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Kernel mechanism of the cyanobacterial circadian clock is a relaxation oscillator

机译:蓝细菌昼夜节律时钟的内核机制是张弛振荡器

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Circadian clock is an essential molecular regulatory mechanism that coordinates daily biological processes. Although the underlying design principles of eukaryotic circadian clock have been investigated in great detail, the circadian mechanism in cyanobacteria, the only prokaryote that possesses circadian clock, is not fully understood. In this study, we focus on elucidating the underlying systems property that drives the oscillation of the cyanobacterial clockwork. We apply combined methods of time scale separation, phase space analysis and bifurcation analysis to a model of circadian clock proposed by us recently. The original model is reduced to a three-dimensional slow subsystem by time scale separation. Phase space analysis of the reduced subsystem shows that the null-surface of the Serine-phosphorylated state (S state) of KaiC is a bistable surface and that the features of the phase portrait indicate that the kernel mechanism of the clockwork is a relaxation oscillator induced by positive and negative feedback loops. Bifurcation diagrams together with phase space analysis show that the S state of KaiC is a key component for the protein regulatory network of the cyanobacterial circadian clock.
机译:昼夜节律是协调日常生物过程的重要分子调控机制。尽管已经对真核生物钟的基本设计原理进行了详细研究,但对蓝细菌(拥有生物钟的唯一原核生物)的生物钟机制尚未完全了解。在这项研究中,我们着重于阐明驱动蓝藻发条振荡的潜在系统属性。我们将时标分离,相空间分析和分叉分析的组合方法应用于我们最近提出的生物钟模型。通过时标分离将原始模型简化为三维慢子系统。还原子系统的相空间分析表明,KaiC的丝氨酸磷酸化状态(S状态)的空表面是双稳态表面,相图的特征表明,发条的内核机制是由弛豫振荡器引起的。通过正反馈回路和负反馈回路。分叉图和相空间分析表明,KaiC的S状态是蓝细菌生物钟生物钟蛋白调控网络的关键组成部分。

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