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Defining the Independence of the Liver Circadian Clock
Author(s) -
Kevin B. Koronowski,
Kenichiro Kinouchi,
Patrick-Simon Welz,
Jacob G. Smith,
Valentina M. Zinna,
Jiejun Shi,
Muntaha Samad,
Siwei Chen,
Chr̀istophe Magnan,
Jason M. Kinchen,
Wei Li,
Pierre Baldi,
Salvador Aznar Benitah,
Paolo Sassone–Corsi
Publication year - 2019
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2019.04.025
Subject(s) - biology , circadian rhythm , circadian clock , independence (probability theory) , oscillating gene , neuroscience , bacterial circadian rhythms , statistics , mathematics
Mammals rely on a network of circadian clocks to control daily systemic metabolism and physiology. The central pacemaker in the suprachiasmatic nucleus (SCN) is considered hierarchically dominant over peripheral clocks, whose degree of independence, or tissue-level autonomy, has never been ascertained in vivo. Using arrhythmic Bmal1-null mice, we generated animals with reconstituted circadian expression of BMAL1 exclusively in the liver (Liver-RE). High-throughput transcriptomics and metabolomics show that the liver has independent circadian functions specific for metabolic processes such as the NAD + salvage pathway and glycogen turnover. However, although BMAL1 occupies chromatin at most genomic targets in Liver-RE mice, circadian expression is restricted to ∼10% of normally rhythmic transcripts. Finally, rhythmic clock gene expression is lost in Liver-RE mice under constant darkness. Hence, full circadian function in the liver depends on signals emanating from other clocks, and light contributes to tissue-autonomous clock function.

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