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代谢工程在提高氢气产量方面的应用:综述。

Metabolic engineering for enhanced hydrogen production: a review.

机构信息

Department of Chemical Engineering, Indian Institute of Technology, Gandhinagar, VGEC Complex, Chandkheda, Ahmedabad 382424 (Gujarat), India.

出版信息

Can J Microbiol. 2013 Feb;59(2):59-78. doi: 10.1139/cjm-2012-0494. Epub 2012 Nov 26.

DOI:10.1139/cjm-2012-0494
PMID:23461513
Abstract

Hydrogen gas exhibits potential as a sustainable fuel for the future. Therefore, many attempts have been made with the aim of producing high yields of hydrogen gas through renewable biological routes. Engineering of strains to enhance the production of hydrogen gas has been an active area of research for the past 2 decades. This includes overexpression of hydrogen-producing genes (native and heterologous), knockout of competitive pathways, creation of a new productive pathway, and creation of dual systems. Interestingly, genetic mutations in 2 different strains of the same species may not yield similar results. Similarly, 2 different studies on hydrogen productivities may differ largely for the same mutation and on the same species. Consequently, here we analyzed the effect of various genetic modifications on several species, considering a wide range of published data on hydrogen biosynthesis. This article includes a comprehensive metabolic engineering analysis of hydrogen-producing organisms, namely Escherichia coli, Clostridium, and Enterobacter species, and in addition, a short discussion on thermophilic and halophilic organisms. Also, apart from single-culture utilization, dual systems of various organisms and associated developments have been discussed, which are considered potential future targets for economical hydrogen production. Additionally, an indirect contribution towards hydrogen production has been reviewed for associated species.

摘要

氢气具有作为未来可持续燃料的潜力。因此,人们进行了许多尝试,旨在通过可再生的生物途径来生产高产率的氢气。在过去的 20 年中,通过工程菌株来提高氢气产量一直是一个活跃的研究领域。这包括过表达产氢基因(天然和异源)、敲除竞争途径、创建新的生产途径以及创建双系统。有趣的是,同一物种的两个不同菌株中的遗传突变可能不会产生相似的结果。同样,对于同一突变和同一物种,两项关于氢气生产率的不同研究可能会有很大差异。因此,在这里我们分析了各种遗传修饰对几种物种的影响,同时考虑了大量关于氢气生物合成的已发表数据。本文对产氢生物进行了全面的代谢工程分析,包括大肠杆菌、梭菌和肠杆菌属,此外还对嗜热菌和嗜盐菌进行了简短讨论。此外,除了单一培养的利用外,还讨论了各种生物体的双系统及其相关发展,这些都被认为是未来经济制氢的潜在目标。此外,还对相关物种的间接产氢贡献进行了综述。

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