Central Actions of Estrogens: Effects on GnRH neurons
Central Actions of Estrogens: Effects on GnRH neurons
批准号:
6819718
负责人:
Suzanne M MOENTER
金额:
$26.4万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2002
资助国家:
美国
项目状态:
已结题
起止时间:
2002-02-11 至 2006-11-30
关键词:
action potentialsanimal colonybiological signal transductionelectrophysiologyestrogen receptorsestrogensfemalegenetically modified animalsgonadotropin releasing factorgreen fluorescent proteinshormone regulation /control mechanismimmunocytochemistrylaboratory mousemembrane channelsmenstrual cycleneuroendocrine systemneuronsphosphorylationphosphotransferasestissue /cell culturevoltage /patch clamp
中文摘要
雌激素对中枢神经系统中的细胞功能和存活具有多种作用。 这项拟议中的研究探索了雌激素控制促性腺激素释放激素(GnRH)神经元的位点和机制。 这些神经元形成了中央调节生育力的最终共同途径;因此,它们的正常功能对脊椎动物物种的生存至关重要。 根据暴露的水平和持续时间,雌激素可以抑制(负反馈)或刺激(正反馈)GnRH释放。 女性生殖周期的特征是负反馈和正反馈之间的自然切换,这对启动排卵过程至关重要。负反馈、正反馈以及这些模式之间的切换是如何产生的尚不清楚。 这种生理现象结合其输入的相对简单性和已知的雌激素对GnRH分泌输出的影响,使GnRH神经元成为一个有趣的模型,用于研究多种中枢雌激素作用如何整合产生反应。电生理学、分子和细胞生物学方法将用于研究用绿色荧光蛋白标记的活体GnRH神经元。 将在发情周期期间和急性暴露于类固醇后,在负反馈和正反馈的生理模型中研究雌激素的作用。 工作假设是,雌激素反馈调节GnRH释放在两个网站:跨突触通过雌激素敏感的传入和直接对GnRH神经元;在每个网站,两种类型的信号传导机制被激活:基因组和非基因组。目的1将确定雌激素如何影响促性腺激素释放激素神经元的亲离子性突触输入。 目的2研究雌激素对GnRH神经元内电导、兴奋性和放电模式的影响. 目的3研究雌激素激活GnRH神经元的信号转导机制,探索雌激素诱导的影响GnRH神经元细胞兴奋性的蛋白质编码基因表达的变化,以及雌激素作用启动的激酶级联介导的非基因组作用。 从这三个目标的实验中获得的数据将扩大我们对雌激素作用如何通过不同机制和不同部位整合以影响生殖的理解,揭示GnRH神经元正反馈和负反馈调节的机制差异。 从这些研究中获得的知识将促进人类,家畜和濒危野生物种生育操纵的新的合理策略的发展,并可能适用于了解雌激素对更复杂的神经系统,如海马和皮质的作用。
英文摘要
Estrogens have multiple effects on cell function and survival in the central nervous system. The proposed research explores the sites and mechanisms through which estrogens control gonadotropin-releasing hormone (GnRH) neurons. These neurons form the final common pathway for central regulation of fertility; their proper function is thus critical to survival of vertebrate species. Depending on level and duration of exposure, estrogen can inhibit (negative feedback) or stimulate (positive feedback) GnRH release. The female reproductive cycle is characterized by a natural switch between negative and positive feedback that is critical to initiating the ovulatory process. How negative feedback, positive feedback and the switch between these modes are brought about is unknown. This physiological phenomenon combined with the relative simplicity of their inputs and the known effects of estrogen on GnRH secretory output make GnRH neurons an intriguing model for studying how multiple central estrogen actions are integrated to produce a response. Electrophysiological, molecular and cellular biological approaches will be used to study living GnRH neurons tagged with green fluorescent protein. Estrogen effects will be studied in physiological models of negative and positive feedback, during the estrous cycle and after acute exposure to the steroid. The working hypothesis is that estrogen feeds back to regulate GnRH release at two sites: transsynaptic via estrogen-sensitive afferents and directly on GnRH neurons; at each site, two types of signaling mechanisms are activated: genomic and non-genomic. Aim 1 will determine how estrogen acts to affect ionotropic synaptic inputs to GnRH neurons. Aim 2 will examine estrogen- induced changes in intrinsic conductances, excitability and firing pattern of GnRH neurons. Aim 3 will study the signaling mechanisms activated in GnRH neurons by estrogens, exploring estrogen-induced changes in the expression of genes coding for proteins that affect cell excitability in GnRH neurons, as well as non-genomic actions mediated by kinase cascades initiated by estrogen action. Data obtained from experiments in these three Aims will expand our understanding of how estrogen actions via different mechanisms and at different sites are integrated to impact reproduction by revealing mechanistic differences that underlie positive and negative feedback regulation of GnRH neurons. Knowledge gained from these studies will foster development of novel rational strategies for fertility manipulation in humans, domestic animals, and endangered wild species, and may be applicable to understanding estrogen action on more complex neural systems, such as hippocampus and cortex.
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会议论文
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