Literature DB >> 24552589

Behavioral changes and dopaminergic dysregulation in mice lacking the nuclear receptor Rev-erbα.

Jennifer Jager1, W Timothy O'Brien, Jessica Manlove, Elizabeth N Krizman, Bin Fang, Zachary Gerhart-Hines, Michael B Robinson, Peter S Klein, Mitchell A Lazar.   

Abstract

The regulation of behavior by the molecular components of the circadian clock is not well understood. Here we report that mice lacking the nuclear receptor Rev-erbα, a potent transcriptional repressor and core clock component, displayed marked hyperactivity and impaired response habituation in novel environments. In addition, Rev-erbα knockout (KO) mice were deficient in short-term, long-term, and contextual memories and also showed impairment in nest-building ability. Together, these results suggest that Rev-erbα KO mice manifest defective hippocampal function. Interestingly, the changes in novelty-induced locomotor activity of Rev-erbα KO mice were comparable at multiple times of day, potentially due to the muted amplitude of Rev-erbα oscillation in the hippocampus of wild-type mice. Hippocampal dopamine turnover was increased in Rev-erbα KO mice, due to up-regulation of tyrosine hydroxylase, the rate-limiting enzyme in dopamine production, and pharmacologic inhibition of tyrosine hydroxylase activity partially rescued locomotor hyperactivity. These findings reveal a novel, nonredundant function for Rev-erbα that links a core component of the circadian gene-regulatory network to the control of dopaminergic and hippocampus-dependent behaviors.

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Year:  2014        PMID: 24552589      PMCID: PMC3968406          DOI: 10.1210/me.2013-1351

Source DB:  PubMed          Journal:  Mol Endocrinol        ISSN: 0888-8809


  66 in total

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  33 in total

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Journal:  Trends Endocrinol Metab       Date:  2014-07-22       Impact factor: 12.015

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3.  The E3 Ligases Spsb1 and Spsb4 Regulate RevErbα Degradation and Circadian Period.

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5.  Tyrosine hydroxylase down-regulation after loss of Abelson helper integration site 1 (AHI1) promotes depression via the circadian clock pathway in mice.

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6.  Circadian clock protein Rev-erbα regulates neuroinflammation.

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7.  Coactivator-Dependent Oscillation of Chromatin Accessibility Dictates Circadian Gene Amplitude via REV-ERB Loading.

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Review 8.  Rev-erbα and the circadian transcriptional regulation of metabolism.

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10.  Altered Sleep Homeostasis in Rev-erbα Knockout Mice.

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