合成生物学
电子线路
蓝图
寄主(生物学)
钥匙(锁)
合作性
计算机科学
系统生物学
计算生物学
生物
工程类
遗传学
电气工程
计算机安全
机械工程
作者
Ying Guan,Xinmao Chen,Bin Shao,Xiangyu Ji,Yanhui Xiang,Guoqiang Jiang,Lina Xu,Zhanglin Lin,Qi Ouyang,Chunbo Lou
标识
DOI:10.1021/acssynbio.2c00073
摘要
Mitigating unintended interferences between circuits and host cells is key to realize applications of synthetic regulatory systems both for bacteria and mammalian cells. Here, we demonstrated that growth burden and circuit dysregulation occurred in a concentration-dependent manner for specific transcription factors (CymR*/CymR) in E.coli, and direct negative feedback modules were able to control the concentration of CymR*/CymR, mitigate growth burden, and restore circuit functions. A quantitative design scheme was developed for circuits embedded with autorepression modules. Four key parameters were theoretically identified to determine the performance of autoregulated switches and were experimentally modified by fine-tuning promoter architectures and cooperativity. Using this strategy, we synthesized a number of switches and demonstrated its improvement of product titers and host growth controlling the complex deoxyviolacein biosynthesis pathway. Furthermore, we restored functions of a dysregulated multilayer NOR gate by integrating autorepression modules. Our work provides a blueprint for engineering host-adaptable synthetic systems.
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