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Structural basis for dsRNA recognition, filament formation, and antiviral signal activation by MDA5

机译:dsRNA识别,细丝形成和MDA5激活抗病毒信号的结构基础

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MDA5, a viral double-stranded RNA (dsRNA) receptor, shares sequence similarity and signaling pathways with RIG-I yet plays essential functions in antiviral immunity through distinct specificity for viral RNA. Revealing the molecular basis for the functional divergence, we report here the crystal structure of MDA5 bound to dsRNA, which shows how, using the same domain architecture, MDA5 recognizes the internal duplex structure, whereas RIG-I recognizes the terminus of dsRNA. We further show that MDA5 uses direct protein-protein contacts to stack along dsRNA in a head-to-tail arrangement, and that the signaling domain (tandem CARD), which decorates the outside of the core MDA5 filament, also has an intrinsic propensity to oligomerize into an elongated structure that activates the signaling adaptor, MAVS. These data support a model in which MDA5 uses long dsRNA as a signaling platform to cooperatively assemble the core filament, which in turn promotes stochastic assembly of the tandem CARD oligomers for signaling.
机译:MDA5是一种病毒双链RNA(dsRNA)受体,与RIG-1具有相同的序列相似性和信号传导途径,但通过对病毒RNA的独特特异性在抗病毒免疫中起着至关重要的作用。为了揭示功能差异的分子基础,我们在这里报告了与dsRNA结合的MDA5的晶体结构,该图显示了使用相同的域结构,MDA5如何识别内部双链体结构,而RIG-I如何识别dsRNA的末端。我们进一步表明MDA5使用直接的蛋白质-蛋白质接触以ds-tail的形式沿dsRNA堆叠,并且装饰核心MDA5细丝外部的信号传导域(串联CARD)也具有内在的倾向。寡聚成细长结构,从而激活信号转导适配器MAVS。这些数据支持一种模型,其中MDA5使用长dsRNA作为信号传递平台来协同组装核心细丝,从而促进了串联CARD低聚物的随机组装以进行信号传递。

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