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Nucleic Acids Res. 2016 Jan 29;44(2):896-909. doi: 10.1093/nar/gkv1299. Epub 2015 Nov 26.
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A Conserved Histidine in the RNA Sensor RIG-I Controls Immune Tolerance to N1-2'O-Methylated Self RNA.RNA传感器RIG-I中保守的组氨酸控制对N1-2'-O-甲基化自身RNA的免疫耐受。
Immunity. 2015 Jul 21;43(1):41-51. doi: 10.1016/j.immuni.2015.06.015. Epub 2015 Jul 14.
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Innate immune restriction and antagonism of viral RNA lacking 2׳-O methylation.缺乏2'-O甲基化的病毒RNA的天然免疫限制与拮抗作用
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Defining the functional determinants for RNA surveillance by RIG-I.鉴定 RIG-I 对 RNA 监控的功能决定因素。
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Structural basis for viral 5'-PPP-RNA recognition by human IFIT proteins.人类 IFIT 蛋白识别病毒 5'-PPP-RNA 的结构基础。
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Structural basis for dsRNA recognition, filament formation, and antiviral signal activation by MDA5.MDA5 识别 dsRNA、形成纤维和激活抗病毒信号的结构基础。
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A structure-based model of RIG-I activation.基于结构的 RIG-I 激活模型。
RNA. 2012 Dec;18(12):2118-27. doi: 10.1261/rna.035949.112. Epub 2012 Nov 1.
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Visualizing the determinants of viral RNA recognition by innate immune sensor RIG-I.可视化先天免疫传感器 RIG-I 识别病毒 RNA 的决定因素。
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Crystal structure of IFIT2 (ISG54) predicts functional properties of IFITs.IFIT2(ISG54)的晶体结构预测了 IFITs 的功能特性。
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2'-O methylation of the viral mRNA cap by West Nile virus evades ifit1-dependent and -independent mechanisms of host restriction in vivo.西尼罗河病毒对病毒 mRNA 帽的 2'-O 甲基化可逃避体内 ifit1 依赖和非依赖的宿主限制机制。
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天然免疫受体RIG-I对加帽RNA中m7G识别和2'-O-甲基区分的结构基础。

Structural basis for m7G recognition and 2'-O-methyl discrimination in capped RNAs by the innate immune receptor RIG-I.

作者信息

Devarkar Swapnil C, Wang Chen, Miller Matthew T, Ramanathan Anand, Jiang Fuguo, Khan Abdul G, Patel Smita S, Marcotrigiano Joseph

机构信息

Department of Biochemistry and Molecular Biology, Robert Wood Johnson Medical School, Rutgers University, Piscataway, NJ 08854;

Center for Advanced Biotechnology and Medicine, Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, NJ 08854.

出版信息

Proc Natl Acad Sci U S A. 2016 Jan 19;113(3):596-601. doi: 10.1073/pnas.1515152113. Epub 2016 Jan 5.

DOI:10.1073/pnas.1515152113
PMID:26733676
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4725518/
Abstract

RNAs with 5'-triphosphate (ppp) are detected in the cytoplasm principally by the innate immune receptor Retinoic Acid Inducible Gene-I (RIG-I), whose activation triggers a Type I IFN response. It is thought that self RNAs like mRNAs are not recognized by RIG-I because 5'ppp is capped by the addition of a 7-methyl guanosine (m7G) (Cap-0) and a 2'-O-methyl (2'-OMe) group to the 5'-end nucleotide ribose (Cap-1). Here we provide structural and mechanistic basis for exact roles of capping and 2'-O-methylation in evading RIG-I recognition. Surprisingly, Cap-0 and 5'ppp double-stranded (ds) RNAs bind to RIG-I with nearly identical Kd values and activate RIG-I's ATPase and cellular signaling response to similar extents. On the other hand, Cap-0 and 5'ppp single-stranded RNAs did not bind RIG-I and are signaling inactive. Three crystal structures of RIG-I complexes with dsRNAs bearing 5'OH, 5'ppp, and Cap-0 show that RIG-I can accommodate the m7G cap in a cavity created through conformational changes in the helicase-motif IVa without perturbing the ppp interactions. In contrast, Cap-1 modifications abrogate RIG-I signaling through a mechanism involving the H830 residue, which we show is crucial for discriminating between Cap-0 and Cap-1 RNAs. Furthermore, m7G capping works synergistically with 2'-O-methylation to weaken RNA affinity by 200-fold and lower ATPase activity. Interestingly, a single H830A mutation restores both high-affinity binding and signaling activity with 2'-O-methylated dsRNAs. Our work provides new structural insights into the mechanisms of host and viral immune evasion from RIG-I, explaining the complexity of cap structures over evolution.

摘要

在细胞质中,5'-三磷酸(ppp)RNA主要由天然免疫受体视黄酸诱导基因I(RIG-I)检测到,其激活会触发I型干扰素反应。人们认为,像mRNA这样的自身RNA不会被RIG-I识别,因为5'ppp通过在5'-末端核苷酸核糖上添加7-甲基鸟苷(m7G)(Cap-0)和2'-O-甲基(2'-OMe)基团而被加帽(Cap-1)。在这里,我们提供了加帽和2'-O-甲基化在逃避RIG-I识别中的确切作用的结构和机制基础。令人惊讶的是,Cap-0和5'ppp双链(ds)RNA以几乎相同的解离常数(Kd)值与RIG-I结合,并在相似程度上激活RIG-I的ATP酶和细胞信号反应。另一方面,Cap-0和5'ppp单链RNA不与RIG-I结合且无信号活性。RIG-I与带有5'OH、5'ppp和Cap-0的dsRNA复合物的三个晶体结构表明,RIG-I可以在通过解旋酶基序IVa的构象变化形成的腔内容纳m7G帽,而不会干扰ppp相互作用。相比之下,Cap-1修饰通过涉及H830残基的机制消除RIG-I信号,我们表明该残基对于区分Cap-0和Cap-1 RNA至关重要。此外,m7G加帽与2'-O-甲基化协同作用,使RNA亲和力降低200倍并降低ATP酶活性。有趣的是,单个H830A突变恢复了与2'-O-甲基化dsRNA的高亲和力结合和信号活性。我们的工作为宿主和病毒逃避RIG-I免疫的机制提供了新的结构见解,解释了帽结构在进化过程中的复杂性。