Literature DB >> 11517194

Expression of CRHR1 and CRHR2 in mouse pituitary and adrenal gland: implications for HPA system regulation.

M B Müller1, J Preil, U Renner, S Zimmermann, A E Kresse, G K Stalla, M E Keck, F Holsboer, W Wurst.   

Abstract

Deficiency of corticotropin-releasing hormone receptor I (CRHR1) reduces anxiety-related behavior in mice and severely impairs the stress response of the hypothalamic-pituitary-adrenocortical (HPA) system. Most recently, we could show that severe emotional stressors induce a significant rise in plasma ACTH even in mice deficient for the CRHR1 (Crhr1-1-) which is, however, not accompanied by an increase in plasma corticosterone concentration, suggesting that CRHR1 might be directly involved in the regulation of adrenal corticosterone release. We therefore used the Crhr1-1- mouse model to clarify the potential role of adrenal CRHR1 in the regulation of the HPA system and, in particular, of corticosterone secretion. In Crhr1-/- mice, intravenous ACTH administration failed to stimulate corticosterone secretion despite a significant upregulation of ACTH receptor mRNA levels in the adrenal cortex of these mutants. Further, by means of RT-PCR and in situ hybridization analyses, we could provide first evidence that both CRHR1 and CRHR2 are expressed in the mouse pituitary and adrenal cortex. Stimulation of pituitary CRHR2 does not induce ACTH secretion either in vitro or in vivo. Our data strongly suggest that CRHR1 plays a crucial role in the release of corticosterone from the adrenal cortex, independently of pituitary function. The existence of an intra-adrenal CRH/CRHR1 regulatory system which contributes to the corticosteroid secretory activity adds to the complexity of HPA system regulation and stress hormone homeostasis.

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Year:  2001        PMID: 11517194     DOI: 10.1210/endo.142.9.8491

Source DB:  PubMed          Journal:  Endocrinology        ISSN: 0013-7227            Impact factor:   4.736


  16 in total

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2.  cDNA microarray analysis of gene expression in anxious PVG and SD rats after cat-freezing test.

Authors:  H Wang; Y Z Zhu; P T-H Wong; J M Farook; A L Teo; L K H Lee; S Moochhala
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3.  Distribution and chemical composition of estrogen receptor β neurons in the paraventricular nucleus of the female and male mouse hypothalamus.

Authors:  Mario G Oyola; Maranda K Thompson; Aaron Z Handa; Robert J Handa
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4.  GABA regulates corticotropin releasing hormone levels in the paraventricular nucleus of the hypothalamus in newborn mice.

Authors:  Matthew S Stratton; Brian T Searcy; Stuart A Tobet
Journal:  Physiol Behav       Date:  2011-01-12

5.  Brain-specific inactivation of the Crhr1 gene inhibits post-dependent and stress-induced alcohol intake, but does not affect relapse-like drinking.

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Review 6.  Emerging role of alternative splicing of CRF1 receptor in CRF signaling.

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7.  Nicotine stimulates secretion of corticosterone via both CRH and AVP receptors.

Authors:  Kabirullah Lutfy; Otaren Aimiuwu; Michael Mangubat; Chang-Sung Shin; Namiko Nerio; Richard Gomez; Yanjun Liu; Theodore C Friedman
Journal:  J Neurochem       Date:  2012-01-23       Impact factor: 5.372

8.  Somatostatin receptor subtype 5 modifies hypothalamic-pituitary-adrenal axis stress function.

Authors:  Masaaki Yamamoto; Anat Ben-Shlomo; Hiraku Kameda; Hidenori Fukuoka; Nan Deng; Yan Ding; Shlomo Melmed
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9.  Regulation of corticotropin releasing hormone receptor (CRH-R) in the rat anterior pituitary as assessed by radioimmunoassay.

Authors:  Takeshi Nigawara; Nobuo Horiba; Fumiko Tozawa; Yoko Kasagi; Katsuya Uchida; Yasumasa Iwasaki; Toshihiro Suda
Journal:  Pituitary       Date:  2003-09       Impact factor: 4.107

10.  Behavioral Studies and Genetic Alterations in Corticotropin-Releasing Hormone (CRH) Neurocircuitry: Insights into Human Psychiatric Disorders.

Authors:  Gloria Laryea; Melinda G Arnett; Louis J Muglia
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