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Ontogeny of hypothalamic glucocorticoid receptor-mediated inhibition of the hypothalamic-pituitary-adrenal axis in mice

机译:下丘脑糖皮质激素受体介导的小鼠下丘脑-垂体-肾上腺轴的抑制作用

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Glucocorticoid receptors (GR) in the paraventricular nucleus of the hypothalamus (PVN) are important regulators of negative feedback regulation of the hypothalamic-pituitary-adrenal (HPA) axis. Previous evaluation of endogenous PVN GR function in adult mice demonstrated that mice with loss of GR exon 3 in the PVN (Sim1Cre-GRe3 Delta) have a hyperactive HPA axis, growth impairment and metabolic disruptions. Here, we hypothesized that lack of negative feedback inhibition of the HPA axis through PVN GR, as demonstrated through loss of PVN GR early in life, will have developmental-stage-specific consequences. Immunofluorescence revealed that Sim1Cre-GRe3 Delta mice display PVN GR loss as early as post-natal day 2 compared to control mice. Sim1Cre-GRe3 Delta mice compared to controls also displayed increased corticotropin-releasing hormone (CRH) mRNA in the PVN at post-natal day 10, as shown by in situ hybridization. Corticosterone radioimmunoassay revealed that the disruptions in PVN GR and CRH expression led to elevated basal corticosterone secretion in male Sim1Cre-GRe3 Delta mice by early adolescence and increased stress-induced (restraint) corticosterone secretion in late adolescence into adulthood. In comparison, female Sim1Cre-GRe3 Delta mice did not display corticosterone disruption until adulthood. Circadian rhythmicity of corticosterone secretion was normal for male and female mice at all age groups regardless of genotype with one exception. In late adolescence, female Sim1Cre-GRe3 Delta mice had disrupted circadian corticosterone secretion due to significantly elevated circulating levels at nadir. We conclude that PVN GR function matures at an earlier developmental time point in male than in female mice and thus leads to later differential stress responsiveness between sexes.
机译:下丘脑室旁核(PVN)中的糖皮质激素受体(GR)是下丘脑-垂体-肾上腺(HPA)轴负反馈调节的重要调节剂。以前对成年小鼠的内源性PVN GR功能的评估表明,PVN中GR外显子3缺失的小鼠(Sim1Cre-GRe3 Delta)具有HPA轴过度活跃,生长障碍和代谢异常。在这里,我们假设缺乏PVN GR对HPA轴的负反馈抑制作用,如生命早期丧失PVN GR所证明的那样,将对发育阶段产生特定的后果。免疫荧光显示,与对照小鼠相比,Sim1Cre-GRe3 Delta小鼠最早在出生后第2天就显示PVN GR丢失。如原位杂交所示,与对照组相比,Sim1Cre-GRe3 Delta小鼠在出生后第10天也显示PVN中促肾上腺皮质激素释放激素(CRH)mRNA的增加。皮质类固醇放射免疫分析显示,PVN GR和CRH表达的破坏导致青春期早期雄性Sim1Cre-GRe3 Delta小鼠的基础皮质类固醇分泌升高,并在青春期后期至成年期增加了应激诱导的(抑制性)皮质酮分泌。相比之下,雌性Sim1Cre-GRe3 Delta小鼠直到成年才表现出皮质酮的破坏。除了基因型外,所有年龄组的雄性和雌性小鼠的皮质酮分泌的昼夜节律都正常。青春期后期,雌性Sim1Cre-GRe3 Delta小鼠由于最低点的循环水平显着升高而破坏了昼夜节律性皮质酮的分泌。我们得出的结论是,PVN GR功能在雄性小鼠中的发展时间要比雌性小鼠早,因此导致性别之间的差异应激反应较晚。

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