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病毒降解细胞信号转导和转录激活因子 2 的机制。

Mechanisms of Viral Degradation of Cellular Signal Transducer and Activator of Transcription 2.

机构信息

EonBio, 3780 Pelham Drive, Mobile, AL 36619, USA.

出版信息

Int J Mol Sci. 2022 Jan 1;23(1):489. doi: 10.3390/ijms23010489.

Abstract

Virus infection of eukaryotes triggers cellular innate immune response, a major arm of which is the type I interferon (IFN) family of cytokines. Binding of IFN to cell surface receptors triggers a signaling cascade in which the signal transducer and activator of transcription 2 (STAT2) plays a key role, ultimately leading to an antiviral state of the cell. In retaliation, many viruses counteract the immune response, often by the destruction and/or inactivation of STAT2, promoted by specific viral proteins that do not possess protease activities of their own. This review offers a summary of viral mechanisms of STAT2 subversion with emphasis on degradation. Some viruses also destroy STAT1, another major member of the STAT family, but most viruses are selective in targeting either STAT2 or STAT1. Interestingly, degradation of STAT2 by a few viruses requires the presence of both STAT proteins. Available evidence suggests a mechanism in which multiple sites and domains of STAT2 are required for engagement and degradation by a multi-subunit degradative complex, comprising viral and cellular proteins, including the ubiquitin-proteasomal system. However, the exact molecular nature of this complex and the alternative degradation mechanisms remain largely unknown, as critically presented here with prospective directions of future study.

摘要

真核生物的病毒感染会触发细胞固有免疫反应,其中主要的是 I 型干扰素(IFN)细胞因子家族。IFN 与细胞表面受体结合,触发信号转导级联反应,其中信号转导和转录激活因子 2(STAT2)起着关键作用,最终导致细胞的抗病毒状态。作为报复,许多病毒会对抗免疫反应,通常是通过破坏和/或失活 STAT2 来实现的,这是由特定的、本身不具有蛋白酶活性的病毒蛋白来促进的。本综述概述了 STAT2 颠覆的病毒机制,重点介绍了降解。一些病毒还会破坏 STAT1,这是 STAT 家族的另一个主要成员,但大多数病毒在靶向 STAT2 或 STAT1 方面是有选择性的。有趣的是,少数病毒对 STAT2 的降解需要两种 STAT 蛋白的存在。现有证据表明,一种机制涉及 STAT2 的多个位点和结构域,需要与包含病毒和细胞蛋白的多亚基降解复合物结合,包括泛素-蛋白酶体系统。然而,这种复合物的确切分子性质以及替代降解机制在很大程度上仍然未知,本文批判性地提出了未来研究的方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d8c9/8745392/640e0b19f8de/ijms-23-00489-g001.jpg

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