Optimized oxidoreductases for medium and large scale industrial biotransformations
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Project Secretariat
Dr Marta Pérez-Boada
E-mail: MPBoada@cib.csic.es
Consejo Superior de Investigaciones Científicas (CSIC)
Biological Research Centre (CIB)
Calle Ramiro de Maeztu 9, E-28040 Madrid, Spain
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publications
Total records: 126
Pages:    1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21  

[ 2015 ] Bormann S, Gomez Baraibar A, Ni Y, Holtmann D, Hollmann F Specific oxyfunctionalisations catalysed by peroxygenases: opportunities, challenges and solutions Catal. Sci. Technol., 5: 2038-2052
[ 2015 ] Büttner E, Ullrich R, Strittmatter E, Piontek K, Plattner D, Hofrichter M, Liers C Oxidation and nitration of mononitrophenols by a DyP-type peroxidase Arch. Biochem. Biophys., 574: 86-92
[ 2015 ] Fernandez-Fueyo E, Linde D, Almendral D, López-Lucendo MF, Ruiz-Dueñas FJ, Martínez AT Description of the first fungal dye-decolorizing peroxidase oxidizing manganese(II) Appl. Microbiol. Biotechnol., doi: 10.1007/s00253-015-6665-3
[ 2015 ] Fernandez-Fueyo E, van Wingerden M, Renirie R, Wever R, Ni Y, Holtmann D, Hollmann F Chemoenzymatic Halogenation of Phenols by using the Haloperoxidase from Curvularia inaequalis ChemCatChem, doi: 10.1002/cctc.201500862
[ 2015 ] Ferreira P, Carro J, Serrano A, Martínez AT A survey of genes encoding H2O2-producing GMC oxidoreductases in 10 Polyporales genomes Mycologia, 107: 1105-1119
[ 2015 ] Ferreira P, Hernández-Ortega A, Lucas F, Carro J, Herguedas B, Borrelli K, Guallar V, Martínez AT, Medina M Aromatic stacking interactions govern catalysis in aryl-alcohol oxidase FEBS J., 282: 3091-3106
year2015
Engineering an enzymatic regeneration system for NAD(P)H oxidation
Pham NH, Hollmann F, Kracher D, Preims M, Haltrich D, Ludwig R
J. Mol. Cat. B, 120: 38-46

A recently proposed coenzyme regeneration system employing laccase and a number of various redox mediators for the oxidation of NAD(P)H was studied in detail by kinetic characterization of individual reaction steps. Reaction engineering by modeling was used to optimize the employed enzyme, coenzyme as well as redox mediator concentrations. Glucose dehydrogenase from Bacillus sp. served as a convenient model of synthetic enzymes that depend either on NAD+ or NADP+. The suitability of laccase from Trametes pubescens in combination with acetosyringone or syringaldazine as redox mediator was tested for the regeneration (oxidation) of both coenzymes. In a first step, pH profiles and catalytic constants of laccase for the redox mediators were determined. Then, second-order rate constants for the oxidation of NAD(P)H by the redox mediators were measured. In a third step, the rate equation for the entire enzymatic process was derived and used to build a MATLAB model. After verifying the agreement of predicted vs. experimental data, the model was used to calculate different scenarios employing varying concentrations of regeneration system components. The modeled processes were experimentally tested and the results compared to the predictions. It was found that the regeneration of NADH to its oxidized form was performed very efficiently, but that an excess of laccase activity leads to a high concentration of the oxidized form of the redox mediator – a phenoxy radical – which initiates coupling (dimerization or polymerization) and enzyme deactivation.

Official webpage of indox [ industrialoxidoreductases ]. Optimized oxidoreductases for medium and large scale industrial biotransformations. This project has received funding from the European Union’s Seventh Framework Programme for research, technological development and demonstration under Grant Agreement nº: FP7-KBBE-2013-7-613549. © indox 2013. Developed by garcíarincón