Molecular characterization of the glucose isomerase from the thermophilic bacteriumFervidobacterium gondwanense
Leon Kluskens, J. Zeilstra, Ans C. M. Geerling, Willem M. de Vos, John van der OOST
Abstract
Leon Kluskens, J. Zeilstra, Ans C. M. Geerling, Willem M. de Vos, John van der OOST
Abstract
The gene coding for xylose isomerase from the thermophilic bacterium Fervidobacterium gondwanense was cloned and overexpressed in Escherichia coli. The produced xylose isomerase (XylA), which closely resembles counterparts from Thermotoga maritima and T. neapolitana, was purified and characterized. It is optimally active at 70 degrees C, pH 7.3, with a specific activity of 15.0 U/mg for the interconversion of glucose to fructose. When compared with T. maritima XylA at 85 degrees C, a higher catalytic efficiency was observed. Divalent metal ions Co2+ and Mg2+ were found to enhance the thermostability.
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The gene coding for xylose isomerase from the thermophilic bacterium Fervidobacterium gondwanense was cloned and overexpressed in Escherichia coli. The produced xylose isomerase (XylA), which closely resembles counterparts from Thermotoga maritima and T. neapolitana, was purified and characterized. It is optimally active at 70 degrees C, pH 7.3, with a specific activity of 15.0 U/mg for the interconversion of glucose to fructose. When compared with T. maritima XylA at 85 degrees C, a higher catalytic efficiency was observed. Divalent metal ions Co2+ and Mg2+ were found to enhance the thermostability.
Key concepts: Thermophile, Thermostability, Thermotoga maritima, Xylose isomerase, Xylose, Glucose-6-phosphate isomerase, Biochemistry, Escherichia coli