甲烷氧化电微生物学的当前趋势。

IF 14 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Xueqin Zhang, Zhiguo Yuan, Shihu Hu
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引用次数: 0

摘要

随着许多甲烷氧化过程被认为是电化学驱动的,微生物甲烷氧化正在成为电微生物学的新兴焦点。本文综述了甲烷氧化电微生物学研究的最新进展。我们首先回顾了微生物甲烷氧化的微生物和生理多样性的最新进展。我们强调了好氧甲烷氧化细菌在电化学驱动的甲烷氧化中的多种作用,以及厌氧甲烷氧化古菌(ANME)通过其细胞外电子转移(EET)途径实现的非共生生活方式。在这些方面之后,回顾了最近关于甲烷菌代谢的潜在可逆性的发现,重点是提出的EET途径可能促进其向甲烷氧化表型的转变,这一主题仍在积极的调查和辩论中。最后,探讨了电化学驱动甲烷氧化的生物地球化学循环及其应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Current trends in electromicrobiology of methane oxidation.

With many methane oxidation processes now recognized as being electrochemically driven, microbial methane oxidation is becoming an emerging focus in electromicrobiology. This review examines the current trends in the electromicrobiology of methane oxidation. We begin by reviewing recent advances in the understanding of the microbial and physiological diversity involved in microbial methane oxidation. We highlight the versatile role of aerobic methane-oxidizing bacteria in electrochemically driven methane oxidation, and the non-syntrophic lifestyle of anaerobic methanotrophic archaea (ANME) enabled by their extracellular electron transfer (EET) pathways. These aspects are followed by a review of recent findings on the potential reversibility of methanogen metabolism, with a focus on the proposed EET pathways that may facilitate their shift to a methane-oxidizing phenotype, a topic that remains under active investigation and debate. Finally, we examine the biogeochemical cycles and the application potential involving electrochemically driven methane oxidation.

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来源期刊
Trends in Microbiology
Trends in Microbiology 生物-生化与分子生物学
CiteScore
25.30
自引率
0.60%
发文量
193
审稿时长
6-12 weeks
期刊介绍: Trends in Microbiology serves as a comprehensive, multidisciplinary forum for discussing various aspects of microbiology, spanning cell biology, immunology, genetics, evolution, virology, bacteriology, protozoology, and mycology. In the rapidly evolving field of microbiology, technological advancements, especially in genome sequencing, impact prokaryote biology from pathogens to extremophiles, influencing developments in drugs, vaccines, and industrial enzyme research.
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