USH1893H - Enzymatic reduction method for the preparation of halohydrins - Google Patents
Enzymatic reduction method for the preparation of halohydrins Download PDFInfo
- Publication number
- USH1893H USH1893H US08/685,318 US68531896A USH1893H US H1893 H USH1893 H US H1893H US 68531896 A US68531896 A US 68531896A US H1893 H USH1893 H US H1893H
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- US
- United States
- Prior art keywords
- compound
- atcc
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- formula
- salt
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Abandoned
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- 238000000034 method Methods 0.000 title claims abstract description 50
- 230000009467 reduction Effects 0.000 title claims abstract description 34
- 230000002255 enzymatic effect Effects 0.000 title claims abstract description 25
- 150000003944 halohydrins Chemical class 0.000 title abstract description 13
- 238000002360 preparation method Methods 0.000 title abstract description 10
- 150000001875 compounds Chemical class 0.000 claims description 89
- 150000003839 salts Chemical class 0.000 claims description 60
- 244000005700 microbiome Species 0.000 claims description 38
- 108090000854 Oxidoreductases Proteins 0.000 claims description 17
- 102000004316 Oxidoreductases Human genes 0.000 claims description 17
- 241000122969 Streptomyces nodosus Species 0.000 claims description 9
- 241000134363 Umbelopsis ramanniana Species 0.000 claims description 9
- 241000223678 Aureobasidium pullulans Species 0.000 claims description 8
- 241000222118 Leptoxyphium fumago Species 0.000 claims description 5
- 239000000463 material Substances 0.000 claims description 5
- 241000588724 Escherichia coli Species 0.000 claims description 4
- 241000222124 [Candida] boidinii Species 0.000 claims description 4
- 241000193755 Bacillus cereus Species 0.000 claims description 3
- 244000063299 Bacillus subtilis Species 0.000 claims description 3
- 235000014469 Bacillus subtilis Nutrition 0.000 claims description 3
- 241000589513 Burkholderia cepacia Species 0.000 claims description 3
- 241000187606 Nocardioides albus Species 0.000 claims description 3
- 241000235059 Ogataea pini Species 0.000 claims description 3
- 241000235648 Pichia Species 0.000 claims description 3
- 241000222481 Schizophyllum commune Species 0.000 claims description 3
- 241001149558 Trichoderma virens Species 0.000 claims description 3
- 241000589774 Pseudomonas sp. Species 0.000 claims description 2
- 125000005931 tert-butyloxycarbonyl group Chemical group [H]C([H])([H])C(OC(*)=O)(C([H])([H])[H])C([H])([H])[H] 0.000 claims description 2
- 150000002118 epoxides Chemical class 0.000 abstract description 9
- 230000000707 stereoselective effect Effects 0.000 abstract description 9
- 239000000543 intermediate Substances 0.000 abstract description 7
- 239000000137 peptide hydrolase inhibitor Substances 0.000 abstract description 7
- 229940042399 direct acting antivirals protease inhibitors Drugs 0.000 abstract description 6
- 125000005283 haloketone group Chemical group 0.000 abstract description 5
- 230000001177 retroviral effect Effects 0.000 abstract description 4
- 125000000217 alkyl group Chemical group 0.000 description 87
- -1 halomethyl ketone Chemical class 0.000 description 62
- 125000003118 aryl group Chemical group 0.000 description 39
- 125000002887 hydroxy group Chemical group [H]O* 0.000 description 34
- 238000006722 reduction reaction Methods 0.000 description 29
- 239000001257 hydrogen Substances 0.000 description 28
- 229910052739 hydrogen Inorganic materials 0.000 description 28
- 229910052799 carbon Inorganic materials 0.000 description 24
- 102000004190 Enzymes Human genes 0.000 description 22
- 108090000790 Enzymes Proteins 0.000 description 22
- 239000002609 medium Substances 0.000 description 20
- 125000002496 methyl group Chemical group [H]C([H])([H])* 0.000 description 19
- UFHFLCQGNIYNRP-UHFFFAOYSA-N Hydrogen Chemical compound [H][H] UFHFLCQGNIYNRP-UHFFFAOYSA-N 0.000 description 18
- 125000003342 alkenyl group Chemical group 0.000 description 18
- 125000003545 alkoxy group Chemical group 0.000 description 18
- 125000000753 cycloalkyl group Chemical group 0.000 description 17
- IJGRMHOSHXDMSA-UHFFFAOYSA-N Atomic nitrogen Chemical compound N#N IJGRMHOSHXDMSA-UHFFFAOYSA-N 0.000 description 16
- 238000006243 chemical reaction Methods 0.000 description 16
- 229940126062 Compound A Drugs 0.000 description 14
- LFQSCWFLJHTTHZ-UHFFFAOYSA-N Ethanol Chemical compound CCO LFQSCWFLJHTTHZ-UHFFFAOYSA-N 0.000 description 14
- NLDMNSXOCDLTTB-UHFFFAOYSA-N Heterophylliin A Natural products O1C2COC(=O)C3=CC(O)=C(O)C(O)=C3C3=C(O)C(O)=C(O)C=C3C(=O)OC2C(OC(=O)C=2C=C(O)C(O)=C(O)C=2)C(O)C1OC(=O)C1=CC(O)=C(O)C(O)=C1 NLDMNSXOCDLTTB-UHFFFAOYSA-N 0.000 description 14
- 150000001721 carbon Chemical group 0.000 description 14
- 125000004043 oxo group Chemical group O=* 0.000 description 13
- 125000001997 phenyl group Chemical group [H]C1=C([H])C([H])=C(*)C([H])=C1[H] 0.000 description 13
- 125000004435 hydrogen atom Chemical group [H]* 0.000 description 12
- 229910052757 nitrogen Inorganic materials 0.000 description 12
- 230000008569 process Effects 0.000 description 12
- 239000000047 product Substances 0.000 description 12
- 235000001014 amino acid Nutrition 0.000 description 11
- 229940024606 amino acid Drugs 0.000 description 11
- 230000000813 microbial effect Effects 0.000 description 11
- 239000000758 substrate Substances 0.000 description 11
- 150000001413 amino acids Chemical class 0.000 description 10
- 125000002915 carbonyl group Chemical group [*:2]C([*:1])=O 0.000 description 10
- 239000006285 cell suspension Substances 0.000 description 10
- 125000000623 heterocyclic group Chemical group 0.000 description 10
- 229910052760 oxygen Inorganic materials 0.000 description 10
- 239000001301 oxygen Substances 0.000 description 10
- 125000002924 primary amino group Chemical group [H]N([H])* 0.000 description 10
- 239000007858 starting material Substances 0.000 description 10
- OKTJSMMVPCPJKN-UHFFFAOYSA-N Carbon Chemical group [C] OKTJSMMVPCPJKN-UHFFFAOYSA-N 0.000 description 9
- 125000001797 benzyl group Chemical group [H]C1=C([H])C([H])=C(C([H])=C1[H])C([H])([H])* 0.000 description 9
- WQZGKKKJIJFFOK-GASJEMHNSA-N Glucose Natural products OC[C@H]1OC(O)[C@H](O)[C@@H](O)[C@@H]1O WQZGKKKJIJFFOK-GASJEMHNSA-N 0.000 description 8
- 125000004453 alkoxycarbonyl group Chemical group 0.000 description 8
- 125000005196 alkyl carbonyloxy group Chemical group 0.000 description 8
- 125000004104 aryloxy group Chemical group 0.000 description 8
- 125000003178 carboxy group Chemical group [H]OC(*)=O 0.000 description 8
- 239000008103 glucose Substances 0.000 description 8
- 229930027945 nicotinamide-adenine dinucleotide Natural products 0.000 description 8
- 230000003287 optical effect Effects 0.000 description 8
- 108091005804 Peptidases Proteins 0.000 description 7
- 239000004365 Protease Substances 0.000 description 7
- 125000004414 alkyl thio group Chemical group 0.000 description 7
- 125000000304 alkynyl group Chemical group 0.000 description 7
- 235000019441 ethanol Nutrition 0.000 description 7
- 238000000855 fermentation Methods 0.000 description 7
- 230000004151 fermentation Effects 0.000 description 7
- 125000005843 halogen group Chemical group 0.000 description 7
- 239000000203 mixture Substances 0.000 description 7
- 125000002950 monocyclic group Chemical group 0.000 description 7
- 125000001424 substituent group Chemical group 0.000 description 7
- OKKJLVBELUTLKV-UHFFFAOYSA-N Methanol Chemical compound OC OKKJLVBELUTLKV-UHFFFAOYSA-N 0.000 description 6
- 102000035195 Peptidases Human genes 0.000 description 6
- 125000005110 aryl thio group Chemical group 0.000 description 6
- 230000036983 biotransformation Effects 0.000 description 6
- 125000004093 cyano group Chemical group *C#N 0.000 description 6
- 125000004470 heterocyclooxy group Chemical group 0.000 description 6
- BOPGDPNILDQYTO-NNYOXOHSSA-N nicotinamide-adenine dinucleotide Chemical compound C1=CCC(C(=O)N)=CN1[C@H]1[C@H](O)[C@H](O)[C@@H](COP(O)(=O)OP(O)(=O)OC[C@@H]2[C@H]([C@@H](O)[C@@H](O2)N2C3=NC=NC(N)=C3N=C2)O)O1 BOPGDPNILDQYTO-NNYOXOHSSA-N 0.000 description 6
- 108090000765 processed proteins & peptides Proteins 0.000 description 6
- 238000011946 reduction process Methods 0.000 description 6
- 238000011916 stereoselective reduction Methods 0.000 description 6
- 239000001888 Peptone Substances 0.000 description 5
- 108010080698 Peptones Proteins 0.000 description 5
- 238000005273 aeration Methods 0.000 description 5
- 238000013019 agitation Methods 0.000 description 5
- 125000003277 amino group Chemical group 0.000 description 5
- 125000005199 aryl carbonyloxy group Chemical group 0.000 description 5
- 125000003785 benzimidazolyl group Chemical group N1=C(NC2=C1C=CC=C2)* 0.000 description 5
- 230000015572 biosynthetic process Effects 0.000 description 5
- 125000001495 ethyl group Chemical group [H]C([H])([H])C([H])([H])* 0.000 description 5
- 239000000284 extract Substances 0.000 description 5
- 125000005842 heteroatom Chemical group 0.000 description 5
- 238000004128 high performance liquid chromatography Methods 0.000 description 5
- 125000003392 indanyl group Chemical group C1(CCC2=CC=CC=C12)* 0.000 description 5
- 125000004433 nitrogen atom Chemical group N* 0.000 description 5
- 235000019319 peptone Nutrition 0.000 description 5
- 239000002904 solvent Substances 0.000 description 5
- PXQLVRUNWNTZOS-UHFFFAOYSA-N sulfanyl Chemical class [SH] PXQLVRUNWNTZOS-UHFFFAOYSA-N 0.000 description 5
- 229910052717 sulfur Inorganic materials 0.000 description 5
- 239000011593 sulfur Substances 0.000 description 5
- 125000000999 tert-butyl group Chemical group [H]C([H])([H])C(*)(C([H])([H])[H])C([H])([H])[H] 0.000 description 5
- 125000004665 trialkylsilyl group Chemical group 0.000 description 5
- 239000012138 yeast extract Substances 0.000 description 5
- 241000222120 Candida <Saccharomycetales> Species 0.000 description 4
- 101710088194 Dehydrogenase Proteins 0.000 description 4
- 108010050375 Glucose 1-Dehydrogenase Proteins 0.000 description 4
- 240000004808 Saccharomyces cerevisiae Species 0.000 description 4
- 235000014680 Saccharomyces cerevisiae Nutrition 0.000 description 4
- NINIDFKCEFEMDL-UHFFFAOYSA-N Sulfur Chemical compound [S] NINIDFKCEFEMDL-UHFFFAOYSA-N 0.000 description 4
- 125000003710 aryl alkyl group Chemical group 0.000 description 4
- QVGXLLKOCUKJST-UHFFFAOYSA-N atomic oxygen Chemical compound [O] QVGXLLKOCUKJST-UHFFFAOYSA-N 0.000 description 4
- 125000002619 bicyclic group Chemical group 0.000 description 4
- 229940041514 candida albicans extract Drugs 0.000 description 4
- 239000000460 chlorine Substances 0.000 description 4
- 238000004587 chromatography analysis Methods 0.000 description 4
- 125000001511 cyclopentyl group Chemical group [H]C1([H])C([H])([H])C([H])([H])C([H])(*)C1([H])[H] 0.000 description 4
- ZUOUZKKEUPVFJK-UHFFFAOYSA-N diphenyl Chemical compound C1=CC=CC=C1C1=CC=CC=C1 ZUOUZKKEUPVFJK-UHFFFAOYSA-N 0.000 description 4
- 125000001153 fluoro group Chemical group F* 0.000 description 4
- 125000000592 heterocycloalkyl group Chemical group 0.000 description 4
- 239000007788 liquid Substances 0.000 description 4
- 108090000623 proteins and genes Proteins 0.000 description 4
- 229920006395 saturated elastomer Polymers 0.000 description 4
- 125000002023 trifluoromethyl group Chemical group FC(F)(F)* 0.000 description 4
- WNXJIVFYUVYPPR-UHFFFAOYSA-N 1,3-dioxolane Chemical compound C1COCO1 WNXJIVFYUVYPPR-UHFFFAOYSA-N 0.000 description 3
- PEDCQBHIVMGVHV-UHFFFAOYSA-N Glycerine Chemical compound OCC(O)CO PEDCQBHIVMGVHV-UHFFFAOYSA-N 0.000 description 3
- BAWFJGJZGIEFAR-NNYOXOHSSA-N NAD zwitterion Chemical compound NC(=O)C1=CC=C[N+]([C@H]2[C@@H]([C@H](O)[C@@H](COP([O-])(=O)OP(O)(=O)OC[C@@H]3[C@H]([C@@H](O)[C@@H](O3)N3C4=NC=NC(N)=C4N=C3)O)O2)O)=C1 BAWFJGJZGIEFAR-NNYOXOHSSA-N 0.000 description 3
- DNIAPMSPPWPWGF-UHFFFAOYSA-N Propylene glycol Chemical compound CC(O)CO DNIAPMSPPWPWGF-UHFFFAOYSA-N 0.000 description 3
- YXFVVABEGXRONW-UHFFFAOYSA-N Toluene Chemical compound CC1=CC=CC=C1 YXFVVABEGXRONW-UHFFFAOYSA-N 0.000 description 3
- 125000004457 alkyl amino carbonyl group Chemical group 0.000 description 3
- 125000002947 alkylene group Chemical group 0.000 description 3
- 125000002102 aryl alkyloxo group Chemical group 0.000 description 3
- 125000005100 aryl amino carbonyl group Chemical group 0.000 description 3
- 125000001584 benzyloxycarbonyl group Chemical group C(=O)(OCC1=CC=CC=C1)* 0.000 description 3
- WQZGKKKJIJFFOK-VFUOTHLCSA-N beta-D-glucose Chemical compound OC[C@H]1O[C@@H](O)[C@H](O)[C@@H](O)[C@@H]1O WQZGKKKJIJFFOK-VFUOTHLCSA-N 0.000 description 3
- 229910052794 bromium Inorganic materials 0.000 description 3
- 125000004432 carbon atom Chemical group C* 0.000 description 3
- 238000005119 centrifugation Methods 0.000 description 3
- 229910052801 chlorine Inorganic materials 0.000 description 3
- 125000004122 cyclic group Chemical group 0.000 description 3
- 125000001316 cycloalkyl alkyl group Chemical group 0.000 description 3
- 125000004611 dihydroisoindolyl group Chemical group C1(NCC2=CC=CC=C12)* 0.000 description 3
- 125000002485 formyl group Chemical group [H]C(*)=O 0.000 description 3
- 125000002768 hydroxyalkyl group Chemical group 0.000 description 3
- 125000003454 indenyl group Chemical group C1(C=CC2=CC=CC=C12)* 0.000 description 3
- 125000001041 indolyl group Chemical group 0.000 description 3
- 239000000411 inducer Substances 0.000 description 3
- VLKZOEOYAKHREP-UHFFFAOYSA-N n-Hexane Chemical compound CCCCCC VLKZOEOYAKHREP-UHFFFAOYSA-N 0.000 description 3
- 229950006238 nadide Drugs 0.000 description 3
- 125000000160 oxazolidinyl group Chemical group 0.000 description 3
- 239000008057 potassium phosphate buffer Substances 0.000 description 3
- 239000002243 precursor Substances 0.000 description 3
- 125000006239 protecting group Chemical group 0.000 description 3
- 125000004076 pyridyl group Chemical group 0.000 description 3
- 125000002943 quinolinyl group Chemical group N1=C(C=CC2=CC=CC=C12)* 0.000 description 3
- 150000003254 radicals Chemical class 0.000 description 3
- 239000000376 reactant Substances 0.000 description 3
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- 238000000926 separation method Methods 0.000 description 3
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- 125000003718 tetrahydrofuranyl group Chemical group 0.000 description 3
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- ZCYVEMRRCGMTRW-UHFFFAOYSA-N 7553-56-2 Chemical compound [I] ZCYVEMRRCGMTRW-UHFFFAOYSA-N 0.000 description 2
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- 239000004475 Arginine Substances 0.000 description 2
- WKBOTKDWSSQWDR-UHFFFAOYSA-N Bromine atom Chemical compound [Br] WKBOTKDWSSQWDR-UHFFFAOYSA-N 0.000 description 2
- OYPRJOBELJOOCE-UHFFFAOYSA-N Calcium Chemical compound [Ca] OYPRJOBELJOOCE-UHFFFAOYSA-N 0.000 description 2
- ZAMOUSCENKQFHK-UHFFFAOYSA-N Chlorine atom Chemical compound [Cl] ZAMOUSCENKQFHK-UHFFFAOYSA-N 0.000 description 2
- 241000235555 Cunninghamella Species 0.000 description 2
- BDAGIHXWWSANSR-UHFFFAOYSA-M Formate Chemical compound [O-]C=O BDAGIHXWWSANSR-UHFFFAOYSA-M 0.000 description 2
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- RFSUNEUAIZKAJO-ARQDHWQXSA-N Fructose Chemical compound OC[C@H]1O[C@](O)(CO)[C@@H](O)[C@@H]1O RFSUNEUAIZKAJO-ARQDHWQXSA-N 0.000 description 2
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- VEXZGXHMUGYJMC-UHFFFAOYSA-N Hydrochloric acid Chemical compound Cl VEXZGXHMUGYJMC-UHFFFAOYSA-N 0.000 description 2
- DGAQECJNVWCQMB-PUAWFVPOSA-M Ilexoside XXIX Chemical compound C[C@@H]1CC[C@@]2(CC[C@@]3(C(=CC[C@H]4[C@]3(CC[C@@H]5[C@@]4(CC[C@@H](C5(C)C)OS(=O)(=O)[O-])C)C)[C@@H]2[C@]1(C)O)C)C(=O)O[C@H]6[C@@H]([C@H]([C@@H]([C@H](O6)CO)O)O)O.[Na+] DGAQECJNVWCQMB-PUAWFVPOSA-M 0.000 description 2
- XEEYBQQBJWHFJM-UHFFFAOYSA-N Iron Chemical compound [Fe] XEEYBQQBJWHFJM-UHFFFAOYSA-N 0.000 description 2
- ODKSFYDXXFIFQN-BYPYZUCNSA-P L-argininium(2+) Chemical compound NC(=[NH2+])NCCC[C@H]([NH3+])C(O)=O ODKSFYDXXFIFQN-BYPYZUCNSA-P 0.000 description 2
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- KDXKERNSBIXSRK-YFKPBYRVSA-N L-lysine Chemical compound NCCCC[C@H](N)C(O)=O KDXKERNSBIXSRK-YFKPBYRVSA-N 0.000 description 2
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- BAWFJGJZGIEFAR-NNYOXOHSSA-O NAD(+) Chemical compound NC(=O)C1=CC=C[N+]([C@H]2[C@@H]([C@H](O)[C@@H](COP(O)(=O)OP(O)(=O)OC[C@@H]3[C@H]([C@@H](O)[C@@H](O3)N3C4=NC=NC(N)=C4N=C3)O)O2)O)=C1 BAWFJGJZGIEFAR-NNYOXOHSSA-O 0.000 description 2
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- VNENAWNFPWDTMZ-VIFPVBQESA-N [(2s)-4-chloro-3-oxo-1-phenylbutan-2-yl]carbamic acid Chemical compound OC(=O)N[C@H](C(=O)CCl)CC1=CC=CC=C1 VNENAWNFPWDTMZ-VIFPVBQESA-N 0.000 description 2
- ZSALEBOIWNAMBX-UWVGGRQHSA-N [(2s,3r)-4-chloro-3-hydroxy-1-phenylbutan-2-yl]carbamic acid Chemical compound ClC[C@H](O)[C@@H](NC(O)=O)CC1=CC=CC=C1 ZSALEBOIWNAMBX-UWVGGRQHSA-N 0.000 description 2
- 150000001298 alcohols Chemical class 0.000 description 2
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- 238000006555 catalytic reaction Methods 0.000 description 2
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- NNBZCPXTIHJBJL-UHFFFAOYSA-N decalin Chemical compound C1CCCC2CCCCC21 NNBZCPXTIHJBJL-UHFFFAOYSA-N 0.000 description 2
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- 229910052736 halogen Inorganic materials 0.000 description 2
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- 239000004030 hiv protease inhibitor Substances 0.000 description 2
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- 239000003112 inhibitor Substances 0.000 description 2
- 230000005764 inhibitory process Effects 0.000 description 2
- 150000004694 iodide salts Chemical class 0.000 description 2
- 229910052740 iodine Inorganic materials 0.000 description 2
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- 125000000959 isobutyl group Chemical group [H]C([H])([H])C([H])(C([H])([H])[H])C([H])([H])* 0.000 description 2
- 238000002955 isolation Methods 0.000 description 2
- 125000001449 isopropyl group Chemical group [H]C([H])([H])C([H])(*)C([H])([H])[H] 0.000 description 2
- JVTAAEKCZFNVCJ-UHFFFAOYSA-N lactic acid Chemical compound CC(O)C(O)=O JVTAAEKCZFNVCJ-UHFFFAOYSA-N 0.000 description 2
- AMXOYNBUYSYVKV-UHFFFAOYSA-M lithium bromide Chemical compound [Li+].[Br-] AMXOYNBUYSYVKV-UHFFFAOYSA-M 0.000 description 2
- KWGKDLIKAYFUFQ-UHFFFAOYSA-M lithium chloride Chemical compound [Li+].[Cl-] KWGKDLIKAYFUFQ-UHFFFAOYSA-M 0.000 description 2
- 125000000956 methoxy group Chemical group [H]C([H])([H])O* 0.000 description 2
- 238000009629 microbiological culture Methods 0.000 description 2
- 125000001624 naphthyl group Chemical group 0.000 description 2
- 125000000449 nitro group Chemical group [O-][N+](*)=O 0.000 description 2
- QJGQUHMNIGDVPM-UHFFFAOYSA-N nitrogen group Chemical group [N] QJGQUHMNIGDVPM-UHFFFAOYSA-N 0.000 description 2
- 235000015097 nutrients Nutrition 0.000 description 2
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- 235000004252 protein component Nutrition 0.000 description 1
- 235000019423 pullulan Nutrition 0.000 description 1
- 125000003373 pyrazinyl group Chemical group 0.000 description 1
- 125000002755 pyrazolinyl group Chemical group 0.000 description 1
- 125000003226 pyrazolyl group Chemical group 0.000 description 1
- 125000002098 pyridazinyl group Chemical group 0.000 description 1
- 125000000714 pyrimidinyl group Chemical group 0.000 description 1
- 125000006085 pyrrolopyridyl group Chemical group 0.000 description 1
- 125000000168 pyrrolyl group Chemical group 0.000 description 1
- 150000003242 quaternary ammonium salts Chemical class 0.000 description 1
- 125000004621 quinuclidinyl group Chemical group N12C(CC(CC1)CC2)* 0.000 description 1
- 238000009877 rendering Methods 0.000 description 1
- 239000002461 renin inhibitor Substances 0.000 description 1
- 229940086526 renin-inhibitors Drugs 0.000 description 1
- 230000010076 replication Effects 0.000 description 1
- 125000003548 sec-pentyl group Chemical group [H]C([H])([H])C([H])([H])C([H])([H])C([H])(*)C([H])([H])[H] 0.000 description 1
- 238000012807 shake-flask culturing Methods 0.000 description 1
- AWUCVROLDVIAJX-GSVOUGTGSA-N sn-glycerol 3-phosphate Chemical compound OC[C@@H](O)COP(O)(O)=O AWUCVROLDVIAJX-GSVOUGTGSA-N 0.000 description 1
- 239000001509 sodium citrate Substances 0.000 description 1
- NLJMYIDDQXHKNR-UHFFFAOYSA-K sodium citrate Chemical compound O.O.[Na+].[Na+].[Na+].[O-]C(=O)CC(O)(CC([O-])=O)C([O-])=O NLJMYIDDQXHKNR-UHFFFAOYSA-K 0.000 description 1
- 229940073490 sodium glutamate Drugs 0.000 description 1
- 239000004317 sodium nitrate Substances 0.000 description 1
- 235000010344 sodium nitrate Nutrition 0.000 description 1
- 229940074404 sodium succinate Drugs 0.000 description 1
- ZDQYSKICYIVCPN-UHFFFAOYSA-L sodium succinate (anhydrous) Chemical compound [Na+].[Na+].[O-]C(=O)CCC([O-])=O ZDQYSKICYIVCPN-UHFFFAOYSA-L 0.000 description 1
- 239000012453 solvate Substances 0.000 description 1
- 239000000600 sorbitol Substances 0.000 description 1
- 238000001179 sorption measurement Methods 0.000 description 1
- 239000004455 soybean meal Substances 0.000 description 1
- 239000008107 starch Substances 0.000 description 1
- 235000019698 starch Nutrition 0.000 description 1
- 101150035983 str1 gene Proteins 0.000 description 1
- 239000000126 substance Substances 0.000 description 1
- 125000005415 substituted alkoxy group Chemical group 0.000 description 1
- KDYFGRWQOYBRFD-UHFFFAOYSA-L succinate(2-) Chemical compound [O-]C(=O)CCC([O-])=O KDYFGRWQOYBRFD-UHFFFAOYSA-L 0.000 description 1
- 239000005720 sucrose Substances 0.000 description 1
- 235000000346 sugar Nutrition 0.000 description 1
- 150000008163 sugars Chemical class 0.000 description 1
- 125000004434 sulfur atom Chemical group 0.000 description 1
- 239000006228 supernatant Substances 0.000 description 1
- 239000000725 suspension Substances 0.000 description 1
- 238000003786 synthesis reaction Methods 0.000 description 1
- 229940095064 tartrate Drugs 0.000 description 1
- LFKDJXLFVYVEFG-UHFFFAOYSA-N tert-butyl carbamate Chemical compound CC(C)(C)OC(N)=O LFKDJXLFVYVEFG-UHFFFAOYSA-N 0.000 description 1
- 125000003039 tetrahydroisoquinolinyl group Chemical group C1(NCCC2=CC=CC=C12)* 0.000 description 1
- 125000001113 thiadiazolyl group Chemical group 0.000 description 1
- 125000006090 thiamorpholinyl sulfone group Chemical group 0.000 description 1
- 125000006089 thiamorpholinyl sulfoxide group Chemical group 0.000 description 1
- 125000001984 thiazolidinyl group Chemical group 0.000 description 1
- 125000000335 thiazolyl group Chemical group 0.000 description 1
- 125000001544 thienyl group Chemical group 0.000 description 1
- 125000004568 thiomorpholinyl group Chemical group 0.000 description 1
- JOXIMZWYDAKGHI-UHFFFAOYSA-N toluene-4-sulfonic acid Chemical compound CC1=CC=C(S(O)(=O)=O)C=C1 JOXIMZWYDAKGHI-UHFFFAOYSA-N 0.000 description 1
- 125000003944 tolyl group Chemical group 0.000 description 1
- 125000006168 tricyclic group Chemical group 0.000 description 1
- 125000004044 trifluoroacetyl group Chemical group FC(C(=O)*)(F)F 0.000 description 1
- 125000004385 trihaloalkyl group Chemical group 0.000 description 1
- 125000000026 trimethylsilyl group Chemical group [H]C([H])([H])[Si]([*])(C([H])([H])[H])C([H])([H])[H] 0.000 description 1
- 125000002221 trityl group Chemical group [H]C1=C([H])C([H])=C([H])C([H])=C1C([*])(C1=C(C(=C(C(=C1[H])[H])[H])[H])[H])C1=C([H])C([H])=C([H])C([H])=C1[H] 0.000 description 1
- 239000012137 tryptone Substances 0.000 description 1
- OUYCCCASQSFEME-UHFFFAOYSA-N tyrosine Natural products OC(=O)C(N)CC1=CC=C(O)C=C1 OUYCCCASQSFEME-UHFFFAOYSA-N 0.000 description 1
- ZDPHROOEEOARMN-UHFFFAOYSA-N undecanoic acid Chemical compound CCCCCCCCCCC(O)=O ZDPHROOEEOARMN-UHFFFAOYSA-N 0.000 description 1
- 239000004474 valine Substances 0.000 description 1
- PXXNTAGJWPJAGM-UHFFFAOYSA-N vertaline Natural products C1C2C=3C=C(OC)C(OC)=CC=3OC(C=C3)=CC=C3CCC(=O)OC1CC1N2CCCC1 PXXNTAGJWPJAGM-UHFFFAOYSA-N 0.000 description 1
- 210000000605 viral structure Anatomy 0.000 description 1
- 230000003612 virological effect Effects 0.000 description 1
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 description 1
- 125000001834 xanthenyl group Chemical group C1=CC=CC=2OC3=CC=CC=C3C(C12)* 0.000 description 1
Classifications
-
- C—CHEMISTRY; METALLURGY
- C12—BIOCHEMISTRY; BEER; SPIRITS; WINE; VINEGAR; MICROBIOLOGY; ENZYMOLOGY; MUTATION OR GENETIC ENGINEERING
- C12P—FERMENTATION OR ENZYME-USING PROCESSES TO SYNTHESISE A DESIRED CHEMICAL COMPOUND OR COMPOSITION OR TO SEPARATE OPTICAL ISOMERS FROM A RACEMIC MIXTURE
- C12P13/00—Preparation of nitrogen-containing organic compounds
- C12P13/02—Amides, e.g. chloramphenicol or polyamides; Imides or polyimides; Urethanes, i.e. compounds comprising N-C=O structural element or polyurethanes
Definitions
- the present invention relates to an enzymatic reduction method for the conversion of haloketones to halohydrins, and particularly to stereoselective such methods.
- the halohydrins prepared are useful, for example, as intermediates in the preparation of protease inhibitors.
- Proteases are enzymes which cleave proteins at specific peptide bonds and, in living systems, mediate or control a broad spectrum of biological functions, such as cleaving precursors to form active proteins in post-translational processing of polypeptides. Inhibiting proteases vital to certain biological functions thus provides a means for the treatment or prevention of disease states which rely on the action of the proteases involved.
- retroviral proteases such as HIV protease, cleave large precursor polypeptides, produced in infected cells, into smaller protein components, or subunits, which are subsequently assembled to form functional virus structures. Since such proteases encoded by the viral genome play a critical role in the replication of a virus, inhibition of these enzymes provides a means for the prevention and treatment of retroviral infection.
- Various retroviral proteases have been disclosed for this purpose; see, for example, European Patent Application 346,847, and especially European Patent Application 580,402.
- renin is a protease which cleaves angiotensinogen to form angiotensin I, the latter which is then cleaved by a second enzyme (ACE) to form angiotensin II, a potent hypertensive agent.
- ACE second enzyme
- Inhibition of renin provides a means for controlling hypertension, and inhibitors may be prepared for this purpose. See, for example, Luly et al., J. Org. Chem., 52, 1487-1492 (1987) and Evans et al., J. Org. Chem., 50, 4615-4625 (1985).
- protease inhibitors such as those described above, may be prepared using epoxide intermediates.
- epoxides may be prepared from halohydrins, methods for the preparation of the halohydrin starting materials are sought.
- the stereoconfiguration of protease inhibitors can play a role in their effectiveness. Since a protease inhibitor having a desired stereoconfiguration is often most efficiently prepared by employing the appropriate chiral precursors, stereoselective methods for the preparation of the epoxide intermediates and the halohydrin starting materials are particularly sought.
- the present invention provides a method for the enzymatic reduction, preferably, the stereoselective enzymatic reduction, of haloketone, in particular halomethyl ketone, compounds to form halohydrin compounds, particularly useful as intermediates in the preparation of epoxides.
- the present invention provides a method for the enzymatic reduction of a compound of the formula I or a salt thereof: ##STR1## to form a compound of the formula II or a salt thereof: ##STR2## where A is:
- R 1 is: (1) hydrogen; or
- R 2 is alkyl, preferably
- alkyl is lower alkyl
- R 3 and R 4 are independently:
- R 3 and R 4 when R 3 and R 4 are bonded to a common nitrogen atom, R 3 and R 4 may be joined, together with that nitrogen atom, to form a heterocyclic ring system;
- R 5 , R 6 and R 7 are independently:
- R 5 , R 6 and R 7 may, independently, be joined, together with the carbon atom to which they are bonded, to form a mono-, bi- or tricyclic carbocyclic ring system, or a mono-, bi- or tricyclic heterocyclic ring system;
- Z is oxygen or sulfur
- X is a halogen, such as chlorine, bromine or iodine
- the group X of the above compounds is a leaving group capable of forming, with the hydroxyl group of the compound of the formula II or salt thereof, an epoxide ring.
- Compounds of the formula Ia have the same absolute stereoconfiguration at the carbon atom bearing the R 2 group as the compound (1S)-[3-chloro-2-oxo-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester.
- Compounds of the formula Ib have the same absolute stereoconfiguration at the corresponding carbon atom as the compound (1R)[3-chloro-2-oxo-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester.
- the starting compound of the formula I or salt thereof may be employed as a single isomer (Ia or Ib) or as a mixture of both Ia and Ib isomers (for example, as a racemate).
- the starting compound of the formula I or salt thereof is employed in the Ia stereoconfiguration, substantially free of the compound in the Ib stereoconfiguration.
- a particularly preferred embodiment of the present invention provides a method for the stereoselective enzymatic reduction of a compound of the formula Ia or salt thereof to form a compound of the formula IIa or salt thereof, comprising the step of contacting said compound of the formula Ia or salt thereof with an oxidoreductase enzyme, or oxidoreductase enzyme-supplying microorganism, capable of catalyzing said stereoselective reduction, and effecting said reduction.
- Compounds of the formula IIa have the same absolute stereoconfiguration at the carbon atom bearing the hydroxyl group as the compound (1S, 2R)-[3-chloro-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester.
- alk or "alkyl”, as employed herein alone or as part of another group, denote both straight and branched chain, optionally substituted saturated radicals, for example, containing 1 to 12 carbons, most preferably 1 to 8 carbons, in the normal chain.
- alk and “alkyl” denote both unsubstituted groups such as methyl, ethyl, n-propyl, iso-propyl, n-butyl, iso-butyl, sec-butyl, tert-butyl, n-pentyl, 1-methylbutyl, 2,2-dimethylbutyl, 2-methylpentyl, n-hexyl and the like, as well as substituted groups such as phenylmethyl and the like.
- substituents may include one or more, such as 1, 2 or 3, of the following:
- alkoxy such as phenyl-lower alkoxy or
- n is an integer from 1 to 5;
- R 16 is:
- alkyl especially unsubstituted lower alkyl or alkoxy-lower alkyl
- R 12 and R 13 are independently: (a) hydrogen;
- R 12 and R 13 may be joined, together with the nitrogen atom to which they are bonded, to form a 5 to 7 membered heterocyclic ring;
- R 14 and R 15 may be joined to form an alkylene group of three to five carbon atoms;
- R 15 is:
- R 15 may be joined together with R 14 as described above;
- aryl such as phenyl
- alkylcarbonyloxy such as lower alkylcarbonyloxy
- alkynyl such as ethynyl (e.g., forming a propargyl group);
- azo i.e., R 16 O--N ⁇ where R 16 is as defined above, preferably hydrogen (to form an oxime group (HO--N ⁇ )) or unsubstituted alkyl (to form an unsubstituted alkoxyimino group (alkyl--O--N ⁇ )); or
- alkoxy denotes an alkyl group bonded through an oxygen bridge (--O--); the term “alkylthio” denotes an alkyl group bonded through a sulfur bridge (--S--); the term “alkoxycarbonyl” (also referred to as “carboalkoxy”) denotes an alkoxy group attached to a carbonyl group to form an ester; the term “alkylcarbonyloxy” denotes an alkyl group bonded to a carbonyl group which is in turn bonded through an oxygen bridge; the term “aminocarbonyloxy” denotes an amino group bonded through a carbonyl group which is, in turn, bonded through an oxygen bridge; the term “alkylaminocarbonyloxy” denotes an alkyl group bonded through an aminocarbonyloxy group as described above; the term “alkylaminocarbonyl” denotes an alkyl group bonded through an amino group which is, in turn, bonded through a
- alkoxy-alkyl specifically denotes an alkoxy group bonded through an alkyl group
- aryl-alkyl specifically denotes an aryl group bonded through an alkyl group
- heterocyclo-alkyl specifically denotes a heterocyclo group bonded through an alkyl group
- cycloalkyl-alkyl specifically denotes a cycloalkyl group bonded through an alkyl group
- hydroxy-alkyl specifically denotes one or more hydroxyl groups attached to an alkyl group.
- alkyl may be further substituted, or unsubstituted, as defined above.
- arylalkoxy specifically denote alkoxy substituted by aryl, alkoxy, hydroxy, heterocyclo, amino, aminocarbonyloxy, heterocyclocarbonyl, heterocyclooxy, alkoxycarbonyl and carboxy, respectively.
- lower alkyl as employed herein alone or as part of another group, denotes optionally substituted groups as described above for alkyl containing 1 to 6 carbon atoms in the normal chain. Lower alkyl groups are preferred alkyl groups.
- alkenyl denotes both straight and branched chain, optionally substituted radicals, for example, containing 2 to 12 carbons in the normal chain, most preferably 2 to 8 carbons, which contain at least one carbon to carbon double bond and which are directly attached through one of the carbons composing the double bond. It is understood, therefore, that throughout his specification, the term “alkenyl” denotes both unsubstituted groups such as ethenyl, propenyl, butenyl, pentenyl, hexenyl, and the like, as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
- alkyl especially lower alkyl
- lower alkenyl as employed herein alone or as part of another group, denotes optionally substituted groups as described above for alkenyl containing 2 to 6 carbon atoms in the normal chain. Lower alkenyl groups are preferred alkenyl groups.
- alkynyl denotes both straight and branched chain, optionally substituted radicals, for example, containing 2 to 12 carbons in the normal chain, most preferably 2 to 8 carbons, which contain at least one carbon to carbon triple bond and which are directly attached through one of the carbons composing the triple bond. It is understood, therefore, that throughout this specification, the term “alkynyl” denotes both unsubstituted groups such as ethynyl, methyl-ethynyl, and the like, as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
- alkyl especially lower alkyl
- Carbocyclo denotes an optionally substituted, saturated or partially unsaturated, homocyclic carbon ring system, such as a cycloalkenyl ring system, which is partially unsaturated, or most preferably, a cycloalkyl ring system, which is fully saturated, wherein the aforementioned cycloalkenyl and cycloalkyl ring systems are, according to the above definition, optionally substituted.
- Such cyclic groups preferably contain from 1 to 3 rings and from 3 to 12, most preferably from 3 to 7, carbons per homocyclic ring.
- Carbocyclo denote both unsubstituted groups exemplified by monocyclic groups such as cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl and cycloheptyl; bicyclic groups such as octahydropentalenyl, decalin, norbornyl, spirocycloheptyl (e.g. spiro[2.4]heptyl), spirocyclooctyl (e.g. spiro[3.4]octyl), spirocyclononyl (e.g. spiro[4.4]nonyl), and the like; and tricyclic groups such as adamantyl, as well as substituted groups.
- substituents may include one or more, such as 1, 2 or 3, of the following:
- alkyl especially lower alkyl
- alkylcarbonyloxy such as lower alkylcarbonyloxy
- arylcarbonyloxy
- aryl such as where said aryl group is bonded through a single bond or is fused to said carbocyclo group (e.g. to form a tetrahydronaphthyl, indanyl or indenyl group), and wherein, in each case, the aryl-carbocyclo moiety so formed is bonded through the carbocyclo group;
- aromatic groups denote homocyclic, optionally substituted aromatic groups, preferably monocyclic or bicyclic groups containing from 6 to 12 carbons in the ring portion, such as phenyl, naphthyl, tetrahydronaphthyl, indanyl, biphenyl and the like. It is understood, therefore, that throughout this specification, the terms “ar” and “aryl” denote unsubstituted as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
- alkyl especially lower alkyl
- carbocyclo such as where said carbocyclo group is bonded through a single bond, or is fused to said aryl group (e.g. to form a tetrahydronaphthyl, indanyl or indenyl group), and wherein, in each case, the carbocyclo-aryl moiety so formed is bonded through the aryl group;
- R 17 may, together with R 3 , form an alkylene group of three to five carbons;
- arylcarbonyloxy denotes an aryl group which is bonded through a carbonyl group which is, in turn, bonded through an oxygen bridge; the term “aryloxy” denotes on aryl group bonded through an oxygen bridge; the term “arylcarbonyl” denotes an aryl group bonded through a carbonyl group; the term “arylaminocarbonyl” denotes an aryl group bonded through an amino group which is, in turn, bonded through a carbonyl group; and the term “arylthio” denotes an aryl group bonded through a sulfur bridge.
- halogen or halo, as employed herein alone or as part of another group, refer to chlorine, bromine, fluorine and iodine.
- heterocyclo denotes an optionally substituted, fully saturated or unsaturated, aromatic or nonaromatic cyclic group, for example, which is a 4 to 7 membered monocyclic, 7 to 11 membered bicyclic, or 10 to 15 membered tricyclic ring system, which has at least one heteroatom in at least one carbon atom-containing ring.
- Each ring of the heterocyclo group containing a heteroatom may have 1, 2 or 3 heteroatoms selected from nitrogen atoms, oxygen atoms or sulfur atoms, where the nitrogen and sulfur heteroatoms may optionally be oxidized and the nitrogen heteroatoms may optionally be quaternized.
- the heterocyclo group may be attached at any heteroatom or carbon atom.
- Exemplary monocyclic heterocyclo groups include pyrrolidinyl, pyrrolyl, pyrazolyl, oxetanyl, pyrazolinyl, imidazolyl, imidazolinyl, imidazolidinyl, oxazolyl, oxazolidinyl, isoxazolinyl, isoxazoyl, thiazolyl, thiadiazolyl, thiazolidinyl, isothiazolyl, isothiazolidinyl, furyl, tetrahydrofuryl, thienyl, oxadiazolyl, piperidinyl, piperazinyl, 2-oxopiperazinyl, 2-oxopiperidinyl, 2-oxopyrrolodinyl, 2-oxoazepinyl, azepinyl, 4-piperidonyl, pyridyl, pyrazinyl, pyrimidinyl, pyrid
- bicyclic heterocyclo groups include indolyl, benzothiazolyl, benzoxazolyl, benzothienyl, quinuclidinyl, quinolinyl, tetrahydroisoquinolinyl, isoquinolinyl, benzimidazolyl, benzopyranyl, indolizinyl, benzofuryl, chromonyl, coumarinyl, benzopyranyl, cinnolinyl, quinoxalinyl, indazolyl, pyrrolopyridyl, dihydroindazolyl such as the group: ##STR18## furopyridinyl (such as furo[2,3-c]pyridinyl, furo[3,2-b]pyridinyl, or furo[2,3-b]pyridinyl), dihydroisoindolyl, dihydroquinazolinyl (such as 3,4-dihydro-4-oxo-
- Exemplary tricyclic heterocyclo groups include carbazolyl, benzindolyl, phenanthrolinyl, acridinyl, phenanthridinyl, xanthenyl, and the like.
- heterocyclo refers to both unsubstituted as well as substituted groups.
- exemplary heterocyclo substituents may include one or more, such as 1, 2 or 3, of the following:
- alkyl especially lower alkyl
- alkoxycarbonyl such as unsubstituted lower alkoxycarbonyl
- heterocyclooxy denotes a heterocyclo group bonded through an oxygen bridge
- heterocyclocarbonyl denotes a heterocyclo group bonded through a carbonyl group
- hydroxyl protecting group denotes any group known as or capable of functioning as a hydroxyl protecting group, such as those groups so described in "Protective Groups in Organic Synthesis” by T. W. Greene, John Wiley and Sons, 1991, or Fieser & Fieser.
- exemplary hydroxyl protecting groups include benzyl, trialkylsilyl, acetate and benzoate.
- carboxylic acid group as used herein alone or as part of another group, denotes the carboxylic acid group --COOH.
- amino acid as used herein alone or as part of another group, preferably denotes the group: ##STR22## where R 18 and R 19 are independently: (1) hydrogen;
- R 18 and R 19 may be joined, together with the carbon atom to which they are bonded, to form a carbocyclo group, such as a 4- to 7-membered cycloalkyl ring; or
- R 18 and R 20 may be joined as described in the definition of R 20 following;
- R 20 is:
- R 18 and R 20 may be joined, together with the atoms to which they are bonded, to form a heterocyclic group, such as a 4 to 7 membered, saturated monocyclic heterocyclic ring which may be unsubstituted or substituted by groups such as:
- aryl for example, where said aryl group is bonded through a single bond, or is fused to said monocyclic heterocyclic ring to form an unsaturated bicyclic heterocyclic ring system;
- carbocyclo such as cycloalkyl, for example, where said cycloalkyl group is bonded through a single bond, or is fused or spirofused to said monocyclic heterocyclic ring to form a saturated bicyclic heterocyclic ring system;
- amino acid moiety described above includes, for example, such moieties as may be found in D and L alanine, asparagine, aspartic acid, arginine, cysteine, glycine, glutamine, glutamic acid, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, serine, homoserine, threonine, tryptophan, tyrosine, valine, hydroxyvaline, norleucine, norvaline, phenylglycine, cyclohexylalanine, t-butylglycine (t-leucine), hydroxy-t-butylglycine, amino butyric acid, ornithine, and cycloleucine, and preferably, when R 18 and R 20 are joined, together with the atoms to which they are bonded, proline, 4-hydroxyproline, pyroglutamic acid, azetidine carboxylic acid, pipecolinic
- peptide chain denotes two or more amino acids as described above bonded through a peptide linkage ##STR24##
- N-terminus of the above-described amino acid(s) denotes the --N(R 20 )-- group.
- salt(s) denotes acidic and/or basic salts formed with inorganic and/or organic acids and bases. Zwitterions (internal or inner salts) are included within the term “salt(s)” as used herein, as are quaternary ammonium salts such as alkylammonium salts.
- the nontoxic, pharmaceutically acceptable salts are preferred, although other salts may be useful, for example, in isolation or purification steps which may be employed during preparation.
- Exemplary acid addition salts include acetate, adipate, alginate, aspartate, benzoate, benzenesulfonate, bisulfate, butyrate, citrate, camphorate, camphorsulfonate, cyclopentanepropionate, digluconate, dodecylsulfate, ethanesulfonate, fumarate, glucoheptanoate, glycerophosphate, hemisulfate, heptanoate, hexanoate, hydrochloride, hydrobromide, hydroiodide, 2-hydroxyethanesulfonate, lactate, maleate, methanesulfonate, 2-naphthalenesulfonate, nicotinate, oxalate, pectinate, persulfate, 3-phenylpropionate, picrate, pivalate, propionate, succinate, tartrate, thiocyanate, tosylate, and unde
- Exemplary basic salts include ammonium salts, alkali metal salts such as sodium, lithium, and potassium salts, alkaline earth metal salts such as calcium and magnesium salts, salts with organic bases such as dicyclohexylamine, N-methyl-D-glucamine, and salts with amino acids such as arginine, lysine and so forth.
- the basic nitrogen-containing groups may be quaternized with agents such as lower alkyl halides (e.g. methyl, ethyl, propyl, and butyl chlorides, bromides and iodides), dialkyl sulfates (e.g.
- dimethyl, diethyl, dibutyl, and diamyl sulfates dimethyl, diethyl, dibutyl, and diamyl sulfates
- long chain halides e.g. decyl, lauryl, myristyl and stearyl chlorides, bromides and iodides
- aralkyl halides e.g. benzyl and phenethyl bromides
- stereoselective enzymatic reduction and “stereoselective reduction”, as used herein, refer, with respect to the carbon atom bearing the hydroxyl group formed by the reduction, to the preferential formation of one enantiomer of a compound of the formula II (that is, formation of that enantiomer in greater quantity, and preferably, exclusively) relative to the formation of the other enantiomer thereof.
- stereoselective reduction of a compound of the formula Ia provides preferential formation of a compound of the formula IIa relative to a compound of the formula IIb.
- mixture includes mixtures having equal (i.e., racemic for an enantiomeric mixture) or non-equal amounts of stereoisomers.
- enzyme process or "enzymatic method”, as used herein, denote a process or method of the present invention employing an enzyme or microorganism.
- oxygenoreductase enzyme-supplying microorganism denotes a microorganism which contains or produces, intracellularly and/or extracellularly, one or more oxidoreductase enzyme(s).
- Salts or solvates such as hydrates of reactants or products may be employed or prepared as appropriate in any of the methods of the present invention. Tautomers of reactants or products are contemplated where appropriate.
- the starting haloketones of the formula I and salts thereof employed in the present reduction method may be obtained by any suitable means, such as by the conversion, by known methods, of a nitrogen protected amino acid (e.g., BOC--NH--CH(R 2 )--COOH) or a carboxylic acid protected amino acid (e.g., HCl•NH 2 --CH(R 2 )--COO(protecting group)) to a compound of the formula I or salt thereof.
- the starting haloketones may, for example, be prepared by methods described in, or by methods analogous to those described in, European Patent Application No. 580,402, or U.S. application Ser. No. 08/355,373, filed Dec. 13, 1994 by Chen et al. entitled "Process for Preparing N-Protected Amino Acid a-Halomethyl Ketones and Alcohols From N-Protected Amino Acid Esters.”
- A is preferably a group selected from those groups (3) to (9) defined above, particularly:
- R 3 is preferably hydrogen; aryl (e.g., phenyl or naphthyl); alkyl which is unsubstituted (e.g., methyl, ethyl or tert-butyl) or substituted by one or more of oxo, hydroxy (e.g., mono- or dihydroxy) or protected hydroxy, aryloxy (e.g., phenoxy or naphthyloxy), alkoxy (e.g., methoxy, benzyloxy, or benzimidazolylpropoxy), aryl (e.g., phenyl), heterocyclo (e.g., benzimidazolyl, 1,3-dioxolane (optionally substituted by methyl groups), indolyl, pyridyl, or dihydroindazolyl (optionally substituted by oxo)), oxime, alkoxyimino (e.g., methoxyimino), amino or substitute
- R 3 is alkyl, especially unsubstituted lower alkyl
- R 3 preferably alkyl such as unsubstituted lower alkyl (e.g., methyl or tert-butyl), arylalkyl (e.g., benzyl), or heterocycloalkyl (e.g., pyridylmethyl or benzimidazolylmethyl); and
- R 4 is preferably alkyl such as unsubstituted lower alkyl (e.g., methyl) or, most preferably, R 4 is hydrogen;
- R 5 is preferably hydrogen; carbocyclo (e.g., indenyl); alkyl such as unsubstituted lower alkyl (e.g., methyl, ethyl or tert-butyl) or alkyl which is substituted by one or more of amino, substituted amino (e.g., amino substituted by formyl, phenyl, benzyl or benzyloxycarbonyl), halo (e.g., fluoro), aryl (e.g., phenyl), hydroxy (e.g., mono or dihydroxy) or protected hydroxy, heterocyclo (e.g., dihydroindazolyl (optionally substituted by oxo and/or benzyl)), alkoxy (such as unsubstituted lower alkoxy (e.g., methoxy) or arylalkoxy (e.g., benzyloxy)), aryloxy (e
- R 6 and R 7 are preferably hydrogen, or alkyl such as unsubstituted lower alkyl (e.g., methyl) or hydroxyalkyl; or
- R 5 , R 6 and R 7 together with the carbon atom to which they are bonded, form a carbocyclo group (e.g., cyclobutyl or cyclopentyl (optionally substituted by hydroxy), or indanyl (optionally further substituted by hydroxy or protected hydroxy)), or a heterocyclo group (e.g., oxetanyl, tetrahydrofuryl (optionally substituted by hydroxy), tetrahydro-1,1-dioxothienyl, tetrahydropyranyl, or benzimidazolyl (optionally substituted by methyl)); or
- R 3 is alkyl, especially unsubstituted lower alkyl.
- R 1 is preferably hydrogen or unsubstituted lower alkyl (e.g., methyl), most preferably hydrogen.
- R 2 is preferably unsubstituted lower alkyl (e.g., sec-butyl or isobutyl); or substituted lower alkyl, most preferably:
- cycloalkylalkyl e.g., cyclohexylmethyl
- heterocycloalkyl especially heterocyclomethyl (e.g., indolylmethyl, pyridylmethyl, or quinolinylmethyl);
- arylalkyl for example, phenylethyl, or, especially, a group of the formula: ##STR28## where Ar(sub) is: (i) hydrogen;
- alkenyl e.g., ethenyl
- alkyl especially unsubstituted lower alkyl (e.g., ethyl); or
- alkoxyalkoxy e.g., methoxyethoxy, ethoxybutoxy, benzyloxyethoxy, or enzyloxypropoxy
- hydroxyalkoxy e.g., hydroxyethoxy, hydroxypropoxy, or hydroxybutoxy
- arylalkoxy e.g., benzyloxy
- heterocycloalkoxy e.g., morpholinylpropoxy, morpholinylethoxy, 3-oxo-morpholinylethoxy, pyridylethoxy, benzoxazolylmethoxy, benzoxazolylpropoxy, imidazolylethoxy, 2-oxo-oxazolidinylethoxy, 3-methyl-2-oxo-imidazolidinylethoxy, 2-hydroxy-2-pyridylethoxy);
- heterocycloalkoxy e.g., morpholinylpropoxy, morpholinylethoxy, 3-oxo-morpholinylethoxy, pyridylethoxy, benzoxazolylmethoxy, benzoxazolylpropoxy, imidazolylethoxy, 2-oxo-oxazolidinylethoxy, 3-methyl-2-oxo-imidazolidinylethoxy, 2-hydroxy-2-pyridylethoxy);
- aminoalkoxy e.g., aminoethoxy
- aminocarbonyloxyalkoxy e.g., aminocarbonyloxyethoxy
- alkyl e.g., methyl
- aryl e.g., tolyl
- heterocyclocarbonylalkoxy e.g., morpholinylcarbonylethoxy, morpholinylcarbonylmethoxy or piperidinylcarbonylmethoxy
- heterocyclooxyalkoxy e.g., pyridyloxyethoxy
- alkoxycarbonylalkoxy e.g., ethoxycarbonylmethoxy
- carboxyalkoxy e.g., carboxymethoxy
- X is preferably chloro, bromo or iodo.
- Particularly preferred substrates of the formula I and products of the formula II are those having the following formulae I, pref and II, pref, respectively, where the II, pref products have the (1S,2R) stereoconfiguration: ##STR29## where A pref is acetyl, benzoyl, t-butoxycarbonyl (BOC), carbobenzoxy (Cbz), trifluoroacetyl, or fluoren-9-ylmethoxycarbonyl (FMOC);
- Ar(sub) pref is hydrogen, hydroxy, alkyl, alkoxy (especially, substituted alkoxy such as phenylmethyloxy) or NH 2 ;
- XC is Cl, Br, or I, especially Cl.
- the enzyme or microorganism employed in a method of the present invention may be any oxidoreductase enzyme, or microorganism supplying an oxidoreductase enzyme, capable of catalyzing the enzymatic reduction, preferably the stereoselective enzymatic reduction, described herein.
- the enyzmatic or microbial materials may be employed in the free state or immobilized on a support such as by physical adsorption or entrapment.
- the methods of the present invention may be carried out using any suitable microbial materials supplying one or more oxidoreductase enzymes capable of catalyzing the enzymatic reduction, preferably the stereoselective enzymatic reduction, described herein.
- the cells may be used in the form of intact wet cells or dried cells such as lyophilized, spray-dried or heat-dried cells, or in the form of treated cell material such as ruptured cells or cell extracts.
- Microorganisms for use in the present reduction process may include, for example, those from bacteria, yeast, and fungi genera.
- Exemplary genera of microorganisms include: Achromobacter, Acinetobacter, Aureobasidium, Actinomyces, Alkaligenes, Arthrobacter, Azotobacter, Bacillus, Escherichia, Brevibacterium, Corynebacterium, Flavobacterium, Methylomonas, Mycobacterium, Nocardia, Nocardioides, Pseudomonas, Rhodococcus, Streptomyces, Xanthomonas, Aspergillus, Candida, Fusarium, Geotrichum, Hansenula, Kloeckera, Penicillium, Pichia, Pullularia, Caldariomyces, Gliocladium, Schizophyllum, Mortierella, Rhizopus, Rhodotorula, Saccharomiyces, Trichoderma, Cunninghamella, Torulops
- Preferred microorganisms include those from the following species: Mortierella ramanniana, Streptomyces nodosus, Caldariomyces fumago, Pseudomonas cepacia, Bacillus subtilis, Bacillus cereus, Gliocladium virens, Schizophyllum commune, Aureobasidium pullulans, Arthrobacter simplex, Nocardioides albus, Nocardia globerula, Nocardia restricta, Nocardia salmonicolor, Rhodococcus fascians, Rhodococcus rhodochrous, Mycobacteriam vacca, Nocardia meditteranei, Nocardia autotrophica, Rhodococcus equi, Pullularia pullulans, Escherichia coli, Candida boidinii, Geotrichum candidum, Saccharomyces cerevisiae, Mortierella alpina, Pichia pinus, Pichia methanolica, Hansenula polymorpha, Cunning
- microorganisms include those from the species: Streptomyces nodosus, Candida boidinii, Caldariomyces fumago, Pullularia pullulens, Aureobasidium pullulans and Mortierella ramanniana, particularly those strains employed in the Examples herein.
- the host cell may be any cell, e.g. Escherichia coli, modified to contain a gene or genes for expressing one or more enzymes capable of catalysis as described herein.
- ATCC refers to the accession number of the American Type Culture Collection, 12301 Parklawn Drive, Rockville, Md. 20852, the depository for the organism referred to.
- the methods of the present invention may be carried out using any suitable enzymes, regardless of origin or purity, capable of catalyzing the enzymatic reduction, preferably the stereoselective enzymatic reduction, described herein.
- Oxidoreductases also referred to as “dehydrogenases” are enzymes which catalyze an oxidation and/or reduction reaction.
- the enzyme employed is preferably an oxidoreductase enzyme isolated from a microorganism, such as by homogenizing cell suspensions, followed by disintegration, centrifugation, DEAE-cellulose chromatography, ammonium sulfate fractionation, chromatography using gel filtration media such as Sephacryl (cross-linked co-polymer of allyl dextran and N,N'-methylene bisacrylamide) chromatography, and ion exchange chromatography such as Mono-Q (anion exchanger which binds negatively charged biomolecules through quaternary amine groups) chromatography.
- a microorganism such as by homogenizing cell suspensions, followed by disintegration, centrifugation, DEAE-cellulose chromatography, ammonium sulfate fractionation, chromatography using gel filtration media such as Sephacryl (cross-linked co-polymer of allyl dextran and N,N'-methylene bisacrylamide) chromatography, and ion exchange chromatography such as Mono
- isolated denotes at least partial, and preferably complete, separation of the remainder of the microbial materials from one or more oxidoreductase enzymes contained in or produced by the microorganism.
- Exemplary such enzymes include L-2-hydroxyisocaproate dehydrogenase, lactic acid dehydrogenase, yeast enzyme concentrate (Sigma), ⁇ -hydroxybutyrate dehydrogenase, glucose dehydrogenase, alcohol dehydrogenase, glycerol dehydrogenase, formate dehydrogenase, pyruvate dehydrogenase, hydroxy steroid dehydrogenase, and, most preferably, enzymes isolated from the microorganisms described above.
- the compound of the formula I or salt thereof is preferably treated with Streptomyces nodosus, Candida bodinii, Caldariomyces fumago, Pullularia pullulans, Mortierella ramanniana, Aureobasidium pullulans, or an oxidoreductase isolated from any of these. Streptomyces nodosus and Mortierella ramanniana are the most preferred species. Preferred strains are recited in the Examples herein, particularly in Table 1 of Example 1.
- the enzymatic reduction method of the present invention may be carried out subsequent to the fermentation of the microorganism employed (two-stage fermentation and reduction), or concurrently therewith, that is, in the latter case, by in situ fermentation and reduction (single-stage fermentation and reduction).
- the microorganisms may be grown in an appropriate medium (especially, containing carbon and nitrogen sources) until sufficient growth of the microorganisms is attained.
- a compound of the formula I or salt thereof may then be added to the microbial cultures and the enzymatic reduction continued, preferably until complete or nearly complete conversion is obtained.
- the microorganisms may, in the first stage, be grown in an appropriate medium (especially, containing carbon and nitrogen sources) for fermentation until exhibiting the desired enzymatic (i.e., oxidoreductase) activity.
- the cells may be harvested, for example, by centrifugation, and microbial cell suspensions prepared, for example, by suspending harvested cells in an appropriate buffered solution. Buffers such as tris-HCl, phosphates, sodium acetate and the like may be used. Water may also be used to prepare suspensions of microbial cells.
- a compound of the formula I or salt thereof may be mixed with the microbial cell suspensions, and the enzymatic reduction of compound I or salt thereof catalyzed by the microbial cell suspensions. The reduction is continued, preferably until complete or nearly complete conversion is obtained.
- Growth of the microorganisms may be achieved by one of ordinary skill in the art by the use of an appropriate medium.
- Appropriate media for growing microorganisms include those which provide nutrients necessary for the growth of the microbial cells.
- a typical medium for growth includes necessary carbon sources, nitrogen sources, and trace elements.
- Inducers may also be added.
- the term "inducer”, as used herein, denotes any compound containing keto group(s) initiating or enhancing formation of the desired enzymatic (i.e., oxidoreductase) activity within the microbial cell.
- Compounds of the formula I or salts thereof may be added as inducers during growth of the microorganisms.
- Carbon sources may include sugars such as maltose, lactose, glucose, fructose, glycerol, sorbitol, sucrose, starch, mannitol, propylene glycol, and the like; organic acids such as sodium acetate, sodium citrate, and the like; amino acids such as sodium glutamate and the like; and alcohols such as ethanol, propanol and the like.
- sugars such as maltose, lactose, glucose, fructose, glycerol, sorbitol, sucrose, starch, mannitol, propylene glycol, and the like
- organic acids such as sodium acetate, sodium citrate, and the like
- amino acids such as sodium glutamate and the like
- alcohols such as ethanol, propanol and the like.
- Nitrogen sources may include N-Z amine A, corn steep liquor, soy bean meal, beef extracts, yeast extracts, molasses, baker's yeast, tryptone, nutrisoy, peptone, yeastamin, sodium nitrate, ammonium sulfate and the like.
- Trace elements may include phosphates and magnesium, manganese, calcium, cobalt, nickel, iron, sodium and potassium salts.
- appropriate media may include more than one carbon or nitrogen source or other nutrients and may include a mixture of several.
- Preferred media include aqueous media containing the following (in weight %):
- the pH of the medium is preferably adjusted to about 6 to 8, most preferably to 6.5, before sterilization.
- the medium is then preferably sterilized, e.g. at a temperature of 121° C. for 30 minutes, and then adjusted to a pH of about 6.5 to 7.5, most preferably 7.0, after sterilization.
- the pH of the medium is preferably maintained between 4.0 and 9.0, most preferably between 6.0 and 8.0, during the growth of microorganisms and during the reduction process.
- the temperature of the reaction mixture is a measure of the heat energy available for the reduction process, and should be maintained to ensure that there is sufficient energy available for the process.
- a suitable temperature range is from about 15° C. to about 60° C., preferably from about 25° C. to about 40° C.
- the agitation and aeration of the reaction mixture affects the amount of oxygen available during the reduction process, which may be conducted, for example, in shake-flask cultures or fermentor tanks during growth of microorganisms in a single-stage or two-stage process.
- the agitation range from 50 to 1000 RPM is preferable, with 50 to 500 RPM being most preferred.
- Aeration of about 0.1 to 10 volumes of air per volume of media per minute i.e., 0.1 to 10 v/vt
- aeration of about 5 volumes of air per volume of media per minute i.e., 5 v/vt
- Complete conversion of the compound of the formula I or salt thereof may take, for example, 5 from about 4 to 48 hours, such as 4 to 24 hours, measured from the time of initially treating said compound with a microorganism or enzyme as described herein.
- the enzymatic reduction method of the present invention may be carried out using a co-factor such as nicotinamide adenine dinucleotide (NADH), especially when an isolated enzyme is employed. NADH may thereafter be regenerated and reused, for example, as described in the Examples herein.
- a further enzyme that regenerates the NADH i.e., reduces NAD to NADH
- a dehydrogenase e.g., glucose dehydrogenase or formate dehydrogenase.
- Suitable hydrogen donors include molecular hydrogen, glucose, a formate (e.g.
- aqueous liquid as the reaction medium, although an organic liquid, or a miscible or immiscible (biphasic) organic/aqueous liquid mixture may also be employed.
- the amount of enzyme or microorganism employed relative to the starting material is selected to allow catalysis of the enzymatic reduction of the present invention.
- reaction parameters particularly enzymes and microorganisms, which provide a stereoselective reduction.
- a stereoselective reduction is advantageous in that an efficient conversion of a substrate to a desired stereoisomer may be achieved, and in that the procedures which may be employed in the subsequent separation of the desired stereoisomer of the formula II or salt thereof from the remaining components of the reaction medium may be minimized.
- the products of the methods of the present invention may be recovered by any suitable methods for isolation and/or purification, for example, by methods such as extraction, distillation, crystallization, and column chromatography.
- halohydrins produced by the methods of the present invention may be employed as intermediates (especially, as chiral intermediates) in the preparation of renin inhibitors or of antiviral agents, particularly retroviral protease inhibitors (especially those described in European Patent Application 580,402, incorporated herein by reference in its entirety, such as [1S-[1R*,2S*(2S*,3R*)]]-[3-[[3-[[(1,1-dimethylethoxy)carbonyl]amino]-2-hydroxy-4-(4-[2(4-morpholinyl-2-oxo-ethoxy]phenyl]butyl]amino]-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester).
- the halohydrins of the formula II or salts thereof are converted to an epoxide of the following formula III or salt thereof: ##STR30## especially, an epoxide of the following formula IIIa or salt thereof: ##STR31## by contacting the halohydrin starting material (especially, of the formula IIa or salt thereof) with a base such as an alkali metal hydroxide (e.g., KOH) in a solvent such as ethanol.
- a base such as an alkali metal hydroxide (e.g., KOH)
- the group R 2 of the epoxide may optionally be converted to another group R 2 prior to further use. For example, where R 2 contains a protected hydroxyl group, the latter may be deprotected and then coupled to provide a group R 2 containing an alkoxy group.
- HIV protease inhibitors as described in European Patent Application 580,402 employing the methods of the present invention.
- Preferred such inhibitors are those having the following formula IV: ##STR32## or salts thereof, particularly where the formula IV has the following stereoconfiguration IVa: ##STR33##
- R 1 and R 2 are as defined above and each may be independently selected where it appears on opposite sides of the molecule.
- E is a single bond or a peptide chain containing 1 to 4 amino acids, the N-terminus of which is bonded to A, and may be independently selected where it appears on each side of the molecule.
- E is preferably a single bond or a peptide chain containing 1 or 2 amino acids.
- Preferred amino acids are those wherein, in the formula: ##STR34##
- R 18 is hydrogen or unsubstituted lower alkyl (e.g., methyl);
- R 19 is hydrogen, aryl (e.g., phenyl), or, most preferably, lower alkyl which is unsubstituted (e.g., methyl, isopropyl, or tert-butyl) or which is substituted, particularly by one or more of hydroxy (or protected hydroxy), amino, aminocarbonyl, fluoro (e.g., to form trifluoromethyl), phenyl, or hydroxyphenyl; or
- R 18 and R 19 together with the carbon atom to which they are bonded, form a cycloalkyl group (e.g., cyclopentyl);
- R 20 is hydrogen or unsubstituted lower alkyl (e.g., methyl).
- a compound of the formula III or salt thereof is contacted with a compound Q--NH 2 , preferably in the presence of a metal halide such as LiCl, LiBr, or LiClO 4 , to yield a compound of the formula V or salt thereof.
- Q is hydrogen or alkyl, and is preferably a group rendering the nitrogen atom to which it is bonded basic.
- Exemplary Q groups are hydrogen, unsubstituted lower alkyl, alkenyl-lower alkyl and aryl-lower alkyl, especially benzyl.
- the compound of the formula V or salt thereof is then contacted with a compound of the formula III or salt thereof, which may be the same as or different from the compound of the formula III or salt thereof used in the previous step, to form a compound of the formula VI or salt thereof.
- a compound of the formula IV or salt thereof (a) where Q is other than hydrogen, Q may be removed by any suitable method, such as by hydrogenation with hydrogen gas and Pd(OH) 2 catalyst when Q is benzyl; and (b) where a different group A is desired, or E is other than a single bond, the groups A a and/or A b of the compound of the formula VI or salt thereof may be removed by any suitable method to yield a terminal group H(R 1 )N--, and the desired group A and/or group E then added.
- a compound of the formula A--E--OH may be added in the presence of a coupling agent to form an amide group with the terminal group H(R 1 )N-- of the compound of the formula VI or salt thereof.
- HIV protease inhibitors prepared as described herein are particularly useful in the prevention and/or treatment of infection by HIV viruses (HIV-1, HIV-2, and mutants thereof), including the treatment of consequent pathological conditions such as AIDS.
- This Example illustrates the present reduction process, employing a variety of microbial strains in the form of whole cells.
- the substrate used was the enantiomer (1S)-[3-chloro-2-oxo-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester, hereinafter referred to as compound A, having the following structure: ##STR36## where "BOC” denotes tert-butoxycarbonyl.
- the product sought was the enantiomer (1S,2R)-[3chloro-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester, hereinafter referred to as compound B, having the following structure: ##STR37##
- the microorganisms were maintained in a vial in liquid nitrogen.
- one vial (1 mL) was inoculated into 100 mL of Medium 1 (the composition of which is described above) in a 500 mL flask and incubated at 28° C. and 280 RPM on a shaker for 48 hours.
- 10 mL of culture was inoculated into a 500 mL flask containing 100 mL of Medium 1 and incubated at 28° C. and 250 RPM on a shaker for 24 hours.
- the cells were then harvested by centrifugation and suspended in 100 mM potassium phosphate buffer, pH 6.8. 10 mL of 20% w/v cell suspensions were prepared. The cell suspensions were supplemented with 10 mg of substrate (compound A) and 750 mg of glucose and the biotransformations (reductions) were conducted at 28° C., 150 RPM for 48 hours. One volume of sample was taken and extracted with five volumes of 60:40 t-butylmethyl ether:toluene, and the separated organic phase was filtered through a 0.2 ⁇ m filter and collected.
- HPLC Hewlett Packard (Hewlett-Packard, Kennett Square, Pa.) or comparable equipped with a photo diode array detector at 210 nm
- optical purity of compound B calculated as ⁇ ([B]) ⁇ ([B]+[D]) ⁇ 100, was 100% (that is, compound D was not produced) for all microbial cultures evaluated.
- Cells of Mortierella ramanniana ATCC 24786 were grown in 100 mL of Medium 1 (described above) combined in a 500 mL flask. Growth was carried out at 25° C. for 48 hours at 280 RPM. 100 mL of cultures were inoculated into 15 L of Medium 2 (described above) combined in a fermentor. Growth in the fermentor was carried out at 25° C., 15 LPM (liters per minute) aeration and 500 RPM agitation for 30 hours. Cells were harvested from the fermentor and used for the enzymatic conversion (biotransformation) of compound A to compound B.
- Homogenous cell suspensions were prepared by suspending the cells (300 grams) in 3 liters of 100 mM potassium phosphate buffer, pH 6.8. 3 Grams of compound A and 75 grams of glucose were added to the cell suspensions and the biotransformation of compound A to compound B was carried out at 28° C., 160 RPM for 24 hours. The results which were obtained are summarized in the following Table 2. Samples were prepared, and product yield, diastereomeric and optical purity were determined, as described in Example 1.
- Cells (150 grams) were suspended in 20 mL of 0.1M potassium phosphate buffer, pH 6.8. The homogenized cell suspensions were disintegrated at 4° C. by use of a Microfluidizer at 13,000 psi pressure. The disintegrated cell suspension was centrifuged at 12,000 RPM for 30 minutes. The clear supernatant ("cell extracts”) was used for the biotransformation of compound A to compound B.
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Abstract
An enzymatic reduction method, particularly a stereoselective enzymatic reduction method, for the preparation of halohydrins from haloketones. The halohydrin products are particularly useful in the preparation of epoxides, which may be employed as intermediates in the preparation of protease inhibitors such as retroviral protease inhibitors.
Description
The present invention relates to an enzymatic reduction method for the conversion of haloketones to halohydrins, and particularly to stereoselective such methods. The halohydrins prepared are useful, for example, as intermediates in the preparation of protease inhibitors.
Proteases are enzymes which cleave proteins at specific peptide bonds and, in living systems, mediate or control a broad spectrum of biological functions, such as cleaving precursors to form active proteins in post-translational processing of polypeptides. Inhibiting proteases vital to certain biological functions thus provides a means for the treatment or prevention of disease states which rely on the action of the proteases involved.
For example, retroviral proteases, such as HIV protease, cleave large precursor polypeptides, produced in infected cells, into smaller protein components, or subunits, which are subsequently assembled to form functional virus structures. Since such proteases encoded by the viral genome play a critical role in the replication of a virus, inhibition of these enzymes provides a means for the prevention and treatment of retroviral infection. Various retroviral proteases have been disclosed for this purpose; see, for example, European Patent Application 346,847, and especially European Patent Application 580,402.
As another example, renin is a protease which cleaves angiotensinogen to form angiotensin I, the latter which is then cleaved by a second enzyme (ACE) to form angiotensin II, a potent hypertensive agent. Inhibition of renin provides a means for controlling hypertension, and inhibitors may be prepared for this purpose. See, for example, Luly et al., J. Org. Chem., 52, 1487-1492 (1987) and Evans et al., J. Org. Chem., 50, 4615-4625 (1985).
Depending on their structure, protease inhibitors, such as those described above, may be prepared using epoxide intermediates. As such epoxides may be prepared from halohydrins, methods for the preparation of the halohydrin starting materials are sought. Additionally, as with many pharmaceutical agents, the stereoconfiguration of protease inhibitors can play a role in their effectiveness. Since a protease inhibitor having a desired stereoconfiguration is often most efficiently prepared by employing the appropriate chiral precursors, stereoselective methods for the preparation of the epoxide intermediates and the halohydrin starting materials are particularly sought.
The present invention provides a method for the enzymatic reduction, preferably, the stereoselective enzymatic reduction, of haloketone, in particular halomethyl ketone, compounds to form halohydrin compounds, particularly useful as intermediates in the preparation of epoxides.
Specifically, the present invention provides a method for the enzymatic reduction of a compound of the formula I or a salt thereof: ##STR1## to form a compound of the formula II or a salt thereof: ##STR2## where A is:
(1) hydrogen;
(2) alkyl; ##STR3## R1 is: (1) hydrogen; or
(2) alkyl;
R2 is alkyl, preferably
(1) unsubstituted lower alkyl; or
(2) substituted lower alkyl, most preferably:
(A) cycloalkylalkyl;
(B) heterocycloalkyl;
(C) arylalkenylalkyl; or
(D) arylalkyl;
where, in (A), (B), (C), and (D), alkyl is lower alkyl;
R3 and R4 are independently:
(1) hydrogen;
(2) alkyl;
(3) aryl;
(4) heterocyclo;
(5) carbocyclo; or
(6) when R3 and R4 are bonded to a common nitrogen atom, R3 and R4 may be joined, together with that nitrogen atom, to form a heterocyclic ring system; and
R5, R6 and R7 are independently:
(1) hydrogen;
(2) alkyl;
(3) aryl;
(4) carbocyclo;
(5) fluorenyl;
(6) heterocyclo;
(7) R5, R6 and R7 may, independently, be joined, together with the carbon atom to which they are bonded, to form a mono-, bi- or tricyclic carbocyclic ring system, or a mono-, bi- or tricyclic heterocyclic ring system;
(8) alkynyl; or
(9) alkenyl;
Z is oxygen or sulfur; and
X is a halogen, such as chlorine, bromine or iodine;
comprising the step of contacting said compound of the formula I or salt thereof with an oxidoreductase enzyme, or oxidoreductase enzyme-supplying microorganism, capable of catalyzing the reduction of said compound of the formula I or salt thereof to form said compound of the formula II or salt thereof, and effecting said reduction.
The group X of the above compounds is a leaving group capable of forming, with the hydroxyl group of the compound of the formula II or salt thereof, an epoxide ring.
The carbon atom bearing the group R2 and adjacent to the carbonyl group in the compound of the formula I is chiral, so that the starting compound of the formula I or salt thereof may have either of the following configurations Ia or Ib: ##STR4##
Compounds of the formula Ia have the same absolute stereoconfiguration at the carbon atom bearing the R2 group as the compound (1S)-[3-chloro-2-oxo-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester. Compounds of the formula Ib have the same absolute stereoconfiguration at the corresponding carbon atom as the compound (1R)[3-chloro-2-oxo-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester.
With respect to the aforementioned chiral carbon atom, the starting compound of the formula I or salt thereof may be employed as a single isomer (Ia or Ib) or as a mixture of both Ia and Ib isomers (for example, as a racemate). Preferably, however, the starting compound of the formula I or salt thereof is employed in the Ia stereoconfiguration, substantially free of the compound in the Ib stereoconfiguration.
When a compound of the formula Ib or salt thereof substantially free of the compound of the formula Ia or salt thereof is reduced, the following stereoisomers IIc and/or IId of the formula II may be formed: ##STR5##
When a compound of the formula Ia or salt thereof substantially free of the compound of the formula Ib or salt thereof is reduced, the following stereoisomers IIa and/or IIb of the formula II may be formed: ##STR6##
A particularly preferred embodiment of the present invention provides a method for the stereoselective enzymatic reduction of a compound of the formula Ia or salt thereof to form a compound of the formula IIa or salt thereof, comprising the step of contacting said compound of the formula Ia or salt thereof with an oxidoreductase enzyme, or oxidoreductase enzyme-supplying microorganism, capable of catalyzing said stereoselective reduction, and effecting said reduction. Compounds of the formula IIa have the same absolute stereoconfiguration at the carbon atom bearing the hydroxyl group as the compound (1S, 2R)-[3-chloro-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester. Compounds of the formula IIb have the same absolute stereoconfiguration at the corresponding carbon atom as the compound (1S,2S)-[3-chloro-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester. As described above, the starting compound of the formula Ia or salt thereof is preferably substantially free of compound Ib or salt thereof.
The methods of the present invention are described further as follows.
Definitions
The terms "alk" or "alkyl", as employed herein alone or as part of another group, denote both straight and branched chain, optionally substituted saturated radicals, for example, containing 1 to 12 carbons, most preferably 1 to 8 carbons, in the normal chain. It is understood, therefore, that throughout this specification the terms "alk" and "alkyl" denote both unsubstituted groups such as methyl, ethyl, n-propyl, iso-propyl, n-butyl, iso-butyl, sec-butyl, tert-butyl, n-pentyl, 1-methylbutyl, 2,2-dimethylbutyl, 2-methylpentyl, n-hexyl and the like, as well as substituted groups such as phenylmethyl and the like. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
(1) hydroxy (or protected hydroxy);
(2) oxo (i.e. ═O), with the proviso that the carbon bearing the oxo group is not adjacent to a heteroatom;
(3) carboxy;
(4) halo (especially to form trihaloalkyl, particularly trifluoromethyl);
(5) alkoxy, such as phenyl-lower alkoxy or
R.sup.16 --[O--(CH.sub.2).sub.m ].sub.n --O--
where m is an integer from 2 to 5; n is an integer from 1 to 5; and
R16 is:
(a) hydrogen;
(b) alkyl, especially unsubstituted lower alkyl or alkoxy-lower alkyl;
(c) aryl; or
(d) heterocyclo;
(6) aryloxy;
(7) alkoxycarbonyl;
(8) ##STR7## where R12 and R13 are independently: (a) hydrogen;
(b) alkyl, especially lower alkyl;
(c) aryl;
(d) heterocyclo;
(e) carbocyclo, such as cycloalkyl;
(f) R12 and R13 may be joined, together with the nitrogen atom to which they are bonded, to form a 5 to 7 membered heterocyclic ring;
(9) (R12) (R13)N--, such as amino (H2N--);
(10) ##STR8## where R14 is: (a) hydrogen;
(b) alkyl, especially lower alkyl;
(c) aryl;
(d) heterocyclo;
(e) carbocyclo, such as cycloalkyl; or
(f) R14 and R15 may be joined to form an alkylene group of three to five carbon atoms; and
R15 is:
(a) hydrogen;
(b) alkyl, especially lower alkyl;
(c) alkenyl, especially lower alkenyl;
(d) aryl;
(e) heterocyclo;
(f) carbocyclo, such as cycloalkyl;
(g) ##STR9## wherein R5, R6 and R7 are, independently, those groups (1) through (9) recited for R5, R6 and R7 above; or
(h) R15 may be joined together with R14 as described above;
(11) ##STR10## (12) carbocyclo, such as cycloalkyl; (13) heterocyclo;
(14) heterocyclooxy;
(15) aryl, such as phenyl;
(16) alkylcarbonyloxy, such as lower alkylcarbonyloxy;
(17) arylcarbonyloxy;
(18) cyano;
(19) mercapto;
(20) alkenyl;
(21) alkynyl, such as ethynyl (e.g., forming a propargyl group);
(22) alkylthio;
(23) arylthio;
(24) trialkylsilyl, such as trimethylsilyl;
(25) azo (i.e., R16 O--N═ where R16 is as defined above, preferably hydrogen (to form an oxime group (HO--N═)) or unsubstituted alkyl (to form an unsubstituted alkoxyimino group (alkyl--O--N═)); or
(26) (R12) (R13)N--C(O)--O--, where R12 and R13 are as defined above.
The term "alkoxy" denotes an alkyl group bonded through an oxygen bridge (--O--); the term "alkylthio" denotes an alkyl group bonded through a sulfur bridge (--S--); the term "alkoxycarbonyl" (also referred to as "carboalkoxy") denotes an alkoxy group attached to a carbonyl group to form an ester; the term "alkylcarbonyloxy" denotes an alkyl group bonded to a carbonyl group which is in turn bonded through an oxygen bridge; the term "aminocarbonyloxy" denotes an amino group bonded through a carbonyl group which is, in turn, bonded through an oxygen bridge; the term "alkylaminocarbonyloxy" denotes an alkyl group bonded through an aminocarbonyloxy group as described above; the term "alkylaminocarbonyl" denotes an alkyl group bonded through an amino group which is, in turn, bonded through a carbonyl group; and the term "alkylene" denotes a divalent alkyl group. With respect to exemplary alkyl groups which are substituted, the term "alkoxy-alkyl" specifically denotes an alkoxy group bonded through an alkyl group; the term "aryl-alkyl" specifically denotes an aryl group bonded through an alkyl group; the term "heterocyclo-alkyl" specifically denotes a heterocyclo group bonded through an alkyl group; the term "cycloalkyl-alkyl" specifically denotes a cycloalkyl group bonded through an alkyl group; and the term "hydroxy-alkyl" specifically denotes one or more hydroxyl groups attached to an alkyl group. In each of the aforementioned terms, "alkyl" may be further substituted, or unsubstituted, as defined above. Similarly, the terms "arylalkoxy", "alkoxyalkoxy", "hydroxyalkoxy", "heterocycloalkoxy", "aminoalkoxyl", "aminocarbonyloxyalkoxy", "heterocyclocarbonylalkoxy", "heterocyclooxyalkoxy", "alkoxycarbonylalkoxy" and "carboxyalkoxy" specifically denote alkoxy substituted by aryl, alkoxy, hydroxy, heterocyclo, amino, aminocarbonyloxy, heterocyclocarbonyl, heterocyclooxy, alkoxycarbonyl and carboxy, respectively.
The term "lower alkyl", as employed herein alone or as part of another group, denotes optionally substituted groups as described above for alkyl containing 1 to 6 carbon atoms in the normal chain. Lower alkyl groups are preferred alkyl groups.
The term "alkenyl", as employed herein alone or as part of another group, denotes both straight and branched chain, optionally substituted radicals, for example, containing 2 to 12 carbons in the normal chain, most preferably 2 to 8 carbons, which contain at least one carbon to carbon double bond and which are directly attached through one of the carbons composing the double bond. It is understood, therefore, that throughout his specification, the term "alkenyl" denotes both unsubstituted groups such as ethenyl, propenyl, butenyl, pentenyl, hexenyl, and the like, as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
(1) alkyl, especially lower alkyl;
(2) aryl;
(3) carbocyclo, such as cycloalkyl;
(4) heterocyclo;
(5) carboxy;
(6) halo;
(7) ##STR11## (8) cyano; (9) alkoxycarbonyl;
(10) trialkylsilyl; or
(11) alkynyl.
The term "lower alkenyl", as employed herein alone or as part of another group, denotes optionally substituted groups as described above for alkenyl containing 2 to 6 carbon atoms in the normal chain. Lower alkenyl groups are preferred alkenyl groups.
The term "alkynyl", as employed herein alone or as part of another group, denotes both straight and branched chain, optionally substituted radicals, for example, containing 2 to 12 carbons in the normal chain, most preferably 2 to 8 carbons, which contain at least one carbon to carbon triple bond and which are directly attached through one of the carbons composing the triple bond. It is understood, therefore, that throughout this specification, the term "alkynyl" denotes both unsubstituted groups such as ethynyl, methyl-ethynyl, and the like, as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
(1) alkyl, especially lower alkyl;
(2) aryl;
(3) carbocyclo, such as cycloalkyl;
(4) heterocyclo;
(5) carboxy;
(6) ##STR12## (7) cyano; (8) alkoxycarbonyl;
(9) alkenyl; or
(10) trialkylsilyl.
The terms "carbocyclo", "carbocyclic" or "carbocyclic ring system", as employed herein alone or as part of another group, denote an optionally substituted, saturated or partially unsaturated, homocyclic carbon ring system, such as a cycloalkenyl ring system, which is partially unsaturated, or most preferably, a cycloalkyl ring system, which is fully saturated, wherein the aforementioned cycloalkenyl and cycloalkyl ring systems are, according to the above definition, optionally substituted. Such cyclic groups preferably contain from 1 to 3 rings and from 3 to 12, most preferably from 3 to 7, carbons per homocyclic ring. It is understood, therefore, that throughout this specification the terms "carbocyclo", "carbocyclic" and "carbocyclic ring system" denote both unsubstituted groups exemplified by monocyclic groups such as cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl and cycloheptyl; bicyclic groups such as octahydropentalenyl, decalin, norbornyl, spirocycloheptyl (e.g. spiro[2.4]heptyl), spirocyclooctyl (e.g. spiro[3.4]octyl), spirocyclononyl (e.g. spiro[4.4]nonyl), and the like; and tricyclic groups such as adamantyl, as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
(1) alkyl, especially lower alkyl;
(2) hydroxy (or protected hydroxy);
(3) halo;
(4) mercapto;
(5) cyano;
(6) carboxy;
(7) alkoxycarbonyl;
(8) ##STR13## (9) alkylcarbonyloxy, such as lower alkylcarbonyloxy; (10) arylcarbonyloxy;
(11) (R12) (R13)N--, such as amino (H2 N--);
(12) alkoxy;
(13) aryl, such as where said aryl group is bonded through a single bond or is fused to said carbocyclo group (e.g. to form a tetrahydronaphthyl, indanyl or indenyl group), and wherein, in each case, the aryl-carbocyclo moiety so formed is bonded through the carbocyclo group;
(14) heterocyclo;
(15) heterocyclooxy;
(16) oxo (═O);
(17) aryloxy;
(18) alkylthio;
(19) arylthio;
(20) ##STR14## (21) alkenyl; (22) alkynyl; or
(23) trialkylsilyl.
The terms "ar" or "aryl", as employed herein alone or as part of another group, denote homocyclic, optionally substituted aromatic groups, preferably monocyclic or bicyclic groups containing from 6 to 12 carbons in the ring portion, such as phenyl, naphthyl, tetrahydronaphthyl, indanyl, biphenyl and the like. It is understood, therefore, that throughout this specification, the terms "ar" and "aryl" denote unsubstituted as well as substituted groups. Exemplary substituents may include one or more, such as 1, 2 or 3, of the following:
(1) alkyl, especially lower alkyl;
(2) alkoxy;
(3) hydroxy (or protected hydroxy);
(4) halo;
(5) (R12) (13)N--, such as amino (H2 N--)
(6) alkylthio;
(7) mercapto;
(8) nitro;
(9) cyano;
(10) carboxy;
(11) carboalkoxy;
(12) carbocyclo, such as where said carbocyclo group is bonded through a single bond, or is fused to said aryl group (e.g. to form a tetrahydronaphthyl, indanyl or indenyl group), and wherein, in each case, the carbocyclo-aryl moiety so formed is bonded through the aryl group;
(13) ##STR15## (14) (R12)(R13)N--SO2 --; (15) ##STR16## where R17 is: (a) hydrogen;
(b) alkyl, especially lower alkyl;
(c) aryl;
(d) heterocyclo;
(e) carbocyclo, such as cycloalkyl; or
(f) R17 may, together with R3, form an alkylene group of three to five carbons;
(16) ##STR17## (17) phenyl; (18) alkylcarbonyloxy, such as lower alkylcarbonyloxy;
(19) arylcarbonyloxy;
(20) arylthio;
(21) heterocyclooxy;
(22) aryloxy;
(23) alkylthio; or
(24) alkenyl.
The term "arylcarbonyloxy" denotes an aryl group which is bonded through a carbonyl group which is, in turn, bonded through an oxygen bridge; the term "aryloxy" denotes on aryl group bonded through an oxygen bridge; the term "arylcarbonyl" denotes an aryl group bonded through a carbonyl group; the term "arylaminocarbonyl" denotes an aryl group bonded through an amino group which is, in turn, bonded through a carbonyl group; and the term "arylthio" denotes an aryl group bonded through a sulfur bridge.
The terms "halogen" or "halo", as employed herein alone or as part of another group, refer to chlorine, bromine, fluorine and iodine.
The terms "heterocyclo", "heterocyclic" or "heterocyclic ring system", as employed herein alone or as part of another group, denote an optionally substituted, fully saturated or unsaturated, aromatic or nonaromatic cyclic group, for example, which is a 4 to 7 membered monocyclic, 7 to 11 membered bicyclic, or 10 to 15 membered tricyclic ring system, which has at least one heteroatom in at least one carbon atom-containing ring. Each ring of the heterocyclo group containing a heteroatom may have 1, 2 or 3 heteroatoms selected from nitrogen atoms, oxygen atoms or sulfur atoms, where the nitrogen and sulfur heteroatoms may optionally be oxidized and the nitrogen heteroatoms may optionally be quaternized. The heterocyclo group may be attached at any heteroatom or carbon atom.
Exemplary monocyclic heterocyclo groups include pyrrolidinyl, pyrrolyl, pyrazolyl, oxetanyl, pyrazolinyl, imidazolyl, imidazolinyl, imidazolidinyl, oxazolyl, oxazolidinyl, isoxazolinyl, isoxazoyl, thiazolyl, thiadiazolyl, thiazolidinyl, isothiazolyl, isothiazolidinyl, furyl, tetrahydrofuryl, thienyl, oxadiazolyl, piperidinyl, piperazinyl, 2-oxopiperazinyl, 2-oxopiperidinyl, 2-oxopyrrolodinyl, 2-oxoazepinyl, azepinyl, 4-piperidonyl, pyridyl, pyrazinyl, pyrimidinyl, pyridazinyl, tetrahydropyranyl, morpholinyl, thiamorpholinyl, thiamorpholinyl sulfoxide, thiamorpholinyl sulfone, 1,3-dioxolane, and tetrahydro-1,1-dioxothienyl, and the like.
Exemplary bicyclic heterocyclo groups include indolyl, benzothiazolyl, benzoxazolyl, benzothienyl, quinuclidinyl, quinolinyl, tetrahydroisoquinolinyl, isoquinolinyl, benzimidazolyl, benzopyranyl, indolizinyl, benzofuryl, chromonyl, coumarinyl, benzopyranyl, cinnolinyl, quinoxalinyl, indazolyl, pyrrolopyridyl, dihydroindazolyl such as the group: ##STR18## furopyridinyl (such as furo[2,3-c]pyridinyl, furo[3,2-b]pyridinyl, or furo[2,3-b]pyridinyl), dihydroisoindolyl, dihydroquinazolinyl (such as 3,4-dihydro-4-oxo-quinazolinyl), and the like.
Exemplary tricyclic heterocyclo groups include carbazolyl, benzindolyl, phenanthrolinyl, acridinyl, phenanthridinyl, xanthenyl, and the like.
It is understood that throughout this specification the terms "heterocyclo", "heterocyclic" and "heterocyclic ring system" denote both unsubstituted as well as substituted groups. Exemplary heterocyclo substituents may include one or more, such as 1, 2 or 3, of the following:
(1) alkyl, especially lower alkyl;
(2) hydroxy (or protected hydroxy);
(3) halo;
(4) oxo (i.e. ═O);
(5) (R12)(R13)N--, such as amino (H2 N--);
(6) alkoxy;
(7) carbocyclo, such as cycloalkyl;
(8) carboxy;
(9) heterocyclooxy;
(10) alkoxycarbonyl, such as unsubstituted lower alkoxycarbonyl;
(11) ##STR19## (12) mercapto; (13) nitro;
(14) cyano;
(15) carboalkoxy;
(16) (R12)(R13)N--SO2 --;
(17) ##STR20## (18) ##STR21## (19) aryl; (20) alkylcarbonyloxy;
(21) arylcarbonyloxy;
(22) arylthio;
(23) aryloxy;
(24) alkylthio; or
(25) formyl.
The term "heterocyclooxy" denotes a heterocyclo group bonded through an oxygen bridge; and the term "heterocyclocarbonyl" denotes a heterocyclo group bonded through a carbonyl group.
The term "hydroxyl protecting group", as used herein, denotes any group known as or capable of functioning as a hydroxyl protecting group, such as those groups so described in "Protective Groups in Organic Synthesis" by T. W. Greene, John Wiley and Sons, 1991, or Fieser & Fieser. Exemplary hydroxyl protecting groups include benzyl, trialkylsilyl, acetate and benzoate.
The term "carboxy", as used herein alone or as part of another group, denotes the carboxylic acid group --COOH.
The term "amino acid", as used herein alone or as part of another group, preferably denotes the group: ##STR22## where R18 and R19 are independently: (1) hydrogen;
(2) alkyl, especially lower alkyl;
(3) alkenyl, especially lower alkenyl;
(4) aryl;
(5) heterocyclo;
(6) carbocyclo, such as cycloalkyl;
(7) R18 and R19 may be joined, together with the carbon atom to which they are bonded, to form a carbocyclo group, such as a 4- to 7-membered cycloalkyl ring; or
(8) R18 and R20 may be joined as described in the definition of R20 following;
R20 is:
(1) hydrogen;
(2) alkyl, especially lower alkyl;
(3) aryl;
(4) heterocyclo;
(5) carbocyclo, such as cycloalkyl; or
(6) R18 and R20 may be joined, together with the atoms to which they are bonded, to form a heterocyclic group, such as a 4 to 7 membered, saturated monocyclic heterocyclic ring which may be unsubstituted or substituted by groups such as:
(i) hydrogen;
(ii) alkyl, especially lower alkyl;
(iii) alkenyl, especially lower alkenyl;
(iv) aryl, for example, where said aryl group is bonded through a single bond, or is fused to said monocyclic heterocyclic ring to form an unsaturated bicyclic heterocyclic ring system;
(v) heterocyclo;
(vi) mercapto;
(vii) alkoxy;
(viii) carbocyclo, such as cycloalkyl, for example, where said cycloalkyl group is bonded through a single bond, or is fused or spirofused to said monocyclic heterocyclic ring to form a saturated bicyclic heterocyclic ring system;
(ix) hydroxyl (or protected hydroxyl);
(x) aryloxy;
(xi) alkylthio;
(xii) arylthio; or
(xiii) oxo.
The amino acid moiety described above includes, for example, such moieties as may be found in D and L alanine, asparagine, aspartic acid, arginine, cysteine, glycine, glutamine, glutamic acid, histidine, isoleucine, leucine, lysine, methionine, phenylalanine, serine, homoserine, threonine, tryptophan, tyrosine, valine, hydroxyvaline, norleucine, norvaline, phenylglycine, cyclohexylalanine, t-butylglycine (t-leucine), hydroxy-t-butylglycine, amino butyric acid, ornithine, and cycloleucine, and preferably, when R18 and R20 are joined, together with the atoms to which they are bonded, proline, 4-hydroxyproline, pyroglutamic acid, azetidine carboxylic acid, pipecolinic acid, indoline-2-carboxylic acid, tetrahydro-3-isoquinoline carboxylic acid, ##STR23##
The term "peptide chain", as used herein, denotes two or more amino acids as described above bonded through a peptide linkage ##STR24##
The "N-terminus" of the above-described amino acid(s) denotes the --N(R20)-- group.
The term "salt(s)", as employed herein, denotes acidic and/or basic salts formed with inorganic and/or organic acids and bases. Zwitterions (internal or inner salts) are included within the term "salt(s)" as used herein, as are quaternary ammonium salts such as alkylammonium salts. The nontoxic, pharmaceutically acceptable salts are preferred, although other salts may be useful, for example, in isolation or purification steps which may be employed during preparation.
Exemplary acid addition salts include acetate, adipate, alginate, aspartate, benzoate, benzenesulfonate, bisulfate, butyrate, citrate, camphorate, camphorsulfonate, cyclopentanepropionate, digluconate, dodecylsulfate, ethanesulfonate, fumarate, glucoheptanoate, glycerophosphate, hemisulfate, heptanoate, hexanoate, hydrochloride, hydrobromide, hydroiodide, 2-hydroxyethanesulfonate, lactate, maleate, methanesulfonate, 2-naphthalenesulfonate, nicotinate, oxalate, pectinate, persulfate, 3-phenylpropionate, picrate, pivalate, propionate, succinate, tartrate, thiocyanate, tosylate, and undecanoate.
Exemplary basic salts include ammonium salts, alkali metal salts such as sodium, lithium, and potassium salts, alkaline earth metal salts such as calcium and magnesium salts, salts with organic bases such as dicyclohexylamine, N-methyl-D-glucamine, and salts with amino acids such as arginine, lysine and so forth. The basic nitrogen-containing groups may be quaternized with agents such as lower alkyl halides (e.g. methyl, ethyl, propyl, and butyl chlorides, bromides and iodides), dialkyl sulfates (e.g. dimethyl, diethyl, dibutyl, and diamyl sulfates), long chain halides (e.g. decyl, lauryl, myristyl and stearyl chlorides, bromides and iodides), aralkyl halides (e.g. benzyl and phenethyl bromides), and others.
The terms "stereoselective enzymatic reduction" and "stereoselective reduction", as used herein, refer, with respect to the carbon atom bearing the hydroxyl group formed by the reduction, to the preferential formation of one enantiomer of a compound of the formula II (that is, formation of that enantiomer in greater quantity, and preferably, exclusively) relative to the formation of the other enantiomer thereof. For example, in a preferred embodiment of the present invention, stereoselective reduction of a compound of the formula Ia provides preferential formation of a compound of the formula IIa relative to a compound of the formula IIb.
The term "mixture", as said term is used herein in relation to stereoisomeric, such as enantiomeric compounds, includes mixtures having equal (i.e., racemic for an enantiomeric mixture) or non-equal amounts of stereoisomers.
The terms "enzymatic process" or "enzymatic method", as used herein, denote a process or method of the present invention employing an enzyme or microorganism.
The term "substantially free", as used herein with respect to one compound relative to one or more other compounds, denotes that the former is pure or contains only trace amounts of the latter.
The term "oxidoreductase enzyme-supplying microorganism", as used herein, denotes a microorganism which contains or produces, intracellularly and/or extracellularly, one or more oxidoreductase enzyme(s).
Salts or solvates such as hydrates of reactants or products may be employed or prepared as appropriate in any of the methods of the present invention. Tautomers of reactants or products are contemplated where appropriate.
The initial definition provided for a group or term herein applies to that group or term throughout the present specification, unless otherwise indicated. It is to be understood that "exemplary" groups recited herein are illustrative and not limiting. Throughout this specification, groups and substituents thereof may be chosen to provide stable moieties and compounds.
All stereoisomers of reactants and products are contemplated within the scope of this invention, unless otherwise indicated. Individual stereoisomers of such compounds may, for example, be substantially free of other isomers, or may be admixed, for example, as racemates or with all other, or other selected, stereoisomers. The chiral centers of the present invention can have the S or R configuration as defined by the IUPAC 1974 Recommendations.
The starting haloketones of the formula I and salts thereof employed in the present reduction method may be obtained by any suitable means, such as by the conversion, by known methods, of a nitrogen protected amino acid (e.g., BOC--NH--CH(R2)--COOH) or a carboxylic acid protected amino acid (e.g., HCl•NH2 --CH(R2)--COO(protecting group)) to a compound of the formula I or salt thereof. The starting haloketones may, for example, be prepared by methods described in, or by methods analogous to those described in, European Patent Application No. 580,402, or U.S. application Ser. No. 08/355,373, filed Dec. 13, 1994 by Chen et al. entitled "Process for Preparing N-Protected Amino Acid a-Halomethyl Ketones and Alcohols From N-Protected Amino Acid Esters."
Compounds having the following groups are referably employed in or prepared by the methods f the present invention.
A is preferably a group selected from those groups (3) to (9) defined above, particularly:
the group (3): ##STR25## where Z is sulfur or, most preferably, oxygen;
R3 is preferably hydrogen; aryl (e.g., phenyl or naphthyl); alkyl which is unsubstituted (e.g., methyl, ethyl or tert-butyl) or substituted by one or more of oxo, hydroxy (e.g., mono- or dihydroxy) or protected hydroxy, aryloxy (e.g., phenoxy or naphthyloxy), alkoxy (e.g., methoxy, benzyloxy, or benzimidazolylpropoxy), aryl (e.g., phenyl), heterocyclo (e.g., benzimidazolyl, 1,3-dioxolane (optionally substituted by methyl groups), indolyl, pyridyl, or dihydroindazolyl (optionally substituted by oxo)), oxime, alkoxyimino (e.g., methoxyimino), amino or substituted amino (e.g., benzyloxycarbonylamino), alkylaminocarbonyl (e.g., N-methylaminocarbonyl), arylaminocarbonyl (e.g., phenylaminocarbonyl), alkylaminocarbonyloxy (e.g., N-methylaminocarbonyloxy), or fluoro (e.g., to form trifluoromethyl); carbocyclo (e.g., cyclopentyl or cyclohexyl (optionally substituted by methyl and/or hydroxy groups), or indanyl (optionally further substituted by hydroxy); or heterocyclo (e.g., quinolinyl, pyrrolidinyl (optionally substituted by methyl and/or oxo groups), oxazolidinyl (optionally substituted by methyl and/or oxo groups), dihydroisoindolyl (optionally substituted by formyl, tetrahydrofuryl (optionally substituted by hydroxy and/or methyl groups), or benzimidazolyl); R3 is most preferably carbocyclo or alkyl wherein the carbocyclo or alkyl groups are substituted, particularly by one or more of hydroxy, aryl, heterocyclo, alkylaminocarbonyl or fluoro (especially to form trifluoromethyl);
the group (4):
R.sup.3 --SO.sub.2 --
where R3 is alkyl, especially unsubstituted lower alkyl;
the group (6): ##STR26## where Z is sulfur or, most preferably, oxygen; R3 preferably alkyl such as unsubstituted lower alkyl (e.g., methyl or tert-butyl), arylalkyl (e.g., benzyl), or heterocycloalkyl (e.g., pyridylmethyl or benzimidazolylmethyl); and
R4 is preferably alkyl such as unsubstituted lower alkyl (e.g., methyl) or, most preferably, R4 is hydrogen;
the group (8): ##STR27## where R5 is preferably hydrogen; carbocyclo (e.g., indenyl); alkyl such as unsubstituted lower alkyl (e.g., methyl, ethyl or tert-butyl) or alkyl which is substituted by one or more of amino, substituted amino (e.g., amino substituted by formyl, phenyl, benzyl or benzyloxycarbonyl), halo (e.g., fluoro), aryl (e.g., phenyl), hydroxy (e.g., mono or dihydroxy) or protected hydroxy, heterocyclo (e.g., dihydroindazolyl (optionally substituted by oxo and/or benzyl)), alkoxy (such as unsubstituted lower alkoxy (e.g., methoxy) or arylalkoxy (e.g., benzyloxy)), aryloxy (e.g., phenoxy), or arylaminocarbonyl (e.g., phenylaminocarbonyl); aryl (e.g., phenyl or biphenyl); heterocyclo (e.g., imidazolyl (optionally substituted by trityl and/or phenyl), oxazolyl (optionally substituted by phenyl), 2-furo[2,3-c]pyridinyl, 2-furo[3,2-b]pyridinyl, 2-furo[2,3-b]pyridinyl, quinoxalinyl, benzothiazolyl, quinolinyl, benzimidazolyl (optionally substituted by benzyloxymethyl), pyridyl, indolyl, oxazolidinyl (optionally substituted by oxo), dihydroisoindolyl (optionally substituted by oxo), 1,3-dioxolane (optionally substituted by methyl groups), dihydroquinazolinyl (optionally substituted by oxo), or benzoxazolyl); fluoren-9-yl; or alkynyl (e.g., phenylalkynyl); R5 is most preferably hydrogen, alkyl (unsubstituted or substituted, in the latter case preferably hydroxyalkyl), aryl or heterocyclo;
R6 and R7 are preferably hydrogen, or alkyl such as unsubstituted lower alkyl (e.g., methyl) or hydroxyalkyl; or
two of R5, R6 and R7, together with the carbon atom to which they are bonded, form a carbocyclo group (e.g., cyclobutyl or cyclopentyl (optionally substituted by hydroxy), or indanyl (optionally further substituted by hydroxy or protected hydroxy)), or a heterocyclo group (e.g., oxetanyl, tetrahydrofuryl (optionally substituted by hydroxy), tetrahydro-1,1-dioxothienyl, tetrahydropyranyl, or benzimidazolyl (optionally substituted by methyl)); or
the group (9):
R.sup.3 --SO--
where R3 is alkyl, especially unsubstituted lower alkyl.
R1 is preferably hydrogen or unsubstituted lower alkyl (e.g., methyl), most preferably hydrogen.
R2 is preferably unsubstituted lower alkyl (e.g., sec-butyl or isobutyl); or substituted lower alkyl, most preferably:
(A) cycloalkylalkyl (e.g., cyclohexylmethyl);
(B) heterocycloalkyl, especially heterocyclomethyl (e.g., indolylmethyl, pyridylmethyl, or quinolinylmethyl);
(C) arylalkenylalkyl, particularly where aryl is substituted by a group Ar(sub) defined below; or
(D) arylalkyl, for example, phenylethyl, or, especially, a group of the formula: ##STR28## where Ar(sub) is: (i) hydrogen;
(ii) hydroxy;
(iii) alkenyl (e.g., ethenyl);
(iv) alkyl, especially unsubstituted lower alkyl (e.g., ethyl); or
(v) alkoxy, especially:
unsubstituted lower alkoxy (e.g., methoxy);
alkoxyalkoxy (e.g., methoxyethoxy, ethoxybutoxy, benzyloxyethoxy, or enzyloxypropoxy);
hydroxyalkoxy (e.g., hydroxyethoxy, hydroxypropoxy, or hydroxybutoxy);
arylalkoxy (e.g., benzyloxy);
heterocycloalkoxy (e.g., morpholinylpropoxy, morpholinylethoxy, 3-oxo-morpholinylethoxy, pyridylethoxy, benzoxazolylmethoxy, benzoxazolylpropoxy, imidazolylethoxy, 2-oxo-oxazolidinylethoxy, 3-methyl-2-oxo-imidazolidinylethoxy, 2-hydroxy-2-pyridylethoxy);
aminoalkoxy (e.g., aminoethoxy) or aminocarbonyloxyalkoxy (e.g., aminocarbonyloxyethoxy), especially where the amino moiety is unsubstituted or mono- or disubstituted by alkyl (e.g., methyl) or aryl (e.g., tolyl);
heterocyclocarbonylalkoxy (e.g., morpholinylcarbonylethoxy, morpholinylcarbonylmethoxy or piperidinylcarbonylmethoxy);
heterocyclooxyalkoxy (e.g., pyridyloxyethoxy);
alkoxycarbonylalkoxy (e.g., ethoxycarbonylmethoxy); or carboxyalkoxy (e.g., carboxymethoxy); or
(vi) amino (NH2).
X is preferably chloro, bromo or iodo.
Particularly preferred substrates of the formula I and products of the formula II are those having the following formulae I, pref and II, pref, respectively, where the II, pref products have the (1S,2R) stereoconfiguration: ##STR29## where Apref is acetyl, benzoyl, t-butoxycarbonyl (BOC), carbobenzoxy (Cbz), trifluoroacetyl, or fluoren-9-ylmethoxycarbonyl (FMOC);
Ar(sub)pref is hydrogen, hydroxy, alkyl, alkoxy (especially, substituted alkoxy such as phenylmethyloxy) or NH2 ; and
XC is Cl, Br, or I, especially Cl.
The enzyme or microorganism employed in a method of the present invention may be any oxidoreductase enzyme, or microorganism supplying an oxidoreductase enzyme, capable of catalyzing the enzymatic reduction, preferably the stereoselective enzymatic reduction, described herein. The enyzmatic or microbial materials may be employed in the free state or immobilized on a support such as by physical adsorption or entrapment.
With respect to the use of microorganisms, the methods of the present invention may be carried out using any suitable microbial materials supplying one or more oxidoreductase enzymes capable of catalyzing the enzymatic reduction, preferably the stereoselective enzymatic reduction, described herein. For example, the cells may be used in the form of intact wet cells or dried cells such as lyophilized, spray-dried or heat-dried cells, or in the form of treated cell material such as ruptured cells or cell extracts.
Microorganisms for use in the present reduction process may include, for example, those from bacteria, yeast, and fungi genera. Exemplary genera of microorganisms include: Achromobacter, Acinetobacter, Aureobasidium, Actinomyces, Alkaligenes, Arthrobacter, Azotobacter, Bacillus, Escherichia, Brevibacterium, Corynebacterium, Flavobacterium, Methylomonas, Mycobacterium, Nocardia, Nocardioides, Pseudomonas, Rhodococcus, Streptomyces, Xanthomonas, Aspergillus, Candida, Fusarium, Geotrichum, Hansenula, Kloeckera, Penicillium, Pichia, Pullularia, Caldariomyces, Gliocladium, Schizophyllum, Mortierella, Rhizopus, Rhodotorula, Saccharomiyces, Trichoderma, Cunninghamella, Torulopsis, and Rhodopseudomonas. Preferred microorganisms include those from the following species: Mortierella ramanniana, Streptomyces nodosus, Caldariomyces fumago, Pseudomonas cepacia, Bacillus subtilis, Bacillus cereus, Gliocladium virens, Schizophyllum commune, Aureobasidium pullulans, Arthrobacter simplex, Nocardioides albus, Nocardia globerula, Nocardia restricta, Nocardia salmonicolor, Rhodococcus fascians, Rhodococcus rhodochrous, Mycobacteriam vacca, Nocardia meditteranei, Nocardia autotrophica, Rhodococcus equi, Pullularia pullulans, Escherichia coli, Candida boidinii, Geotrichum candidum, Saccharomyces cerevisiae, Mortierella alpina, Pichia pinus, Pichia methanolica, Hansenula polymorpha, Cunninghamella echinalate, Torulopsis polysporium, and Acinetobacter calcoaceticus. Most preferred microorganisms include those from the species: Streptomyces nodosus, Candida boidinii, Caldariomyces fumago, Pullularia pullulens, Aureobasidium pullulans and Mortierella ramanniana, particularly those strains employed in the Examples herein.
The use of genetically engineered microorganisms is also contemplated. The host cell may be any cell, e.g. Escherichia coli, modified to contain a gene or genes for expressing one or more enzymes capable of catalysis as described herein.
The term "ATCC" as used herein refers to the accession number of the American Type Culture Collection, 12301 Parklawn Drive, Rockville, Md. 20852, the depository for the organism referred to.
With respect to the use of enzymes, the methods of the present invention may be carried out using any suitable enzymes, regardless of origin or purity, capable of catalyzing the enzymatic reduction, preferably the stereoselective enzymatic reduction, described herein. "Oxidoreductases", also referred to as "dehydrogenases", are enzymes which catalyze an oxidation and/or reduction reaction. The enzyme employed is preferably an oxidoreductase enzyme isolated from a microorganism, such as by homogenizing cell suspensions, followed by disintegration, centrifugation, DEAE-cellulose chromatography, ammonium sulfate fractionation, chromatography using gel filtration media such as Sephacryl (cross-linked co-polymer of allyl dextran and N,N'-methylene bisacrylamide) chromatography, and ion exchange chromatography such as Mono-Q (anion exchanger which binds negatively charged biomolecules through quaternary amine groups) chromatography. The term "isolated", as used herein with respect to enzymes obtained from microorganisms, denotes at least partial, and preferably complete, separation of the remainder of the microbial materials from one or more oxidoreductase enzymes contained in or produced by the microorganism. Exemplary such enzymes include L-2-hydroxyisocaproate dehydrogenase, lactic acid dehydrogenase, yeast enzyme concentrate (Sigma), β-hydroxybutyrate dehydrogenase, glucose dehydrogenase, alcohol dehydrogenase, glycerol dehydrogenase, formate dehydrogenase, pyruvate dehydrogenase, hydroxy steroid dehydrogenase, and, most preferably, enzymes isolated from the microorganisms described above.
The compound of the formula I or salt thereof is preferably treated with Streptomyces nodosus, Candida bodinii, Caldariomyces fumago, Pullularia pullulans, Mortierella ramanniana, Aureobasidium pullulans, or an oxidoreductase isolated from any of these. Streptomyces nodosus and Mortierella ramanniana are the most preferred species. Preferred strains are recited in the Examples herein, particularly in Table 1 of Example 1.
When employing microorganisms, the enzymatic reduction method of the present invention may be carried out subsequent to the fermentation of the microorganism employed (two-stage fermentation and reduction), or concurrently therewith, that is, in the latter case, by in situ fermentation and reduction (single-stage fermentation and reduction).
In the single-stage process, the microorganisms may be grown in an appropriate medium (especially, containing carbon and nitrogen sources) until sufficient growth of the microorganisms is attained. A compound of the formula I or salt thereof may then be added to the microbial cultures and the enzymatic reduction continued, preferably until complete or nearly complete conversion is obtained.
In the two-stage process, the microorganisms may, in the first stage, be grown in an appropriate medium (especially, containing carbon and nitrogen sources) for fermentation until exhibiting the desired enzymatic (i.e., oxidoreductase) activity. Subsequently, the cells may be harvested, for example, by centrifugation, and microbial cell suspensions prepared, for example, by suspending harvested cells in an appropriate buffered solution. Buffers such as tris-HCl, phosphates, sodium acetate and the like may be used. Water may also be used to prepare suspensions of microbial cells. In the second stage, a compound of the formula I or salt thereof may be mixed with the microbial cell suspensions, and the enzymatic reduction of compound I or salt thereof catalyzed by the microbial cell suspensions. The reduction is continued, preferably until complete or nearly complete conversion is obtained.
Growth of the microorganisms may be achieved by one of ordinary skill in the art by the use of an appropriate medium. Appropriate media for growing microorganisms include those which provide nutrients necessary for the growth of the microbial cells. A typical medium for growth includes necessary carbon sources, nitrogen sources, and trace elements. Inducers may also be added. The term "inducer", as used herein, denotes any compound containing keto group(s) initiating or enhancing formation of the desired enzymatic (i.e., oxidoreductase) activity within the microbial cell. Compounds of the formula I or salts thereof may be added as inducers during growth of the microorganisms.
Carbon sources may include sugars such as maltose, lactose, glucose, fructose, glycerol, sorbitol, sucrose, starch, mannitol, propylene glycol, and the like; organic acids such as sodium acetate, sodium citrate, and the like; amino acids such as sodium glutamate and the like; and alcohols such as ethanol, propanol and the like.
Nitrogen sources may include N-Z amine A, corn steep liquor, soy bean meal, beef extracts, yeast extracts, molasses, baker's yeast, tryptone, nutrisoy, peptone, yeastamin, sodium nitrate, ammonium sulfate and the like.
Trace elements may include phosphates and magnesium, manganese, calcium, cobalt, nickel, iron, sodium and potassium salts.
It is within the scope of this invention that appropriate media may include more than one carbon or nitrogen source or other nutrients and may include a mixture of several.
Preferred media include aqueous media containing the following (in weight %):
______________________________________
Medium 1
Malt Extract 1%
Yeast Extract 1%
Peptone 1%
Glucose 2%
pH 7.0
Medium 2
Peptone 0.3%
Glucose 4%
Malt Extract 1%
Yeast Extract 1%
pH 7.0
Medium 3
Peptone 0.3%
Fructose 2%
Malt Extract 1%
Yeast Extract 1%
pH 7.0
Medium 4
Sodium Succinate
2%
Malt Extract 1%
Yeast Extract 1%
Peptone 0.3%
pH 7.0
______________________________________
The pH of the medium is preferably adjusted to about 6 to 8, most preferably to 6.5, before sterilization. The medium is then preferably sterilized, e.g. at a temperature of 121° C. for 30 minutes, and then adjusted to a pH of about 6.5 to 7.5, most preferably 7.0, after sterilization.
The pH of the medium is preferably maintained between 4.0 and 9.0, most preferably between 6.0 and 8.0, during the growth of microorganisms and during the reduction process.
The temperature of the reaction mixture is a measure of the heat energy available for the reduction process, and should be maintained to ensure that there is sufficient energy available for the process. A suitable temperature range is from about 15° C. to about 60° C., preferably from about 25° C. to about 40° C.
The agitation and aeration of the reaction mixture affects the amount of oxygen available during the reduction process, which may be conducted, for example, in shake-flask cultures or fermentor tanks during growth of microorganisms in a single-stage or two-stage process. The agitation range from 50 to 1000 RPM is preferable, with 50 to 500 RPM being most preferred. Aeration of about 0.1 to 10 volumes of air per volume of media per minute (i.e., 0.1 to 10 v/vt) is preferred, with aeration of about 5 volumes of air per volume of media per minute (i.e., 5 v/vt) being most preferred.
Complete conversion of the compound of the formula I or salt thereof may take, for example, 5 from about 4 to 48 hours, such as 4 to 24 hours, measured from the time of initially treating said compound with a microorganism or enzyme as described herein.
The enzymatic reduction method of the present invention may be carried out using a co-factor such as nicotinamide adenine dinucleotide (NADH), especially when an isolated enzyme is employed. NADH may thereafter be regenerated and reused, for example, as described in the Examples herein. A further enzyme that regenerates the NADH (i.e., reduces NAD to NADH) may be employed such as a dehydrogenase, e.g., glucose dehydrogenase or formate dehydrogenase. Suitable hydrogen donors include molecular hydrogen, glucose, a formate (e.g. an alkali metal or ammonium formate), a hypophosphite or an electrochemical reduction in the presence of a viologen, for example methyl viologen. It is also possible to regenerate NADH without further enzymes using, for example, ethanol or formate.
It is preferred to employ an aqueous liquid as the reaction medium, although an organic liquid, or a miscible or immiscible (biphasic) organic/aqueous liquid mixture may also be employed.
It is preferred to employ 0.2 to 5 weight % of the compound of the formula I or salt thereof as starting material based on the combined weight of the compound I or salt and the reaction medium. The amount of enzyme or microorganism employed relative to the starting material is selected to allow catalysis of the enzymatic reduction of the present invention.
It is preferred to employ reaction parameters, particularly enzymes and microorganisms, which provide a stereoselective reduction. A stereoselective reduction is advantageous in that an efficient conversion of a substrate to a desired stereoisomer may be achieved, and in that the procedures which may be employed in the subsequent separation of the desired stereoisomer of the formula II or salt thereof from the remaining components of the reaction medium may be minimized. It is particularly preferred to employ parameters which provide a reaction yield greater than about 80%, most preferably greater than about 90%, and an optical purity greater than about 95%, most preferably greater than about 99%, of a desired enantiomer of the formula II. To obtain stereoselective reduction of the substrate compound of the formula I or salt thereof, it is desirable to employ the enzymes and microorganisms indicated above as preferred.
The products of the methods of the present invention may be recovered by any suitable methods for isolation and/or purification, for example, by methods such as extraction, distillation, crystallization, and column chromatography.
The halohydrins produced by the methods of the present invention may be employed as intermediates (especially, as chiral intermediates) in the preparation of renin inhibitors or of antiviral agents, particularly retroviral protease inhibitors (especially those described in European Patent Application 580,402, incorporated herein by reference in its entirety, such as [1S-[1R*,2S*(2S*,3R*)]]-[3-[[3-[[(1,1-dimethylethoxy)carbonyl]amino]-2-hydroxy-4-(4-[2(4-morpholinyl-2-oxo-ethoxy]phenyl]butyl]amino]-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester).
Preferably, the halohydrins of the formula II or salts thereof are converted to an epoxide of the following formula III or salt thereof: ##STR30## especially, an epoxide of the following formula IIIa or salt thereof: ##STR31## by contacting the halohydrin starting material (especially, of the formula IIa or salt thereof) with a base such as an alkali metal hydroxide (e.g., KOH) in a solvent such as ethanol. The group R2 of the epoxide may optionally be converted to another group R2 prior to further use. For example, where R2 contains a protected hydroxyl group, the latter may be deprotected and then coupled to provide a group R2 containing an alkoxy group.
It is particularly preferred to prepare HIV protease inhibitors as described in European Patent Application 580,402 employing the methods of the present invention. Preferred such inhibitors are those having the following formula IV: ##STR32## or salts thereof, particularly where the formula IV has the following stereoconfiguration IVa: ##STR33## In the formulae IV and IVa, R1 and R2 are as defined above and each may be independently selected where it appears on opposite sides of the molecule. E is a single bond or a peptide chain containing 1 to 4 amino acids, the N-terminus of which is bonded to A, and may be independently selected where it appears on each side of the molecule.
E is preferably a single bond or a peptide chain containing 1 or 2 amino acids. Preferred amino acids are those wherein, in the formula: ##STR34## R18 is hydrogen or unsubstituted lower alkyl (e.g., methyl); R19 is hydrogen, aryl (e.g., phenyl), or, most preferably, lower alkyl which is unsubstituted (e.g., methyl, isopropyl, or tert-butyl) or which is substituted, particularly by one or more of hydroxy (or protected hydroxy), amino, aminocarbonyl, fluoro (e.g., to form trifluoromethyl), phenyl, or hydroxyphenyl; or
R18 and R19, together with the carbon atom to which they are bonded, form a cycloalkyl group (e.g., cyclopentyl); and
R20 is hydrogen or unsubstituted lower alkyl (e.g., methyl).
Compounds of the formula IV or salts thereof may be prepared from halohydrins of the formula II or salts thereof by any suitable method, such as those described in European Patent Application 580,402, incorporated herein by reference. A preferred such method is shown in the following Reaction Scheme, where A, R1, R2 and E are as defined above, where the superscripts "a" and "b" are used to distinguish groups on opposite sides of the compounds of the formulae IV and VI, and which begins with the epoxide III obtained from a halohydrin II as described above. ##STR35##
In the above Reaction Scheme, a compound of the formula III or salt thereof is contacted with a compound Q--NH2, preferably in the presence of a metal halide such as LiCl, LiBr, or LiClO4, to yield a compound of the formula V or salt thereof. Q is hydrogen or alkyl, and is preferably a group rendering the nitrogen atom to which it is bonded basic. Exemplary Q groups are hydrogen, unsubstituted lower alkyl, alkenyl-lower alkyl and aryl-lower alkyl, especially benzyl.
The compound of the formula V or salt thereof is then contacted with a compound of the formula III or salt thereof, which may be the same as or different from the compound of the formula III or salt thereof used in the previous step, to form a compound of the formula VI or salt thereof.
To obtain a compound of the formula IV or salt thereof: (a) where Q is other than hydrogen, Q may be removed by any suitable method, such as by hydrogenation with hydrogen gas and Pd(OH)2 catalyst when Q is benzyl; and (b) where a different group A is desired, or E is other than a single bond, the groups Aa and/or Ab of the compound of the formula VI or salt thereof may be removed by any suitable method to yield a terminal group H(R1)N--, and the desired group A and/or group E then added. For example, a compound of the formula A--E--OH may be added in the presence of a coupling agent to form an amide group with the terminal group H(R1)N-- of the compound of the formula VI or salt thereof.
The HIV protease inhibitors prepared as described herein are particularly useful in the prevention and/or treatment of infection by HIV viruses (HIV-1, HIV-2, and mutants thereof), including the treatment of consequent pathological conditions such as AIDS.
The present invention is further described by the following examples which are illustrative of preferred embodiments only, and are in no way intended to limit the scope of the claims appended hereto.
This Example illustrates the present reduction process, employing a variety of microbial strains in the form of whole cells.
The substrate used was the enantiomer (1S)-[3-chloro-2-oxo-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester, hereinafter referred to as compound A, having the following structure: ##STR36## where "BOC" denotes tert-butoxycarbonyl. The product sought was the enantiomer (1S,2R)-[3chloro-2-hydroxy-1-(phenylmethyl)propyl]carbamic acid, 1,1-dimethylethyl ester, hereinafter referred to as compound B, having the following structure: ##STR37##
The microorganisms were maintained in a vial in liquid nitrogen. For routine development of inoculum, one vial (1 mL) was inoculated into 100 mL of Medium 1 (the composition of which is described above) in a 500 mL flask and incubated at 28° C. and 280 RPM on a shaker for 48 hours. After growth of the microorganisms, 10 mL of culture was inoculated into a 500 mL flask containing 100 mL of Medium 1 and incubated at 28° C. and 250 RPM on a shaker for 24 hours.
The cells were then harvested by centrifugation and suspended in 100 mM potassium phosphate buffer, pH 6.8. 10 mL of 20% w/v cell suspensions were prepared. The cell suspensions were supplemented with 10 mg of substrate (compound A) and 750 mg of glucose and the biotransformations (reductions) were conducted at 28° C., 150 RPM for 48 hours. One volume of sample was taken and extracted with five volumes of 60:40 t-butylmethyl ether:toluene, and the separated organic phase was filtered through a 0.2 μm filter and collected.
Two mL of the organic layer was taken and resuspended in 1 mL ethanol prior to the following HPLC analysis.
HPLC
A 20 μl sample obtained as above was injected onto a YMC-PACK ODS-A column (100×4.5 mm I.D., 5 micron). Samples were eluted at 1 ml/min. in a biphasic system consisting of 10% methanol (solvent A) and 90% methanol (solvent B) and monitored at 220 nm, 254 nm, and 280 nm. Elution was conducted according to the following time table:
______________________________________
Time (minutes) Solvent A
Solvent B
______________________________________
0 100% 0
25 25% 75%
25.2 100% 0%
30 100% 0%
______________________________________
Compounds A and B eluted at 24.0 and 23.5 minutes, respectively. Where the undesired stereoisomer, hereinafter referred to as compound C, having the following structure: ##STR38## was formed, that compound eluted at 24.5 minutes.
The results obtained by using various microorganisms grown on Medium 1 and following the above procedures are shown in the following Table 1.
TABLE 1
______________________________________
Diaster-
ATCC eomeric Yield
Microorganism No. Purity (%)
______________________________________
Escherichia coli
8739 100% 8%
Streptomyces nodosus
14899 100% 36%
Pullularia pullulans
16624 81% 47%
Pichia pinus 28780 78% 37%
Caldariomyces fumago
11925 Run 1: 93%
33%
Run 2: 91%
51%
Candida boidinii
26175 100% 39%
Pseudomonas cepacia
29351 85% 11%
Nocardioides albus
55424 92% 5%
Bacillus subtilis
9799 100% 1%
Bacillus cereus
27348 100% 1%
Gliocladium virens
44327 65% 16%
Schizophyllum commune
38548 100% 1%
Aureobasidim pullulans
42457 87% 44%
Pseudomonas sp.
21808 100% 4%
Mortierella ramanniana
24786 91% 54%
Pichia methanolica
56510 68% 35%
______________________________________
In Table 1, "Diastereomeric Purity" was calculated as: {([B])÷([B]+[C])}×100, where [B] was the amount of compound B formed, and [C] was the amount of compound C formed. The "Yield" (wgt %) in Table 1 was calculated as: {([B]+[C])÷([A])}×100, where [A] was the amount of compound A employed as substrate.
To determine whether epimerization occurred at the carbon atom bearing the benzyl group, that is, whether any compound D having the following structure was formed: ##STR39## the optical purity was determined using the following HPLC method. All samples obtained by the above method were evaporated to dryness, redissolved in mobile phase and filtered through a 0.22 μm nylon-66 filter.
HPLC: Hewlett Packard (Hewlett-Packard, Kennett Square, Pa.) or comparable equipped with a photo diode array detector at 210 nm
______________________________________
Mobile Phase: 97.5% hexane
1.5% ethyl alcohol
1.0% cyclohexanol
HPLC Column: 25 cm × 4.6 mm (i.d.) 5 μm;
Chiralpak AD; Diacel Chemical
Industries, Ltd.
Flow Rate: 0.8 ml/min
Column Temperature:
28° C.
Retention Time: 14.0 minutes for compound A
15.5 minutes for compound B
21.5 minutes for compound D
______________________________________
The optical purity of compound B, calculated as {([B])÷([B]+[D])}×100, was 100% (that is, compound D was not produced) for all microbial cultures evaluated.
The substrate for this process, compound A, and the desired product, compound B, were as described in Example 1.
Cells of Mortierella ramanniana ATCC 24786 were grown in 100 mL of Medium 1 (described above) combined in a 500 mL flask. Growth was carried out at 25° C. for 48 hours at 280 RPM. 100 mL of cultures were inoculated into 15 L of Medium 2 (described above) combined in a fermentor. Growth in the fermentor was carried out at 25° C., 15 LPM (liters per minute) aeration and 500 RPM agitation for 30 hours. Cells were harvested from the fermentor and used for the enzymatic conversion (biotransformation) of compound A to compound B.
Homogenous cell suspensions were prepared by suspending the cells (300 grams) in 3 liters of 100 mM potassium phosphate buffer, pH 6.8. 3 Grams of compound A and 75 grams of glucose were added to the cell suspensions and the biotransformation of compound A to compound B was carried out at 28° C., 160 RPM for 24 hours. The results which were obtained are summarized in the following Table 2. Samples were prepared, and product yield, diastereomeric and optical purity were determined, as described in Example 1.
TABLE 2
______________________________________
Reaction Optical
Diastereo-
Time Compound B
Yield purity
meric purity
(hours) g/L (%) (%) (%)
______________________________________
12 0.22 22 100 90
24 0.54 54 100 91
______________________________________
The substrate for this process, compound A, and the desired product, compound B, were as described in Example 1.
Cells of Streptomyces nodosus ATCC 14899 were grown in 100 mL of Medium 1 (described above) combined in a 500-mL flask. Growth was carried out at 25° C. for 48 hours at 280 RPM. 100 mL of cultures were inoculated into 15 L of Medium 2 (described above) combined in a fermentor. Growth in the fermentor was carried out at 25° C., 15 LPM aeration and 500 RPM agitation for 30 hours. After the 30 hour growth period, 15 grams of substrate (compound A) were added to the fermentor and the biotransformation process was started under the same fermentation conditions employed during the initial 48 hours of growth. The results which were obtained are summarized in the following Table 3. Samples were prepared, and product yield, diastereomeric and optical purity were determined, as described in Example 1.
TABLE 3
______________________________________
Reaction Optical
Diastereo-
Time Compound B
Yield purity
meric purity
(hours) g/L (%) (%) (%)
______________________________________
24 0.56 56 100 100
48 0.67 67 100 100
______________________________________
Compound B was isolated from 150 ml of the fermentation reaction mixture containing 105 mg of compound B according to the following procedure: ##STR40##
The substrate for this process, compound A, and the desired product, compound B, were as described in Example 1.
Cells of Streptomyces nodosus ATCC 14899 and Mortierella ramanniana ATCC 24786 were grown on Medium 1 and Medium 2 as described in Examples 2 and 3.
Cells (150 grams) were suspended in 20 mL of 0.1M potassium phosphate buffer, pH 6.8. The homogenized cell suspensions were disintegrated at 4° C. by use of a Microfluidizer at 13,000 psi pressure. The disintegrated cell suspension was centrifuged at 12,000 RPM for 30 minutes. The clear supernatant ("cell extracts") was used for the biotransformation of compound A to compound B.
10 mL of each cell extract was supplemented with 10 mgs of substrate (compound A), glucose dehydrogenase (35 units), 0.7 mM NAD+ (nicotinamide adenine dinucleotide), and 200 mgs of glucose. The reaction was carried out in a pH stat at pH 6.0, 150 RPM agitation, and 30° C. Periodically, samples were taken and analyzed for the reaction yield, diastereomeric purity and optical purity of compound B as described in Example 1. The results which were obtained are shown in the following Table 4.
TABLE 4
______________________________________
Opti-
Diaster-
Reaction Compound cal eomeric
Time B Yield purity
purity
Organisms
(hours) mg/mL (%) (%) (%)
______________________________________
M. ramanniana
20 0.52 52 100 94
ATCC 24786
S. nodosus
20 0.65 65 100 100
ATCC 14899
______________________________________
In the above Example, the NADH cofactor used for the biotransformation of compound A to compound B was regenerated using glucose dehydrogenase, NAD+, and glucose as shown below. ##STR41##
Claims (1)
1. A method for the enzymatic reduction of a compound of the formula I or a salt thereof: where BOC is tert-butoxycarbonyl, to form a compound of the formular II or a salt thereof: ##STR42## comprising the steps of contacting said compound of the formula I or salt thereof with an oxidoreductase enzyme-supplying microorganism or oxidoreductase enzyme-containing material obtained from said microorganism, capable of catalyzing the reduction of said compound of the formula I or salt thereof to form said compound of the formula II or salt thereof, and effecting said reduction, where said microorgaism is selected from the group consisting of Escherichia coli, ATCC 8739; Streptomyces nodosus, ATCC 14899; Pullularia pullulans, ATCC 16624; Pichia pinus, ATCC 28780; Caldariomyces fumago, ATCC 11925; Candida boidinii, ATCC 26175: Pseudomonas cepacia, ATCC 29351; Nocardioides albus, ATCC 55424; Bacillus subtilis, ATCC 9799; Bacillus cereus, ATCC 27348; Gliocladium virens, ATCC 44327; Schizophyllum commune, ATCC 38548; Aureobasidium pullulans, ATCC 42457; Pseudomonas sp., ATCC 21808; Mortierella ramanniana, ATCC 24786, and Pichia methanolic, ATCC 56510.
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| Application Number | Priority Date | Filing Date | Title |
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| US08/685,318 USH1893H (en) | 1996-07-23 | 1996-07-23 | Enzymatic reduction method for the preparation of halohydrins |
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| Application Number | Priority Date | Filing Date | Title |
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| US08/685,318 USH1893H (en) | 1996-07-23 | 1996-07-23 | Enzymatic reduction method for the preparation of halohydrins |
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ID=24751668
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| US08/685,318 Abandoned USH1893H (en) | 1996-07-23 | 1996-07-23 | Enzymatic reduction method for the preparation of halohydrins |
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Cited By (3)
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| DE102005028312A1 (en) * | 2005-06-18 | 2006-12-28 | Archimica Gmbh | Preparation of enantiomerically pure epoxides comprises reduction of ketones alpha-substituted by leaving group with alcohol dehydrogenases in the presence of a cofactor to give enantiomerically pure alcohols, then base-induced cyclization |
| WO2008038050A3 (en) * | 2006-09-29 | 2008-06-26 | Almac Sciences Ltd | Reduction of alpha-halo ketones |
| WO2009040080A1 (en) * | 2007-09-27 | 2009-04-02 | Iep Gmbh | Process for the enantioselective enzymatic reduction of intermediates |
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| US5481011A (en) * | 1994-12-13 | 1996-01-02 | Bristol-Myers Squibb Company | Process for preparing N-protected amino acid α-halomethyl ketones and alcohols from N-protected amino acid esters |
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| US5481011A (en) * | 1994-12-13 | 1996-01-02 | Bristol-Myers Squibb Company | Process for preparing N-protected amino acid α-halomethyl ketones and alcohols from N-protected amino acid esters |
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Cited By (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE102005028312A1 (en) * | 2005-06-18 | 2006-12-28 | Archimica Gmbh | Preparation of enantiomerically pure epoxides comprises reduction of ketones alpha-substituted by leaving group with alcohol dehydrogenases in the presence of a cofactor to give enantiomerically pure alcohols, then base-induced cyclization |
| DE102005028312B4 (en) * | 2005-06-18 | 2008-05-08 | Archimica Gmbh | Process for the preparation of enantiomerically pure epoxides by ADH reduction of α-leaving group-substituted ketones and cyclization |
| WO2008038050A3 (en) * | 2006-09-29 | 2008-06-26 | Almac Sciences Ltd | Reduction of alpha-halo ketones |
| WO2009040080A1 (en) * | 2007-09-27 | 2009-04-02 | Iep Gmbh | Process for the enantioselective enzymatic reduction of intermediates |
| US20100248317A1 (en) * | 2007-09-27 | 2010-09-30 | Iep Gmbh | Process for the enantioselective enzymatic reduction of intermediates |
| US8932835B2 (en) | 2007-09-27 | 2015-01-13 | Iep Gmbh | Process for the enantioselective enzymatic reduction of intermediates |
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