Cryo-EM structures of Nipah virus polymerase complex reveal highly varied interactions between L and P proteins among paramyxoviruses.

IF 13.6 1区 生物学 Q1 CELL BIOLOGY
Lu Xue, Tiancai Chang, Jiacheng Gui, Zimu Li, Heyu Zhao, Bingqian Zou, Junnan Lu, Mei Li, Xin Wen, Shenghua Gao, Peng Zhan, Lijun Rong, Liqiang Feng, Peng Gong, Jun He, Xinwen Chen, Xiaoli Xiong
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Abstract

Nipah virus (NiV) and related viruses form a distinct henipavirus genus within the Paramyxoviridae family. NiV continues to spillover into the humans causing deadly outbreaks with increasing human-bat interaction. NiV encodes the large protein (L) and phosphoprotein (P) to form the viral RNA polymerase machinery. Their sequences show limited homologies to those of non-henipavirus paramyxoviruses. We report two cryo-electron microscopy (cryo-EM) structures of the Nipah virus (NiV) polymerase L-P complex, expressed and purified in either its full-length or truncated form. The structures resolve the RNA-dependent RNA polymerase (RdRp) and polyribonucleotidyl transferase (PRNTase) domains of the L protein, as well as a tetrameric P protein bundle bound to the L-RdRp. L-protein C-terminal regions are unresolved, indicating flexibility. Two PRNTase domain zinc-binding sites, conserved in most Mononegavirales, are confirmed essential for NiV polymerase activity. The structures further reveal anchoring of the P protein bundle and P protein X domain (XD) linkers on L, via an interaction pattern distinct among Paramyxoviridae. These interactions facilitate binding of a P protein XD linker in the nucleotide entry channel and distinct positioning of other XD linkers. We show that the disruption of the L-P interactions reduces NiV polymerase activity. The reported structures should facilitate rational antiviral-drug discovery and provide a guide for the functional study of NiV polymerase.

尼帕病毒聚合酶复合物的低温电镜结构揭示了副粘病毒之间L和P蛋白之间高度不同的相互作用。
尼帕病毒和相关病毒在副粘病毒科中形成一个独特的尼帕病毒属。NiV继续向人类传播,随着人与蝙蝠相互作用的增加,造成致命的疫情。NiV编码大蛋白(L)和磷蛋白(P),形成病毒RNA聚合酶机制。它们的序列与非亨尼帕病毒副粘病毒的序列具有有限的同源性。我们报道了尼帕病毒(NiV)聚合酶L-P复合物的两个低温电镜(cro - em)结构,以其全长或截短形式表达和纯化。该结构分解了L蛋白的RNA依赖性RNA聚合酶(RdRp)和多核糖核苷酸转移酶(PRNTase)结构域,以及与L-RdRp结合的四聚体P蛋白束。l蛋白c端区域未解析,表明具有灵活性。在大多数单奈加病毒中保守的两个PRNTase结构域锌结合位点被证实对NiV聚合酶活性至关重要。这些结构进一步揭示了P蛋白束和P蛋白X结构域(XD)连接物在L上的锚定,这是通过副粘病毒科之间独特的相互作用模式实现的。这些相互作用促进了P蛋白XD连接体在核苷酸进入通道中的结合和其他XD连接体的独特定位。我们发现L-P相互作用的破坏降低了NiV聚合酶的活性。所报道的结构有助于合理的抗病毒药物的发现,并为NiV聚合酶的功能研究提供指导。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Protein & Cell
Protein & Cell CELL BIOLOGY-
CiteScore
24.00
自引率
0.90%
发文量
1029
审稿时长
6-12 weeks
期刊介绍: Protein & Cell is a monthly, peer-reviewed, open-access journal focusing on multidisciplinary aspects of biology and biomedicine, with a primary emphasis on protein and cell research. It publishes original research articles, reviews, and commentaries across various fields including biochemistry, biophysics, cell biology, genetics, immunology, microbiology, molecular biology, neuroscience, oncology, protein science, structural biology, and translational medicine. The journal also features content on research policies, funding trends in China, and serves as a platform for academic exchange among life science researchers.
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