Literature DB >> 18258755

The circadian clock protein BMAL1 is necessary for fertility and proper testosterone production in mice.

J D Alvarez1, Amanda Hansen, Teri Ord, Piotr Bebas, Patrick E Chappell, Jadwiga M Giebultowicz, Carmen Williams, Stuart Moss, Amita Sehgal.   

Abstract

Although it is well established that the circadian clock regulates mammalian reproductive physiology, the molecular mechanisms by which this regulation occurs are not clear. The authors investigated the reproductive capacity of mice lacking Bmal1 (Arntl, Mop3), one of the central circadian clock genes. They found that both male and female Bmal1 knockout (KO) mice are infertile. Gross and microscopic inspection of the reproductive anatomy of both sexes suggested deficiencies in steroidogenesis. Male Bmal1 KO mice had low testosterone and high luteinizing hormone serum concentrations, suggesting a defect in testicular Leydig cells. Importantly, Leydig cells rhythmically express BMAL1 protein, suggesting peripheral control of testosterone production by this clock protein. Expression of steroidogenic genes was reduced in testes and other steroidogenic tissues of Bmal1 KO mice. In particular, expression of the steroidogenic acute regulatory protein (StAR) gene and protein, which regulates the rate-limiting step of steroidogenesis, was decreased in testes from Bmal1 KO mice. A direct effect of BMAL1 on StAR expression in Leydig cells was indicated by in vitro experiments showing enhancement of StAR transcription by BMAL1. Other hormonal defects in male Bmal1 KO mice suggest that BMAL1 also has functions in reproductive physiology outside of the testis. These results enhance understanding of how the circadian clock regulates reproduction.

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Year:  2008        PMID: 18258755      PMCID: PMC2862364          DOI: 10.1177/0748730407311254

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


  41 in total

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Authors:  A J Travis; C J Jorgez; T Merdiushev; B H Jones; D M Dess; L Diaz-Cueto; B T Storey; G S Kopf; S B Moss
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2.  Circadian variations in plasma LH and FSH in juvenile and adult male mice.

Authors:  C Jean-Faucher; M Berger; M de Turckheim; G Veyssière; C Jean
Journal:  Horm Res       Date:  1986

Review 3.  Sexual differentiation of the central nervous system.

Authors:  N J MacLusky; F Naftolin
Journal:  Science       Date:  1981-03-20       Impact factor: 47.728

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Authors:  Maureen K Bunger; Jacqueline A Walisser; Ruth Sullivan; Paul A Manley; Susan M Moran; Vicki L Kalscheur; Ricki J Colman; Christopher A Bradfield
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Authors:  B J Clark; J Wells; S R King; D M Stocco
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Authors:  C T Privalle; J F Crivello; C R Jefcoate
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Authors:  M Ascoli
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  98 in total

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