Interaction of West Nile virus NS5 with orthoflavivirus SLA RNAs and their effects on viral replication and inhibition.

IF 3.8 2区 医学 Q2 VIROLOGY
Journal of Virology Pub Date : 2025-09-23 Epub Date: 2025-08-18 DOI:10.1128/jvi.02023-24
Mandi A Feinberg, My T Le, Kassandra L Carpio, Ekaterina Knyazhanskaya, Alan D T Barrett, Kyung H Choi
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引用次数: 0

Abstract

West Nile virus (WNV) is a single-stranded, positive-sense RNA virus in the Orthoflavivirus genus, within Flaviviridae. The genus encompasses numerous pathogens of public health importance, including WNV, dengue virus (DENV), Zika virus (ZIKV), and Japanese encephalitis virus (JEV). Orthoflavivirus replication depends on the presence of the stem-loop A (SLA) structure in the 5' untranslated region of the genome. The viral polymerase, NS5, interacts with the SLA and initiates synthesis of the negative-strand RNA. The sequences and secondary structures of SLA and NS5 are highly conserved across orthoflaviviruses, suggesting that the viruses utilize a similar SLA-mediated replication mechanism. Here, we determined the molecular shapes of WNV and JEV SLAs and investigated WNV NS5 interaction with orthoflavivirus SLAs. Although WNV NS5 interacts with DENV, ZIKV, and JEV SLAs in binding assays, only DENV and ZIKV SLAs could replace WNV SLA for viral replication. Next, we found that the top and side loops of SLA are important regions for WNV NS5 interaction. Consequently, when these SLA mutations were introduced into a WNV replicon, genomic replication was greatly reduced. Finally, we tested whether the WNV SLA mimic could inhibit viral replication. The addition of exogenous SLA reduces replication of both WNV replicon and infectious virus, suggesting that exogenous SLA can outcompete the viral SLA for NS5 interaction. Next-generation sequencing data indicate that the presence of exogenous SLA during infection increased the genetic diversity of WNV.IMPORTANCEWest Nile virus (WNV) causes West Nile disease in humans. Approximately 1 in 150 cases develops serious neurological complications, such as meningitis or encephalitis. Currently, no vaccines or antiviral treatments are available. WNV relies on a conserved RNA element in the genome, known as stem-loop A (SLA), to recruit viral polymerase for replication. We found that WNV polymerase can bind the SLAs of other orthoflaviviruses, including dengue virus (DENV), Zika virus (ZIKV), and Japanese encephalitis virus (JEV). However, only the DENV and ZIKV SLAs supported replication when substituted into a WNV replicon. The failure of the JEV SLA to support WNV replication suggests that efficient replication requires additional virus-specific factors beyond the polymerase-SLA interaction. We then tested whether exogenous SLA could act as an RNA decoy to compete with genomic SLA and inhibit viral replication. The addition of SLA RNA in virus-infected cells significantly reduced viral replication and infection, highlighting the therapeutic potential of viral RNA mimic against WNV.

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西尼罗病毒NS5与正黄病毒SLA rna的相互作用及其对病毒复制和抑制的影响
西尼罗河病毒(WNV)是黄病毒科正黄病毒属的一种单链阳性RNA病毒。该属包括许多具有公共卫生重要性的病原体,包括西尼罗河病毒、登革热病毒(DENV)、寨卡病毒(ZIKV)和日本脑炎病毒(JEV)。正黄病毒的复制依赖于基因组5'非翻译区茎环A (SLA)结构的存在。病毒聚合酶NS5与SLA相互作用并启动负链RNA的合成。SLA和NS5的序列和二级结构在正黄病毒中高度保守,表明病毒利用类似的SLA介导的复制机制。在这里,我们确定了西尼罗河病毒和乙脑病毒SLAs的分子形状,并研究了西尼罗河病毒NS5与正黄病毒SLAs的相互作用。虽然在结合实验中,WNV NS5与DENV、ZIKV和JEV SLA相互作用,但只有DENV和ZIKV SLA可以取代WNV SLA进行病毒复制。其次,我们发现SLA的顶环和侧环是WNV - NS5相互作用的重要区域。因此,当这些SLA突变被引入到西尼罗河病毒复制子中时,基因组复制被大大减少。最后,我们测试了WNV SLA模拟物是否能抑制病毒复制。外源SLA的加入减少了西尼罗河病毒复制子和感染病毒的复制,表明外源SLA可以在NS5相互作用方面胜过病毒SLA。下一代测序数据表明,感染期间外源SLA的存在增加了西尼罗河病毒的遗传多样性。西尼罗病毒(WNV)在人类中引起西尼罗病。大约150例中有1例出现严重的神经系统并发症,如脑膜炎或脑炎。目前,没有疫苗或抗病毒治疗方法可用。西尼罗河病毒依靠基因组中一种被称为茎环a (SLA)的保守RNA元件来招募病毒聚合酶进行复制。我们发现西尼罗河病毒聚合酶可以结合其他正黄病毒的sla,包括登革热病毒(DENV)、寨卡病毒(ZIKV)和日本脑炎病毒(JEV)。然而,只有DENV和ZIKV sla在被替换为WNV复制子时支持复制。JEV SLA无法支持西尼罗河病毒复制表明,除了聚合酶-SLA相互作用外,有效复制还需要其他病毒特异性因子。然后,我们测试了外源SLA是否可以作为RNA诱饵与基因组SLA竞争并抑制病毒复制。在病毒感染的细胞中添加SLA RNA可显著减少病毒复制和感染,突出了病毒RNA模拟物对西尼罗河病毒的治疗潜力。
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来源期刊
Journal of Virology
Journal of Virology 医学-病毒学
CiteScore
10.10
自引率
7.40%
发文量
906
审稿时长
1 months
期刊介绍: Journal of Virology (JVI) explores the nature of the viruses of animals, archaea, bacteria, fungi, plants, and protozoa. We welcome papers on virion structure and assembly, viral genome replication and regulation of gene expression, genetic diversity and evolution, virus-cell interactions, cellular responses to infection, transformation and oncogenesis, gene delivery, viral pathogenesis and immunity, and vaccines and antiviral agents.
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