Structural Biology Unit, Institut de Biología Molecular de Barcelona CSIC, Barcelona, Spain.
ICREA Institució Catalana de Recerca i Estudis Avançats, Barcelona, Spain.
PLoS Pathog. 2019 Apr 5;15(4):e1007656. doi: 10.1371/journal.ppat.1007656. eCollection 2019 Apr.
Zika virus (ZIKV), a member of the Flaviviridae family, has emerged as a major public health threat, since ZIKV infection has been connected to microcephaly and other neurological disorders. Flavivirus genome replication is driven by NS5, an RNA-dependent RNA polymerase (RdRP) that also contains a N-terminal methyltransferase domain essential for viral mRNA capping. Given its crucial roles, ZIKV NS5 has become an attractive antiviral target. Here, we have used integrated structural biology approaches to characterize the supramolecular arrangement of the full-length ZIKV NS5, highlighting the assembly and interfaces between NS5 monomers within a dimeric structure, as well as the dimer-dimer interactions to form higher order fibril-like structures. The relative orientation of each monomer within the dimer provides a model to explain the coordination between MTase and RdRP domains across neighboring NS5 molecules and mutational studies underscore the crucial role of the MTase residues Y25, K28 and K29 in NS5 dimerization. The basic residue K28 also participates in GTP binding and competition experiments indicate that NS5 dimerization is disrupted at high GTP concentrations. This competition represents a first glimpse at a molecular level explaining how dimerization might regulate the capping process.
寨卡病毒(ZIKV)属于黄病毒科,是一种主要的公共卫生威胁,因为寨卡病毒感染与小头症和其他神经系统疾病有关。黄病毒基因组的复制由 NS5 驱动,它是一种 RNA 依赖性 RNA 聚合酶(RdRP),还包含一个 N 端甲基转移酶结构域,对于病毒 mRNA 的加帽至关重要。鉴于其关键作用,寨卡病毒 NS5 已成为有吸引力的抗病毒靶标。在这里,我们使用综合结构生物学方法来描述全长 ZIKV NS5 的超分子排列,突出了二聚体结构中 NS5 单体之间的组装和界面,以及二聚体-二聚体相互作用形成更高阶的纤维状结构。二聚体中每个单体的相对取向提供了一个模型,用于解释相邻 NS5 分子之间 MTase 和 RdRP 结构域的协调,突变研究强调了 MTase 残基 Y25、K28 和 K29 在 NS5 二聚化中的关键作用。碱性残基 K28 还参与 GTP 结合,竞争实验表明,在高 GTP 浓度下,NS5 二聚体被破坏。这种竞争代表了在分子水平上首次解释二聚化如何调节加帽过程的观点。