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反应-结构偶联在 KaiABC 生物钟温度补偿中的作用。

Role of the reaction-structure coupling in temperature compensation of the KaiABC circadian rhythm.

机构信息

Department of Applied Physics, Nagoya University, Nagoya, Japan.

Department of Complex Systems Science, Nagoya University, Nagoya, Japan.

出版信息

PLoS Comput Biol. 2022 Sep 6;18(9):e1010494. doi: 10.1371/journal.pcbi.1010494. eCollection 2022 Sep.

Abstract

When the mixture solution of cyanobacterial proteins, KaiA, KaiB, and KaiC, is incubated with ATP in vitro, the phosphorylation level of KaiC shows stable oscillations with the temperature-compensated circadian period. Elucidating this temperature compensation is essential for understanding the KaiABC circadian clock, but its mechanism has remained a mystery. We analyzed the KaiABC temperature compensation by developing a theoretical model describing the feedback relations among reactions and structural transitions in the KaiC molecule. The model showed that the reduced structural cooperativity should weaken the negative feedback coupling among reactions and structural transitions, which enlarges the oscillation amplitude and period, explaining the observed significant period extension upon single amino-acid residue substitution. We propose that an increase in thermal fluctuations similarly attenuates the reaction-structure feedback, explaining the temperature compensation in the KaiABC clock. The model explained the experimentally observed responses of the oscillation phase to the temperature shift or the ADP-concentration change and suggested that the ATPase reactions in the CI domain of KaiC affect the period depending on how the reaction rates are modulated. The KaiABC clock provides a unique opportunity to analyze how the reaction-structure coupling regulates the system-level synchronized oscillations of molecules.

摘要

当蓝藻蛋白 KaiA、KaiB 和 KaiC 的混合溶液在体外与 ATP 一起孵育时,KaiC 的磷酸化水平表现出与温度补偿的昼夜节律周期相匹配的稳定振荡。阐明这种温度补偿对于理解 KaiABC 生物钟至关重要,但它的机制仍然是个谜。我们通过开发一个描述 KaiC 分子中反应和结构转变之间反馈关系的理论模型来分析 KaiABC 的温度补偿。该模型表明,结构协同性的降低应该会削弱反应和结构转变之间的负反馈耦合,从而放大振荡幅度和周期,这解释了观察到的单个氨基酸残基取代后明显的周期延长。我们提出,热波动的增加同样会削弱反应-结构反馈,从而解释了 KaiABC 时钟中的温度补偿。该模型解释了实验观察到的振荡相位对温度变化或 ADP 浓度变化的响应,并表明 KaiC 的 CI 结构域中的 ATP 酶反应会影响周期,具体取决于如何调节反应速率。KaiABC 时钟为分析反应-结构偶联如何调节分子系统水平同步振荡提供了一个独特的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2553/9481178/0de811b91687/pcbi.1010494.g001.jpg

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