School of Biological and Health Systems Engineering, Arizona State University, Tempe, AZ, USA.
Department of Food Science and Nutrition, Zhejiang University, Hangzhou, Zhejiang, China.
Nat Chem Biol. 2020 Jun;16(6):695-701. doi: 10.1038/s41589-020-0509-x. Epub 2020 Apr 6.
Growth-mediated feedback between synthetic gene circuits and host organisms leads to diverse emerged behaviors, including growth bistability and enhanced ultrasensitivity. However, the range of possible impacts of growth feedback on gene circuits remains underexplored. Here we mathematically and experimentally demonstrated that growth feedback affects the functions of memory circuits in a network topology-dependent way. Specifically, the memory of the self-activation switch is quickly lost due to the growth-mediated dilution of the circuit products. Decoupling of growth feedback reveals its memory, manifested by its hysteresis property across a broad range of inducer concentration. On the contrary, the toggle switch is more refractory to growth-mediated dilution and can retrieve its memory after the fast-growth phase. The underlying principle lies in the different dependence of active and repressive regulations in these circuits on the growth-mediated dilution. Our results unveil the topology-dependent mechanism on how growth-mediated feedback influences the behaviors of gene circuits.
生长介导的合成基因回路与宿主生物体之间的反馈会导致多种涌现行为,包括生长双稳态和增强的超敏性。然而,生长反馈对基因回路可能产生的影响范围仍未得到充分探索。在这里,我们通过数学和实验证明,生长反馈会以网络拓扑结构依赖的方式影响记忆回路的功能。具体来说,由于生长介导的回路产物稀释,自激活开关的记忆会迅速丢失。生长反馈的解耦揭示了其记忆,表现为在广泛的诱导剂浓度范围内具有滞后特性。相反, toggle 开关对生长介导的稀释更具抗性,并且可以在快速生长阶段之后恢复其记忆。其根本原理在于这些回路中的激活和抑制调节对生长介导的稀释的不同依赖性。我们的结果揭示了生长介导的反馈如何影响基因回路行为的拓扑结构依赖性机制。