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Multiple light inputs to a simple clock circuit allow complex biological rhythms

机译:多个光输入到简单的时钟电路可实现复杂的生物节律

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摘要

Circadian clocks are biological timekeepers that allow living cells to time their activity in anticipation of predictable environmental changes. Detailed understanding of the circadian network of higher plants, such as Arabidopsis thaliana, is hampered by the high number of partially redundant genes. However, the picoeukaryotic alga Ostreococcus tauri, which was recently shown to possess a small number of non-redundant clock genes, presents an attractive alternative target for detailed modelling of circadian clocks in the green lineage. Based on extensive time-series data from in vivo reporter gene assays, we developed a model of the Ostreococcus clock as a feedback loop between the genes TOC1 and CCA1. The model reproduces the dynamics of the transcriptional and translational reporters over a range of photoperiods. Surprisingly, the model is also able to predict the transient behaviour of the clock when the light conditions are altered. Despite the apparent simplicity of the clock circuit, it displays considerable complexity in its response to changing light conditions. Systematic screening of the effects of altered day length revealed a complex relationship between phase and photoperiod, which is also captured by the model. The complex light response is shown to stem from circadian gating of light-dependent mechanisms. This study provides insights into the contributions of light inputs to the Ostreococcus clock. The model suggests that a high number of light-dependent reactions are important for flexible timing in a circadian clock with only one feedback loop.
机译:昼夜节律钟是生物计时器,可让活细胞对可预测的环境变化进行计时。对高等植物如拟南芥的昼夜节律网络的详细理解受到大量部分冗余基因的阻碍。然而,最近被证明具有少量非冗余时钟基因的微核真核藻Ostreococcus tauri,为绿色谱系的生物钟的详细建模提供了一个有吸引力的替代目标。基于来自体内报道基因试验的大量时间序列数据,我们开发了一种总球菌时钟模型,作为基因TOC1和CCA1之间的反馈回路。该模型再现了一系列光周期中转录和翻译报告基因的动力学。出人意料的是,当光照条件改变时,该模型还能够预测时钟的瞬态行为。尽管时钟电路看上去很简单,但它对变化的光照条件却表现出相当大的复杂性。对改变的日长的影响进行系统的筛选揭示了相位和光周期之间的复杂关系,该关系也被模型捕获。已显示出复杂的光响应源于光依赖性机制的昼夜节拍。这项研究提供了关于光输入对骨球菌时钟的贡献的见解。该模型表明,大量光依赖反应对于仅具有一个反馈回路的生物钟的灵活计时至关重要。

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