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雌激素对下丘脑神经元的调节:多种信号通路的激活及基因表达变化

Estrogen modulation of hypothalamic neurons: activation of multiple signaling pathways and gene expression changes.

作者信息

Malyala Anna, Kelly Martin J, Rønnekleiv Oline K

机构信息

Department of Physiology and Pharmacology, L334, Oregon Health and Science University, 3181 SW Sam Jackson Park Road, Portland, OR 97239, USA.

出版信息

Steroids. 2005 May-Jun;70(5-7):397-406. doi: 10.1016/j.steroids.2005.03.004. Epub 2005 Apr 21.

Abstract

Hypothalamic target neurons of estrogen include neurosecretory neurons such as gonadotropin-releasing hormone (GnRH) and dopamine neurons, and local circuitry neurons such as proopiomelanocortin (POMC) and gamma-aminobutyric acid (GABA) neurons. These and other hypothalamic neurons are involved in regulating numerous homeostatic functions including reproduction, thermoregulation, stress responses, feeding and motivated behaviors. Using a combination of techniques to examine the molecular mechanisms leading to physiological changes induced by estrogen, we find that both rapid effects and transcriptional changes alter excitability of hypothalamic neurons. We have identified membrane-initiated, rapid signaling pathways through which 17beta-estradiol (E2) alters synaptic responses in these neurons using whole-cell patch recording in hypothalamic slices from ovariectomized female guinea pigs. E2 rapidly uncouples mu-opioid and GABA(B) receptors from G protein-gated inwardly rectifying K+ (GIRK) channels in POMC and dopamine neurons as manifested by a reduction in the potency of mu-opioid and GABA(B) receptor agonists to activate these channels. Inhibitors of phospholipase C, protein kinase C and protein kinase A block the actions of E2, indicative that the E2 receptor is G protein-coupled to activation of this cascade. Taking advantage of an animal model we developed to investigate estrogen's feedback actions on secretion of gonadotropin-releasing hormone (GnRH), we studied the transcriptional changes induced by estrogen using suppression subtractive hybridization (SSH) and microarray analysis. Many of the observed mRNA expression changes include transcripts encoding proteins critical for neurotransmitter release and receptor dynamics. Some of these include gec-1, PI3-kinase p55gamma, rab11a GTPase, synaptobrevin2, synaptogyrin, taxilin, Ca2+-dependent activator protein for secretion (CAPS) and a number of proteins containing pleckstrin homology domains-domains that are involved in plasma membrane targeting of their host protein. In situ hybridization and quantitative film autoradiography analysis on selected transcripts show differential distribution and expression in hypothalamic nuclei. Furthermore, single-cell PCR analysis reveals these genes to be expressed in neurons such as POMC (and GnRH). Whether these expression changes are mediated by the classical or membrane estrogen receptors has yet to be delineated. More detailed investigations of transcript spatial localization within neurons and their temporal expression, i.e., within minutes or hours, will provide more insight regarding how estrogen alters neuronal excitability and synaptic efficacy that ultimately lead to changes in complex behavior.

摘要

雌激素的下丘脑靶神经元包括神经分泌神经元,如促性腺激素释放激素(GnRH)神经元和多巴胺能神经元,以及局部回路神经元,如阿片促黑皮质素原(POMC)神经元和γ-氨基丁酸(GABA)能神经元。这些以及其他下丘脑神经元参与调节多种稳态功能,包括生殖、体温调节、应激反应、进食和动机行为。通过结合多种技术来研究导致雌激素诱导的生理变化的分子机制,我们发现快速效应和转录变化都会改变下丘脑神经元的兴奋性。我们利用全细胞膜片钳记录技术,在去卵巢雌性豚鼠的下丘脑切片中,确定了膜启动的快速信号通路,通过该通路17β-雌二醇(E2)改变了这些神经元的突触反应。E2迅速使POMC神经元和多巴胺能神经元中的μ-阿片受体和GABA(B)受体与G蛋白门控内向整流钾离子(GIRK)通道解偶联,表现为μ-阿片受体和GABA(B)受体激动剂激活这些通道的效能降低。磷脂酶C、蛋白激酶C和蛋白激酶A的抑制剂可阻断E2的作用,这表明E2受体通过G蛋白偶联激活该信号级联反应。利用我们开发的动物模型来研究雌激素对促性腺激素释放激素(GnRH)分泌的反馈作用,我们采用抑制性消减杂交(SSH)和微阵列分析技术研究了雌激素诱导的转录变化。许多观察到的mRNA表达变化包括编码对神经递质释放和受体动力学至关重要的蛋白质的转录本。其中一些包括gec-1、PI3激酶p55γ、rab11a GTP酶、突触小泡蛋白2、突触素、taxilin、分泌型钙依赖性激活蛋白(CAPS)以及一些含有普列克底物蛋白同源结构域的蛋白质,这些结构域参与其宿主蛋白的质膜靶向定位。对选定转录本的原位杂交和定量胶片放射自显影分析显示,它们在下丘脑核中的分布和表达存在差异。此外,单细胞PCR分析表明这些基因在POMC(和GnRH)等神经元中表达。这些表达变化是由经典雌激素受体还是膜雌激素受体介导的,还有待确定。对转录本在神经元内的空间定位及其时间表达(即几分钟或几小时内)进行更详细的研究,将有助于更深入地了解雌激素如何改变神经元兴奋性和突触效能,最终导致复杂行为的变化。

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