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原肌球蛋白前体mRNA在体外和体内的可变剪接

Alternative splicing of tropomyosin pre-mRNAs in vitro and in vivo.

作者信息

Helfman D M, Ricci W M, Finn L A

机构信息

Cold Spring Harbor Laboratory, New York 11724.

出版信息

Genes Dev. 1988 Dec;2(12A):1627-38. doi: 10.1101/gad.2.12a.1627.

Abstract

A single rat gene encodes both fibroblast TM-1 and skeletal muscle beta-tropomyosin by an alternative RNA-processing mechanism. The gene contains 11 exons: Exons 1-5 and exons 8 and 9 are constitutive exons common to all mRNAs expressed from this gene; exons 6 and 11 are used in fibroblasts as well as smooth muscle; exons 7 and 10 are used exclusively in skeletal muscle. We have studied the internal alternative RNA splice choice (exons 6 and 7) of the rat tropomyosin 1 gene in vitro, using nuclear extracts obtained from HeLa cells. Use of alternative splice sites in vitro is dependent on the ionic conditions of the assay, and correct splicing occurs only under well-defined salt conditions. Splicing of exon 5 to exon 6 (fibroblast-type splice) and exon 5 to exon 7 (skeletal muscle-type splice) was dependent on precursors in which exon 6 or 7 was first joined to exon 8. The same patterns of alternatively spliced RNAs were formed when similar templates were introduced in HeLa cells by transfection. Thus, there appears to be an ordered pathway of splicing in which the internal alternatively spliced exons must first be joined to the downstream constitutive exon before they can be spliced to the upstream constitutive exon. The data are consistent with a model in which the critical event in alternative splicing occurs during the joining of exon 6 to exon 8 (fibroblast-type splice) or exon 7 to exon 8 (skeletal muscle-type splice).

摘要

单个大鼠基因通过一种可变RNA加工机制编码成纤维细胞TM-1和骨骼肌β-原肌球蛋白。该基因包含11个外显子:外显子1-5以及外显子8和9是该基因表达的所有mRNA共有的组成型外显子;外显子6和11在成纤维细胞和平滑肌中使用;外显子7和10仅在骨骼肌中使用。我们利用从HeLa细胞获得的核提取物,在体外研究了大鼠原肌球蛋白1基因的内部可变RNA剪接选择(外显子6和7)。体外可变剪接位点的使用取决于测定的离子条件,并且正确的剪接仅在明确界定的盐条件下发生。外显子5与外显子6(成纤维细胞型剪接)和外显子5与外显子7(骨骼肌型剪接)的剪接受外显子6或7首先与外显子8连接的前体的影响。当通过转染将相似的模板引入HeLa细胞时,形成了相同模式的可变剪接RNA。因此,似乎存在一种有序的剪接途径,其中内部可变剪接的外显子必须首先与下游组成型外显子连接,然后才能与上游组成型外显子剪接。这些数据与一个模型一致,即在可变剪接中的关键事件发生在外显子6与外显子8连接(成纤维细胞型剪接)或外显子7与外显子8连接(骨骼肌型剪接)的过程中。

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