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A thermostable triple mutant of pyranose 2-oxidase from Trametes multicolor with improved properties for biotechnological applications
Authors:Oliver Spadiut  Katrin Radakovits  Ines Pisanelli  Clara Salaheddin  Montarop Yamabhai  Tien-Chye Tan  Christina Divne  Dietmar Haltrich Professor
Institution:1. Department of Food Sciences and Technology, BOKU - University of Natural Resources and Applied Life Sciences, Vienna, Austria;2. School of Biotechnology, Suranaree University of Technology, Nakhon Ratchasima, Thailand;3. School of Biotechnology, KTH, Albanova University Centre, Stockholm, Sweden
Abstract:In order to increase the thermal stability and the catalytic properties of pyranose oxidase (P2Ox) from Trametes multicolor toward its poor substrate D-galactose and the alternative electron acceptor 1,4-benzoquinone (1,4-BQ), we designed the triple-mutant T169G/E542K/V546C. Whereas the wild-type enzyme clearly favors D-glucose as its substrate over D-galactose substrate selectivity (kcat/KM)Glc/(kcat/KM)Gal = 172], the variant oxidizes both sugars equally well (kcat/KM)Glc/(kcat/KM)Gal = 0.69], which is of interest for food biotechnology. Furthermore, the variant showed lower KM values and approximately ten-fold higher kcat values for 1,4-BQ when D-galactose was used as the saturating sugar substrate, which makes this enzyme particularly attractive for use in biofuel cells and enzyme-based biosensors. In addition to the altered substrate specificity and reactivity, this mutant also shows significantly improved thermal stability. The half life time at 60°C was approximately 10 h, compared to 7.6 min for the wild-type enzyme. We performed successfully small-scale bioreactor pilot conversion experiments of D -glucose/D -galactose mixtures at both 30 and 50°C, showing the usefulness of this P2Ox variant in biocatalysis as well as the enhanced thermal stability of the enzyme. Moreover, we determined the crystal structure of the mutant in its unligated form at 1.55 Å resolution. Modeling D-galactose in position for oxidation at C2 into the mutant active site shows that substituting Thr for Gly at position 169 favorably accommodates the axial C4 hydroxyl group that would otherwise clash with Thr169 in the wild-type.
Keywords:Biofuel cell  Enzyme engineering  Enzymatic batch conversion  Flavoprotein  Rational protein design
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