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工程化恶臭假单胞菌生产溶剂:将碳导向生物燃料。

Solvent production by engineered Ralstonia eutropha: channeling carbon to biofuel.

机构信息

Department of Bioengineering, University of Massachusetts Dartmouth, 285 Old Westport Road, North Dartmouth, MA, 02747, USA.

Department of Interdisciplinary Engineering, Wentworth Institute of Technology, 550 Huntington Avenue, Boston, MA, 02115, USA.

出版信息

Appl Microbiol Biotechnol. 2018 Jun;102(12):5021-5031. doi: 10.1007/s00253-018-9026-1. Epub 2018 Apr 29.

Abstract

Microbial production of solvents like acetone and butanol was a couple of the first industrial fermentation processes to gain global importance. These solvents are important feedstocks for the chemical and biofuel industry. Ralstonia eutropha is a facultatively chemolithoautotrophic bacterium able to grow with organic substrates or H and CO under aerobic conditions. This bacterium is a natural producer of polyhydroxyalkanoate biopolymers. Recently, with the advances in the development of genetic engineering tools, the range of metabolites R. eutropha can produce has enlarged. Its ability to utilize various carbon sources renders it an interesting candidate host for synthesis of renewable biofuel and solvent production. This review focuses on progress in metabolic engineering of R. eutropha for the production of alcohols, terpenes, methyl ketones, and alka(e)nes using various resources. Biological synthesis of solvents still presents the challenge of high production costs and competition from chemical synthesis. Better understanding of R. eutropha biology will support efforts to engineer and develop superior microbial strains for solvent production. Continued research on multiple fronts is required to engineer R. eutropha for truly sustainable and economical solvent production.

摘要

微生物生产溶剂,如丙酮和丁醇,是最初获得全球重要性的几个工业发酵过程之一。这些溶剂是化学和生物燃料工业的重要原料。Ralstonia eutropha 是一种兼性化能自养细菌,能够在有氧条件下利用有机底物或 H 和 CO 生长。这种细菌是天然生产聚羟基烷酸酯生物聚合物的。最近,随着遗传工程工具的发展,R. eutropha 能够生产的代谢物范围扩大了。它能够利用各种碳源,使其成为合成可再生生物燃料和溶剂生产的有趣候选宿主。本文综述了利用各种资源对 R. eutropha 进行代谢工程以生产醇、萜烯、甲基酮和链烷烃的进展。溶剂的生物合成仍然存在生产成本高和化学合成竞争的挑战。更好地了解 R. eutropha 的生物学将有助于对溶剂生产进行工程设计和开发更优的微生物菌株。需要在多个方面继续研究,以便对 R. eutropha 进行工程设计,以实现真正可持续和经济的溶剂生产。

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