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通过工程化自动负调控元件和改进功能预测来减轻遗传回路的宿主负担。

Mitigating Host Burden of Genetic Circuits by Engineering Autonegatively Regulated Parts and Improving Functional Prediction.

机构信息

Department of Chemical Engineering, Tsinghua University, Beijing 100871, China.

Center for Quantitative Biology, Peking-Tsinghua Joint Center for Life Sciences, School of Physics, Peking University, Beijing 100871, China.

出版信息

ACS Synth Biol. 2022 Jul 15;11(7):2361-2371. doi: 10.1021/acssynbio.2c00073. Epub 2022 Jun 30.

Abstract

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 , 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.

摘要

减轻电路与宿主细胞之间的意外干扰是实现合成调控系统在细菌和哺乳动物细胞中应用的关键。在这里,我们证明了特定转录因子(CymR*/CymR)在 中以浓度依赖的方式引起生长负担和电路失调,并且直接负反馈模块能够控制 CymR*/CymR 的浓度,减轻生长负担,并恢复电路功能。我们为嵌入自动抑制模块的电路开发了一个定量设计方案。从理论上确定了四个关键参数来确定自动调节开关的性能,并通过微调启动子结构和协同性来进行实验修改。使用这种策略,我们合成了多个开关,并通过控制复杂的脱氧紫螺素生物合成途径来证明其提高了产物产量和宿主生长的控制能力。此外,我们通过整合自动抑制模块来恢复失调的多层 NOR 门的功能。我们的工作为工程化宿主适应性合成系统提供了蓝图。

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