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How coupling determines the entrainment of circadian clocks

机译:耦合如何确定生物钟的夹带

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Autonomous circadian clocks drive daily rhythms in physiology and behaviour. A network of coupled neurons, the suprachiasmatic nucleus (SCN), serves as a robust self-sustained circadian pacemaker. Synchronization of this timer to the environmental light-dark cycle is crucial for an organism's fitness. In a recent theoretical and experimental study it was shown that coupling governs the entrainment range of circadian clocks. We apply the theory of coupled oscillators to analyse how diffusive and mean-field coupling affects the entrainment range of interacting cells. Mean-field coupling leads to amplitude expansion of weak oscillators and, as a result, reduces the entrainment range. We also show that coupling determines the rigidity of the synchronized SCN network, i.e. the relaxation rates upon perturbation. Our simulations and analytical calculations using generic oscillator models help to elucidate how coupling determines the entrainment of the SCN. Our theoretical framework helps to interpret experimental data.
机译:自主的生物钟驱动着生理和行为的日常节律。耦合神经元网络,视交叉上核(SCN),是一个强大的自我维持的昼夜节律起搏器。该计时器与环境明暗周期的同步对于有机体的适应性至关重要。在最近的理论和实验研究中,表明耦合决定了生物钟的夹带范围。我们应用耦合振荡器的理论来分析扩散和均场耦合如何影响相互作用细胞的夹带范围。平均场耦合导致弱振荡器的幅度扩展,结果减小了夹带范围。我们还表明耦合决定了同步SCN网络的刚度,即扰动时的松弛率。我们使用通用振荡器模型进行的仿真和分析计算有助于阐明耦合如何确定SCN的夹带。我们的理论框架有助于解释实验数据。

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