-
2
-
-
0035843170
-
Industrial biocatalysis today and tomorrow
-
Schmid A., Dordick J.S., Hauer B., Kiener A., Wubbolts M., Witholt B. Industrial biocatalysis today and tomorrow. Nature. 409:2001;258-268.
-
(2001)
Nature
, vol.409
, pp. 258-268
-
-
Schmid, A.1
Dordick, J.S.2
Hauer, B.3
Kiener, A.4
Wubbolts, M.5
Witholt, B.6
-
3
-
-
0035843122
-
Enzymes for chemical synthesis
-
A concise overview of the types of transformations that are of interest for biocatalysis in chemical transformations.
-
Koeller K.M., Wong C.H. Enzymes for chemical synthesis. Nature. 409:2001;232-240 A concise overview of the types of transformations that are of interest for biocatalysis in chemical transformations.
-
(2001)
Nature
, vol.409
, pp. 232-240
-
-
Koeller, K.M.1
Wong, C.H.2
-
4
-
-
0037436563
-
Dispelling the myths - Biocatalysis in industrial synthesis
-
This review presents an excellent overview of the current status and limitations of the use of enzymes for large-scale production of chemicals.
-
Schoemaker H.E., Mink D., Wubbolts M.G. Dispelling the myths - biocatalysis in industrial synthesis. Science. 299:2003;1694-1697 This review presents an excellent overview of the current status and limitations of the use of enzymes for large-scale production of chemicals.
-
(2003)
Science
, vol.299
, pp. 1694-1697
-
-
Schoemaker, H.E.1
Mink, D.2
Wubbolts, M.G.3
-
6
-
-
0345817539
-
Regeneration of nicotinamide cofactors for use in organic synthesis
-
Chenault H.K., Whitesides G.M. Regeneration of nicotinamide cofactors for use in organic synthesis. Appl Biochem Biotechnol. 14:1987;147-197.
-
(1987)
Appl Biochem Biotechnol
, vol.14
, pp. 147-197
-
-
Chenault, H.K.1
Whitesides, G.M.2
-
8
-
-
0042933788
-
Recent developments in pyridine nucleotide regeneration
-
van der Donk W.A., Zhao H. Recent developments in pyridine nucleotide regeneration. Curr Opin Biotechnol. 14:2003;421-426.
-
(2003)
Curr Opin Biotechnol
, vol.14
, pp. 421-426
-
-
Van Der Donk, W.A.1
Zhao, H.2
-
9
-
-
0041404265
-
Microbial conversion with cofactor regeneration using genetically engineered bacteria
-
Endo T., Koizumi S. Microbial conversion with cofactor regeneration using genetically engineered bacteria. Adv Synth Catal. 343:2001;521-526.
-
(2001)
Adv Synth Catal
, vol.343
, pp. 521-526
-
-
Endo, T.1
Koizumi, S.2
-
10
-
-
0035921172
-
Regeneration of adenosine triphosphate from glycolytic intermediates for cell-free protein synthesis
-
Kim D.M., Swartz J.R. Regeneration of adenosine triphosphate from glycolytic intermediates for cell-free protein synthesis. Biotechnol Bioeng. 74:2001;309-316.
-
(2001)
Biotechnol Bioeng
, vol.74
, pp. 309-316
-
-
Kim, D.M.1
Swartz, J.R.2
-
11
-
-
0034927661
-
A novel ATP regeneration system using polyphosphate-AMP phosphotransferase and polyphosphate kinase
-
The authors show that ATP regeneration from AMP can be achieved efficiently with poly(P) as the inexpensive phosphorus donor for both phosphorylations.
-
Kameda A., Shiba T., Kawazoe Y., Satoh Y., Ihara Y., Munekata M., Ishige K., Noguchi T. A novel ATP regeneration system using polyphosphate-AMP phosphotransferase and polyphosphate kinase. J Biosci Bioeng. 91:2001;557-563 The authors show that ATP regeneration from AMP can be achieved efficiently with poly(P) as the inexpensive phosphorus donor for both phosphorylations.
-
(2001)
J Biosci Bioeng
, vol.91
, pp. 557-563
-
-
Kameda, A.1
Shiba, T.2
Kawazoe, Y.3
Satoh, Y.4
Ihara, Y.5
Munekata, M.6
Ishige, K.7
Noguchi, T.8
-
12
-
-
0034145132
-
Inorganic polyphosphate and polyphosphate kinase: Their novel biological functions and applications
-
Shiba T., Tsutsumi K., Ishige K., Noguchi T. Inorganic polyphosphate and polyphosphate kinase: their novel biological functions and applications. Biochemistry (Mosc). 65:2000;315-323.
-
(2000)
Biochemistry (Mosc)
, vol.65
, pp. 315-323
-
-
Shiba, T.1
Tsutsumi, K.2
Ishige, K.3
Noguchi, T.4
-
13
-
-
0034016755
-
In vitro ATP regeneration from polyphosphate and AMP by polyphosphate: AMP phosphotransferase and adenylate kinase from Acinetobacter johnsonii 210A
-
This report demonstrates that relatively inexpensive AMP can be used as the initial nucleotide in processes that involve ATP-utilizing enzymes that produce either ADP or AMP.
-
Resnick S.M., Zehnder A.J.B. In vitro ATP regeneration from polyphosphate and AMP by polyphosphate: AMP phosphotransferase and adenylate kinase from Acinetobacter johnsonii 210A. Appl Environ Microbiol. 66:2000;2045-2051 This report demonstrates that relatively inexpensive AMP can be used as the initial nucleotide in processes that involve ATP-utilizing enzymes that produce either ADP or AMP.
-
(2000)
Appl Environ Microbiol
, vol.66
, pp. 2045-2051
-
-
Resnick, S.M.1
Zehnder, A.J.B.2
-
14
-
-
0028967488
-
Inorganic polyphosphate - Toward making a forgotten polymer unforgettable
-
Kornberg A. Inorganic polyphosphate - toward making a forgotten polymer unforgettable. J Bacteriol. 177:1995;491-496.
-
(1995)
J Bacteriol
, vol.177
, pp. 491-496
-
-
Kornberg, A.1
-
15
-
-
0031020606
-
Polyphosphate kinase as a nucleoside diphosphate kinase in Escherichia coli and Pseudomonas aeruginosa
-
Kuroda A., Kornberg A. Polyphosphate kinase as a nucleoside diphosphate kinase in Escherichia coli and Pseudomonas aeruginosa. Proc Natl Acad Sci USA. 94:1997;439-442.
-
(1997)
Proc Natl Acad Sci USA
, vol.94
, pp. 439-442
-
-
Kuroda, A.1
Kornberg, A.2
-
16
-
-
0035665974
-
A sensitive method for detecting AMP by utilizing polyphosphate- dependent ATP regeneration and bioluminescence reactions
-
Tanaka S., Kuroda A., Kato J., Ikeda T., Takiguchi N., Ohtake H. A sensitive method for detecting AMP by utilizing polyphosphate-dependent ATP regeneration and bioluminescence reactions. Biochem Eng J. 9:2001;193-197.
-
(2001)
Biochem Eng J
, vol.9
, pp. 193-197
-
-
Tanaka, S.1
Kuroda, A.2
Kato, J.3
Ikeda, T.4
Takiguchi, N.5
Ohtake, H.6
-
17
-
-
0034687739
-
Inorganic polyphosphate kinase and adenylate kinase participate in the polyphosphate: AMP phosphotransferase activity of Escherichia coli
-
Ishige K., Noguchi T. Inorganic polyphosphate kinase and adenylate kinase participate in the polyphosphate: AMP phosphotransferase activity of Escherichia coli. Proc Natl Acad Sci USA. 97:2000;14168-14171.
-
(2000)
Proc Natl Acad Sci USA
, vol.97
, pp. 14168-14171
-
-
Ishige, K.1
Noguchi, T.2
-
19
-
-
0037027817
-
Production of cytidine 5′-monophosphate N-acetylneuraminic acid using recombinant Escherichia coli as a biocatalyst
-
Lee S.G., Lee J.O., Yi J.K., Kim B.G. Production of cytidine 5′-monophosphate N-acetylneuraminic acid using recombinant Escherichia coli as a biocatalyst. Biotechnol Bioeng. 80:2002;516-524.
-
(2002)
Biotechnol Bioeng
, vol.80
, pp. 516-524
-
-
Lee, S.G.1
Lee, J.O.2
Yi, J.K.3
Kim, B.G.4
-
20
-
-
0000200287
-
Thematic issue: Carbohydrates and glycobiology
-
Thematic issue: Carbohydrates and glycobiology. Science 2001, 291:2337-2378.
-
(2001)
Science
, vol.291
, pp. 2337-2378
-
-
-
21
-
-
0035713715
-
Large-scale synthesis of carbohydrates for pharmaceutical development
-
Zhang J.B., Wu B.Y., Liu Z.Y., Kowal P., Chen X., Shao J., Wang P.G. Large-scale synthesis of carbohydrates for pharmaceutical development. Curr Org Chem. 5:2001;1169-1176.
-
(2001)
Curr Org Chem
, vol.5
, pp. 1169-1176
-
-
Zhang, J.B.1
Wu, B.Y.2
Liu, Z.Y.3
Kowal, P.4
Chen, X.5
Shao, J.6
Wang, P.G.7
-
22
-
-
0028672815
-
Regeneration of sugar nucleotide for enzymatic oligosaccharide synthesis
-
Ichikawa Y., Wang R., Wong C.H. Regeneration of sugar nucleotide for enzymatic oligosaccharide synthesis. Methods Enzymol. 247:1994;107-127.
-
(1994)
Methods Enzymol
, vol.247
, pp. 107-127
-
-
Ichikawa, Y.1
Wang, R.2
Wong, C.H.3
-
23
-
-
0032821706
-
Enzymatic synthesis of nucleotide sugars
-
Bulter T., Elling L. Enzymatic synthesis of nucleotide sugars. Glycoconj J. 16:1999;147-159.
-
(1999)
Glycoconj J
, vol.16
, pp. 147-159
-
-
Bulter, T.1
Elling, L.2
-
24
-
-
0034069205
-
Large-scale production of CMP-NeuAc and sialylated oligosaccharides through bacterial coupling
-
The combination of three E. coli recombinant strains with C. ammoniagenes resulted in a highly efficient whole-cell system for production of CMP-NeuAc and sialylated oligosaccharides. Recycling of CTP is achieved indirectly in C. ammoniagenes with orotic acid as the source of UTP, which is used to convert CDP to CTP.
-
Endo T., Koizumi S., Tabata K., Ozaki A. Large-scale production of CMP-NeuAc and sialylated oligosaccharides through bacterial coupling. Appl Microbiol Biotechnol. 53:2000;257-261 The combination of three E. coli recombinant strains with C. ammoniagenes resulted in a highly efficient whole-cell system for production of CMP-NeuAc and sialylated oligosaccharides. Recycling of CTP is achieved indirectly in C. ammoniagenes with orotic acid as the source of UTP, which is used to convert CDP to CTP.
-
(2000)
Appl Microbiol Biotechnol
, vol.53
, pp. 257-261
-
-
Endo, T.1
Koizumi, S.2
Tabata, K.3
Ozaki, A.4
-
25
-
-
0034079020
-
Production of UDP-N-acetylglucosamine by coupling metabolically engineered bacteria
-
Tabata K., Koizumi S., Endo T., Ozaki A. Production of UDP-N-acetylglucosamine by coupling metabolically engineered bacteria. Biotechnol Lett. 22:2000;479-483.
-
(2000)
Biotechnol Lett
, vol.22
, pp. 479-483
-
-
Tabata, K.1
Koizumi, S.2
Endo, T.3
Ozaki, A.4
-
26
-
-
0034521823
-
Large-scale production of GDP-fucose and Lewis X by bacterial coupling
-
Koizumi S., Endo T., Tabata K., Nagano H., Ohnishi J., Ozaki A. Large-scale production of GDP-fucose and Lewis X by bacterial coupling. J Ind Microbiol Biotechnol. 25:2000;213-217.
-
(2000)
J Ind Microbiol Biotechnol
, vol.25
, pp. 213-217
-
-
Koizumi, S.1
Endo, T.2
Tabata, K.3
Nagano, H.4
Ohnishi, J.5
Ozaki, A.6
-
27
-
-
0035961368
-
Large-scale production of the carbohydrate portion of the sialyl-Tn epitope, α-Neup5Ac-(2→6)-D-GalpNAc, through bacterial coupling
-
Endo T., Koizumi S., Tabata K., Kakita S., Ozaki A. Large-scale production of the carbohydrate portion of the sialyl-Tn epitope, α-Neup5Ac-(2→6)-D-GalpNAc, through bacterial coupling. Carbohydr Res. 330:2001;439-443.
-
(2001)
Carbohydr Res
, vol.330
, pp. 439-443
-
-
Endo, T.1
Koizumi, S.2
Tabata, K.3
Kakita, S.4
Ozaki, A.5
-
28
-
-
0037070491
-
Production of N-acetyl-D-neuraminic acid by coupling bacteria expressing N-acetyl-D-glucosamine 2-epimerase and N-acetyl-D-neuraminic acid synthetase
-
Tabata K., Koizumi S., Endo T., Ozaki A. Production of N-acetyl-D-neuraminic acid by coupling bacteria expressing N-acetyl-D- glucosamine 2-epimerase and N-acetyl-D-neuraminic acid synthetase. Enzyme Microb Technol. 30:2002;327-333.
-
(2002)
Enzyme Microb Technol
, vol.30
, pp. 327-333
-
-
Tabata, K.1
Koizumi, S.2
Endo, T.3
Ozaki, A.4
-
29
-
-
0035850540
-
Transferring a biosynthetic cycle into a productive Escherichia coli strain: Large-scale synthesis of galactosides
-
Simultaneous overexpression of three enzymes in E. coli results in a biocatalyst capable of producing important oligosaccharides from sucrose via recycling of UDP-Gal.
-
Chen X., Zhang J.B., Kowal P., Liu Z., Andreana P.R., Lu Y.Q., Wang P.G. Transferring a biosynthetic cycle into a productive Escherichia coli strain: large-scale synthesis of galactosides. J Am Chem Soc. 123:2001;8866-8867 Simultaneous overexpression of three enzymes in E. coli results in a biocatalyst capable of producing important oligosaccharides from sucrose via recycling of UDP-Gal.
-
(2001)
J Am Chem Soc
, vol.123
, pp. 8866-8867
-
-
Chen, X.1
Zhang, J.B.2
Kowal, P.3
Liu, Z.4
Andreana, P.R.5
Lu, Y.Q.6
Wang, P.G.7
-
30
-
-
0037016633
-
Reassembled biosynthetic pathway for large-scale carbohydrate synthesis: Α-Gal epitope producing 'superbug'
-
Chen X., Liu Z.Y., Zhang J.B., Zhang W., Kowal P., Wang P.G. Reassembled biosynthetic pathway for large-scale carbohydrate synthesis: α-Gal epitope producing 'superbug'. Chembiochem. 3:2002;47-53.
-
(2002)
Chembiochem
, vol.3
, pp. 47-53
-
-
Chen, X.1
Liu, Z.Y.2
Zhang, J.B.3
Zhang, W.4
Kowal, P.5
Wang, P.G.6
-
31
-
-
0037007176
-
Combined biosynthetic pathway for de novo production of UDP-galactose: Catalysis with multiple enzymes immobilized on agarose beads
-
Liu Z.Y., Zhang J.B., Chen X., Wang P.G. Combined biosynthetic pathway for de novo production of UDP-galactose: catalysis with multiple enzymes immobilized on agarose beads. Chembiochem. 3:2002;348-355.
-
(2002)
Chembiochem
, vol.3
, pp. 348-355
-
-
Liu, Z.Y.1
Zhang, J.B.2
Chen, X.3
Wang, P.G.4
-
32
-
-
0346037163
-
Superbeads: Immobilization in 'sweet' chemistry
-
This review compares various methods for the enzymatic synthesis of oligosaccharides including the use of solid supports carrying multiple enzymes and bacterial coupling systems.
-
Nahalka J., Liu Z., Chen X., Wang P.G. Superbeads: immobilization in 'sweet' chemistry. Chemistry. 9:2003;372-377 This review compares various methods for the enzymatic synthesis of oligosaccharides including the use of solid supports carrying multiple enzymes and bacterial coupling systems.
-
(2003)
Chemistry
, vol.9
, pp. 372-377
-
-
Nahalka, J.1
Liu, Z.2
Chen, X.3
Wang, P.G.4
-
33
-
-
0035819944
-
Sugar nucleotide regeneration beads (superbeads): A versatile tool for the practical synthesis of oligosaccharides
-
Chen X., Fang J.W., Zhang J.B., Liu Z.Y., Shao J., Kowal P., Andreana P., Wang P.G. Sugar nucleotide regeneration beads (superbeads): a versatile tool for the practical synthesis of oligosaccharides. J Am Chem Soc. 123:2001;2081-2082.
-
(2001)
J Am Chem Soc
, vol.123
, pp. 2081-2082
-
-
Chen, X.1
Fang, J.W.2
Zhang, J.B.3
Liu, Z.Y.4
Shao, J.5
Kowal, P.6
Andreana, P.7
Wang, P.G.8
-
34
-
-
0027998112
-
Pathways and mechanisms in the biogenesis of novel deoxysugars by bacteria
-
Liu H.W., Thorson J.S. Pathways and mechanisms in the biogenesis of novel deoxysugars by bacteria. Annu Rev Microbiol. 48:1994;223-256.
-
(1994)
Annu Rev Microbiol
, vol.48
, pp. 223-256
-
-
Liu, H.W.1
Thorson, J.S.2
-
36
-
-
33748235492
-
Synthesis of dTDP-6-deoxy-4-ketoglucose and analogs with native and recombinant dTDP-glucose-4,6-dehydratase
-
Stein A., Kula M.R., Elling L., Verseck S., Klaffke W. Synthesis of dTDP-6-deoxy-4-ketoglucose and analogs with native and recombinant dTDP-glucose-4,6-dehydratase. Angew Chem Int Ed Engl. 34:1995;1748-1749.
-
(1995)
Angew Chem Int Ed Engl
, vol.34
, pp. 1748-1749
-
-
Stein, A.1
Kula, M.R.2
Elling, L.3
Verseck, S.4
Klaffke, W.5
-
37
-
-
0035901648
-
Expanding the pyrimidine diphosphosugar repertoire: The chemoenzymatic synthesis of amino- and acetamidoglucopyranosyl derivatives
-
Jiang J.Q., Biggins J.B., Thorson J.S. Expanding the pyrimidine diphosphosugar repertoire: the chemoenzymatic synthesis of amino- and acetamidoglucopyranosyl derivatives. Angew Chem Int Ed Engl. 40:2001;1502-1505.
-
(2001)
Angew Chem Int Ed Engl
, vol.40
, pp. 1502-1505
-
-
Jiang, J.Q.1
Biggins, J.B.2
Thorson, J.S.3
-
38
-
-
0034856716
-
(Chemo)enzymatic synthesis of dTDP-activated 2,6-dideoxysugars as building blocks of polyketide antibiotics
-
Amann S., Drager G., Rupprath C., Kirschning A., Elling L. (Chemo)enzymatic synthesis of dTDP-activated 2,6-dideoxysugars as building blocks of polyketide antibiotics. Carbohydr Res. 335:2001;23-32.
-
(2001)
Carbohydr Res
, vol.335
, pp. 23-32
-
-
Amann, S.1
Drager, G.2
Rupprath, C.3
Kirschning, A.4
Elling, L.5
-
39
-
-
0029149756
-
Enzymatic synthesis and regeneration of 3′-phosphoadenosine 5′-phosphosulfate (PAPS) for regioselective sulfation of oligosaccharides
-
Lin C.H., Shen G.J., Garciajunceda E., Wong C.H. Enzymatic synthesis and regeneration of 3′-phosphoadenosine 5′-phosphosulfate (PAPS) for regioselective sulfation of oligosaccharides. J Am Chem Soc. 117:1995;8031-8032.
-
(1995)
J Am Chem Soc
, vol.117
, pp. 8031-8032
-
-
Lin, C.H.1
Shen, G.J.2
Garciajunceda, E.3
Wong, C.H.4
-
40
-
-
0033578843
-
Enzymatic regeneration of 3′-phosphoadenosine-5′- phosphosulfate using aryl sulfotransferase for the preparative enzymatic synthesis of sulfated carbohydrates
-
Burkart M.D., Izumi M., Wong C.H. Enzymatic regeneration of 3′-phosphoadenosine-5′-phosphosulfate using aryl sulfotransferase for the preparative enzymatic synthesis of sulfated carbohydrates. Angew Chem Int Ed Engl. 38:1999;2747-2750.
-
(1999)
Angew Chem Int Ed Engl
, vol.38
, pp. 2747-2750
-
-
Burkart, M.D.1
Izumi, M.2
Wong, C.H.3
-
41
-
-
0038344024
-
Stereospecific biocatalytic epoxidation: The first example of direct regeneration of a FAD-dependent monooxygenase for catalysis
-
Hollmann F., Lin P.C., Witholt B., Schmid A. Stereospecific biocatalytic epoxidation: the first example of direct regeneration of a FAD-dependent monooxygenase for catalysis. J Am Chem Soc. 125:2003;8209-8217.
-
(2003)
J Am Chem Soc
, vol.125
, pp. 8209-8217
-
-
Hollmann, F.1
Lin, P.C.2
Witholt, B.3
Schmid, A.4
-
42
-
-
0037451066
-
Transition-metal-catalyzed regeneration of nicotinamide coenzymes with hydrogen
-
Wagenknecht P.S., Penney J.M., Hembre R.T. Transition-metal-catalyzed regeneration of nicotinamide coenzymes with hydrogen. Organometallics. 22:2003;1180-1182.
-
(2003)
Organometallics
, vol.22
, pp. 1180-1182
-
-
Wagenknecht, P.S.1
Penney, J.M.2
Hembre, R.T.3
-
43
-
-
0001275962
-
Preparation of optically-active 1,2-diols and α-hydroxy ketones using glycerol dehydrogenase as catalyst - Limits to enzyme-catalyzed synthesis due to noncompetitive and mixed Inhibition by product
-
Lee L.G., Whitesides G.M. Preparation of optically-active 1,2-diols and α-hydroxy ketones using glycerol dehydrogenase as catalyst - limits to enzyme-catalyzed synthesis due to noncompetitive and mixed Inhibition by product. J Org Chem. 51:1986;25-36.
-
(1986)
J Org Chem
, vol.51
, pp. 25-36
-
-
Lee, L.G.1
Whitesides, G.M.2
-
44
-
-
0034688699
-
Continuous enzymatic transformation in an enzyme membrane reactor with simultaneous NAD(H) regeneration
-
Wichmann R., Wandrey C., Buckmann A.F., Kula M.R. Continuous enzymatic transformation in an enzyme membrane reactor with simultaneous NAD(H) regeneration. Biotechnol Bioeng. 67:2000;791-804.
-
(2000)
Biotechnol Bioeng
, vol.67
, pp. 791-804
-
-
Wichmann, R.1
Wandrey, C.2
Buckmann, A.F.3
Kula, M.R.4
-
45
-
-
0022076889
-
Enzymatic vs fermentative synthesis - Thermostable glucose-dehydrogenase catalyzed regeneration of NAD(P)H for use in enzymatic synthesis
-
Wong C.H., Drueckhammer D.G., Sweers H.M. Enzymatic vs fermentative synthesis - thermostable glucose-dehydrogenase catalyzed regeneration of NAD(P) H for use in enzymatic synthesis. J Am Chem Soc. 107:1985;4028-4031.
-
(1985)
J Am Chem Soc
, vol.107
, pp. 4028-4031
-
-
Wong, C.H.1
Drueckhammer, D.G.2
Sweers, H.M.3
-
46
-
-
0001176299
-
A convenient synthesis of disodium acetyl phosphate for use in in situ ATP cofactor regeneration
-
Crans D.C., Whitesides G.M. A convenient synthesis of disodium acetyl phosphate for use in in situ ATP cofactor regeneration. J Org Chem. 48:1983;3130-3132.
-
(1983)
J Org Chem
, vol.48
, pp. 3130-3132
-
-
Crans, D.C.1
Whitesides, G.M.2
-
47
-
-
0031754396
-
Large-scale production of UDP-galactose and globotriose by coupling metabolically engineered bacteria
-
Koizumi S., Endo T., Tabata K., Ozaki A. Large-scale production of UDP-galactose and globotriose by coupling metabolically engineered bacteria. Nat Biotechnol. 16:1998;847-850.
-
(1998)
Nat Biotechnol
, vol.16
, pp. 847-850
-
-
Koizumi, S.1
Endo, T.2
Tabata, K.3
Ozaki, A.4
-
48
-
-
0343092817
-
Enzymatic methods for the preparation of acetyl-CoA and analogs
-
Billhardt U.M., Stein P., Whitesides G.M. Enzymatic methods for the preparation of acetyl-CoA and analogs. Bioorg Chem. 17:1989;1-12.
-
(1989)
Bioorg Chem
, vol.17
, pp. 1-12
-
-
Billhardt, U.M.1
Stein, P.2
Whitesides, G.M.3
|