首页> 外文期刊>Applied Microbiology and Biotechnology >Cloning, expression and characterization of a eukaryotic cycloalkanone monooxygenase from Cylindrocarpon radicicola ATCC 11011
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Cloning, expression and characterization of a eukaryotic cycloalkanone monooxygenase from Cylindrocarpon radicicola ATCC 11011

机译:辐射锦鲤ATCC 11011的真核环烷酮单加氧酶的克隆,表达及鉴定

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摘要

In this study, we have cloned and characterized a cycloalkanone monooxygenase (CAMO) from the ascomycete Cylindrocarpon radicicola ATCC 11011 (identical to Cylindrocarpon destructans DSM 837). The primary structure of this Baeyer-Villiger monooxygenase (BMVO) revealed 531 residues with around 45% sequence identity to known cyclohexanone monooxygenases. The enzyme was functionally overexpressed in Escherichia coli and investigated with respect to substrate spectrum and kinetic parameters. Substrate specificity studies revealed that a large variety of cycloaliphatic and bicycloaliphatic ketones are converted by this CAMO. A high catalytic efficiency against cyclobutanone was observed and seems to be a particular property of this BVMO. The thus produced butyrolactone derivatives are valuable building blocks for the synthesis of a variety of natural products and bioactive compounds. Furthermore, the enzyme revealed activity against open-chain ketones such as cyclobutyl, cyclopentyl and cyclohexyl methyl ketone which have not been reported to be accepted by typical cyclohexanone monooxygenases. These results suggest that the BVMO from C. radicicola indeed might be rather unique and since no BVMOs originating from eukaryotic organisms have been produced recombinantly so far, this study provides the first example for such an enzyme.
机译:在这项研究中,我们已经从子囊菌Cylindrocarpon radicicola ATCC 11011(与Cylindrocarpon destructans DSM 837相同)克隆并鉴定了环烷酮单加氧酶(CAMO)。 Baeyer-Villiger单加氧酶(BMVO)的一级结构揭示了531个残基,与已知的环己酮单加氧酶具有约45%的序列同一性。该酶在大肠杆菌中功能上过表达,并针对底物谱和动力学参数进行了研究。底物特异性研究表明,该CAMO可转化多种脂环族和双脂环族酮。观察到针对环丁酮的高催化效率,并且似乎是该BVMO的特殊性能。如此生产的丁内酯衍生物是合成多种天然产物和生物活性化合物的有价值的组成部分。此外,该酶还显示出对开环酮(例如环丁基,环戊基和环己基甲基酮)的活性,而开环酮尚未被典型的环己酮单加氧酶所接受。这些结果表明,来自C. radicicola的BVMO确实可能是相当独特的,并且由于迄今为止还没有重组产生自真核生物的BVMO,因此该研究提供了这种酶的第一个实例。

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