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Discrete photoentrainment of mammalian central clock is regulated by bi-stable dynamic network in the suprachiasmatic nucleus
期刊文章

Discrete photoentrainment of mammalian central clock is regulated by bi-stable dynamic network in the suprachiasmatic nucleus

P.-T. Yeh, K.-C. Jhan, E.-P. Chua, W.-C. Chen, S.-W. Chu, S.-C. Wu 和 S.-K. Chen
Nature Communications, 卷.16(1)
2025
Web of Science ID: WOS:001463206300027

摘要

Animals Circadian Clocks Circadian Rhythm Light Male Mice Mice, Inbred C57BL Neurons Photoperiod Suprachiasmatic Nucleus circadian rhythm gene expression inhibition light effect nervous system animal experiment animal model article chemogenetics controlled study gene expression light dark cycle light exposure male mammal microscopy mouse mouse model nerve cell nerve cell network night nonhuman photon sensory system suprachiasmatic nucleus animal C57BL mouse circadian rhythm cytology light metabolism photoperiodicity physiology radiation response
The biological clock synchronizes with the environmental light-dark cycle through circadian photoentrainment. While intracellular pathways regulating clock gene expression after light exposure in the suprachiasmatic nucleus are well studied in mammals, the neuronal circuits driving phase shifts remain unclear. Here, using a mouse model, we show that chemogenetic activation of early-night light-responsive neurons induces phase delays at any circadian time, potentially breaking the photoentrainment dead zone. In contrast, activating late-night light-responsive neurons mimics light-induced phase shifts. Using in vivo two-photon microscopy, we found that most neurons in the suprachiasmatic nucleus exhibit stochastic light responses, while a small subset is consistently activated in the early subjective night and another is inhibited in the late subjective night. Our findings suggest a dynamic bi-stable network model for circadian photoentrainment, where phase shifts arise from a functional circuit integrating signals to groups of outcome neurons, rather than a labeled-line principle seen in sensory systems. © The Author(s) 2025.

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-105002967501&doi=10.1038%2fs41467-025-58661-1&partnerID=40&md5=7e793c213e4c1eda43542ef34f96c1bd檢視
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