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Noise Control in Gene Regulatory Networks with Negative Feedback

机译:具有负反馈的基因调控网络中的噪声控制

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摘要

Genes and proteins regulate cellular functions through complex circuits of biochemical reactions. Fluctuations in the components of these regulatory networks result in noise that invariably corrupts the signal, possibly compromising function. Here, we create a practical formalism based on ideas introduced by Wiener and Kolmogorov (WK) for filtering noise in engineered communications systems to quantitatively assess the extent to which noise can be controlled in biological processes involving negative feedback. Application of the theory, which reproduces the previously proven scaling of the lower bound for noise suppression in terms of the number of signaling events, shows that a tetracycline repressor-based negative regulatory gene circuit behaves as a WK filter. For the class of Hill-like nonlinear regulatory functions, this type of filter provides the optimal reduction in noise. Our theoretical approach can be readily combined with experimental measurements of response functions in a wide variety of genetic circuits, to elucidate the general principles by which biological networks minimize noise.
机译:基因和蛋白质通过复杂的生化反应回路调节细胞功能。这些调节网络组件的波动会导致噪声,该噪声总是会破坏信号,可能会损害功能。在这里,我们根据Wiener和Kolmogorov(WK)提出的思想创建一种实用的形式主义,以过滤工程通信系统中的噪声,以定量评估在涉及负反馈的生物过程中可以控制噪声的程度。该理论的应用根据信号事件的数量重现了先前证实的噪声抑制下限的缩放比例,该理论表明基于四环素阻遏物的负调控基因电路的行为类似于WK滤波器。对于一类类似于Hill的非线性调节函数,此类滤波器可提供最佳的降噪效果。我们的理论方法可以很容易地与各种遗传电路中响应函数的实验测量相结合,以阐明生物网络将噪声最小化的一般原理。

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