厌氧和产氢一氧化碳氧化原核生物:将有毒气体转化为可用能量的多功能微生物。

2区 生物学 Q1 Immunology and Microbiology
Advances in applied microbiology Pub Date : 2020-01-01 Epub Date: 2020-01-02 DOI:10.1016/bs.aambs.2019.12.001
Yuto Fukuyama, Masao Inoue, Kimiho Omae, Takashi Yoshida, Yoshihiko Sako
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引用次数: 29

摘要

一氧化碳(CO)是一种对包括人类甚至微生物在内的各种生物有毒的气体;然而,它具有低氧化还原电位,可以为某些微生物提供燃料,即CO氧化剂。产氢一氧化碳氧化剂利用CO脱氢酶/能量转换氢化酶复合物的能量守恒系统,通过CO氧化和质子还原产生氢气,这是一种零排放燃料。利用一些模式生物进行的生化和分子生物学研究已经揭示了它们利用CO的酶促反应和转录反应机制。利用这些模式生物也开展了CO依赖制氢的生物技术研究。在本章中,我们回顾了这些微生物的最新研究进展,揭示了它们独特而多样的代谢特征,并展望了它们在生态作用和生物技术应用方面的未来前景。在过去十年中,分离株的数量增加了一倍(5门,20属,32种,37株)。最近分离出的一些分子对电子受体表现出广泛的特异性。此外,积累的基因组信息预测了它们独特的生理机能,并揭示了它们与新型潜在的氢源一氧化碳氧化剂的系统基因组关系。结合基因组数据库调查,分子生态学研究揭示了这些微生物的广泛分布和低丰度。最后,最近产氢一氧化碳氧化剂的生物技术应用已经通过多种途径(如代谢工程和共培养)实现,并且嗜热兼性厌氧一氧化碳氧化剂的鉴定将促进作为耐氧生物催化剂的工业应用,通过基因组工程实现高效制氢。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anaerobic and hydrogenogenic carbon monoxide-oxidizing prokaryotes: Versatile microbial conversion of a toxic gas into an available energy.

Carbon monoxide (CO) is a gas that is toxic to various organisms including humans and even microbes; however, it has low redox potential, which can fuel certain microbes, namely, CO oxidizers. Hydrogenogenic CO oxidizers utilize an energy conservation system via a CO dehydrogenase/energy-converting hydrogenase complex to produce hydrogen gas, a zero emission fuel, by CO oxidation coupled with proton reduction. Biochemical and molecular biological studies using a few model organisms have revealed their enzymatic reactions and transcriptional response mechanisms using CO. Biotechnological studies for CO-dependent hydrogen production have also been carried out with these model organisms. In this chapter, we review recent advances in the studies of these microbes, which reveal their unique and versatile metabolic profiles and provides future perspectives on ecological roles and biotechnological applications. Over the past decade, the number of isolates has doubled (37 isolates in 5 phyla, 20 genera, and 32 species). Some of the recently isolated ones show broad specificity to electron acceptors. Moreover, accumulating genomic information predicts their unique physiologies and reveals their phylogenomic relationships with novel potential hydrogenogenic CO oxidizers. Combined with genomic database surveys, a molecular ecological study has unveiled the wide distribution and low abundance of these microbes. Finally, recent biotechnological applications of hydrogenogenic CO oxidizers have been achieved via diverse approaches (e.g., metabolic engineering and co-cultivation), and the identification of thermophilic facultative anaerobic CO oxidizers will promote industrial applications as oxygen-tolerant biocatalysts for efficient hydrogen production by genomic engineering.

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来源期刊
Advances in applied microbiology
Advances in applied microbiology 生物-生物工程与应用微生物
CiteScore
8.20
自引率
0.00%
发文量
16
审稿时长
>12 weeks
期刊介绍: Advances in Applied Microbiology offers intensive reviews of the latest techniques and discoveries in this rapidly moving field. The editors are recognized experts and the format is comprehensive and instructive. Published since 1959, Advances in Applied Microbiology continues to be one of the most widely read and authoritative review sources in microbiology. Recent areas covered include bacterial diversity in the human gut, protozoan grazing of freshwater biofilms, metals in yeast fermentation processes and the interpretation of host-pathogen dialogue through microarrays.
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