埃博拉病毒VP35同源二聚化与I型干扰素级联抑制的相关性

Q2 Pharmacology, Toxicology and Pharmaceutics Antiviral Chemistry and Chemotherapy Pub Date : 2019-11-01 DOI:10.1177/2040206619889220
Francesco Di Palma, G. Daino, V. K. Ramaswamy, A. Corona, A. Frau, E. Fanunza, A. Vargiu, E. Tramontano, P. Ruggerone
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引用次数: 12

摘要

埃博拉病毒的高致死性依赖于其有效绕过宿主先天抗病毒反应的能力,该反应通过RIG-I受体感应病毒dsRNA并诱导I型干扰素α/β的产生。在绕过作用中,埃博拉病毒蛋白VP35在RIG-I级联的多个水平上发挥关键作用,从RIG-I中屏蔽病毒5′-三磷酸化的dsRNA,并与其他级联组分相互作用。VP35 I型干扰素抑制作用由C端结构域发挥,而含有卷曲螺旋区的N端结构域主要是低聚所必需的。然而,据报道,卷曲螺旋区中关键VP35残基L90/93/107A(VP35-3m)的突变会影响寡聚化并降低I型干扰素的拮抗作用,这表明同源寡聚化对VP35与RIG-I通路成分相互作用的作用可能但尚不清楚。在这项工作中,我们通过计算和生物学方法研究了VP35二聚化热力学及其对I型干扰素拮抗作用的贡献。聚焦于卷曲线圈区域,我们结合了野生型VP35和VP35-3m同源二聚体的粗粒度和全原子模拟。根据我们的结果,野生型VP35-3m卷曲线圈能够自组装成二聚体,而VP35-3m缠绕线圈甚至表现出较差的二聚倾向。自由能计算证实了L90、L93和L107在稳定卷曲线圈同源二聚体结构中的关键作用。使用全长野生型VP35和VP35-3m进行的体外I型干扰素拮抗研究表明,VP35同源二聚体是dsRNA结合的重要初步步骤,这似乎是VP35-RIG-I级联抑制的主要因素,而阻断其他步骤并不重要。
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Relevance of Ebola virus VP35 homo-dimerization on the type I interferon cascade inhibition
Ebola virus high lethality relies on its ability to efficiently bypass the host innate antiviral response, which senses the viral dsRNA through the RIG-I receptor and induces type I interferon α/β production. In the bypassing action, the Ebola virus protein VP35 plays a pivotal role at multiple levels of the RIG-I cascade, masking the viral 5′-triphosphorylated dsRNA from RIG-I, and interacting with other cascade components. The VP35 type I interferon inhibition is exerted by the C-terminal domain, while the N-terminal domain, containing a coiled-coil region, is primarily required for oligomerization. However, mutations at key VP35 residues L90/93/107A (VP35-3m) in the coiled-coil region were reported to affect oligomerization and reduce type I interferon antagonism, indicating a possible but unclear role of homo-oligomerization on VP35 interaction with the RIG-I pathway components. In this work, we investigated the VP35 dimerization thermodynamics and its contribution to type I interferon antagonism by computational and biological methods. Focusing on the coiled-coil region, we combined coarse-grained and all-atom simulations on wild type VP35 and VP35-3m homo-dimerization. According to our results, wild type VP35 coiled-coil is able to self-assemble into dimers, while VP35-3m coiled-coil shows poor propensity to even dimerize. Free-energy calculations confirmed the key role of L90, L93 and L107 in stabilizing the coiled-coil homo-dimeric structure. In vitro type I interferon antagonism studies, using full-length wild type VP35 and VP35-3m, revealed that VP35 homo-dimerization is an essential preliminary step for dsRNA binding, which appears to be the main factor of the VP35 RIG-I cascade inhibition, while it is not essential to block the other steps.
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来源期刊
Antiviral Chemistry and Chemotherapy
Antiviral Chemistry and Chemotherapy Pharmacology, Toxicology and Pharmaceutics-Pharmacology
CiteScore
5.20
自引率
0.00%
发文量
5
审稿时长
15 weeks
期刊介绍: Antiviral Chemistry & Chemotherapy publishes the results of original research concerned with the biochemistry, mode of action, chemistry, pharmacology and virology of antiviral compounds. Manuscripts dealing with molecular biology, animal models and vaccines are welcome. The journal also publishes reviews, pointers, short communications and correspondence.
期刊最新文献
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