群体感应
焊剂(冶金)
代谢工程
碳通量
代谢途径
发酵
生物合成
生产(经济)
代谢通量分析
合成生物学
代谢网络
拉伤
氨基酸
产量(工程)
合理设计
计算生物学
生化工程
化学
生物
竞赛(生物学)
工业发酵
通量平衡分析
系统生物学
新陈代谢
适应(眼睛)
细胞生物学
调节器
生物技术
突变体
生物化学
基因
作者
Kun Niu,Miao Zhang,Yi-Ming Kong,Yifan Zhao,Li Tan,Fan Lu,Zhi‐Qiang Liu,Yu‐Guo Zheng
标识
DOI:10.1021/acssynbio.5c00364
摘要
L-Homoserine has diverse applications in the fields of agrochemicals, pharmaceuticals, and animal feed; therefore, microbial fermentation using engineered cell factories has attracted widespread and intense attention. In this study, the nonauxotrophic strain for higher L-homoserine production was developed based on the previously constructed strain Escherichia coli HS. First, key genes involved in the biosynthesis pathways of essential amino acids were replenished with different strategies to address the growth deficiencies. Subsequently, carbon flux through the l-aspartate to L-homoserine was amplified by thrA overexpression. Furthermore, the supply of NADPH and ATP was optimized to synergistically enhance L-homoserine biosynthesis. Finally, the quorum sensing (QS) system esaI/esaR from Pantoea stewartii was introduced to dynamically regulate the carbon flux of l-threonine biosynthesis. And the results indicated that optimizing the regulatory efficiency of the QS system triggered autonomous downregulation of thrB during the high-cell-density phase, achieving a balanced metabolic flux competition between the l-threonine and L-homoserine biosynthesis pathways. The QS-regulated strain E. coli HS27/PA-P7QS produced 101.81 g/L L-homoserine with a yield of 0.41 g/g glucose after 96 h of fermentation in a 5-L bioreactor. This study demonstrates the feasibility of applying the QS system in E. coli for metabolic flux control, thereby providing novel insights into the rational design of amino acid biosynthesis pathways.
科研通智能强力驱动
Strongly Powered by AbleSci AI