Hub-organized parallel circuits of central circadian pacemaker neurons for visual photoentrainment in Drosophila

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作者
Meng-Tong Li
Li-Hui Cao
Na Xiao
Min Tang
Bowen Deng
Tian Yang
Taishi Yoshii
Dong-Gen Luo
机构
[1] Peking University,State Key Laboratory of Membrane Biology, College of Life Sciences
[2] Peking University,IDG/McGovern Institute for Brain Research
[3] Peking University,Peking
[4] Peking University,Tsinghua Center for Life Sciences, Academy for Advanced Interdisciplinary Studies
[5] Peking University,PTN Graduate Program, College of Life Sciences
[6] Okayama University,Center for Quantitative Biology, Academy for Advanced Interdisciplinary Studies
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Nature Communications | / 9卷
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摘要
Circadian rhythms are orchestrated by a master clock that emerges from a network of circadian pacemaker neurons. The master clock is synchronized to external light/dark cycles through photoentrainment, but the circuit mechanisms underlying visual photoentrainment remain largely unknown. Here, we report that Drosophila has eye-mediated photoentrainment via a parallel pacemaker neuron organization. Patch-clamp recordings of central circadian pacemaker neurons reveal that light excites most of them independently of one another. We also show that light-responding pacemaker neurons send their dendrites to a neuropil called accessary medulla (aMe), where they make monosynaptic connections with Hofbauer–Buchner eyelet photoreceptors and interneurons that transmit compound-eye signals. Laser ablation of aMe and eye removal both abolish light responses of circadian pacemaker neurons, revealing aMe as a hub to channel eye inputs to central circadian clock. Taken together, we demonstrate that the central clock receives eye inputs via hub-organized parallel circuits in Drosophila.
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