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弹性蛋白基因的结构及弹性蛋白mRNA的可变剪接:对人类疾病的影响

Structure of the elastin gene and alternative splicing of elastin mRNA: implications for human disease.

作者信息

Indik Z, Yeh H, Ornstein-Goldstein N, Kucich U, Abrams W, Rosenbloom J C, Rosenbloom J

机构信息

Department of Anatomy and Histology, School of Dental Medicine, University of Pennsylvania, Philadelphia 19104.

出版信息

Am J Med Genet. 1989 Sep;34(1):81-90. doi: 10.1002/ajmg.1320340115.

Abstract

The protein elastin is largely responsible for the elastic properties of vertebrate lungs, large blood vessels, and skin. The structure of the human, bovine, and chick elastin gene and protein monomer, tropoelastin, has recently been elucidated by using techniques of molecular biology. Extensive homology of amino acid sequence exists among the mammalian species and there is in addition strong conservation of nucleotide sequences in the 3' untranslated region of the gene. The translated exons are small and embedded in large expanses of introns. Sequences coding for the hydrophobic regions, responsible for the elastic properties of the molecule, and the alanine-lysine rich regions, responsible for crosslink formation between molecules, reside in separate exons and alternate for the most part in the elastin gene. S1 analyses and sequence analysis of cDNA and genomic clones have indicated that there is substantial alternative splicing of the primary elastin transcript. Variations in the structure of mRNAs resulting from alternative splicing could explain the existence of the multiple forms of tropoelastin observed electrophoretically in several species. Different kinds of splicing patterns could occur in human populations and may contribute to aging and pathological situations in the cardiovascular and pulmonary systems.

摘要

弹性蛋白在很大程度上决定了脊椎动物肺、大血管和皮肤的弹性特性。最近,通过使用分子生物学技术,已经阐明了人类、牛和鸡的弹性蛋白基因以及蛋白质单体原弹性蛋白的结构。哺乳动物物种之间存在广泛的氨基酸序列同源性,此外,基因3'非翻译区的核苷酸序列也有很强的保守性。翻译后的外显子很小,嵌入在大片的内含子中。负责分子弹性特性的疏水区域以及负责分子间交联形成的富含丙氨酸 - 赖氨酸的区域的编码序列位于不同的外显子中,并且在弹性蛋白基因中大部分交替出现。对cDNA和基因组克隆的S1分析及序列分析表明,弹性蛋白初级转录本存在大量可变剪接。可变剪接导致的mRNA结构变化可以解释在多个物种中通过电泳观察到的多种形式的原弹性蛋白的存在。不同类型的剪接模式可能在人类群体中出现,并可能导致心血管和肺部系统的衰老及病理状况。

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