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Sensor-regulator and RNAi based bifunctional dynamic control network for engineered microbial synthesis

机译:基于传感器调节器和RNAi的双功能动态控制网络用于工程微生物合成

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摘要

Writing artificial logic and dynamic function into complex cellular background to achieve desired phenotypes or improved outputs calls for the development of new genetic tools as well as their innovative use. In this study, we present a sensor-regulator and RNAi-based bifunctional dynamic control network that can provide simultaneous upregulation and downregulation of cellular metabolism for engineered biosynthesis. The promoter-regulator-mediated upregulation function and its transduced downregulation function through RNAi are systematically verified and characterized. We apply this dynamic control network to regulate the phosphoenolpyruvate metabolic node in Escherichia coli and achieve autonomous distribution of carbon flux between its native metabolism and the engineered muconic acid biosynthetic pathway. This allows muconic acid biosynthesis to reach 1.8 g L−1. This study also suggests the circumstances where dynamic control approaches are likely to take effects.
机译:将人工逻辑和动态功能写入复杂的细胞背景中以实现所需的表型或改善的输出,需要开发新的遗传工具及其创新用途。在这项研究中,我们提出了一个传感器调节器和基于RNAi的双功能动态控制网络,可以为工程化的生物合成同时提供细胞代谢的上调和下调。系统地验证和表征了启动子-调节子介导的上调功能及其通过RNAi转导的下调功能。我们应用此动态控制网络来调节大肠杆菌中的磷酸烯醇式丙酮酸代谢节点,并实现碳通量在其天然代谢与工程化粘康酸生物合成途径之间的自主分布。这使得粘康酸的生物合成达到1.8 g L -1 。这项研究还提出了动态控制方法可能会起作用的情况。

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