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Noise Propagation and Signaling Sensitivity in Biological Networks: A Role for Positive Feedback

机译:生物网络中的噪声传播和信号敏感性:正反馈的作用

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摘要

Interactions between genes and proteins are crucial for efficient processing of internal or external signals, but this connectivity also amplifies stochastic fluctuations by propagating noise between components. Linear (unbranched) cascades were shown to exhibit an interplay between the sensitivity to changes in input signals and the ability to buffer noise. We searched for biological circuits that can maintain signaling sensitivity while minimizing noise propagation, focusing on cases where the noise is characterized by rapid fluctuations. Negative feedback can buffer this type of noise, but this buffering comes at the expense of an even greater reduction in signaling sensitivity. By systematically analyzing three-component circuits, we identify positive feedback as a central motif allowing for the buffering of propagated noise while maintaining sensitivity to long-term changes in input signals. We show analytically that noise reduction in the presence of positive feedback results from improved averaging of rapid fluctuations over time, and discuss in detail a particular implementation in the control of nutrient homeostasis in yeast. As the design of biological networks optimizes for multiple constraints, positive feedback can be used to improve sensitivity without a compromise in the ability to buffer propagated noise.
机译:基因和蛋白质之间的相互作用对于有效处理内部或外部信号至关重要,但是这种连通性还通过在组件之间传播噪声来放大随机波动。线性(无支链)级联显示出对输入信号变化的敏感性和缓冲噪声的能力之间的相互作用。我们搜索了可以在保持信号灵敏度不变的同时将噪声传播最小化的生物电路,重点研究了噪声具有快速波动特征的情况。负反馈可以缓冲这种类型的噪声,但是这种缓冲的代价是更大程度地降低了信号灵敏度。通过系统地分析三分量电路,我们将正反馈识别为中心主题,从而可以在保持传播信号噪声的同时保持对输入信号长期变化的敏感性。我们通过分析表明,在存在正反馈的情况下,降噪是由于随着时间的推移快速波动的平均改善而导致的,并详细讨论了控制酵母营养稳态的一种特殊实现方法。由于生物网络的设计针对多个约束条件进行了优化,因此可以使用正反馈来提高灵敏度,而不会影响缓冲传播噪声的能力。

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