首页> 美国卫生研究院文献>PLoS Pathogens >The Hexamer Structure of the Rift Valley Fever Virus Nucleoprotein Suggests a Mechanism for its Assembly into Ribonucleoprotein Complexes
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The Hexamer Structure of the Rift Valley Fever Virus Nucleoprotein Suggests a Mechanism for its Assembly into Ribonucleoprotein Complexes

机译:裂谷热病毒核蛋白的六聚体结构表明其组装成核糖核蛋白复合体的机制。

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摘要

Rift Valley fever virus (RVFV), a Phlebovirus with a genome consisting of three single-stranded RNA segments, is spread by infected mosquitoes and causes large viral outbreaks in Africa. RVFV encodes a nucleoprotein (N) that encapsidates the viral RNA. The N protein is the major component of the ribonucleoprotein complex and is also required for genomic RNA replication and transcription by the viral polymerase. Here we present the 1.6 Å crystal structure of the RVFV N protein in hexameric form. The ring-shaped hexamers form a functional RNA binding site, as assessed by mutagenesis experiments. Electron microscopy (EM) demonstrates that N in complex with RNA also forms rings in solution, and a single-particle EM reconstruction of a hexameric N-RNA complex is consistent with the crystallographic N hexamers. The ring-like organization of the hexamers in the crystal is stabilized by circular interactions of the N terminus of RVFV N, which forms an extended arm that binds to a hydrophobic pocket in the core domain of an adjacent subunit. The conformation of the N-terminal arm differs from that seen in a previous crystal structure of RVFV, in which it was bound to the hydrophobic pocket in its own core domain. The switch from an intra- to an inter-molecular interaction mode of the N-terminal arm may be a general principle that underlies multimerization and RNA encapsidation by N proteins from Bunyaviridae. Furthermore, slight structural adjustments of the N-terminal arm would allow RVFV N to form smaller or larger ring-shaped oligomers and potentially even a multimer with a super-helical subunit arrangement. Thus, the interaction mode between subunits seen in the crystal structure would allow the formation of filamentous ribonucleocapsids in vivo. Both the RNA binding cleft and the multimerization site of the N protein are promising targets for the development of antiviral drugs.
机译:裂谷热病毒(RVFV)是一种由三只单链RNA片段组成的基因组病毒,被感染的蚊子传播,并在非洲引起大规模病毒爆发。 RVFV编码包裹病毒RNA的核蛋白(N)。 N蛋白是核糖核蛋白复合物的主要成分,也是基因组RNA复制和病毒聚合酶转录所必需的。在这里,我们以六聚体形式展示RVFV N蛋白的1.6Å晶体结构。通过诱变实验评估,环形六聚体形成功能性RNA结合位点。电子显微镜(EM)证明与RNA结合的N在溶液中也会形成环,六聚N-RNA复合物的单粒子EM重建与晶体学N六聚体一致。晶体中六聚体的环状组织通过RVFV N的N末端的环状相互作用而得以稳定,这形成了一个延伸的臂,该臂与相邻亚基核心域中的疏水性口袋结合。 N末端臂的构象与RVFV以前的晶体结构不同,后者在其自身的核心结构域中与疏水性口袋结合。从N末端臂的分子内相互作用模式转换为分子间相互作用模式可能是基于来自Bunyaviridae的N蛋白进行多聚和RNA衣壳化的一般原理。此外,对N-末端臂的轻微结构调整将使RVFV N形成较小或较大的环状低聚物,甚至可能形成具有超螺旋亚基排列的多聚体。因此,在晶体结构中看到的亚基之间的相互作用模式将允许在体内形成丝状核糖核衣壳。 RNA结合裂隙和N蛋白的多聚位点都是开发抗病毒药物的有希望的目标。

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