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Stochastic focusing coupled with negative feedback enables robust regulation in biochemical reaction networks

机译:随机聚焦与负反馈相结合可实现生化反应网络中的稳健调节

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摘要

Nature presents multiple intriguing examples of processes that proceed with high precision and regularity. This remarkable stability is frequently counter to modellers' experience with the inherent stochasticity of chemical reactions in the regime of low-copy numbers. Moreover, the effects of noise and nonlinearities can lead to ‘counterintuitive’ behaviour, as demonstrated for a basic enzymatic reaction scheme that can display stochastic focusing (SF). Under the assumption of rapid signal fluctuations, SF has been shown to convert a graded response into a threshold mechanism, thus attenuating the detrimental effects of signal noise. However, when the rapid fluctuation assumption is violated, this gain in sensitivity is generally obtained at the cost of very large product variance, and this unpredictable behaviour may be one possible explanation of why, more than a decade after its introduction, SF has still not been observed in real biochemical systems. In this work, we explore the noise properties of a simple enzymatic reaction mechanism with a small and fluctuating number of active enzymes that behaves as a high-gain, noisy amplifier due to SF caused by slow enzyme fluctuations. We then show that the inclusion of a plausible negative feedback mechanism turns the system from a noisy signal detector to a strong homeostatic mechanism by exchanging high gain with strong attenuation in output noise and robustness to parameter variations. Moreover, we observe that the discrepancy between deterministic and stochastic descriptions of stochastically focused systems in the evolution of the means almost completely disappears, despite very low molecule counts and the additional nonlinearity due to feedback. The reaction mechanism considered here can provide a possible resolution to the apparent conflict between intrinsic noise and high precision in critical intracellular processes.
机译:《自然》杂志以高精确度和规律性提出了许多有趣的过程示例。这种出色的稳定性通常与建模者在低拷贝数范围内化学反应固有的随机性背道而驰。此外,噪声和非线性的影响可能导致“违反直觉”的行为,正如基本的酶反应方案所显示的那样,该方案可以显示随机聚焦(SF)。在信号快速波动的假设下,SF被证明可以将分级响应转换为阈值机制,从而减弱信号噪声的有害影响。但是,当违反快速波动假设时,通常会以很大的产品差异为代价获得这种灵敏度提高,而这种不可预测的行为可能是为什么在推出SF十多年后仍然没有在实际的生化系统中被观察到。在这项工作中,我们探索了一个简单的酶促反应机制的噪声特性,该机制具有少量且波动的活性酶,由于缓慢的酶波动导致SF表现为高增益,嘈杂的放大器。然后,我们表明,通过交换高增益,输出噪声的强烈衰减以及参数变化的鲁棒性,合理的负反馈机制的加入将系统从嘈杂的信号检测器转变为强大的稳态机制。此外,我们观察到,尽管分子数量非常少,并且由于反馈而导致了其他非线性,但随机聚焦系统的确定性描述和随机描述之间在方法演变中的差异几乎完全消失了。这里考虑的反应机制可以为关键的细胞内过程中固有噪声与高精度之间的明显冲突提供可能的解决方案。

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