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Revealing circadian mechanisms of integration and resilience by visualizing clock proteins working in real time

机译:通过可视化实时工作的时钟蛋白揭示整合和适应性的昼夜节律机制

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摘要

The circadian clock proteins KaiA, KaiB, and KaiC reconstitute a remarkable circa-24 h oscillation of KaiC phosphorylation that persists for many days in vitro. Here we use high-speed atomic force microscopy (HS-AFM) to visualize in real time and quantify the dynamic interactions of KaiA with KaiC on sub-second timescales. KaiA transiently interacts with KaiC, thereby stimulating KaiC autokinase activity. As KaiC becomes progressively more phosphorylated, KaiA’s affinity for KaiC weakens, revealing a feedback of KaiC phosphostatus back onto the KaiA-binding events. These non-equilibrium interactions integrate high-frequency binding and unbinding events, thereby refining the period of the longer term oscillations. Moreover, this differential affinity phenomenon broadens the range of Kai protein stoichiometries that allow rhythmicity, explaining how the oscillation is resilient in an in vivo milieu that includes noise. Therefore, robustness of rhythmicity on a 24-h scale is explainable by molecular events occurring on a scale of sub-seconds.
机译:昼夜节律蛋白KaiA,KaiB和KaiC重构了KaiC磷酸化的大约24小时振荡,该振荡在体外持续了很多天。在这里,我们使用高速原子力显微镜(HS-AFM)实时可视化并量化亚秒级时KaiA与KaiC的动态相互作用。 KaiA与KaiC短暂相互作用,从而刺激KaiC自身激酶活性。随着KaiC磷酸化程度的逐渐提高,Kaia对KaiC的亲和力减弱,从而显示KaiC磷酸状态回传到KaiA结合事件上。这些非平衡相互作用整合了高频结合和非结合事件,从而改善了长期振荡的周期。而且,这种不同的亲和力现象拓宽了允许有节奏的Kai蛋白化学计量范围,从而解释了在包括噪声的体内环境中振荡如何具有弹性。因此,通过亚秒级发生的分子事件可以解释24小时制节律性的稳健性。

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