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Quorum-Sensing Crosstalk-Driven Synthetic Circuits: From Unimodality to Trimodality

机译:仲裁感应串扰驱动的合成电路:从单峰性到三峰性

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摘要

Widespread quorum-sensing (QS) enables bacteria to communicate and plays a critical role in controlling bacterial virulence. However, effects of promiscuous QS crosstalk and its implications for gene regulation and cell decision-making remain largely unknown. Here we systematically studied the crosstalk between LuxR/I and LasR/I systems and found that QS crosstalk can be dissected into signal crosstalk and promoter crosstalk. Further investigations using synthetic positive feedback circuits revealed that signal crosstalk significantly decreases a circuit's bistable potential while maintaining unimodality. Promoter crosstalk, however, reproducibly generates complex trimodal responses resulting from noise-induced state transitions and host-circuit interactions. A mathematical model that integrates the circuit's nonlinearity, stochasticity, and host-circuit interactions was developed, and its predictions of conditions for trimodality were verified experimentally. Combining synthetic biology and mathematical modeling, this work sheds light on the complex behaviors emerging from QS crosstalk, which could be exploited for therapeutics and biotechnology.
机译:广泛的群体感应(QS)使细菌能够进行交流,并在控制细菌毒力中起关键作用。然而,混杂的QS串扰的影响及其对基因调控和细胞决策的影响仍然未知。在这里,我们系统地研究了LuxR / I与LasR / I系统之间的串扰,发现QS串扰可以分解为信号串扰和启动子串扰。使用合成正反馈电路的进一步研究表明,信号串扰可在保持单峰性的同时显着降低电路的双稳态电势。然而,激励串扰可重现地产生复杂的三峰响应,这是由噪声引起的状态转换和主电路相互作用引起的。建立了集成电路非线性,随机性和主电路相互作用的数学模型,并通过实验验证了其对三峰条件的预测。将合成生物学和数学建模相结合,这项工作揭示了QS串扰产生的复杂行为,可将其用于治疗和生物技术。

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