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Comprehensive Modelling of the Neurospora Circadian Clock and Its Temperature Compensation

机译:Neurospora昼夜节律时钟的综合建模及其温度补偿

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摘要

Circadian clocks provide an internal measure of external time allowing organisms to anticipate and exploit predictable daily changes in the environment. Rhythms driven by circadian clocks have a temperature compensated periodicity of approximately 24 hours that persists in constant conditions and can be reset by environmental time cues. Computational modelling has aided our understanding of the molecular mechanisms of circadian clocks, nevertheless it remains a major challenge to integrate the large number of clock components and their interactions into a single, comprehensive model that is able to account for the full breadth of clock phenotypes. Here we present a comprehensive dynamic model of the Neurospora crassa circadian clock that incorporates its key components and their transcriptional and post-transcriptional regulation. The model accounts for a wide range of clock characteristics including: a periodicity of 21.6 hours, persistent oscillation in constant conditions, arrhythmicity in constant light, resetting by brief light pulses, and entrainment to full photoperiods. Crucial components influencing the period and amplitude of oscillations were identified by control analysis. Furthermore, simulations enabled us to propose a mechanism for temperature compensation, which is achieved by simultaneously increasing the translation of frq RNA and decreasing the nuclear import of FRQ protein.
机译:生物钟提供内部时间的内部度量,使生物能够预测和利用环境中可预测的每日变化。由生物钟驱动的节奏具有约24小时的温度补偿周期,该周期在恒定条件下持续存在,并且可以通过环境时间提示进行重置。计算建模帮助我们了解了生物钟的分子机制,然而,将大量的钟成分及其相互作用整合到一个单一的,全面的模型中以解决钟表型的全部问题仍然是一个重大挑战。在这里,我们介绍了Neurospora crassa昼夜节律时钟的综合动态模型,该模型整合了其关键成分及其转录和转录后调控。该模型考虑了广泛的时钟特性,包括:21.6小时的周期性,恒定条件下的持续振荡,恒定光下的心律失常,短暂的光脉冲使信号复位以及夹带到完整的光周期。通过控制分析确定了影响振荡周期和幅度的关键因素。此外,模拟使我们能够提出一种温度补偿机制,该机制可通过同时增加frq RNA的翻译和减少FRQ蛋白的核输入来实现。

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