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构建包含不同微生物物种的共培养体系用于生化生产。

Construction of Coculture System Containing with Different Microbial Species for Biochemical Production.

机构信息

State Key Laboratory of Materials-Oriented Chemical Engineering, College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, Nanjing, 211800, P. R. China.

Jiangsu Academy of Chemical Inherent Safety, Nanjing, 211800, P. R. China.

出版信息

ACS Synth Biol. 2023 Aug 18;12(8):2208-2216. doi: 10.1021/acssynbio.3c00329. Epub 2023 Jul 28.

Abstract

Microbial synthesis of target chemicals usually involves multienzymatic reactions , especially for compounds with a long metabolic pathway. However, when various genes are introduced into one single strain, it leads to a heavy metabolic burden. In contrast, the microbial coculture system can allocate metabolic pathways into different hosts, which will relieve the metabolic burdens. is the most used chassis to synthesize biofuels and chemicals owing to its well-known genetics, high transformation efficiency, and easy cultivation. Accordingly, cocultures containing the cooperative with other microbial species have received great attention. In this review, the individual applications and boundedness of different combinations will be summarized. Additionally, the strategies for the self-regulation of population composition, which can help enhance the stability of a coculture system, will also be discussed. Finally, perspectives for the cocultures will be proposed.

摘要

微生物合成目标化学品通常涉及多酶反应,特别是对于具有长代谢途径的化合物。然而,当各种基因被引入到一个单一的菌株中时,就会导致代谢负担过重。相比之下,微生物共培养系统可以将代谢途径分配到不同的宿主中,从而减轻代谢负担。由于其良好的遗传学、高转化效率和易于培养,是合成生物燃料和化学品最常用的底盘。因此,含有与其他微生物物种协同作用的共培养物受到了极大的关注。在这篇综述中,将总结不同组合的单独应用和局限性。此外,还将讨论有助于增强共培养系统稳定性的种群组成自我调节策略。最后,将提出对共培养物的展望。

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