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The herpes simplex virus gE-gI complex facilitates cell-to-cell spread and binds to components of cell junctions.单纯疱疹病毒gE-gI复合物促进细胞间传播并与细胞连接成分结合。
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2
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Cytoplasmic domain of herpes simplex virus gE causes accumulation in the trans-Golgi network, a site of virus envelopment and sorting of virions to cell junctions.单纯疱疹病毒gE的胞质结构域导致其在反式高尔基体网络中积累,反式高尔基体网络是病毒包膜形成以及病毒粒子分拣至细胞连接部位的场所。
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The extracellular domain of herpes simplex virus gE is sufficient for accumulation at cell junctions but not for cell-to-cell spread.单纯疱疹病毒gE的细胞外结构域足以使其在细胞连接处积聚,但不足以实现细胞间传播。
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Herpes simplex virus gE/gI extracellular domains promote axonal transport and spread from neurons to epithelial cells.单纯疱疹病毒 gE/gI 细胞外结构域促进轴突运输并从神经元传播到上皮细胞。
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Herpes simplex virus glycoproteins E and I facilitate cell-to-cell spread in vivo and across junctions of cultured cells.单纯疱疹病毒糖蛋白E和I促进体内细胞间传播以及跨培养细胞连接的传播。
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Herpes simplex virus gE/gI must accumulate in the trans-Golgi network at early times and then redistribute to cell junctions to promote cell-cell spread.单纯疱疹病毒gE/gI必须在早期在内质网反式高尔基体网络中积累,然后重新分布到细胞连接处,以促进细胞间传播。
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The extracellular domain of herpes simplex virus gE is indispensable for efficient cell-to-cell spread: evidence for gE/gI receptors.单纯疱疹病毒gE的细胞外结构域对于有效的细胞间传播不可或缺:gE/gI受体的证据。
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Herpes Simplex Virus gE/gI and US9 Promote both Envelopment and Sorting of Virus Particles in the Cytoplasm of Neurons, Two Processes That Precede Anterograde Transport in Axons.单纯疱疹病毒gE/gI和US9促进病毒颗粒在神经元细胞质中的包膜形成和分选,这两个过程先于轴突中的顺向运输。
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本文引用的文献

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Coats and vesicle budding. coats 与小泡出芽。
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2
Glycoprotein C-deficient mutants of two strains of herpes simplex virus type 1 exhibit unaltered adsorption characteristics on polarized or non-polarized cells.两株1型单纯疱疹病毒的糖蛋白C缺陷型突变体在极化或非极化细胞上表现出未改变的吸附特性。
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The envelope protein encoded by the A33R gene is required for formation of actin-containing microvilli and efficient cell-to-cell spread of vaccinia virus.A33R基因编码的包膜蛋白是形成含肌动蛋白的微绒毛和痘苗病毒有效细胞间传播所必需的。
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4
Herpes simplex virus gD and virions accumulate in endosomes by mannose 6-phosphate-dependent and -independent mechanisms.单纯疱疹病毒gD和病毒粒子通过依赖和不依赖6-磷酸甘露糖的机制在内体中积累。
J Virol. 1998 Apr;72(4):3330-9. doi: 10.1128/JVI.72.4.3330-3339.1998.
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Tight junctions.紧密连接
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Molecular and functional analysis of cadherin-based adherens junctions.基于钙黏蛋白的黏附连接的分子与功能分析。
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Mutational analysis of the role of glycoprotein I in varicella-zoster virus replication and its effects on glycoprotein E conformation and trafficking.糖蛋白I在水痘带状疱疹病毒复制中的作用及其对糖蛋白E构象和运输影响的突变分析
J Virol. 1997 Nov;71(11):8279-88. doi: 10.1128/JVI.71.11.8279-8288.1997.
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Characterization of pseudorabies virus mutants expressing carboxy-terminal truncations of gE: evidence for envelope incorporation, virulence, and neurotropism domains.表达gE羧基末端截短形式的伪狂犬病病毒突变体的特性分析:包膜掺入、毒力和嗜神经性结构域的证据
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9
Glycoprotein D of herpes simplex virus (HSV) binds directly to HVEM, a member of the tumor necrosis factor receptor superfamily and a mediator of HSV entry.单纯疱疹病毒(HSV)的糖蛋白D直接与疱疹病毒侵入介质(HVEM)结合,HVEM是肿瘤坏死因子受体超家族的成员,也是HSV进入细胞的介质。
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10
Endocytosis and recycling of varicella-zoster virus Fc receptor glycoprotein gE: internalization mediated by a YXXL motif in the cytoplasmic tail.水痘-带状疱疹病毒Fc受体糖蛋白gE的内吞作用与循环利用:由胞质尾中的YXXL基序介导的内化作用
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单纯疱疹病毒gE-gI复合物促进细胞间传播并与细胞连接成分结合。

The herpes simplex virus gE-gI complex facilitates cell-to-cell spread and binds to components of cell junctions.

作者信息

Dingwell K S, Johnson D C

机构信息

Department of Biology, McMaster University, Hamilton, Ontario, Canada L8N 3Z5.

出版信息

J Virol. 1998 Nov;72(11):8933-42. doi: 10.1128/JVI.72.11.8933-8942.1998.

DOI:10.1128/JVI.72.11.8933-8942.1998
PMID:9765438
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC110310/
Abstract

The herpes simplex virus (HSV) glycoprotein complex gE-gI mediates the spread of viruses between adjacent cells, and this property is especially evident for cells that form extensive cell junctions, e.g., epithelial cells, fibroblasts, and neurons. Mutants lacking gE or gI are not compromised in their ability to enter cells as extracellular viruses. Therefore, gE-gI functions specifically in the movement of virus across cell-cell contacts and, as such, provides a molecular handle on this poorly understood process. We expressed gE-gI in human epithelial cells by using replication-defective adenovirus (Ad) vectors. gE-gI accumulated at lateral surfaces of the epithelial cells, colocalizing with the adherens junction protein beta-catenin but was not found on either the apical or basal plasma membranes and did not colocalize with ZO-1, a component of tight junctions. In subconfluent monolayers, gE-gI was found at cell junctions but was absent from those lateral surfaces not in contact with another cell, as was the case for beta-catenin. Similar localization of gE-gI to cell junctions was observed in HSV-infected epithelial cells. By contrast, HSV glycoprotein gD, expressed using a recombinant Ad vectors, was found primarily along the apical surfaces of cells, with little or no protein found on the basal or lateral surfaces. Expression of gE-gI without other HSV polypeptides did not cause redistribution of either ZO-1 or beta-catenin or alter tight-junction functions. Together these results support a model in which gE-gI accumulates at sites of cell-cell contact by interacting with junctional components. We hypothesize that gE-gI mediates transfer of HSV across cell junctions by virtue of these interactions with cell junction components.

摘要

单纯疱疹病毒(HSV)糖蛋白复合物gE-gI介导病毒在相邻细胞间传播,这种特性在形成广泛细胞连接的细胞中尤为明显,例如上皮细胞、成纤维细胞和神经元。缺乏gE或gI的突变体作为细胞外病毒进入细胞的能力并未受损。因此,gE-gI专门在病毒跨细胞间接触的移动中发挥作用,从而为这一了解甚少的过程提供了一个分子切入点。我们通过使用复制缺陷型腺病毒(Ad)载体在人上皮细胞中表达gE-gI。gE-gI在上皮细胞的侧面积累,与黏附连接蛋白β-连环蛋白共定位,但在顶端或基底质膜上均未发现,也未与紧密连接的组成成分ZO-1共定位。在亚汇合单层细胞中,gE-gI存在于细胞连接处,但在不与其他细胞接触的侧面则不存在,β-连环蛋白也是如此。在HSV感染的上皮细胞中也观察到gE-gI与细胞连接处的类似定位。相比之下,使用重组Ad载体表达的HSV糖蛋白gD主要沿细胞顶端表面发现,在基底或侧面表面几乎没有或没有发现该蛋白。在没有其他HSV多肽的情况下表达gE-gI不会导致ZO-1或β-连环蛋白的重新分布,也不会改变紧密连接功能。这些结果共同支持了一个模型,即gE-gI通过与连接成分相互作用而在细胞间接触部位积累。我们假设gE-gI凭借与细胞连接成分的这些相互作用介导HSV跨细胞连接的转移。