Efficient regeneration of NADPH using an engineered phosphite dehydrogenase
Open Access
- 31 August 2006
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 96 (1) , 18-26
- https://doi.org/10.1002/bit.21168
Abstract
The in situ regeneration of reduced nicotinamide cofactors (NAD(P)H) is necessary for practical synthesis of many important chemicals. Here, we report the engineering of a highly stable and active mutant phosphite dehydrogenase (12x-A176R PTDH) from Pseudomonas stutzeri and evaluation of its potential as an effective NADPH regeneration system in an enzyme membrane reactor. Two practically important enzymatic reactions including xylose reductase-catalyzed xylitol synthesis and alcohol dehydrogenase-catalyzed (R)-phenylethanol synthesis were used as model systems, and the mutant PTDH was directly compared to the commercially available NADP+-specific Pseudomonas sp. 101 formate dehydrogenase (mut Pse-FDH) that is widely used for NADPH regeneration. In both model reactions, the two regeneration enzymes showed similar rates of enzyme activity loss; however, the mutant PTDH showed higher substrate conversion and higher total turnover numbers for NADP+ than mut Pse-FDH. The space-time yields of the product with the mutant PTDH were also up to fourfold higher than those with mut Pse-FDH. In particular, a space-time yield of 230 g L−1 d−1 xylitol was obtained with the mutant PTDH using a charged nanofiltration membrane, representing the highest productivity compared to other existing biological processes for xylitol synthesis based on yeast D-xylose converting strains or similar in vitro enzyme membrane reactor systems. Biotechnol. Bioeng. 2007;96: 18–26.Keywords
This publication has 31 references indexed in Scilit:
- Directed Evolution of a Thermostable Phosphite Dehydrogenase for NAD(P)H RegenerationApplied and Environmental Microbiology, 2005
- Mechanistic investigation of a highly active phosphite dehydrogenase mutant and its application for NADPH regenerationThe FEBS Journal, 2005
- Coupling of Biocatalytic Asymmetric Epoxidation with NADH Regeneration in Organic–Aqueous EmulsionsAngewandte Chemie International Edition in English, 2004
- Engineering of coenzyme specificity of formate dehydrogenase from Saccharomyces cerevisiaeBiochemical Journal, 2002
- Phosphite Dehydrogenase: A Versatile Cofactor-Regeneration EnzymeAngewandte Chemie International Edition in English, 2002
- Purification and Characterization of a Novel Phosphorus-oxidizing Enzyme from Pseudomonas stutzeri WM88Journal of Biological Chemistry, 2001
- Enzymatic reduction of α-keto acids leading to l-amino acids, d- or l-hydroxy acidsJournal of Biotechnology, 1997
- New alcohol dehydrogenases for the synthesis of chiral compoundsPublished by Springer Nature ,1997
- Xylitol production by immobilized recombinantSaccharomyces cerevisiae in a continuous packed-bed bioreactorBiotechnology & Bioengineering, 1996
- Enzyme-catalyzed synthesis of optically pure R(+)-phenylethanolBiotechnology Letters, 1990