TRANSCRIPTIONAL REGULATION OF CRH GENE EXPRESSION
TRANSCRIPTIONAL REGULATION OF CRH GENE EXPRESSION
批准号:
3464174
负责人:
AUDREY F. SEASHOLTZ
金额:
$9.97万
依托单位国家:
美国
项目类别:
财政年份:
1990
资助国家:
美国
项目状态:
已结题
起止时间:
1990-12-01 至 1995-11-30
关键词:
DNA binding protein DNA footprinting animal tissue cell type corticosteroid receptors corticotropin releasing factor cyclic AMP dexamethasone fusion gene gel electrophoresis gene expression genetic library genetic mapping genetic regulation genetic regulatory element genetic transcription glucocorticoids hormone regulation /control mechanism human tissue laboratory rat neoplastic cell culture for noncancer research nucleic acid sequence protein purification reporter genes site directed mutagenesis tissue /cell culture transcription factor transfection
中文摘要
哺乳动物的应激反应在很大程度上是由
下丘脑-垂体-肾上腺(HPA)轴。关键的下丘脑释放
这个轴上的因子是促肾上腺皮质激素释放激素(CRH)。CRH
促肾上腺皮质激素(ACTH)的合成和分泌
脑下垂体前叶,进而刺激脑血管生成和释放
肾上腺皮质中的糖皮质激素。糖皮质激素然后调节
身体对压力的适应性反应。除了它在
下丘脑,CRH在大脑的许多其他区域产生,
外周,它似乎在适应性的协调中起作用
回应。因此,CRH的生产和释放代表着关键的控制级别
人类对外界刺激做出生理反应的能力可以
受到监管。
促肾上腺皮质激素释放激素的分泌调节已被广泛研究,但
负责激活或抑制表达的细胞机制
对CRH基因的了解仍然很少。这个项目的总体目标是
建议定义涉及到的分子机制
大鼠促肾上腺皮质激素释放激素基因的转录调控
类固醇和第二信使调节通路。先验基因
转移实验表明,crh基因受cAMP和cAMP的共同调控。
和糖皮质激素。该基因的糖皮质激素调节是
尤其耐人寻味,因为CRH基因似乎是不同的
受不同细胞类型的糖皮质激素调节。这部小说
糖皮质激素对CRH表达的调节将在
本提案具体侧重于:1)本地化和
阳性和/或基因的特征(通过定点突变)
用基因转移的方法治疗糖皮质激素阴性反应元件(S)
在培养的细胞系和原代培养物中;以及2)鉴定
用DNase I确定纯化的糖皮质激素受体的DNA结合部位
二甲基硫酸酯保护和干扰试验。然而,
转录因子经常相互作用,以中介独特的调节
任何特定的基因,所以糖皮质激素对CRH表达的调节
不能独立于涉及的其他监管机制而进行研究
在CRH的表达中。因此,我们将继续本地化其他客户代理
调控大鼠促肾上腺皮质激素释放激素基因的调控元件
5‘侧翼序列中DNA蛋白相互作用的特征
基因表达采用体外和体内生化方法。所获得的知识
这些研究将极大地增加我们对分子的理解
参与大鼠CRH基因转录调控的机制,以及
将使我们能够更好地理解这一重要的
体内的神经内分泌肽,
英文摘要
The mammalian stress response is mediated in large part by the
hypothalamic-pituitary-adrenal (HPA) axis. The key hypothalamic releasing
factor in this axis is corticotropin releasing hormone (CRH). CRH
stimulates synthesis and secretion of adrenocorticotropin (ACTH) from the
anterior pituitary which in turn stimulates the production and release of
glucocorticoids from the adrenal cortex. Glucocorticoids then mediate the
body's adaptive response to stress. In addition to its role in the
hypothalamus, CRH is produced in many other regions of the brain and
periphery where it appears to function in the coordination of adaptive
responses. Thus, CRH production and release represent key control levels
at which man's ability to respond physiologically to external stimuli can
be regulated.
The regulation of CRH secretion has been extensively studied, but the
cellular mechanisms responsible for activating or repressing the expression
of the CRH gene are still poorly understood. The overall goal of this
proposal is to define the molecular mechanisms involved in the
transcriptional regulation of the rat CRH gene, focusing specifically on
the steroid and second messenger regulation pathways. Previous gene
transfer experiments have shown that the CRH gene is regulated by both cAMP
and glucocorticoids. The glucocorticoid regulation of this gene is
especially intriguing, since the CRH gene appears to be differentially
regulated by glucocorticoids in different cell types. This novel
glucocorticoid regulation of CRH expression will be carefully examined in
the present proposal by focusing specifically on: 1) the localization and
characterization (by site-directed mutagenesis) of the positive and/or
negative glucocorticoid responsive element(s) using gene transfer methods
in cultured cell lines and primary cultures; and 2) the identification of
DNA-binding sites for the purified glucocorticoid receptor using DNase I
and dimethylsulfate protection and interference assays. However,
transcription factors often interact to mediate the unique regulation of
any specific gene, so the regulation of CRH expression by glucocorticoids
cannot be studied independently of the other regulatory mechanisms involved
in CRH expression. Therefore, we will continue to localize other cisacting
control elements involved in regulation of the rat CRH gene and further
characterize the DNAprotein interactions in the 5' flanking sequence of the
gene using in vitro and in vivo biochemical methods. The knowledge gained
from these studies will greatly increase our understanding of the molecular
mechanisms involved in transcriptional control of the rat CRH gene, and
will allow us to better understand the complex regulation of this important
neuroendocrine peptide in vivo,
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