蓝藻单细胞时钟对环境和分子噪声的缓冲作用

Aleksandra Eremina, Christian Schwall, Teresa Saez, Lennart Witting, Dietrich Kohlheyer, Bruno M.C. Martins, Philipp Thomas, James C.W. Locke
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引用次数: 0

摘要

昼夜节律钟使生物体能够预测每日的周期,同时对分子和环境噪声保持稳定。在这里,我们展示了蓝藻时钟如何通过其核心磷酸化环路缓冲遗传和环境扰动。我们首先利用一种可精确控制微环境的微流体设备,对时钟突变体中的单细胞时钟动态进行了表征。我们发现,已知的时钟调节因子对于时钟的稳健性来说是不可或缺的,而对核心时钟的扰动显示,野生型时钟是在噪声最佳状态下运行的,我们可以在一个仅有核心磷酸化环路的随机模型中再现这种状态。然后,我们研究了时钟如何对包括自然光条件在内的噪声环境做出反应。该模型准确预测了时钟如何过滤环境噪声,包括快速的光波动,从而在保持时间的同时对环境变化做出反应。我们的发现说明了一个简单的时钟网络是如何表现出复杂的噪声过滤特性的,从而加深了我们对生物电路如何在自然环境中准确运行的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Environmental and molecular noise buffering by the cyanobacterial clock in individual cells
Circadian clocks enable organisms to anticipate daily cycles, while being robust to molecular and environmental noise. Here, we show how the cyanobacterial clock buffers genetic and environmental perturbations through its core phosphorylation loop. We first characterise single-cell clock dynamics in clock mutants using a microfluidics device that allows precise control of the microenvironment. We find known clock regulators are dispensable for clock robustness, whilst perturbations of the core clock reveal that the wild-type operates at a noise optimum that we can reproduce in a stochastic model of just the core phosphorylation loop. We then examine how the clock responds to noisy environments, including natural light conditions. The model accurately predicts how the clock filters out environmental noise, including fast light fluctuations, to keep time while remaining responsive to environmental shifts. Our findings illustrate how a simple clock network can exhibit complex noise filtering properties, advancing our understanding of how biological circuits can perform accurately in natural environments.
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