Literature DB >> 34927581

Light sets the brain's daily clock by regional quickening and slowing of the molecular clockworks at dawn and dusk.

Suil Kim1, Douglas G McMahon1,2.   

Abstract

How daily clocks in the brain are set by light to local environmental time and encode the seasons is not fully understood. The suprachiasmatic nucleus (SCN) is a central circadian clock in mammals that orchestrates physiology and behavior in tune with daily and seasonal light cycles. Here, we have found that optogenetically simulated light input to explanted mouse SCN changes the waveform of the molecular clockworks from sinusoids in free-running conditions to highly asymmetrical shapes with accelerated synthetic (rising) phases and extended degradative (falling) phases marking clock advances and delays at simulated dawn and dusk. Daily waveform changes arise under ex vivo entrainment to simulated winter and summer photoperiods, and to non-24 hr periods. Ex vivo SCN imaging further suggests that acute waveform shifts are greatest in the ventrolateral SCN, while period effects are greatest in the dorsomedial SCN. Thus, circadian entrainment is encoded by SCN clock gene waveform changes that arise from spatiotemporally distinct intrinsic responses within the SCN neural network.
© 2021, Kim and McMahon.

Entities:  

Keywords:  SCN; circadian clock; circadian rhythm; entrainment; mouse; neuroscience; phase shift; photoperiod

Mesh:

Year:  2021        PMID: 34927581      PMCID: PMC8687663          DOI: 10.7554/eLife.70137

Source DB:  PubMed          Journal:  Elife        ISSN: 2050-084X            Impact factor:   8.140


  53 in total

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Authors:  James Brian Robertson; Chris R Davis; Carl Hirschie Johnson
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Review 2.  Exploring spatiotemporal organization of SCN circuits.

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Journal:  Cold Spring Harb Symp Quant Biol       Date:  2007

3.  Testicular responses to photoperiod are blocked by lesions of the suprachiasmatic nuclei in golden hamsters.

Authors:  B Rusak; L P Morin
Journal:  Biol Reprod       Date:  1976-10       Impact factor: 4.285

4.  Cellular clocks in AVP neurons of the SCN are critical for interneuronal coupling regulating circadian behavior rhythm.

Authors:  Michihiro Mieda; Daisuke Ono; Emi Hasegawa; Hitoshi Okamoto; Ken-Ichi Honma; Sato Honma; Takeshi Sakurai
Journal:  Neuron       Date:  2015-03-04       Impact factor: 17.173

5.  Endogenous rhythms in Period1 mutant suprachiasmatic nuclei in vitro do not represent circadian behavior.

Authors:  Julie S Pendergast; Rio C Friday; Shin Yamazaki
Journal:  J Neurosci       Date:  2009-11-18       Impact factor: 6.167

6.  Circadian rhythms in the rat: constant darkness, entrainment to T cycles and to skeleton photoperiods.

Authors:  F K Stephan
Journal:  Physiol Behav       Date:  1983-03

7.  Cell-autonomous clock of astrocytes drives circadian behavior in mammals.

Authors:  Marco Brancaccio; Mathew D Edwards; Andrew P Patton; Nicola J Smyllie; Johanna E Chesham; Elizabeth S Maywood; Michael H Hastings
Journal:  Science       Date:  2019-01-11       Impact factor: 47.728

Review 8.  Transcriptional architecture of the mammalian circadian clock.

Authors:  Joseph S Takahashi
Journal:  Nat Rev Genet       Date:  2016-12-19       Impact factor: 53.242

9.  Independent optical excitation of distinct neural populations.

Authors:  Nathan C Klapoetke; Yasunobu Murata; Sung Soo Kim; Stefan R Pulver; Amanda Birdsey-Benson; Yong Ku Cho; Tania K Morimoto; Amy S Chuong; Eric J Carpenter; Zhijian Tian; Jun Wang; Yinlong Xie; Zhixiang Yan; Yong Zhang; Brian Y Chow; Barbara Surek; Michael Melkonian; Vivek Jayaraman; Martha Constantine-Paton; Gane Ka-Shu Wong; Edward S Boyden
Journal:  Nat Methods       Date:  2014-02-09       Impact factor: 28.547

10.  Vasoactive intestinal peptide controls the suprachiasmatic circadian clock network via ERK1/2 and DUSP4 signalling.

Authors:  Ryan Hamnett; Priya Crosby; Johanna E Chesham; Michael H Hastings
Journal:  Nat Commun       Date:  2019-02-01       Impact factor: 14.919

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