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Waveforms of molecular oscillations reveal circadian timekeeping mechanisms

机译:分子振荡的波形揭示了生物钟的计时机制

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摘要

Circadian clocks play a pivotal role in orchestrating numerous physiological and developmental events. Waveform shapes of the oscillations of protein abundances can be informative about the underlying biochemical processes of circadian clocks. We derive a mathematical framework where waveforms do reveal hidden biochemical mechanisms of circadian timekeeping. We find that the cost of synthesizing proteins with particular waveforms can be substantially reduced by rhythmic protein half-lives over time, as supported by previous plant and mammalian data, as well as our own seedling experiment. We also find that previously enigmatic, cyclic expression of positive arm components within the mammalian and insect clocks allows both a broad range of peak time differences between protein waveforms and the symmetries of the waveforms about the peak times. Such various peak-time differences may facilitate tissue-specific or developmental stage-specific multicellular processes. Our waveform-guided approach can be extended to various biological oscillators, including cell-cycle and synthetic genetic oscillators.
机译:昼夜节律在协调众多生理和发育事件中起着关键作用。蛋白质丰度振荡的波形形状可以提供有关生物钟的潜在生化过程的信息。我们推导出一个数学框架,其中的波形确实揭示了昼夜节律的隐藏生物化学机制。我们发现,有节奏的蛋白质半衰期会随着时间的流逝而大幅降低合成具有特定波形的蛋白质的成本,这在以前的植物和哺乳动物数据以及我们自己的幼苗实验中得到了支持。我们还发现,以前在哺乳动物和昆虫钟中神秘的,正臂成分的循环表达使得蛋白质波形之间的峰值时间差异范围宽广,并且峰值时间波形对称。这样的各种高峰时间差异可以促进组织特异性或发育阶段特异性多细胞过程。我们的波形引导方法可以扩展到各种生物振荡器,包括细胞周期振荡器和合成遗传振荡器。

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