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Causes and Consequences of Hyperexcitation in Central Clock Neurons

机译:过度克明中中心钟神经元的原因及后果

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Hyperexcited states, including depolarization block and depolarized low amplitude membrane oscillations (DLAMOs), have been observed in neurons of the suprachiasmatic nuclei (SCN), the site of the central mammalian circadian (~24-hour) clock. The causes and consequences of this hyperexcitation have not yet been determined. Here, we explore how individual ionic currents contribute to these hyperexcited states, and how hyperexcitation can then influence molecular circadian timekeeping within SCN neurons. We developed a mathematical model of the electrical activity of SCN neurons, and experimentally verified its prediction that DLAMOs depend on post-synaptic L-type calcium current. The model predicts that hyperexcited states cause high intracellular calcium concentrations, which could trigger transcription of clock genes. The model also predicts that circadian control of certain ionic currents can induce hyperexcited states. Putting it all together into an integrative model, we show how membrane potential and calcium concentration provide a fast feedback that can enhance rhythmicity of the intracellular circadian clock. This work puts forward a novel role for electrical activity in circadian timekeeping, and suggests that hyperexcited states provide a general mechanism for linking membrane electrical dynamics to transcription activation in the nucleus.
机译:在Suprachiasmatic Nuclei(SCN)的神经元中,在中央哺乳动物核(〜24小时)时钟的位置,已经观察到过氧化块和去极化低振幅膜振荡(DLAOLAIZED的低振幅膜振荡(DLAOLA)。尚未确定这种过度筛选的原因和后果。在这里,我们探讨各个离子电流如何为这些过度兴奋状态有所贡献,以及对ScN神经元内的分子昼夜昼夜的计时如何影响ScN神经元。我们开发了SCN神经元电气活动的数学模型,并通过实验验证了其预测,即达LAMOS取决于突触后L型钙电流。该模型预测,过度兴奋状态会导致高细胞内钙浓度,这可能引发钟基因的转录。该模型还预测,对某些离子电流的昼夜昼夜控制可以诱导过度兴奋的状态。将它们整合到一体中的模型中,我们展示了膜电位和钙浓度如何提供快速反馈,可以增强细胞内昼夜节律的节奏。这项工作提出了在昼夜主管计时中的电气活动的新作用,并提出了过度兴奋的状态为将膜电动动力学连接到细胞核中的转录激活的一般机制。

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