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Diurnal oscillations of endogenous H2O2sustained by p66Shcregulate circadian clocks

Authors :
Pei, Jian-Fei
Li, Xun-Kai
Li, Wen-Qi
Gao, Qian
Zhang, Yang
Wang, Xiao-Man
Fu, Jia-Qi
Cui, Shen-Shen
Qu, Jia-Hua
Zhao, Xiang
Hao, De-Long
Ju, Dapeng
Liu, Na
Carroll, Kate S.
Yang, Jing
Zhang, Eric Erquan
Cao, Ji-Min
Chen, Hou-Zao
Liu, De-Pei
Source :
Nature Cell Biology; December 2019, Vol. 21 Issue: 12 p1553-1564, 12p
Publication Year :
2019

Abstract

Redox balance, an essential feature of healthy physiological steady states, is regulated by circadian clocks, but whether or how endogenous redox signalling conversely regulates clockworks in mammals remains unknown. Here, we report circadian rhythms in the levels of endogenous H2O2in mammalian cells and mouse livers. Using an unbiased method to screen for H2O2-sensitive transcription factors, we discovered that rhythmic redox control of CLOCK directly by endogenous H2O2oscillations is required for proper intracellular clock function. Importantly, perturbations in the rhythm of H2O2levels induced by the loss of p66Shc, which oscillates rhythmically in the liver and suprachiasmatic nucleus (SCN) of mice, disturb the rhythmic redox control of CLOCK function, reprogram hepatic transcriptome oscillations, lengthen the circadian period in mice and modulate light-induced clock resetting. Our findings suggest that redox signalling rhythms are intrinsically coupled to the circadian system through reversible oxidative modification of CLOCK and constitute essential mechanistic timekeeping components in mammals.

Details

Language :
English
ISSN :
14657392 and 14764679
Volume :
21
Issue :
12
Database :
Supplemental Index
Journal :
Nature Cell Biology
Publication Type :
Periodical
Accession number :
ejs51745297
Full Text :
https://doi.org/10.1038/s41556-019-0420-4