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组织特异性可变前体mRNA剪接的候选内含子调控元件的计算分析

Computational analysis of candidate intron regulatory elements for tissue-specific alternative pre-mRNA splicing.

作者信息

Brudno M, Gelfand M S, Spengler S, Zorn M, Dubchak I, Conboy J G

机构信息

National Energy Research Scientific Computing Center and Life Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

Nucleic Acids Res. 2001 Jun 1;29(11):2338-48. doi: 10.1093/nar/29.11.2338.

DOI:10.1093/nar/29.11.2338
PMID:11376152
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC55704/
Abstract

Alternative pre-mRNA splicing is a major cellular process by which functionally diverse proteins can be generated from the primary transcript of a single gene, often in tissue-specific patterns. The current study investigates the hypothesis that splicing of tissue-specific alternative exons is regulated in part by control sequences in adjacent introns and that such elements may be recognized via computational analysis of exons sharing a highly specific expression pattern. We have identified 25 brain-specific alternative cassette exons, compiled a dataset of genomic sequences encompassing these exons and their adjacent introns and used word contrast algorithms to analyze key features of these nucleotide sequences. By comparison to a control group of constitutive exons, brain-specific exons were often found to possess the following: divergent 5' splice sites; highly pyrimidine-rich upstream introns; a paucity of GGG motifs in the downstream intron; a highly statistically significant over-representation of the hexanucleotide UGCAUG in the proximal downstream intron. UGCAUG was also found at a high frequency downstream of a smaller group of muscle-specific exons. Intriguingly, UGCAUG has been identified previously in a few intron splicing enhancers. Our results indicate that this element plays a much wider role than previously appreciated in the regulated tissue-specific splicing of many alternative exons.

摘要

可变前体mRNA剪接是一种主要的细胞过程,通过该过程,通常以组织特异性模式从单个基因的初级转录本中产生功能多样的蛋白质。当前的研究调查了这样一种假设,即组织特异性可变外显子的剪接部分受相邻内含子中的控制序列调节,并且这些元件可以通过对具有高度特异性表达模式的外显子进行计算分析来识别。我们已经鉴定出25个脑特异性可变盒式外显子,编制了一个包含这些外显子及其相邻内含子的基因组序列数据集,并使用词对比算法分析这些核苷酸序列的关键特征。与组成型外显子的对照组相比,经常发现脑特异性外显子具有以下特征:不同的5'剪接位点;富含嘧啶的上游内含子;下游内含子中缺乏GGG基序;近端下游内含子中六核苷酸UGCAUG的高度统计学显著的过表达。在一小部分肌肉特异性外显子的下游也发现UGCAUG的频率很高。有趣的是,UGCAUG先前已在一些内含子剪接增强子中被鉴定出来。我们的结果表明,该元件在许多可变外显子的受调控组织特异性剪接中发挥的作用比以前认识到的要广泛得多。

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本文引用的文献

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Cooperative assembly of an hnRNP complex induced by a tissue-specific homolog of polypyrimidine tract binding protein.由多嘧啶序列结合蛋白的组织特异性同源物诱导的hnRNP复合物的协同组装。
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RNA polymerase II and the integration of nuclear events.RNA聚合酶II与核内事件的整合
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A brain-enriched polypyrimidine tract-binding protein antagonizes the ability of Nova to regulate neuron-specific alternative splicing.一种在脑中富集的多嘧啶序列结合蛋白可拮抗Nova调节神经元特异性可变剪接的能力。
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