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水疱性口炎病毒磷蛋白C端核蛋白-RNA结合结构域的溶液结构

Solution structure of the C-terminal nucleoprotein-RNA binding domain of the vesicular stomatitis virus phosphoprotein.

作者信息

Ribeiro Euripedes A, Favier Adrien, Gerard Francine C A, Leyrat Cédric, Brutscher Bernhard, Blondel Danielle, Ruigrok Rob W H, Blackledge Martin, Jamin Marc

机构信息

UJF-EMBL-CNRS-UMR 5233-Unit of Virus Host Cell Interactions, 6 rue Jules Horowitz, 38042 Grenoble Cedex 9, France.

出版信息

J Mol Biol. 2008 Oct 3;382(2):525-38. doi: 10.1016/j.jmb.2008.07.028. Epub 2008 Jul 16.

DOI:10.1016/j.jmb.2008.07.028
PMID:18657547
Abstract

Beyond common features in their genome organization and replication mechanisms, the evolutionary relationships among viruses of the Rhabdoviridae family are difficult to decipher because of the great variability in the amino acid sequence of their proteins. The phosphoprotein (P) of vesicular stomatitis virus (VSV) is an essential component of the RNA transcription and replication machinery; in particular, it contains binding sites for the RNA-dependent RNA polymerase and for the nucleoprotein. Here, we devised a new method for defining boundaries of structured domains from multiple disorder prediction algorithms, and we identified an autonomous folding C-terminal domain in VSV P (P(CTD)). We show that, like the C-terminal domain of rabies virus (RV) P, VSV P(CTD) binds to the viral nucleocapsid (nucleoprotein-RNA complex). We solved the three-dimensional structure of VSV P(CTD) by NMR spectroscopy and found that the topology of its polypeptide chain resembles that of RV P(CTD). The common part of both proteins could be superimposed with a backbone RMSD from mean atomic coordinates of 2.6 A. VSV P(CTD) has a shorter N-terminal helix (alpha(1)) than RV P(CTD); it lacks two alpha-helices (helices alpha(3) and alpha(6) of RV P), and the loop between strands beta(1) and beta(2) is longer than that in RV. Dynamical properties measured by NMR relaxation revealed the presence of fast motions (below the nanosecond timescale) in loop regions (amino acids 209-214) and slower conformational exchange in the N- and C-terminal helices. Characterization of a longer construct indicated that P(CTD) is preceded by a flexible linker. The results presented here support a modular organization of VSV P, with independent folded domains separated by flexible linkers, which is conserved among different genera of Rhabdoviridae and is similar to that proposed for the P proteins of the Paramyxoviridae.

摘要

除了基因组组织和复制机制方面的共同特征外,弹状病毒科病毒之间的进化关系很难解读,因为其蛋白质的氨基酸序列差异很大。水疱性口炎病毒(VSV)的磷蛋白(P)是RNA转录和复制机制的重要组成部分;特别是,它包含依赖RNA的RNA聚合酶和核蛋白的结合位点。在这里,我们设计了一种新方法,通过多种无序预测算法来定义结构化结构域的边界,并在VSV P中鉴定出一个自主折叠的C端结构域(P(CTD))。我们发现,与狂犬病病毒(RV)P的C端结构域一样,VSV P(CTD)与病毒核衣壳(核蛋白-RNA复合物)结合。我们通过核磁共振光谱法解析了VSV P(CTD)的三维结构,发现其多肽链的拓扑结构与RV P(CTD)相似。两种蛋白质的共同部分可以与平均原子坐标的主链均方根偏差为2.6 Å进行叠加。VSV P(CTD)的N端螺旋(α(1))比RV P(CTD)短;它缺少两个α螺旋(RV P的α(3)和α(6)螺旋),β(1)和β(2)链之间的环比RV中的长。通过核磁共振弛豫测量的动力学性质表明,环区域(氨基酸209-214)存在快速运动(低于纳秒时间尺度),N端和C端螺旋存在较慢的构象交换。对一个更长构建体的表征表明,P(CTD)之前有一个柔性接头。这里展示的结果支持VSV P的模块化组织,其独立折叠的结构域由柔性接头分隔,这在弹状病毒科的不同属中是保守的,并且与副粘病毒科P蛋白的组织方式相似。

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