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Herc5 通过催化病毒 NS1 蛋白的 ISG 化来衰减甲型流感病毒。

Herc5 attenuates influenza A virus by catalyzing ISGylation of viral NS1 protein.

机构信息

Laboratory of Molecular Cell Biology, Institute of Biochemistry and Cell Biology, Chinese Academy of Sciences, Shanghai.

出版信息

J Immunol. 2010 May 15;184(10):5777-90. doi: 10.4049/jimmunol.0903588. Epub 2010 Apr 12.

Abstract

Ubiquitin-like protein ISG15, which is robustly induced by IFN or virus, is implicated to inhibit influenza A virus (IAV) in vivo. But the underlying mechanism still remains largely unknown. In this study, we report that Herc5 could catalyze conjugation of ISG15 onto IAV-NS1 protein, the critical virulence factor of IAV. This modification produces two more species, respectively mapped to IAV-NS1 at lysine 20, 41, 217, 219, and 108, 110, and 126. The ISGylated IAV-NS1 fails to form homodimers and inhibits relevant antiviral processes. Knockdown of Herc5 or ISG15 could partially alleviate IFN-beta-induced antiviral activities against IAV, whereas ectopic expression of the Herc5-mediated ISGylation system could distinctly potentiate IFN-beta-induced antiviral effects against IAV. Notably, IAV-NS1s of H5N1 avian IAVs display less ISGylation species than that of IAV-PR8/34 (human H1N1). Consistently, IAV-PR8/34 mutants deprived of IAV-NS1's ISGylation exhibit augmented viral propagation and virulence in both cultured cells and mice. Our study reports the first microbial target of ISGylation and uncovers the direct antiviral function and mechanism of this novel modification.

摘要

泛素样蛋白 ISG15 在 IFN 或病毒的刺激下大量诱导产生,被认为能够抑制体内的甲型流感病毒(IAV)。但其潜在的作用机制仍很大程度上未知。在本研究中,我们报告 Herc5 能够催化 ISG15 与 IAV-NS1 蛋白的连接,IAV-NS1 蛋白是 IAV 的关键毒力因子。这种修饰产生了另外两种物质,分别定位在 IAV-NS1 的赖氨酸 20、41、217、219 和 108、110 和 126 上。ISG 化的 IAV-NS1 不能形成同源二聚体,并抑制相关的抗病毒过程。敲低 Herc5 或 ISG15 可以部分减轻 IFN-β 诱导的抗 IAV 抗病毒活性,而外源性表达 Herc5 介导的 ISG 化系统可以显著增强 IFN-β 诱导的抗 IAV 抗病毒作用。值得注意的是,H5N1 禽流感病毒的 IAV-NS1 显示出比 IAV-PR8/34(人 H1N1)更少的 ISG 化物质。同样,缺乏 IAV-NS1 的 ISG 化修饰的 IAV-PR8/34 突变体在细胞培养和小鼠中表现出增强的病毒增殖和毒力。我们的研究报告了 ISG 化的第一个微生物靶标,并揭示了这种新型修饰的直接抗病毒功能和机制。

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