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DDX3 抑制 I 型干扰素并有利于沙粒病毒感染期间的病毒复制。

DDX3 suppresses type I interferons and favors viral replication during Arenavirus infection.

机构信息

Division of Biological Sciences, University of California San Diego, La Jolla, CA, United States of America.

Molecular and Translational Sciences Division, United States Army Medical Research Institute of Infectious Diseases, Frederick, MD, United States of America.

出版信息

PLoS Pathog. 2018 Jul 12;14(7):e1007125. doi: 10.1371/journal.ppat.1007125. eCollection 2018 Jul.

Abstract

Several arenaviruses cause hemorrhagic fever (HF) diseases that are associated with high morbidity and mortality in humans. Accordingly, HF arenaviruses have been listed as top-priority emerging diseases for which countermeasures are urgently needed. Because arenavirus nucleoprotein (NP) plays critical roles in both virus multiplication and immune-evasion, we used an unbiased proteomic approach to identify NP-interacting proteins in human cells. DDX3, a DEAD-box ATP-dependent-RNA-helicase, interacted with NP in both NP-transfected and virus-infected cells. Importantly, DDX3 deficiency compromised the propagation of both Old and New World arenaviruses, including the HF arenaviruses Lassa and Junin viruses. The DDX3 role in promoting arenavirus multiplication associated with both a previously un-recognized DDX3 inhibitory role in type I interferon production in arenavirus infected cells and a positive DDX3 effect on arenavirus RNA synthesis that was dependent on its ATPase and Helicase activities. Our results uncover novel mechanisms used by arenaviruses to exploit the host machinery and subvert immunity, singling out DDX3 as a potential host target for developing new therapies against highly pathogenic arenaviruses.

摘要

几种沙粒病毒可引起出血热(HF)疾病,这些疾病在人类中具有较高的发病率和死亡率。因此,HF 沙粒病毒已被列为急需采取对策的首要优先新兴疾病。由于沙粒病毒核蛋白(NP)在病毒复制和免疫逃避中都起着关键作用,我们使用了一种无偏见的蛋白质组学方法来鉴定人细胞中的 NP 相互作用蛋白。DDX3,一种 DEAD 盒 ATP 依赖性 RNA 解旋酶,在 NP 转染和病毒感染的细胞中均与 NP 相互作用。重要的是,DDX3 缺陷会损害旧世界和新世界沙粒病毒的增殖,包括 HF 沙粒病毒拉萨和胡宁病毒。DDX3 在促进沙粒病毒增殖中的作用与 DDX3 在感染沙粒病毒的细胞中对 I 型干扰素产生的先前未被识别的抑制作用以及对沙粒病毒 RNA 合成的正向 DDX3 作用有关,该作用依赖于其 ATPase 和 Helicase 活性。我们的研究结果揭示了沙粒病毒利用宿主机制和颠覆免疫的新机制,将 DDX3 确定为开发针对高致病性沙粒病毒的新型疗法的潜在宿主靶标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec3d/6042795/84a911f554a5/ppat.1007125.g002.jpg

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