Literature DB >> 18614689

Sleep deprivation effects on circadian clock gene expression in the cerebral cortex parallel electroencephalographic differences among mouse strains.

Jonathan P Wisor1, Ravi K Pasumarthi, Dmitry Gerashchenko, Carol L Thompson, Sayan Pathak, Aziz Sancar, Paul Franken, Ed S Lein, Thomas S Kilduff.   

Abstract

Sleep deprivation (SD) results in increased electroencephalographic (EEG) delta power during subsequent non-rapid eye movement sleep (NREMS) and is associated with changes in the expression of circadian clock-related genes in the cerebral cortex. The increase of NREMS delta power as a function of previous wake duration varies among inbred mouse strains. We sought to determine whether SD-dependent changes in circadian clock gene expression parallel this strain difference described previously at the EEG level. The effects of enforced wakefulness of incremental durations of up to 6 h on the expression of circadian clock genes (bmal1, clock, cry1, cry2, csnk1epsilon, npas2, per1, and per2) were assessed in AKR/J, C57BL/6J, and DBA/2J mice, three strains that exhibit distinct EEG responses to SD. Cortical expression of clock genes subsequent to SD was proportional to the increase in delta power that occurs in inbred strains: the strain that exhibits the most robust EEG response to SD (AKR/J) exhibited dramatic increases in expression of bmal1, clock, cry2, csnkIepsilon, and npas2, whereas the strain with the least robust response to SD (DBA/2) exhibited either no change or a decrease in expression of these genes and cry1. The effect of SD on circadian clock gene expression was maintained in mice in which both of the cryptochrome genes were genetically inactivated. cry1 and cry2 appear to be redundant in sleep regulation as elimination of either of these genes did not result in a significant deficit in sleep homeostasis. These data demonstrate transcriptional regulatory correlates to previously described strain differences at the EEG level and raise the possibility that genetic differences underlying circadian clock gene expression may drive the EEG differences among these strains.

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Year:  2008        PMID: 18614689      PMCID: PMC2603080          DOI: 10.1523/JNEUROSCI.1150-08.2008

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  53 in total

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9.  Gastrin-releasing peptide mediates light-like resetting of the suprachiasmatic nucleus circadian pacemaker through cAMP response element-binding protein and Per1 activation.

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Journal:  J Physiol Paris       Date:  2007-06-07
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  54 in total

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Review 4.  Circadian dysregulation of clock genes: clues to rapid treatments in major depressive disorder.

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Journal:  Mol Psychiatry       Date:  2014-11-04       Impact factor: 15.992

5.  Parent-of-origin genetic background affects the transcriptional levels of circadian and neuronal plasticity genes following sleep loss.

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6.  Htr2a Expression Responds Rapidly to Environmental Stimuli in an Egr3-Dependent Manner.

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Review 7.  About sleep's role in memory.

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8.  Homeostatic and circadian contribution to EEG and molecular state variables of sleep regulation.

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9.  Molecular and anatomical signatures of sleep deprivation in the mouse brain.

Authors:  Carol L Thompson; Jonathan P Wisor; Chang-Kyu Lee; Sayan D Pathak; Dmitry Gerashchenko; Kimberly A Smith; Shanna R Fischer; Chihchau L Kuan; Susan M Sunkin; Lydia L Ng; Christopher Lau; Michael Hawrylycz; Allan R Jones; Thomas S Kilduff; Edward S Lein
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