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Structure-Function Analysis of Ebola Virus Glycoproteins.

机译:埃博拉病毒糖蛋白的结构功能分析。

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摘要

As a result of transcriptional editing, Ebola virus (EBOV) produces multiple soluble products from its glycoprotein gene, the primary product of which is the secreted glycoprotein (sGP), in addition to the membrane-bound viral spike protein GP1,2. A lack of leukocyte infiltration is observed during EBOV infection, which is thought to allow virus replication to proceed unchecked and thus represents a significant role in the immunopathology of the disease. Currently the only know function of sGP is that it has an anti-inflammatory effect on endothelial cells treated with TNF-alpha, an effect that has been hypothesized to interfere with recruitment or extravasation of leukocytes. To better characterize this anti-inflammatory function, a link between sGP structure and function was sought. Mass spectrometry (MS) analysis of recombinant sGP demonstrated that it is a parallel-orientated disulphide-linked homodimer that contains Cys53-C53' and Cys306-C306' intermolecular disulphide bonds. In addition to being glycosylated with complex N-glycans, sGP also contained a novel post-translation modification, termed Cmannosylation. C-mannosylation was not required for the anti-inflammatory function of sGP; however, glycine mutations at amino acids 53 and 306 resulted in the complete loss of the anti-inflammatory effect on TNF-alpha treated endothelial cells. Thus, a specific structure mediated by intermolecular disulphide bonds is required for the proposed anti-inflammatory function of sGP, suggesting that this effect is the result of a specific interaction. The spike protein GP 1,2, also contains C-mannosylation motifs. MS analysis of GP1,2 indicated that GP1 was C-mannosylated, while two adjacent motifs in the membrane proximal region (MPER) of GP2 were not. The infectious virus-like particle (iVLP) assay, a system for investigating virus particle assembly and entry, was utilized to determine the functional importance of these conserved tryptophans. Elimination of the C-mannosylation motif, which resides in an external loop region of GP1, increased reporter activity, suggesting that particle entry is enhanced and this region may interact with the cell surface despite being outside of the receptor binding site. Decreased reporter activity was observed for all MPER mutants, with multiple MPER tryptophan mutations resulting in decreased GP1,2 incorporation. These data place the MPER tryptophan residues in an important role for glycoprotein incorporation and particle entry. Given the tryptophan content and location is similar to the MPER of HIV gp41, where these residues are required for glycoprotein incorporation and fusion, the MPER of EBOV GP 2 may function similarly.
机译:转录编辑的结果是,埃博拉病毒(EBOV)从其糖蛋白基因中产生了多种可溶性产物,除膜结合病毒刺突蛋白GP1,2外,其主要产物是分泌的糖蛋白(sGP)。在EBOV感染过程中观察到白细胞浸润的缺乏,这被认为可以使病毒复制不受限制地进行,因此在疾病的免疫病理学中起着重要的作用。目前,sGP唯一已知的功能是它对用TNF-α处理的内皮细胞具有抗炎作用,据推测该作用会干扰白细胞的募集或外渗。为了更好地表征这种抗炎功能,寻求了sGP结构和功能之间的联系。重组sGP的质谱(MS)分析表明,它是含有Cys53-C53'和Cys306-C306'分子间二硫键的平行取向的二硫键连接的同型二聚体。除了被复杂的N-糖基糖基化外,sGP还包含一种新的翻译后修饰,称为Cmannosylation。 sGP的抗炎功能不需要C-甘露糖基化;然而,氨基酸53和306处的甘氨酸突变导致对TNF-α处理的内皮细胞的抗炎作用完全丧失。因此,建议的sGP的抗炎功能需要分子间二硫键介导的特定结构,这表明这种作用是特定相互作用的结果。刺突蛋白GP 1,2,也包含C-甘露糖基化基序。 MS对GP1,2的分析表明,GP1是C-甘露糖基化的,而GP2的膜近端区域(MPER)中没有两个相邻的基序。传染性病毒样颗粒(iVLP)分析是一种用于研究病毒颗粒组装和进入的系统,可用于确定这些保守色氨酸的功能重要性。消除了位于GP1外部环区域的C-甘露糖基化基序,增加了报道分子的活性,这表明颗粒进入得到增强,尽管该区域位于受体结合位点之外,该区域仍可能与细胞表面相互作用。观察到所有MPER突变体的报告基因活性均降低,多个MPER色氨酸突变导致GP1,2掺入减少。这些数据将MPER色氨酸残基置于糖蛋白掺入和颗粒进入的重要作用中。鉴于色氨酸的含量和位置类似于HIV gp41的MPER,在这些残基中糖蛋白掺入和融合需要这些残基,因此EBOV GP 2的MPER可能具有相似的功能。

著录项

  • 作者

    Falzarano, Darryl L.;

  • 作者单位

    University of Manitoba (Canada).;

  • 授予单位 University of Manitoba (Canada).;
  • 学科 Virology.;Molecular biology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 224 p.
  • 总页数 224
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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