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电镜揭示真核生物 RNase P 和 RNase MRP 的模块化结构。

Modular architecture of eukaryotic RNase P and RNase MRP revealed by electron microscopy.

机构信息

School of Biological Sciences, University of Edinburgh, Edinburgh EH9 3JR, Scotland, UK.

出版信息

Nucleic Acids Res. 2012 Apr;40(7):3275-88. doi: 10.1093/nar/gkr1217. Epub 2011 Dec 13.

Abstract

Ribonuclease P (RNase P) and RNase MRP are closely related ribonucleoprotein enzymes, which process RNA substrates including tRNA precursors for RNase P and 5.8 S rRNA precursors, as well as some mRNAs, for RNase MRP. The structures of RNase P and RNase MRP have not yet been solved, so it is unclear how the proteins contribute to the structure of the complexes and how substrate specificity is determined. Using electron microscopy and image processing we show that eukaryotic RNase P and RNase MRP have a modular architecture, where proteins stabilize the RNA fold and contribute to cavities, channels and chambers between the modules. Such features are located at strategic positions for substrate recognition by shape and coordination of the cleaved-off sequence. These are also the sites of greatest difference between RNase P and RNase MRP, highlighting the importance of the adaptation of this region to the different substrates.

摘要

核糖核酸酶 P(RNase P)和核糖核酸酶 MRP 是密切相关的核糖核蛋白酶,它们可以加工包括 tRNA 前体(RNase P 的底物)和 5.8S rRNA 前体(RNase MRP 的底物)在内的 RNA 底物,以及一些 mRNA。RNase P 和 RNase MRP 的结构尚未解决,因此尚不清楚蛋白质如何有助于复合物的结构以及如何确定底物特异性。通过电子显微镜和图像处理,我们表明真核生物 RNase P 和 RNase MRP 具有模块化结构,其中蛋白质稳定 RNA 折叠并有助于模块之间的空腔、通道和腔室。这些特征位于通过切割序列的形状和配位来识别底物的战略位置。这些也是 RNase P 和 RNase MRP 之间差异最大的部位,突出了该区域适应不同底物的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b5a/3326328/49d7d814357d/gkr1217f1.jpg

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