合成生物学
枯草芽孢杆菌
细胞内
生物化学
新陈代谢
生物
化学
代谢途径
计算生物学
遗传学
细菌
作者
Xianhao Xu,Xueliang Li,Yanfeng Liu,Yong-Lian Zhu,Jianghua Li,Guocheng Du,Jian Chen,Rodrigo Ledesma‐Amaro,Long Liu
标识
DOI:10.1038/s41589-020-0637-3
摘要
Dynamic regulation is a promising strategy for fine-tuning metabolic fluxes in microbial cell factories. However, few of these synthetic regulatory systems have been developed for central carbon metabolites. Here we created a set of programmable and bifunctional pyruvate-responsive genetic circuits for dynamic dual control (activation and inhibition) of central metabolism in Bacillus subtilis. We used these genetic circuits to design a feedback loop control system that relies on the intracellular concentration of pyruvate to fine-tune the target metabolic modules, leading to the glucaric acid titer increasing from 207 to 527 mg l-1. The designed logic gate-based circuits were enabled by the characterization of a new antisense transcription mechanism in B. subtilis. In addition, a further increase to 802 mg l-1 was achieved by blocking the formation of by-products. Here, the constructed pyruvate-responsive genetic circuits are presented as effective tools for the dynamic control of central metabolism of microbial cell factories.
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