Metabolic engineering strategies for microbial utilization of methanol

Yamei Gan , Xin Meng , Cong Gao , Wei Song , Liming Liu , Xiulai Chen
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引用次数: 1

Abstract

The increasing shortage of fossil resources and environmental pollution has renewed interest in the synthesis of value-added biochemicals from methanol. However, most of native or synthetic methylotrophs are unable to assimilate methanol at a sufficient rate to produce biochemicals. Thus, the performance of methylotrophs still needs to be optimized to meet the demands of industrial applications. In this review, we provide an in-depth discussion on the properties of natural and synthetic methylotrophs, and summarize the natural and synthetic methanol assimilation pathways. Further, we discuss metabolic engineering strategies for enabling microbial utilization of methanol for the bioproduction of value-added chemicals. Finally, we highlight the potential of microbial engineering for methanol assimilation and offer guidance for achieving a low-carbon footprint for the biosynthesis of chemicals.

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微生物利用甲醇的代谢工程策略
随着化石资源的日益短缺和环境污染的日益严重,人们对甲醇合成高附加值的生化产品重新产生了兴趣。然而,大多数天然或合成的甲基营养体不能以足够的速度吸收甲醇以产生生化物质。因此,甲基化营养物的性能仍需进一步优化,以满足工业应用的需求。本文综述了天然和合成甲基营养体的性质,并对天然和合成的甲醇同化途径进行了综述。此外,我们讨论了代谢工程策略,使微生物利用甲醇进行增值化学品的生物生产。最后,我们强调了微生物工程在甲醇同化方面的潜力,并为实现化学品生物合成的低碳足迹提供了指导。
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