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利用单病毒示踪技术动态解析猪流行性腹泻冠状病毒的网格蛋白和小窝介导的内吞作用

Dynamic Dissection of the Endocytosis of Porcine Epidemic Diarrhea Coronavirus Cooperatively Mediated by Clathrin and Caveolae as Visualized by Single-Virus Tracking.

机构信息

Joint International Research Laboratory of Animal Health and Food Safety of Ministry of Education and Single Molecule Nanometry Laboratory (Sinmolab), Nanjing Agricultural University, Nanjing, Jiangsu, China.

Computational Optics Laboratory, Jiangnan University, Wuxi, Jiangsu, China.

出版信息

mBio. 2021 Mar 30;12(2):e00256-21. doi: 10.1128/mBio.00256-21.

Abstract

Coronaviruses (CoVs) have caused severe diseases in humans and animals. Endocytic pathways, such as clathrin-mediated endocytosis (CME) and caveolae-mediated endocytosis (CavME), play an important role for CoVs to penetrate the cell membrane barrier. In this study, a novel CoV entry manner is unraveled in which clathrin and caveolae can cooperatively mediate endocytosis of porcine epidemic diarrhea coronavirus (PEDV). Using multicolor live-cell imaging, the dynamics of the fluorescently labeled clathrin structures, caveolae structures, and PEDV were dissected. During CavME of PEDV, we found that clathrin structures can fuse with caveolae near the cell plasma membrane, and the average time of PEDV penetrating the cell membrane was within ∼3 min, exhibiting a rapid course of PEDV entry. Moreover, based on the dynamic recruitment of clathrin and caveolae structures and viral motility, the direct evidence also shows that about 20% of PEDVs can undergo an abortive entry via CME and CavME. Additionally, the dynamic trafficking of PEDV from clathrin and caveolae structures to early endosomes, and from early endosomes to late endosomes, and viral fusion were directly dissected, and PEDV fusion mainly occurred in late endosomes within ∼6.8 min after the transport of PEDV to late endosomes. Collectively, this work systematically unravels the early steps of PEDV infection, which expands our understanding of the mechanism of CoV infection. Emerging and re-emerging coronaviruses cause serious human and animal epidemics worldwide. For many enveloped viruses, including coronavirus, it is evident that breaking the plasma membrane barrier is a pivotal and complex process, which contains multiple dynamic steps. Although great efforts have been made to understand the mechanisms of coronavirus endocytic pathways, the direct real-time imaging of individual porcine epidemic diarrhea coronavirus (PEDV) internalization has not been achieved yet. In this study, we not only dissected the kinetics of PEDV entry via clathrin-mediated endocytosis and caveolae-mediated endocytosis and the kinetics of endosome trafficking and viral fusion but also found a novel productive coronavirus entry manner in which clathrin and caveolae can cooperatively mediate endocytosis of PEDV. Moreover, we uncovered the existence of PEDV abortive endocytosis. In summary, the productive PEDV entry via the cooperation between clathrin and caveolae structures and the abortive endocytosis of PEDV provide new insights into coronavirus penetrating the plasma membrane barrier.

摘要

冠状病毒(CoVs)已在人类和动物中引发严重疾病。内吞途径,如网格蛋白介导的内吞作用(CME)和小窝蛋白介导的内吞作用(CavME),对于 CoV 穿透细胞膜屏障起着重要作用。在这项研究中,揭示了一种新的 CoV 进入方式,其中网格蛋白和小窝蛋白可以协同介导猪流行性腹泻冠状病毒(PEDV)的内吞作用。通过多色活细胞成像,解析了荧光标记的网格蛋白结构、小窝结构和 PEDV 的动力学。在 CavME 过程中,我们发现网格蛋白结构可以在靠近细胞质膜的小窝附近融合,PEDV 穿透细胞膜的平均时间在∼3min 内,表现出快速的 PEDV 进入过程。此外,基于网格蛋白和小窝结构的动态募集以及病毒的运动性,直接证据还表明,约 20%的 PEDV 可以通过 CME 和 CavME 进行无效进入。此外,还直接解析了 PEDV 从小窝蛋白和网格蛋白结构到早期内体以及从小体到晚期内体的动态转运,以及病毒融合,PEDV 融合主要发生在 PEDV 转运到晚期内体后约 6.8min 的晚期内体中。总的来说,这项工作系统地揭示了 PEDV 感染的早期步骤,这扩展了我们对 CoV 感染机制的理解。新兴和再现的冠状病毒在全球范围内引起严重的人类和动物流行。对于许多包膜病毒,包括冠状病毒,很明显,打破质膜屏障是一个关键且复杂的过程,其中包含多个动态步骤。尽管已经做出了巨大的努力来了解冠状病毒内吞途径的机制,但尚未实现单个猪流行性腹泻冠状病毒(PEDV)内化的直接实时成像。在这项研究中,我们不仅解析了 PEDV 通过网格蛋白介导的内吞作用和小窝蛋白介导的内吞作用的进入动力学以及内体运输和病毒融合的动力学,还发现了一种新的有生产能力的冠状病毒进入方式,其中网格蛋白和小窝蛋白可以协同介导 PEDV 的内吞作用。此外,我们还发现了 PEDV 无效内吞的存在。总之,通过网格蛋白和小窝蛋白结构的合作以及 PEDV 的无效内吞作用,有生产能力的 PEDV 进入为冠状病毒穿透质膜屏障提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d39d/8092227/6ac60a0f5522/mBio.00256-21_f001.jpg

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