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I 组内含子的分子遗传学:剪接所需的 RNA 结构和蛋白质因子——综述

Molecular genetics of group I introns: RNA structures and protein factors required for splicing--a review.

作者信息

Burke J M

机构信息

Department of Microbiology, University of Vermont, Burlington 05405.

出版信息

Gene. 1988 Dec 20;73(2):273-94. doi: 10.1016/0378-1119(88)90493-3.

Abstract

In vivo and in vitro genetic techniques have been widely used to investigate the structure-function relationships and requirements for splicing of group-I introns. Analyses of group-I introns from extremely diverse genetic systems, including fungal mitochondria, protozoan nuclei, and bacteriophages, have yielded results which are complementary and highly consistent. In vivo genetic studies of fungal mitochondrial systems have served to identify cis-acting sequences within mitochondrial introns, and trans-acting protein products of mitochondrial and nuclear genes which are important for splicing, and to show that some mitochondrial introns are mobile genetic elements. In vitro genetic studies of the self-splicing intron within the Tetrahymena thermophila nuclear large ribosomal RNA precursor (Tetrahymena LSU intron) have been used to examine essential and nonessential RNA sequences and structures in RNA-catalyzed splicing. In vivo and in vitro genetic analysis of the intron within the bacteriophage T4 td gene has permitted the detailed examination of mutant phenotypes by analyzing splicing in vivo and self-splicing in vitro. The genetic studies combined with phylogenetic analysis of intron structure based on comparative nucleotide sequence data [Cech 73 (1988) 259-271] and with biochemical data obtained from in vitro splicing experiments have resulted in significant advances in understanding the biology and chemistry of group-I introns.

摘要

体内和体外遗传技术已被广泛用于研究I组内含子的结构-功能关系及剪接需求。对来自极其多样的遗传系统(包括真菌线粒体、原生动物细胞核和噬菌体)的I组内含子的分析,已得出互补且高度一致的结果。真菌线粒体系统的体内遗传研究已用于鉴定线粒体内含子内的顺式作用序列、对剪接很重要的线粒体和核基因的反式作用蛋白产物,并表明一些线粒体内含子是可移动遗传元件。嗜热四膜虫核大核糖体RNA前体中的自我剪接内含子(四膜虫LSU内含子)的体外遗传研究已用于检查RNA催化剪接中必需和非必需的RNA序列及结构。噬菌体T4 td基因内含子的体内和体外遗传分析通过分析体内剪接和体外自我剪接,得以详细检查突变体表型。这些遗传研究与基于比较核苷酸序列数据的内含子结构系统发育分析[切赫73(1988年)259 - 271]以及从体外剪接实验获得的生化数据相结合,在理解I组内含子的生物学和化学方面取得了重大进展。

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