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RNA结构:实验分析

RNA structure: experimental analysis.

作者信息

Felden Brice

机构信息

Université de Rennes I, Upres JE2311, Inserm U835 Biochimie Pharmaceutique, 2 Avenue du Prof. Léon Bernard, 35043 Rennes, France.

出版信息

Curr Opin Microbiol. 2007 Jun;10(3):286-91. doi: 10.1016/j.mib.2007.05.001. Epub 2007 May 25.

DOI:10.1016/j.mib.2007.05.001
PMID:17532253
Abstract

Among all of the biological macromolecules, the functional versatility of RNAs is unique including encoding or transferring genetic information and performing catalysis. These biological functions are highly dependent upon RNA folding and structure. Since the discovery of catalytic RNAs in the early 1980s, a recent breakthrough came from the identification of a wealth of micro RNAs, small interfering RNAs and regulatory RNAs, all involved in modulation of gene expression. The structure of these novel RNAs, either free or in complex with specific ligands, can be analyzed using various experimental strategies, including X-ray crystallography, cryo-electron microscopy, nuclear magnetic resonance spectroscopy, structure-specific probes, with some that can be used in living cells, RNA engineering, thermal denaturation and mass spectrometry. Among these, X-ray crystallography has recently enabled determination of the structures of several large and complex RNAs, as well as of ribonucleoprotein complexes. The database of RNA structure has grown tremendously since the recent crystal structure analyses of the prokaryotic ribosome and its subunits. These methods are now widely applied to a variety of biologically relevant RNAs.

摘要

在所有生物大分子中,RNA的功能多样性独一无二,包括编码或传递遗传信息以及进行催化作用。这些生物学功能高度依赖于RNA折叠和结构。自20世纪80年代初发现催化性RNA以来,最近的一项突破是鉴定出了大量微小RNA、小干扰RNA和调控RNA,它们都参与基因表达的调控。这些新型RNA的结构,无论是游离状态还是与特定配体形成复合物的状态,都可以使用各种实验策略进行分析,包括X射线晶体学、冷冻电子显微镜、核磁共振光谱、结构特异性探针,其中一些可用于活细胞、RNA工程、热变性和质谱分析。其中,X射线晶体学最近已能够确定几种大型复杂RNA以及核糖核蛋白复合物的结构。自从对原核核糖体及其亚基进行了最近的晶体结构分析以来,RNA结构数据库得到了极大的扩展。这些方法现在广泛应用于各种与生物学相关的RNA。

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