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删除普通脱硫弧菌希登伯勒亚种的hmc操纵子会阻碍氢代谢和低氧化还原电位生态位的建立。

Deletion of the hmc operon of Desulfovibrio vulgaris subsp. vulgaris Hildenborough hampers hydrogen metabolism and low-redox-potential niche establishment.

作者信息

Dolla A, Pohorelic B K, Voordouw J K, Voordouw G

机构信息

Department of Biological Sciences, The University of Calgary, Alberta, Canada.

出版信息

Arch Microbiol. 2000 Sep;174(3):143-51. doi: 10.1007/s002030000183.

Abstract

The hmc operon of Desulfovibrio vulgaris subsp. vulgaris Hildenborough encodes a transmembrane redox protein complex (the Hmc complex) that has been proposed to catalyze electron transport linking periplasmic hydrogen oxidation to cytoplasmic sulfate reduction. We have replaced a 5-kb DNA fragment containing most of the hmc operon by the cat gene. The resulting chloramphenicol-resistant mutant D. vulgaris H801 grows normally when lactate or pyruvate serve as electron donors for sulfate reduction. Growth with hydrogen as electron donor for sulfate reduction (acetate and CO2 as the carbon source) is impaired. These results confirm the importance of the Hmc complex in electron transport from hydrogen to sulfate. Mutant H801 is also deficient in low-redox-potential niche establishment. On plates, colony development takes 14 days longer than colony development of the wild-type strain, when the cells use hydrogen as the electron donor. This result suggests that, in addition to transmembrane electron transport from hydrogen to sulfate, the redox reactions catalyzed by the Hmc complex are crucial in establishment of the required low-redox-potential niche that allows single cells to grow into colonies.

摘要

嗜热栖热脱硫弧菌嗜热栖热亚种希登伯勒菌株的hmc操纵子编码一种跨膜氧化还原蛋白复合物(Hmc复合物),有人提出该复合物催化电子传递,将周质中的氢氧化与细胞质中的硫酸盐还原联系起来。我们用cat基因取代了一个包含大部分hmc操纵子的5 kb DNA片段。所得的氯霉素抗性突变体嗜热栖热脱硫弧菌H801在以乳酸或丙酮酸作为硫酸盐还原的电子供体时能正常生长。以氢气作为硫酸盐还原的电子供体(以乙酸盐和二氧化碳作为碳源)时生长受到损害。这些结果证实了Hmc复合物在从氢气到硫酸盐的电子传递中的重要性。突变体H801在建立低氧化还原电位生态位方面也存在缺陷。在平板上,当细胞以氢气作为电子供体时,菌落形成比野生型菌株的菌落形成要多花14天时间。这一结果表明,除了从氢气到硫酸盐的跨膜电子传递外,Hmc复合物催化的氧化还原反应对于建立所需的低氧化还原电位生态位至关重要,该生态位能使单细胞生长成菌落。

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