Literature DB >> 11760013

Temporal reorganization of the suprachiasmatic nuclei in hamsters with split circadian rhythms.

M R Gorman1, S M Yellon, T M Lee.   

Abstract

A dual oscillator basis for mammalian circadian rhythms is suggested by the splitting of activity rhythms into two components in constant light and by the photoperiodic control of pineal melatonin secretion and phase-resetting effects of light. Because splitting and photoperiodism depend on incompatible environmental conditions, however, these literatures have remained distinct. The refinement of a procedure for splitting hamster rhythms in a 24-h light-dark:light-dark cycle has enabled the authors to assess the ability of each of two circadian oscillators to initiate melatonin secretion and to respond to light pulses with behavioral phase shifting and induction of Fos-immunoreactivity in the suprachiasmatic nuclei (SCN). Hamsters exposed to a regimen of afternoon novel wheel running (NWR) split their circadian rhythms into two distinct components, dividing their activity between the latter half of the night and the afternoon dark period previously associated with NWR. Plasma melatonin concentrations were elevated during both activity bouts of split hamsters but were not elevated during the afternoon period in unsplit controls. Light pulses delivered during either the nighttime or afternoon activity bout caused that activity component to phase-delay on subsequent days and induced robust expression of Fos-immunoreactivity in the SCN. Light pulses during intervening periods of locomotor inactivity were ineffective. The authors propose that NWR splits the circadian pacemaker into two distinct oscillatory components separated by approximately 180 degrees, with each expressing a short subjective night.

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Year:  2001        PMID: 11760013     DOI: 10.1177/074873001129002240

Source DB:  PubMed          Journal:  J Biol Rhythms        ISSN: 0748-7304            Impact factor:   3.182


  8 in total

Review 1.  In synch but not in step: Circadian clock circuits regulating plasticity in daily rhythms.

Authors:  J A Evans; M R Gorman
Journal:  Neuroscience       Date:  2016-02-06       Impact factor: 3.590

2.  Unanticipated daytime melatonin secretion on a simulated night shift schedule generates a distinctive 24-h melatonin rhythm with antiphasic daytime and nighttime peaks.

Authors:  Jingyi Qian; Christopher J Morris; Andrew J K Phillips; Peng Li; Shadab A Rahman; Wei Wang; Kun Hu; Josephine Arendt; Charles A Czeisler; Frank A J L Scheer
Journal:  J Pineal Res       Date:  2022-03-10       Impact factor: 13.007

3.  Twice daily melatonin peaks in Siberian but not Syrian hamsters under 24 h light:dark:light:dark cycles.

Authors:  Evan E Raiewski; Jeffrey A Elliott; Jennifer A Evans; Gena L Glickman; Michael R Gorman
Journal:  Chronobiol Int       Date:  2012-09-24       Impact factor: 2.877

4.  Reorganization of suprachiasmatic nucleus networks under 24-h LDLD conditions.

Authors:  Lily Yan; Rae Silver; Michael Gorman
Journal:  J Biol Rhythms       Date:  2010-02       Impact factor: 3.182

Review 5.  The role of the circadian system in fractal neurophysiological control.

Authors:  Benjamin R Pittman-Polletta; Frank A J L Scheer; Matthew P Butler; Steven A Shea; Kun Hu
Journal:  Biol Rev Camb Philos Soc       Date:  2013-04-10

6.  Changing the waveform of circadian rhythms: considerations for shift-work.

Authors:  Elizabeth M Harrison; Michael R Gorman
Journal:  Front Neurol       Date:  2012-05-01       Impact factor: 4.003

7.  Influence of photoperiod and running wheel access on the entrainment of split circadian rhythms in hamsters.

Authors:  Sheila L Rosenthal; Martin M Vakili; Jennifer A Evans; Jeffrey A Elliott; Michael R Gorman
Journal:  BMC Neurosci       Date:  2005-06-20       Impact factor: 3.288

8.  Exceptional Entrainment of Circadian Activity Rhythms With Manipulations of Rhythm Waveform in Male Syrian Hamsters.

Authors:  Michael R Gorman; Jeffrey A Elliott
Journal:  Yale J Biol Med       Date:  2019-06-27
  8 in total

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