Literature DB >> 25286135

Feeding and adrenal entrainment stimuli are both necessary for normal circadian oscillation of peripheral clocks in mice housed under different photoperiods.

Yuko Ikeda1, Hiroyuki Sasaki, Teiji Ohtsu, Takuya Shiraishi, Yu Tahara, Shigenobu Shibata.   

Abstract

The mammalian circadian rhythm is entrained by multiple factors, including the light-dark cycle, the organism's feeding pattern and endocrine hormones such as glucocorticoids. Both a central clock (the suprachiasmatic nucleus, or SCN) and peripheral clocks (i.e. in the liver and lungs) in mice are entrained by photoperiod. However, the factors underlying entrainment signals from the SCN to peripheral clocks are not well known. To elucidate the role of entrainment factors such as corticosterone and feeding, we examined whether peripheral clock rhythms were impaired by adrenalectomy (ADX) and/or feeding of 6 meals per day at equal intervals under short-day, medium-day and long-day photoperiods (SP, MP and LP, respectively). We evaluated the waveform and phase of circadian rhythms in the liver, kidney and salivary gland by in vivo imaging of PER2::LUCIFERASE knock-in mice. In intact mice, the waveforms of the peripheral clocks were similar among all photoperiods. The phases of peripheral clocks were well adjusted by the timing of the "lights-off"-operated evening (E) oscillator but not the "lights-on"-operated morning (M) oscillator. ADX had almost no effect on the rhythmicity and phase of peripheral clocks, regardless of photoperiod. To reduce the feeding-induced signal, we placed mice on a restricted feeding regimen with 6 meals per day (6 meals RF). This caused advances of the peripheral clock phase in LP-housed mice (2-5 h) and MP-housed mice (1-2 h) but not SP-housed mice. Thus, feeding pattern may affect the phase of peripheral clocks, depending on photoperiod. More specifically, ADX + 6 meals RF mice showed impairment of circadian rhythms in the kidney and liver but not in the salivary gland, regardless of photoperiod. However, the impairment of peripheral clocks observed in ADX + 6 meals RF mice was reversed by administration of dexamethasone for 3 days. The phase differences in the salivary gland clock among SP-, MP- and LP-housed mice became very small following treatment with ADX + 6 meals RF, suggesting that the effect of photoperiod was reduced by ADX and 6 meals RF. Because the SCN rhythm (as evaluated by PER2 immunohistochemistry) was not disrupted by ADX + 6 meals RF, impairment of peripheral clocks in these mice was not because of impaired SCN clock function. In addition, locomotor activity rhythm and modifications of the feeding pattern may not be completely responsible for determining the phase of peripheral clocks. Thus, this study demonstrates that the phase of peripheral clocks responds to a photoperiodic lights-off signal, and suggests that signals from normal feeding patterns and the adrenal gland are necessary to maintain the oscillation and phase of peripheral clocks under various photoperiods.

Entities:  

Keywords:  Adrenal; biological rhythm; feeding; photoperiod

Mesh:

Substances:

Year:  2014        PMID: 25286135     DOI: 10.3109/07420528.2014.962655

Source DB:  PubMed          Journal:  Chronobiol Int        ISSN: 0742-0528            Impact factor:   2.877


  10 in total

1.  Relevance of Electrical Light on Circadian, Neuroendocrine, and Neurobehavioral Regulation in Laboratory Animal Facilities.

Authors:  John P Hanifin; Robert T Dauchy; David E Blask; Steven M Hill; George C Brainard
Journal:  ILAR J       Date:  2020-10-19

2.  Disruption of paternal circadian rhythm affects metabolic health in male offspring via nongerm cell factors.

Authors:  Maximilian Lassi; Archana Tomar; Gemma Comas-Armangué; Rebekka Vogtmann; Dorieke J Dijkstra; David Corujo; Raffaele Gerlini; Jonatan Darr; Fabienne Scheid; Jan Rozman; Antonio Aguilar-Pimentel; Omry Koren; Marcus Buschbeck; Helmut Fuchs; Susan Marschall; Valerie Gailus-Durner; Martin Hrabe de Angelis; Torsten Plösch; Alexandra Gellhaus; Raffaele Teperino
Journal:  Sci Adv       Date:  2021-05-26       Impact factor: 14.136

Review 3.  The mammalian circadian clock and its entrainment by stress and exercise.

Authors:  Yu Tahara; Shinya Aoyama; Shigenobu Shibata
Journal:  J Physiol Sci       Date:  2016-04-15       Impact factor: 2.781

4.  An Ultradian Feeding Schedule in Rats Affects Metabolic Gene Expression in Liver, Brown Adipose Tissue and Skeletal Muscle with Only Mild Effects on Circadian Clocks.

Authors:  Paul de Goede; Satish Sen; Yan Su; Ewout Foppen; Vincent-Joseph Poirel; Etienne Challet; Andries Kalsbeek
Journal:  Int J Mol Sci       Date:  2018-10-15       Impact factor: 5.923

5.  Mice Microbiota Composition Changes by Inulin Feeding with a Long Fasting Period under a Two-Meals-Per-Day Schedule.

Authors:  Hiroyuki Sasaki; Hiroki Miyakawa; Aya Watanabe; Yuki Nakayama; Yijin Lyu; Koki Hama; Shigenobu Shibata
Journal:  Nutrients       Date:  2019-11-16       Impact factor: 5.717

6.  Circadian Synchrony: Sleep, Nutrition, and Physical Activity.

Authors:  Kelly L Healy; Andrew R Morris; Andrew C Liu
Journal:  Front Netw Physiol       Date:  2021-10-12

Review 7.  The Functional and Clinical Significance of the 24-Hour Rhythm of Circulating Glucocorticoids.

Authors:  Henrik Oster; Etienne Challet; Volker Ott; Emanuela Arvat; E Ronald de Kloet; Derk-Jan Dijk; Stafford Lightman; Alexandros Vgontzas; Eve Van Cauter
Journal:  Endocr Rev       Date:  2017-02-01       Impact factor: 19.871

8.  Glucagon and/or IGF-1 Production Regulates Resetting of the Liver Circadian Clock in Response to a Protein or Amino Acid-only Diet.

Authors:  Yuko Ikeda; Mayo Kamagata; Mizuho Hirao; Shinnosuke Yasuda; Shiho Iwami; Hiroyuki Sasaki; Miku Tsubosaka; Yuta Hattori; Ai Todoh; Konomi Tamura; Kazuto Shiga; Teiji Ohtsu; Shigenobu Shibata
Journal:  EBioMedicine       Date:  2018-01-31       Impact factor: 8.143

Review 9.  Assessment and Management of Sleep Disturbance in Cirrhosis.

Authors:  Chiara Formentin; Maria Garrido; Sara Montagnese
Journal:  Curr Hepatol Rep       Date:  2018-02-13

10.  Differentiating external zeitgeber impact on peripheral circadian clock resetting.

Authors:  Isabel Heyde; Henrik Oster
Journal:  Sci Rep       Date:  2019-12-27       Impact factor: 4.379

  10 in total

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