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首页> 外文期刊>Current Biology: CB >ce:italic>nocte/ce:italic> Is Required for Integrating Light and Temperature Inputs in Circadian Clock Neurons of ce:italic>Drosophila/ce:italic>
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ce:italic>nocte/ce:italic> Is Required for Integrating Light and Temperature Inputs in Circadian Clock Neurons of ce:italic>Drosophila/ce:italic>

机译:& ce:斜体> nocte& / ce:斜体>在氧化昼夜昼夜昼夜昼夜钟神经元中集成光和温度输入所必需的:斜体>果蝇& / ce:斜体>

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摘要

Circadian clocks organize biological processes to occur at optimized times of day and thereby contribute to overall fitness. While the regular daily changes of environmental light and temperature synchronize circadian clocks, extreme external conditions can bypass the temporal constraints dictated by the clock. Despite advanced knowledge about how the daily light-dark changes synchronize the clock, relatively little is known with regard to how the daily temperature changes influence daily timing and how temperature and light signals are integrated. InDrosophila, a network of ~150 brain clock neurons exhibit 24-hr oscillations of clock gene expression to regulate daily activity and sleep. We show here that a temperature input pathway from peripheral sensory organs, which depends on the genenocte, targets specific subsets of these clock neurons to synchronize molecular and behavioral rhythms to temperature cycles. Strikingly, whilenocte1mutant flies synchronize normally to light-dark cycles at constant temperatures, the combined presence of light-dark and temperature cycles inhibits synchronization.nocte1flies exhibit altered siesta sleep, suggesting that the sleep-regulating clock neurons are an important target fornocte-dependent temperature input, which dominates a parallel light input into these cells. In conclusion, we reveal anocte-dependent temperature input pathway to central clock neurons and show that this pathway and its target neurons are important for the integration of sensory light and temperature information in order to temporally regulate activity and sleep during daily light and temperature cycles.
机译:昼夜节奏时钟组织在一天中优化的生物过程,从而有助于整体健康。虽然环境光和温度的定期日常变化同步昼夜时钟,但极端的外部条件可以绕过时钟所示的时间约束。尽管了解日常光线变化如何同步时钟的知识,但在日常温度变化如何影响日常时机以及如何集成温度和光信号时,已知相对较少。 IndroSophila,一种〜150脑时钟神经元的网络表现出时钟基因表达的24小时振荡,以调节日常活动和睡眠。我们在这里展示来自外周感觉器官的温度输入途径,这取决于终聚蛋白,靶向这些时钟神经元的特异性子集,以使分子和行为节律同步到温度循环。令人醒目的是,虽然虽然恒温,次粒子切割速度通常在恒定温度下与浅黑循环相同步,但光暗和温度循环的结合存在抑制同步。Nocte1flies表现出改变的午睡,表明睡眠调节时钟神经元是依赖于不依赖的重要目标。输入,将平行的光线连接到这些单元中。总之,我们揭示了对中心钟神经元的Anocte依赖温度输入途径,并表明该途径及其靶神经元对感官光和温度信息的整合是重要的,以便在日常光线和温度周期期间暂时调节活动和睡眠。

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