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Mechanisms Regulating Alternative pre-mRNA Splicing

Mechanisms Regulating Alternative pre-mRNA Splicing
调节选择性前 mRNA 剪接的机制
批准号:
6781818
负责人:
James G. Patton
金额:
$27.18万
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:
2002-08-01 至 2006-07-31

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中文摘要
翻译
大多数真核生物基因被非编码内含子打断,这些内含子必须从mrna前转录物中去除才能产生功能蛋白。内含子的剪接非常高效和快速,考虑到在高等真核生物中区分内含子和外显子的信号并不保守,这是一项惊人的壮举。剪接在正常细胞功能中的重要性的一个推论是,大约15%的特征性遗传疾病涉及导致剪接缺陷的突变。此外,60%或更多的人类基因受到选择性剪接的影响,这要求细胞不仅能够准确识别内含子和外显子之间的差异,而且能够准确识别选择性剪接的外显子之间的差异。我们一直在研究选择性剪接的调控,重点关注特定剪接位点被激活或抑制的分子机制。在本文的第一部分,实验旨在了解α -原肌球蛋白基因的互斥外显子2和3的调控。对控制剪接所需的顺式作用序列的解剖已经确定了平滑肌细胞中抑制剪接所需的外显子3侧翼的元件。PTB (hnRNP I)与这些元素中的一个结合,但与直接相邻的保守的UGC重复序列结合的因素的身份仍然未知。提出了生化纯化来鉴定该因子,并确定其如何参与PTB抑制剪接。与外显子3的抑制相反,在平滑肌细胞中,外显子2的激活是由四个富含嘌呤的增强子元件和剪接因子SR蛋白家族的一个或多个成员介导的。体内和体外剪接试验将用于鉴定哪些SR蛋白是外显子2激活所必需的。在本提案的第二部分,将扩展SR蛋白对剪接的调控,包括一个新的SR相关蛋白(SRrp86)的表征,该蛋白可以激活或抑制特定的SR家族成员。SRrp86的具体靶点尚不清楚,但初步数据表明它通过蛋白-蛋白相互作用起作用。我们提出了实验来确定这种相互作用如何改变SR蛋白的活性,并确定特定的SR蛋白靶点。总的来说,本实验旨在了解SR蛋白和hnRNP蛋白抑制和激活剪接的机制基础。
英文摘要
Most eukaryotic genes are interrupted by non-coding introns that must be removed from pre-mRNA transcripts for the production of functional proteins. The splicing of introns is remarkably efficient and rapid, an amazing feat considering that the signals that delineate introns from exons are not conserved in higher eukaryotes. A corollary of the importance of splicing in normal cell function is that approximately 15% of characterized genetic diseases involve mutations that cause defects in splicing. Further, 60% or more of human genes are subject to alternative splicing requiring that cells not only be able to accurately recognize the difference between introns and exons, but also between alternatively spliced exons. We have been studying the regulation of alternative splicing focusing on the molecular mechanisms by which specific splice sites are activated or repressed. In the first part of this proposal, experiments are designed to understand the regulation of the mutually exclusive exons 2 and 3 of the alpha- tropomyosin gene. Dissection of the cis-acting sequences needed to control splicing have identified elements flanking exon 3 that are needed to repress splicing in smooth muscle cells. PTB (hnRNP I) binds to one of these elements but the identity of factors that bind to a directly adjacent, conserved UGC repeat remains unknown. Biochemical purification is proposed to identify this factor and determine how it participates with PTB to repress splicing. In contrast to repression of exon 3, activation of exon 2 is needed in smooth muscle cells mediated by four purine-rich enhancer elements and one or more members of the SR protein family of splicing factors. In vivo and in vitro splicing assays will be used to identify which SR proteins are essential for exon 2 activation. In the second part of this proposal, regulation of splicing by SR proteins will be expanded to include characterization of a new SR-related protein (SRrp86) that can activate or repress specific SR family members. The specific targets of SRrp86 are unknown but preliminary data suggests that it functions by protein-protein interaction. Experiments are proposed to determine how such interaction alters SR protein activity and to identify specific SR protein targets. Overall, the experiments in this proposal seek to understand the mechanistic basis underlying the repression and activation of splicing by SR proteins and hnRNP proteins.
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