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革兰氏阳性菌粪肠球菌的细胞外电子转移

Extracellular Electron Transfer by the Gram-Positive Bacterium Enterococcus faecalis.

作者信息

Pankratova Galina, Leech Dónal, Gorton Lo, Hederstedt Lars

机构信息

Department of Biochemistry and Structural Biology , Lund University , SE-22100 Lund , Sweden.

School of Chemistry and Ryan Institute , National University of Ireland Galway , University Road , Galway , Ireland.

出版信息

Biochemistry. 2018 Jul 31;57(30):4597-4603. doi: 10.1021/acs.biochem.8b00600. Epub 2018 Jul 19.

Abstract

Extracellular electron transfer (EET) in microbial cells is essential for certain biotechnological applications and contributes to the biogeochemical cycling of elements and syntrophic microbial metabolism in complex natural environments. The Gram-positive lactic acid bacterium Enterococcus faecalis, an opportunistic human pathogen, is shown to be able to transfer electrons generated in fermentation metabolism to electrodes directly and indirectly via mediators. By exploiting E. faecalis wild-type and mutant cells, we demonstrate that reduced demethylmenaquinone in the respiratory chain in the bacterial cytoplasmic membrane is crucial for the EET. Heme proteins are not involved, and cytochrome bd oxidase activity was found to attenuate EET. These results are significant for the mechanistic understanding of EET in bacteria and for the design of microbial electrochemical systems. The basic findings infer that in dense microbial communities, such as in biofilm and in the large intestine, metabolism in E. faecalis and similar Gram-positive lactic acid bacteria might be electrically connected to other microbes. Such a transcellular electron transfer might confer syntrophic metabolism that promotes growth and other activities of bacteria in the microbiota of humans and animals.

摘要

微生物细胞中的细胞外电子转移(EET)对于某些生物技术应用至关重要,并且有助于复杂自然环境中元素的生物地球化学循环和互营微生物代谢。革兰氏阳性乳酸菌粪肠球菌是一种机会性人类病原体,已证明它能够将发酵代谢中产生的电子直接或通过介质间接转移到电极上。通过利用粪肠球菌野生型和突变体细胞,我们证明细菌细胞质膜呼吸链中还原型去甲基甲萘醌对于EET至关重要。血红素蛋白不参与其中,并且发现细胞色素bd氧化酶活性会减弱EET。这些结果对于从机制上理解细菌中的EET以及设计微生物电化学系统具有重要意义。基本发现表明,在密集的微生物群落中,例如在生物膜和大肠中,粪肠球菌和类似的革兰氏阳性乳酸菌的代谢可能与其他微生物存在电连接。这种跨细胞电子转移可能赋予互营代谢,从而促进人和动物微生物群中细菌的生长和其他活动。

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