optionally two or more of R , R , and R^ taken together with the atom to which they are attached form a cyclic structure;R" is selected from the group consisting of H, hydrocarbyl, hydroxyalkyl, alkoxyalkyl, aminoalkyl, alkylaminoalkyl, ammoniumalkyl, polyalkoxyalkyl, heterocyclyl, heteroaryl, quaternary heterocycle, quaternary heteroaryl, OR 3 , NR 3 R 4 , N + R 3 R 4 R 5 A " , SR 3 , S(O)R 3 , SO 2 R 3 , SO 3 R 3 , oxo, CO 2 R 3 , CN, halogen, NCO, CONR 3 R 4 , SO 2 OM, SO 2 NR 3 R 4 , PO(OR 23 )OR 24 , P + R 3 R 4 R 5 A " , S + R 3 R 4 A ~ , and C(O)OM;R 23 and R 24 are independently selected from the substituents 3 constituting R and M;n is a number from 0 to 4;A " and Z " independently are pharmaceutically acceptable anions;and M is a pharmaceutically acceptable cation. The method of claim 322 wherein the tetrahydrobenzothiepine compound has the structure of Formula 64 324. The method of claim 323 wherein the tetrahydrobenzothiepine compound has the structure of Formula 41 325. A method for the preparation of a product crystal form of a tetrahydrobenzothiepine compound having the compound structure of Formula 41 wherein the product crystal form has a melting point or a decomposition point of about 278°C to about 285°C, wherein the method comprises applying heat to an initial crystal form of the tetrahydrobenzothiepine compound wherein the initial crystal form has a melting point or a decomposition point of about 220°C to about 235°C, thereby forming the product crystal form. 326. The method of claim 325 wherein the initial crystal form is heated to a temperature from about 20°C to about 150°C. 327. The method of claim 326 wherein the initial crystal form is heated to a temperature from about 50°C to about 125°C. 328. The method of claim 327 wherein the initial crystal form is heated to a temperature from about 60°C to about 100°C. 329. The method of claim 325 wherein the method further comprises a cooling step after the step in which the initial crystal form is heated. 330. The method of claim 325 further comprising mixing the initial crystal form with a solvent. 331. The method of claim 330 wherein the solvent comprises a ketone. 332. The method of claim 331 wherein the ketone is selected from the group consisting of methyl ethyl ketone, acetone, and methyl isobutyl ketone. 333. The method of claim 332 wherein the ketone is methyl ethyl ketone. 334. The method of claim 332 wherein the ketone is acetone. 335. The method of claim 332 wherem the ketone is methyl isobutyl ketone. 336. The method of claim 330 wherem the method further comprises a cooling step after the step in which the initial crystal form is heated.
Independent claims38