Development of an NADPH-dependent homophenylalanine dehydrogenase by protein engineering.
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[1] S. Mitsuhashi,et al. Identification of Homophenylalanine Biosynthetic Genes from the Cyanobacterium Nostoc punctiforme PCC73102 and Application to Its Microbial Production by Escherichia coli , 2013, Applied and Environmental Microbiology.
[2] James C Liao,et al. Engineering a cyanobacterium as the catalyst for the photosynthetic conversion of CO2 to 1,2-propanediol , 2013, Microbial Cell Factories.
[3] K. Gunka,et al. Control of glutamate homeostasis in Bacillus subtilis: a complex interplay between ammonium assimilation, glutamate biosynthesis and degradation , 2012, Molecular microbiology.
[4] Kechun Zhang,et al. A synthetic recursive "+1" pathway for carbon chain elongation. , 2012, ACS chemical biology.
[5] J. Bäckvall,et al. Combinatorial reshaping of the Candida antarctica lipase A substrate pocket for enantioselectivity using an extremely condensed library , 2011, Proceedings of the National Academy of Sciences.
[6] Frances H Arnold,et al. Engineered ketol-acid reductoisomerase and alcohol dehydrogenase enable anaerobic 2-methylpropan-1-ol production at theoretical yield in Escherichia coli. , 2011, Metabolic engineering.
[7] J. Liao,et al. Driving Forces Enable High-Titer Anaerobic 1-Butanol Synthesis in Escherichia coli , 2011, Applied and Environmental Microbiology.
[8] Kechun Zhang,et al. Expanding metabolism for total biosynthesis of the nonnatural amino acid L-homoalanine , 2010, Proceedings of the National Academy of Sciences.
[9] P. C. Oh,et al. Sustainable biocatalytic synthesis of L-homophenylalanine as pharmaceutical drug precursor. , 2009, Biotechnology advances.
[10] Shih-Kuang Hsu,et al. A novel hydantoinase process using recombinant Escherichia coli cells with dihydropyrimidinase and L-N-carbamoylase activities as biocatalyst for the production of L-homophenylalanine. , 2008, Journal of biotechnology.
[11] Huimin Zhao,et al. Efficient regeneration of NADPH using an engineered phosphite dehydrogenase , 2007, Biotechnology and bioengineering.
[12] H. Mori,et al. Construction of Escherichia coli K-12 in-frame, single-gene knockout mutants: the Keio collection , 2006, Molecular systems biology.
[13] Shih-Kuang Hsu,et al. Asymmetrical Synthesis of l‐Homophenylalanine Using Engineered Escherichia coli Aspartate Aminotransferase , 2008, Biotechnology progress.
[14] M. Kula,et al. Isolation and characterization of a bacterium possessing L-phenylalanine dehydrogenase activity , 2004, Archives of Microbiology.
[15] K. Britton,et al. Single amino acid substitution in Bacillus sphaericus phenylalanine dehydrogenase dramatically increases its discrimination between phenylalanine and tyrosine substrates. , 2002, Biochemistry.
[16] J. Blanchard,et al. Rhodococcus L-phenylalanine dehydrogenase: kinetics, mechanism, and structural basis for catalytic specificity. , 2000, Biochemistry.
[17] I. Fotheringham,et al. Novel biosynthetic approaches to the production of unnatural amino acids using transaminases. , 1998, Trends in biotechnology.
[18] Udo Kragl,et al. A NOVEL, EFFICIENT REGENERATING METHOD OF NADPH USING A NEW FORMATE DEHYDROGENASE , 1996 .
[19] J. Kirsch,et al. The use of natural and unnatural amino acid substrates to define the substrate specificity differences of escherichia coli aspartate and tyrosine aminotransferases , 1995, Protein science : a publication of the Protein Society.
[20] R. Helling,et al. Why does Escherichia coli have two primary pathways for synthesis of glutamate? , 1994, Journal of bacteriology.
[21] W. Jacobs,et al. Cloning, sequencing, and expression of Rhodococcus L-phenylalanine dehydrogenase. Sequence comparisons to amino-acid dehydrogenases. , 1994, The Journal of biological chemistry.
[22] D W Rice,et al. Conformational flexibility in glutamate dehydrogenase. Role of water in substrate recognition and catalysis. , 1993, Journal of molecular biology.
[23] K. Britton,et al. Evolution of substrate diversity in the superfamily of amino acid dehydrogenases. Prospects for rational chiral synthesis. , 1993, Journal of molecular biology.
[24] K. Inoue,et al. NADPH regeneration by glucose dehydrogenase from Gluconobacter scleroides for l-leucovorin synthesis. , 1992, Bioscience, biotechnology, and biochemistry.
[25] T. Ohshima,et al. Thermostable phenylalanine dehydrogenase of Thermoactinomyces intermedius: cloning, expression, and sequencing of its gene. , 1991, Journal of biochemistry.
[26] F. J. Caballero,et al. Purification and properties of L-alanine dehydrogenase of the phototrophic bacterium Rhodobacter capsulatus E1F1 , 1989, Journal of bacteriology.
[27] T. Ohshima,et al. Gene cloning and sequence determination of leucine dehydrogenase from Bacillus stearothermophilus and structural comparison with other NAD(P)+-dependent dehydrogenases. , 1988, Biochemistry.
[28] Y. Asano,et al. Novel phenylalanine dehydrogenases from Sporosarcina ureae and Bacillus sphaericus. Purification and characterization. , 1987, The Journal of biological chemistry.
[29] K. Andersen,et al. Charges of nicotinamide adenine nucleotides and adenylate energy charge as regulatory parameters of the metabolism in Escherichia coli. , 1977, The Journal of biological chemistry.