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Single-molecular and ensemble-level oscillations of cyanobacterial circadian clock

机译:昼夜分子和合奏级振荡的蓝杆菌昼夜节奏

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When three cyanobacterial proteins, KaiA, KaiB, and KaiC, are incubated with ATP in vitro, the phosphorylation level of KaiC hexamers shows stable oscillation with approximately 24 h period. In order to understand this KaiABC clockwork, we need to analyze both the macroscopic synchronization of a large number of KaiC hexamers and the microscopic reactions and structural changes in individual KaiC molecules. In the present paper, we explain two coarse-grained theoretical models, the many-molecule (MM) model and the single-molecule (SM) model, to bridge the gap between macroscopic and microscopic understandings. In the simulation results with these models, ATP hydrolysis in the CI domain of KaiC hexamers drives oscillation of individual KaiC hexamers and the ATP hydrolysis is necessary for synchronizing oscillations of a large number of KaiC hexamers. Sensitive temperature dependence of the lifetime of the ADP bound state in the CI domain makes the oscillation period temperature insensitive. ATPase activity is correlated to the frequency of phosphorylation oscillation in the single molecule of KaiC hexamer, which should be the origin of the observed ensemble-level correlation between the ATPase activity and the frequency of phosphorylation oscillation. Thus, the simulation results with the MM and SM models suggest that ATP hydrolysis stochastically occurring in each CI domain of individual KaiC hexamers is a key process for oscillatory behaviors of the ensemble of many KaiC hexamers.
机译:当三个蓝藻蛋白,Kaia,Kaib和Kaic在体外孵育时,KAIC六烷烃的磷酸化水平显示出稳定的振荡,大约24小时。为了理解这种Kaiabc发条,我们需要分析大量kaiC六甲醇的宏观同步和单个kAic分子的显微反应和结构变化。在本文中,我们解释了两种粗粒理论模型,许多分子(MM)模型和单分子(SM)模型,以弥合宏观和微观谅解之间的差距。在仿真结果与这些模型中,KAIC六烷烃的CI结构域中的ATP水解驱动单个KAIC六烷烃的振荡,并且ATP水解对于同步大量KAIC六烷烃的振荡是必需的。 CI域中的ADP结合状态的寿命的敏感温度依赖性使得振荡周期温度不敏感。 ATPase活性与kaiC六聚体的单分子中的磷酸化振荡频率相关,这应该是ATP酶活性与磷酸化振荡频率之间观察到的集合级相关的起源。因此,具有MM和SM模型的仿真结果表明,在各个KAIC六偏光的每个CI结构域中随机发生的ATP水解是许多KAIC六烷烃的集合的振荡行为的关键方法。

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