Synthetic microbial consortia: from systematic analysis to construction and applications

合成生物学 多细胞生物 生化工程 群体感应 微生物燃料电池 系统生物学 计算生物学 代谢工程 合理设计 计算机科学 生物技术 生物 化学 工程类 生物膜 遗传学 细胞 基因 物理化学 阳极 细菌 电极
作者
Hao Song,Ming‐Zhu Ding,Xiaoqiang Jia,Qian Ma,Ying‐Jin Yuan
出处
期刊:Chemical Society Reviews [Royal Society of Chemistry]
卷期号:43 (20): 6954-6981 被引量:213
标识
DOI:10.1039/c4cs00114a
摘要

Synthetic biology is an emerging research field that focuses on using rational engineering strategies to program biological systems, conferring on them new functions and behaviours. By developing genetic parts and devices based on transcriptional, translational, post-translational modules, many genetic circuits and metabolic pathways had been programmed in single cells. Extending engineering capabilities from single-cell behaviours to multicellular microbial consortia represents a new frontier of synthetic biology. Herein, we first reviewed binary interaction modes of microorganisms in microbial consortia and their underlying molecular mechanisms, which lay the foundation of programming cell–cell interactions in synthetic microbial consortia. Systems biology studies on cellular systems enable systematic understanding of diverse physiological processes of cells and their interactions, which in turn offer insights into the optimal design of synthetic consortia. Based on such fundamental understanding, a comprehensive array of synthetic microbial consortia constructed in the last decade were reviewed, including isogenic microbial communities programmed by quorum sensing-based cell–cell communications, sender–receiver microbial communities with one-way communications, and microbial ecosystems wired by two-way (bi-directional) communications. Furthermore, many applications including using synthetic microbial consortia for distributed bio-computations, chemicals and bioenergy production, medicine and human health, and environments were reviewed. Synergistic development of systems and synthetic biology will provide both a thorough understanding of naturally occurring microbial consortia and rational engineering of these complicated consortia for novel applications.
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