大肠杆菌
半胱氨酸
群体感应
操纵子
基因表达
基因
生物
生物化学
合成生物学
代谢工程
化学
计算生物学
酶
毒力
作者
Bo Zhang,Hui Yang,Zidan Wu,Jiayuan Pan,Shirong Li,Lifeng Chen,Xue Cai,Zhi‐Qiang Liu,Yu‐Guo Zheng
标识
DOI:10.1021/acssynbio.2c00568
摘要
Gene expression in spatiotemporal distribution improves the ability of cells to respond to changing environments. For microbial cell factories in artificial environments, reconstruction of the target compound's biosynthetic pathway in a new spatiotemporal dimension/scale promotes the production of chemicals. Here, a genetic circuit based on the Esa quorum sensing and lac operon was designed to achieve the dynamic temporal gene expression. Meanwhile, the pathway was regulated by an l-cysteine-specific sensor and relocalized to the plasma membrane for further flux enhancement to l-cysteine and toxicity reduction on a spatial scale. Finally, the integrated spatiotemporal regulation circuit for l-cysteine biosynthesis enabled a 14.16 g/L l-cysteine yield in Escherichia coli. Furthermore, this spatiotemporal regulation circuit was also applied in our previously constructed engineered strain for pantothenic acid, methionine, homoserine, and 2-aminobutyric acid production, and the titer increased by 29, 33, 28, and 41%, respectively. These results highlighted the applicability of our spatiotemporal regulation circuit to enhance the performance of microbial cell factories.
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