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用于化学合成的稳定且自我调节的微生物群落设计。

Design of stable and self-regulated microbial consortia for chemical synthesis.

作者信息

Li Xianglai, Zhou Zhao, Li Wenna, Yan Yajun, Shen Xiaolin, Wang Jia, Sun Xinxiao, Yuan Qipeng

机构信息

State Key Laboratory of Chemical Resource Engineering, Beijing University of Chemical Technology, Beijing, 100029, China.

School of Chemical, Materials and Biomedical Engineering, College of Engineering, The University of Georgia, Athens, GA, 30602, USA.

出版信息

Nat Commun. 2022 Mar 23;13(1):1554. doi: 10.1038/s41467-022-29215-6.

Abstract

Microbial coculture engineering has emerged as a promising strategy for biomanufacturing. Stability and self-regulation pose a significant challenge for the generation of intrinsically robust cocultures for large-scale applications. Here, we introduce the use of multi-metabolite cross-feeding (MMCF) to establish a close correlation between the strains and the design rules for selecting the appropriate metabolic branches. This leads to an intrinicially stable two-strain coculture where the population composition and the product titer are insensitive to the initial inoculation ratios. With an intermediate-responsive biosensor, the population of the microbial coculture is autonomously balanced to minimize intermediate accumulation. This static-dynamic strategy is extendable to three-strain cocultures, as demonstrated with de novo biosynthesis of silybin/isosilybin. This strategy is generally applicable, paving the way to the industrial application of microbial cocultures.

摘要

微生物共培养工程已成为生物制造领域一种很有前景的策略。稳定性和自我调节能力对大规模应用中构建本质上稳健的共培养体系构成了重大挑战。在此,我们介绍了利用多代谢物交叉喂养(MMCF)来建立菌株之间的紧密关联以及选择合适代谢分支的设计规则。这产生了一种本质上稳定的双菌株共培养体系,其中菌群组成和产物滴度对初始接种比例不敏感。借助一种中等响应型生物传感器,微生物共培养体系的菌群能够自动平衡,以尽量减少中间产物的积累。这种静态 - 动态策略可扩展至三菌株共培养体系,水飞蓟宾/异水飞蓟宾的从头生物合成就证明了这一点。该策略具有普遍适用性,为微生物共培养体系的工业应用铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/142e/8943006/c9ca5c25b212/41467_2022_29215_Fig1_HTML.jpg

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