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Developing an endogenous quorum-sensing based CRISPRi circuit for autonomous and tunable dynamic regulation of multiple targets in Streptomyces

  • Jinzhong Tian
  • , Gaohua Yang
  • , Yang Gu
  • , Xinqiang Sun
  • , Yinhua Lu*
  • , Weihong Jiang*
  • *此作品的通讯作者
  • CAS - Center for Excellence in Molecular Plant Sciences
  • University of Chinese Academy of Sciences
  • Zhejiang medicine LTD
  • Shanghai Normal University

科研成果: 期刊稿件文章同行评审

摘要

Quorum-sensing (QS) mediated dynamic regulation has emerged as an effective strategy for optimizing product titers in microbes. However, these QS-based circuits are often created on heterologous systems and require careful tuning via a tedious testing/optimization process. This hampers their application in industrial microbes. Here, we design a novel QS circuit by directly integrating an endogenous QS system with CRISPRi (named EQCi) in the industrial rapamycin-producing strain Streptomyces rapamycinicus. EQCi combines the advantages of both the QS system and CRISPRi to enable tunable, autonomous, and dynamic regulation of multiple targets simultaneously. Using EQCi, we separately downregulate three key nodes in essential pathways to divert metabolic flux towards rapamycin biosynthesis and significantly increase its titers. Further application of EQCi to simultaneously regulate these three key nodes with fine-tuned repression strength boosts the rapamycin titer by ∼660%, achieving the highest reported titer (1836 ± 191 mg/l). Notably, compared to static engineering strategies, which result in growth arrest and suboptimal rapamycin titers, EQCi-based regulation substantially promotes rapamycin titers without affecting cell growth, indicating that it can achieve a trade-off between essential pathways and product synthesis. Collectively, this study provides a convenient and effective strategy for strain improvement and shows potential for application in other industrial microorganisms.

源语言英语
页(从-至)8188-8202
页数15
期刊Nucleic Acids Research
48
14
DOI
出版状态已出版 - 20 8月 2020
已对外发布

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