Biosynthesis of Glycine from One-Carbon Resources Using an Engineered Escherichia coli Whole-Cell Catalyst. [PDF]
Fu M +9 more
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In vitro sulfuration of Rhodobacter capsulatus formate dehydrogenase. [PDF]
Duffus BR +4 more
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Anaerobic degradation of 1,2-propanediol by a new Desulfovibrio strain and D. alcoholovorans [PDF]
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Parameterization of cell-free systems with time-series data using KETCHUP. [PDF]
Hu M, Jilani SB, Olson DG, Maranas CD.
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Common food preservatives induce an oxidative stress response in <i>Salmonella enterica</i> serovar Typhimurium. [PDF]
Holden ER, Horton JCI, Webber MA.
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Hijacking host metabolism: PstEXLX1 suppresses Triticum aestivum defense responses by targeting a formate dehydrogenase. [PDF]
Teixeira MA, Khan M.
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Bacterial microcompartments and energy metabolism drive gut colonization by Bilophila wadsworthia. [PDF]
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Bio-Inspired Self-Assembly of Enzyme-Micelle Systems for Semi-Artificial Photosynthesis. [PDF]
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Aromatic acid metabolism in <i>Methylobacterium extorquens</i> reveals interplay between methylotrophic and heterotrophic pathways. [PDF]
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Protein engineering of formate dehydrogenase
Biomolecular Engineering, 2006NAD+-dependent formate dehydrogenase (FDH, EC 1.2.1.2) is one of the best enzymes for the purpose of NADH regeneration in dehydrogenase-based synthesis of optically active compounds. Low operational stability and high production cost of native FDHs limit their application in commercial production of chiral compounds.
Vladimir I, Tishkov, Vladimir O, Popov
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