Efficient Regeneration of NADPH in a 3-Enzyme Cascade Reaction by in situ Generation of Glucose 6-Phosphate from Glucose and Pyrophosphate

被引:7
作者
Hartog, Aloysius F. [1 ]
van Herk, Teunie [1 ]
Wever, Ron [1 ]
机构
[1] Univ Amsterdam, Vant Hoff Inst Mol Sci, NL-1098 XH Amsterdam, Netherlands
关键词
acid phosphatase; alcohol dehydrogenase; cofactors; enzyme catalysis; glucose 6-phosphate dehydrogenase; NADPH regeneration; BIOCATALYTIC KETONE REDUCTION; COFACTOR REGENERATION; CHIRAL ALCOHOLS; POWERFUL TOOL; ENZYME; DEPHOSPHORYLATION; PHOSPHORYLATION; DEHYDROGENASE; NICOTINAMIDE; PHOSPHATE;
D O I
10.1002/adsc.201100198
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
We report here a promising method to regenerate NADPH (nicotinamide adenine dinucleotide phosphate) using the intermediate formation of glucose 6-phosphate (G6P) from glucose and pyrophosphate (PPi) catalyzed by the acid phosphatase from Shigella flexneri (PhoN-Sf). The G6P formed is used in turn by glucose 6-phosphate dehydrogenase (G6PDH) to mediate the reduction of NADP(+) to NADPH. The method was tested in a one-pot system with three enzymes in which the NADPH generated was subsequently used by an alcohol dehydrogenase (ADH) from Lactobacillus kefir or Thermoanaerobium brockii to catalyze the enantioselective reduction of acetophenone to R-(+)-1-phenylethyl alcohol or S-(-)-1-phenylethyl alcohol, respectively with NADP(+) as starting cofactor. We were able to synthesize 50 mL of 50 mM R-(+)-1-phenylethyl alcohol in the presence of 5 mM PPi and 0.4 mM NADP(+). The substoichiometric amount of PPi needed demonstrates that phosphate cycling occurs. Under optimal conditions a total turnover number for NADPH higher than 3000 was reached.
引用
收藏
页码:2339 / 2344
页数:6
相关论文
共 28 条
  • [1] A New Regeneration System for Oxidized Nicotinamide Cofactors
    Aksu, Seda
    Arends, Isabel W. C. E.
    Hollmann, Frank
    [J]. ADVANCED SYNTHESIS & CATALYSIS, 2009, 351 (09) : 1211 - 1216
  • [2] Bessel E. M., 1971, BIOCHEM J, V131, P83
  • [3] Purification and characterization of a novel phosphorus-oxidizing enzyme from Pseudomonas stutzeri WM88
    Costas, AMG
    White, AK
    Metcalf, WW
    [J]. JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (20) : 17429 - 17436
  • [4] Crystal structure of a trapped phosphate intermediate in vanadium apochloroperoxidase catalyzing a dephosphorylation reaction
    de Macedo-Ribeiro, Sandra
    Renirie, Rokus
    Wever, Ron
    Messerschmidt, Albrecht
    [J]. BIOCHEMISTRY, 2008, 47 (03) : 929 - 934
  • [5] Biocatalytic reductions: From lab curiosity to "first choice"
    De Wildeman, Stefaan M. A.
    Sonke, Theo
    Schoemaker, Hants E.
    May, Oliver
    [J]. ACCOUNTS OF CHEMICAL RESEARCH, 2007, 40 (12) : 1260 - 1266
  • [6] Biocatalytic ketone reduction -: a powerful tool for the production of chiral alcohols -: part I:: processes with isolated enzymes
    Goldberg, Katja
    Schroer, Kirsten
    Luetz, Stephan
    Liese, Andreas
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2007, 76 (02) : 237 - 248
  • [7] Non-enzymatic regeneration of nicotinamide and flavin cofactors for monooxygenase catalysis
    Hollmann, F
    Hofstetter, K
    Schmid, A
    [J]. TRENDS IN BIOTECHNOLOGY, 2006, 24 (04) : 163 - 171
  • [8] Hollmann F., 2007, ANGEW CHEM, V119, P2961
  • [9] A light-driven stereoselective biocatalytic oxidation
    Hollmann, Frank
    Taglieber, Andreas
    Schulz, Frank
    Reetz, Manfred T.
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2007, 46 (16) : 2903 - 2906
  • [10] Synthesis of optically pure ethyl (S)-4-chloro-3-hydroxybutanoate by Escherichia coli transformant cells coexpressing the carbonyl reductase and glucose dehydrogenase genes
    Kizaki, N
    Yasohara, Y
    Hasegawa, J
    Wada, M
    Kataoka, M
    Shimizu, S
    [J]. APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2001, 55 (05) : 590 - 595