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Heterologous Overexpression and Characterization of a Flavoprotein-Cytochrome c Complex Fructose Dehydrogenase of Gluconobacter japonicus NBRC3260

机译:日本葡糖杆菌NBRC3260的黄素-细胞色素c复杂果糖脱氢酶的异源过表达和表征

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A heterotrimeric flavoprotein-cytochrome c complex fructose dehydrogenase (FDH) of Gluconobacter japonicus NBRC3260 catalyzes the oxidation of d-fructose to produce 5-keto-d-fructose and is used for diagnosis and basic research purposes as a direct electron transfer-type bioelectrocatalysis. The fdhSCL genes encoding the FDH complex of G. japonicus NBRC3260 were isolated by a PCR-based gene amplification method with degenerate primers designed from the amino-terminal amino acid sequence of the large subunit and sequenced. Three open reading frames for fdhSCL encoding the small, cytochrome c , and large subunits, respectively, were found and were presumably in a polycistronic transcriptional unit. Heterologous overexpression of fdhSCL was conducted using a broad-host-range plasmid vector, pBBR1MCS-4, carrying a DNA fragment containing the putative promoter region of the membrane-bound alcohol dehydrogenase gene of Gluconobacter oxydans and a G. oxydans strain as the expression host. We also constructed derivatives modified in the translational initiation codon to ATG from TTG, designated _(TTG)FDH and _(ATG)FDH. Membranes of the cells producing recombinant _(TTG)FDH and _(ATG)FDH showed approximately 20 times and 100 times higher specific activity than those of G. japonicus NBRC3260, respectively. The cells producing only FdhS and FdhL had no fructose-oxidizing activity, but showed significantly high d-fructose:ferricyanide oxidoreductase activity in the soluble fraction of cell extracts, whereas the cells producing the FDH complex showed activity in the membrane fraction. It is reasonable to conclude that the cytochrome c subunit is responsible not only for membrane anchoring but also for ubiquinone reduction.
机译:日本生葡糖杆菌NBRC3260的异三聚体黄素-细胞色素c复合果糖脱氢酶(FDH)催化d-果糖的氧化生成5-酮-d-果糖,并被用于诊断和基础研究目的,作为直接电子转移型生物电催化。通过基于PCR的基因扩增方法,使用由大亚基的氨基末端氨基酸序列设计的简并引物,分离出编码日本粳稻NBRC3260 FDH复合物的fdhSCL基因。找到了三个分别编码小亚基,细胞色素c和大亚基的fdhSCL开放阅读框,推测它们位于多顺反子转录单位中。使用宽宿主范围的质粒载体pBBR1MCS-4进行fdhSCL的异源过表达,该载体带有一个DNA片段,该片段包含氧化葡糖杆菌的膜结合醇脱氢酶基因的推定启动子区和氧化葡糖杆菌菌株作为表达宿主。 。我们还构建了在翻译起始密码子中由TTG修饰为ATG的衍生物,命名为_(TTG)FDH和_(ATG)FDH。产生重组_(TTG)FDH和_(ATG)FDH的细胞的膜分别显示出比日本根瘤菌NBRC3260高约20倍和100倍的比活性。仅产生FdhS和FdhL的细胞不具有果糖氧化活性,但是在细胞提取物的可溶性级分中显示出显着高的d-果糖:铁氰化物氧化还原酶活性,而产生FDH复合物的细胞在膜级分中具有活性。可以合理地得出结论,细胞色素c亚基不仅负责膜锚定,还负责减少泛醌。

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