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通过电子显微镜观察嗜热四膜虫I组内含子的三级结构域

Visualization of a tertiary structural domain of the Tetrahymena group I intron by electron microscopy.

作者信息

Wang Y H, Murphy F L, Cech T R, Griffith J D

机构信息

Lineberger Comprehensive Cancer Center, University of North Carolina, Chapel Hill 27599-7295.

出版信息

J Mol Biol. 1994 Feb 11;236(1):64-71. doi: 10.1006/jmbi.1994.1118.

Abstract

The P4-P6 domain RNA of the group I intron of Tetrahymena thermophila has previously been shown by chemical probing to be an independently folding domain of the intron's tertiary structure. To directly visualize this tertiary structure, the P4-P6 domain and two folding defective mutants were prepared for high-resolution electron microscopy using tungsten shadowcasting. In the presence of Mg2+, the P4-P6 domain predominantly consists of compact molecules, while the two mutant RNAs are nearly all rod-like molecules. The measured length of the rod-like molecules is 64 (+/- 6) bp, which agrees closely with the length expected for molecules containing secondary structure only. In the absence of Mg2+, the P4-P6 domain contains threefold or tenfold fewer compact structures (depending on the mounting procedures) than in the presence of Mg2+. These results provide direct evidence for the overall shape of the tertiary structure proposed on the basis of biochemical experiment, and they confirm the Mg2+ dependence of tertiary folding. An equilibrium between the extended (rod-like) and the compact structures is suggested, with the concentration of bound Mg2+ and different mounting methods influencing the direction of the equilibrium. The entire group I ribozyme (L-21 Sca I RNA) was also examined by electron microscopy in the presence of Mg2+, and was revealed to have a compact shape. These studies present a direct demonstration of long-range interactions in a catalytic RNA molecule.

摘要

嗜热四膜虫第一类内含子的P4 - P6结构域RNA先前已通过化学探针实验表明是该内含子三级结构中一个可独立折叠的结构域。为了直接观察这种三级结构,使用钨投影法制备了P4 - P6结构域以及两个折叠缺陷突变体用于高分辨率电子显微镜观察。在Mg2 +存在的情况下,P4 - P6结构域主要由紧密型分子组成,而两个突变RNA几乎全是棒状分子。测得的棒状分子长度为64(±6)bp,这与仅含有二级结构的分子预期长度非常吻合。在没有Mg2 +的情况下,P4 - P6结构域中紧密型结构比在有Mg2 +时少三倍或十倍(取决于固定程序)。这些结果为基于生化实验提出的三级结构的整体形状提供了直接证据,并证实了三级折叠对Mg2 +的依赖性。研究表明,伸展型(棒状)和紧密型结构之间存在平衡,结合的Mg2 +浓度和不同的固定方法会影响平衡的方向。在Mg2 +存在的情况下,还通过电子显微镜检查了整个第一类核酶(L - 21 Sca I RNA),发现其形状紧密。这些研究直接证明了催化RNA分子中的长程相互作用。

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