经典猪瘟病毒招募ALIX和ESCRT-III促进病毒出芽。

IF 5.1 1区 生物学 Q1 MICROBIOLOGY
mBio Pub Date : 2025-04-09 Epub Date: 2025-02-25 DOI:10.1128/mbio.02618-24
Jinxia Chen, Hanfei Yang, Mingyue Wan, Yan Cheng, Jishan Bai, Yuhang Li, Jing Chen, Bingqian Zhao, Fei Gao, Bin Zhou
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引用次数: 0

摘要

经典猪瘟病毒(CSFV)由于其在各国的持续出现和重新出现,给全球养猪业造成了重大的经济损失。然而,控制猪瘟出芽的确切机制仍然没有得到充分的了解。我们的研究阐明了运输所需的内体分选复合体(ESCRT)相关蛋白ALIX,与ESCRT- iii一起,在协调CSFV出芽中起着关键作用。基因组序列分析发现E2蛋白的YPXnL晚期结构域与ALIX之间存在关键的相互作用。通过免疫沉淀和结构域缺失实验,我们证明ALIX Bro1结构域通过结合YPXnL基序特异性识别病毒颗粒。免疫电镜和透射电镜进一步证实,感染后,ALIX聚集在亚细胞器的周围,包括COPII囊泡、核内体和高尔基体,从而促进CSFV出芽。我们的研究结果还表明,ESCRT-III亚基CHMP2B、CHMP4B、CHMP7和VPS4A与ALIX相互作用,加速CSFV出芽。值得注意的是,被Kif4A激活的Rab8通过与ALIX相互作用并引导含有ALIX的囊泡沿着微管向细胞质方向移动,从而促进CSFV颗粒的释放。我们的研究表明,ALIX特异性识别E2并协调ESCRT-III和Rab8的募集,以促进CSFV颗粒从高尔基体到细胞质的水泡出芽。最终,由Kif4A推动的载病毒囊泡沿着微管运输到质膜并释放。我们的研究结果首次全面阐明了CSFV的出芽过程,并有助于确定抗病毒靶点,从而促进抗病毒治疗的发展。重要意义运输所需的内体分选复合体(ESCRT)机制在真核细胞中膜蛋白的分选和调节许多病毒感染的不同阶段中起着关键作用。以往的研究强调了ESCRT在猪瘟病毒(CSFV)的细胞侵入和复制中不可或缺的作用。然而,ESCRT识别CSFV颗粒并启动病毒囊泡出芽的确切机制仍然是难以捉摸的。该研究表明,ALIX的Bro1结构域通过特异性识别CSFV E2蛋白上的YPXnL晚期结构域启动病毒在高尔基体附近的出芽。机制上,ALIX和ESCRT-III促进rab8调控的猪瘟颗粒从高尔基体到质膜的内体运输。随后,病毒粒子由驱动蛋白Kif4A沿着微管进入细胞外空间。总之,这些发现显著推进了我们对猪瘟发病机制的理解,并为猪瘟颗粒的囊泡运输和出芽机制提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classical swine fever virus recruits ALIX and ESCRT-III to facilitate viral budding.

Classical swine fever virus (CSFV) incurs substantial economic losses in the global swine industry due to its persistent emergence and re-emergence across various countries. However, the precise mechanisms governing CSFV budding remain inadequately understood. Our study elucidates that the endosomal sorting complex required for transport (ESCRT)-associated protein ALIX, in conjunction with ESCRT-III, plays a pivotal role in orchestrating CSFV budding. Genomic sequence analysis identified a critical interaction between the YPXnL late domain on the E2 protein and ALIX. Through immunoprecipitation and structural domain deletion assays, we demonstrated that the ALIX Bro1 domain specifically recognized viral particles by binding to the YPXnL motif. Immunoelectron and transmission electron microscopy further confirmed that, upon infection, ALIX accumulated at the periphery of subcellular organelles, including COPII vesicles, endosomes, and the Golgi apparatus, thereby facilitating CSFV budding. Our findings also revealed that ESCRT-III subunits CHMP2B, CHMP4B, CHMP7, and VPS4A interacted with ALIX to expedite CSFV budding. Notably, Rab8 activated by Kif4A contributed to the release of CSFV particles by interacting with ALIX and directing ALIX-containing vesicles along microtubules toward the cytosol. Our study demonstrates that ALIX specifically recognizes E2 and orchestrates the recruitment of ESCRT-III and Rab8 to facilitate the vesicular budding of CSFV particles from the Golgi apparatus to the cytosol. Ultimately, virus-laden vesicles propelled by Kif4A are transported along microtubules to the plasma membrane for release. Our findings offer the first comprehensive elucidation of the CSFV budding process and contribute to the identification of antiviral targets, thereby advancing the development of antiviral therapeutics.IMPORTANCEThe endosomal sorting complex required for transport (ESCRT) machinery plays a pivotal role in the sorting of membrane proteins in eukaryotic cells and regulating various stages of infection for numerous viruses. Previous studies have underscored the indispensable role of ESCRT in the cellular entry and replication of classical swine fever virus (CSFV). However, the precise mechanisms by which ESCRT recognizes CSFV particles and initiates viral vesicle budding have remained elusive. This study reveals that the Bro1 domain of ALIX initiates viral budding proximal to the Golgi apparatus by specifically recognizing the YPXnL late domain on the CSFV E2 protein. Mechanistically, ALIX and ESCRT-III facilitate Rab8-regulated endosomal transport of CSFV particles from the Golgi apparatus to the plasma membrane. Subsequently, virions are propelled by the kinesin Kif4A along microtubules for egress into the extracellular space. In summary, these findings significantly advance our understanding of CSFV pathogenesis and offer valuable insights into the vesicular transport and budding mechanisms of CSFV particles.

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来源期刊
mBio
mBio MICROBIOLOGY-
CiteScore
10.50
自引率
3.10%
发文量
762
审稿时长
1 months
期刊介绍: mBio® is ASM''s first broad-scope, online-only, open access journal. mBio offers streamlined review and publication of the best research in microbiology and allied fields.
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