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通过强化生物素合成途径提高产溶剂梭菌的性能。

Improving the performance of solventogenic clostridia by reinforcing the biotin synthetic pathway.

作者信息

Yang Yunpeng, Lang Nannan, Yang Gaohua, Yang Sheng, Jiang Weihong, Gu Yang

机构信息

Key Laboratory of Synthetic Biology, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China; University of Chinese Academy of Sciences, Beijing 100049, China.

Key Laboratory of Synthetic Biology, Institute of Plant Physiology and Ecology, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 200032, China; Shanghai Collaborative Innovation Center for Biomanufacturing Technology, 130 Meilong Road, Shanghai 200237, China.

出版信息

Metab Eng. 2016 May;35:121-128. doi: 10.1016/j.ymben.2016.02.006. Epub 2016 Feb 23.

Abstract

An efficient production process is important for industrial microorganisms. The cellular efficiency of solventogenic clostridia, a group of anaerobes capable of producing a wealth of bulk chemicals and biofuels, must be improved for competitive commercialization. Here, using Clostridium acetobutylicum, a species of solventogenic clostridia, we revealed that the insufficient biosynthesis of biotin, a pivotal coenzyme for many important biological processes, is a major limiting bottleneck in this anaerobe's performance. To address this problem, we strengthened the biotin synthesis of C. acetobutylicum by overexpressing four relevant genes involved in biotin transport and biosynthesis. This strategy led to faster growth and improved the titer and productivity of acetone, butanol and ethanol (ABE solvents) of C. acetobutylicum in both biotin-containing and biotin-free media. Expressionally modulating these four genes by modifying the ribosome binding site further promoted cellular performance, achieving ABE solvent titer and productivity as high as 21.9g/L and 0.30g/L/h, respectively, in biotin-free medium; these values exceeded those of the wild-type strain by over 30%. More importantly, biotin synthesis reinforcement also conferred improved ability of C. acetobutylicum to use hexose and pentose sugars, further demonstrating the potential of this metabolic-engineering strategy in solventogenic clostridia.

摘要

高效的生产过程对于工业微生物很重要。产溶剂梭菌是一类能够产生大量大宗化学品和生物燃料的厌氧菌,为了实现具有竞争力的商业化,必须提高其细胞效率。在这里,我们以产溶剂梭菌中的丙酮丁醇梭菌为研究对象,揭示了生物素(许多重要生物过程的关键辅酶)的生物合成不足是这种厌氧菌性能的主要限制瓶颈。为了解决这个问题,我们通过过表达四个参与生物素运输和生物合成的相关基因,增强了丙酮丁醇梭菌的生物素合成。这一策略使丙酮丁醇梭菌在含生物素和不含生物素的培养基中生长更快,并提高了丙酮、丁醇和乙醇(ABE溶剂)的滴度和生产率。通过修饰核糖体结合位点对这四个基因进行表达调控,进一步提升了细胞性能,在无生物素培养基中,ABE溶剂滴度和生产率分别高达21.9g/L和0.30g/L/h;这些数值比野生型菌株高出30%以上。更重要的是,生物素合成增强还赋予了丙酮丁醇梭菌更好地利用己糖和戊糖的能力,进一步证明了这种代谢工程策略在产溶剂梭菌中的潜力。

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