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专性兼养型细菌布巴内斯瓦尔硫单胞菌S10(DSM 18181)中硫代硫酸盐氧化过程中的电子传递机制。

Mechanism of electron transport during thiosulfate oxidation in an obligately mixotrophic bacterium Thiomonas bhubaneswarensis strain S10 (DSM 18181).

作者信息

Narayan Kunwar Digvijay, Sabat Surendra Chandra, Das Subrata K

机构信息

Department of Biotechnology, Institute of Life Sciences, Nalco Square, Bhubaneswar, 751023, India.

出版信息

Appl Microbiol Biotechnol. 2017 Feb;101(3):1239-1252. doi: 10.1007/s00253-016-7958-x. Epub 2016 Nov 10.

DOI:10.1007/s00253-016-7958-x
PMID:27832308
Abstract

This study describes the thiosulfate-supported respiratory electron transport activity of Thiomonas bhubaneswarensis strain S10 (DSM 18181). Whole-genome sequence analysis revealed the presence of complete sox (sulfur oxidation) gene cluster (soxCDYZAXB) including the sulfur oxygenase reductase (SOR), sulfide quinone reductase (SQR), sulfide dehydrogenase (flavocytochrome c (fcc)), thiosulfate dehydrogenase (Tsd), sulfite dehydrogenase (SorAB), and intracellular sulfur oxidation protein (DsrE/DsrF). In addition, genes encoding respiratory electron transport chain components viz. complex I (NADH dehydrogenase), complex II (succinate dehydrogenase), complex III (ubiquinone-cytochrome c reductase), and various types of terminal oxidases (cytochrome c and quinol oxidase) were identified in the genome. Using site-specific electron donors and inhibitors and by analyzing the cytochrome spectra, we identified the shortest thiosulfate-dependent electron transport chain in T. bhubaneswarensis DSM 18181. Our results showed that thiosulfate supports the electron transport activity in a bifurcated manner, donating electrons to quinol (bd) and cytochrome c (Caa ) oxidase; these two sites (quinol oxidase and cytochrome c oxidase) also showed differences in their phosphate esterification potential (oxidative phosphorylation efficiency (P/O)). Further, it was evidenced that the substrate-level phosphorylation is the major contributor to the total energy budget in this bacterium.

摘要

本研究描述了布巴内斯瓦尔硫单胞菌菌株S10(DSM 18181)中硫代硫酸盐支持的呼吸电子传递活性。全基因组序列分析显示存在完整的sox(硫氧化)基因簇(soxCDYZAXB),包括硫氧还蛋白(SOR)、硫化物醌还原酶(SQR)、硫化物脱氢酶(黄素细胞色素c(fcc))、硫代硫酸盐脱氢酶(Tsd)、亚硫酸盐脱氢酶(SorAB)和细胞内硫氧化蛋白(DsrE/DsrF)。此外,在基因组中还鉴定出编码呼吸电子传递链组分的基因,即复合物I(NADH脱氢酶)、复合物II(琥珀酸脱氢酶)、复合物III(泛醌 - 细胞色素c还原酶)以及各种类型的末端氧化酶(细胞色素c和喹啉氧化酶)。通过使用位点特异性电子供体和抑制剂并分析细胞色素光谱,我们确定了布巴内斯瓦尔硫单胞菌DSM 18181中最短的硫代硫酸盐依赖性电子传递链。我们的结果表明,硫代硫酸盐以分叉的方式支持电子传递活性,将电子提供给喹啉(bd)和细胞色素c(Caa )氧化酶;这两个位点(喹啉氧化酶和细胞色素c氧化酶)在其磷酸酯化电位(氧化磷酸化效率(P/O))方面也存在差异。此外,有证据表明底物水平磷酸化是该细菌总能量预算的主要贡献者。

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