Brindley Melinda A, Chaudhury Sukanya, Plemper Richard K
Institute for Biomedical Sciences, Georgia State University, Atlanta, Georgia, USA.
Institute for Biomedical Sciences, Georgia State University, Atlanta, Georgia, USA
J Virol. 2015 Jan 15;89(2):1230-41. doi: 10.1128/JVI.02754-14. Epub 2014 Nov 12.
Measles virus (MeV), a morbillivirus within the paramyxovirus family, expresses two envelope glycoproteins. The attachment (H) protein mediates receptor binding, followed by triggering of the fusion (F) protein, which leads to merger of the viral envelope with target cell membranes. Receptor binding by members of related paramyxovirus genera rearranges the head domains of the attachment proteins, liberating an F-contact domain within the attachment protein helical stalk. However, morbillivirus glycoproteins first assemble intracellularly prior to receptor binding, raising the question of whether alternative protein-protein interfaces are involved or whether an entirely distinct triggering principle is employed. To test these possibilities, we generated headless H stem mutants of progressively shorter length. Conformationally restricted H stems remained capable of intracellular assembly with a standard F protein and a soluble MeV F mutant. Proteolytic maturation of F, but not the altered biochemical conditions at the cell surface, reduces the strength of glycoprotein interaction, readying the complexes for triggering. F mutants stabilized in the prefusion conformation interact with H intracellularly and at the cell surface, while destabilized F mutants interact only intracellularly, prior to F maturation. These results showcase an MeV entry machinery that functionally varies conserved motifs of the proposed paramyxovirus infection pathway. Intracellular and plasma membrane-resident MeV glycoprotein complexes employ the same protein-protein interface. F maturation prepares for complex separation after triggering, and the H head domains in prereceptor-bound conformation prevent premature stalk rearrangements and F activation. Intracellular preassembly affects MeV fusion profiles and may contribute to the high cell-to-cell fusion activity characteristic of the morbillivirus genus.
Paramyxoviruses of the morbillivirus genus, such as measles, are highly contagious, major human and animal pathogens. MeV envelope glycoproteins preassemble intracellularly into tightly associated hetero-oligomers. To address whether preassembly reflects a unique measles virus entry strategy, we characterized the protein-protein interface of intracellular and surface-exposed fusion complexes and investigated the effect of the attachment protein head domains, glycoprotein maturation, and altered biochemical conditions at the cell surface on measles virus fusion complexes. Our results demonstrate that measles virus functionally varies conserved elements of the paramyxovirus entry pathway, providing a possible explanation for the high cell-to-cell fusion activity of morbilliviruses. Insight gained from these data affects the design of effective broad-spectrum paramyxovirus entry inhibitors.
麻疹病毒(MeV)是副粘病毒科中的一种麻疹病毒属病毒,表达两种包膜糖蛋白。附着(H)蛋白介导受体结合,随后触发融合(F)蛋白,这导致病毒包膜与靶细胞膜融合。相关副粘病毒属成员的受体结合会重新排列附着蛋白的头部结构域,释放附着蛋白螺旋柄内的F接触结构域。然而,麻疹病毒属糖蛋白在受体结合之前首先在细胞内组装,这就提出了一个问题,即是否涉及其他蛋白质-蛋白质界面,或者是否采用了完全不同的触发机制。为了测试这些可能性,我们构建了长度逐渐缩短的无头H茎突变体。构象受限的H茎仍然能够与标准F蛋白和可溶性MeV F突变体在细胞内组装。F的蛋白水解成熟,而不是细胞表面改变的生化条件,降低了糖蛋白相互作用的强度,使复合物为触发做好准备。稳定在预融合构象的F突变体在细胞内和细胞表面与H相互作用,而不稳定的F突变体仅在F成熟之前在细胞内相互作用。这些结果展示了一种MeV进入机制,该机制在功能上改变了所提出的副粘病毒感染途径的保守基序。细胞内和质膜驻留的MeV糖蛋白复合物采用相同的蛋白质-蛋白质界面。F成熟为触发后复合物的分离做好准备,并且受体结合前构象的H头部结构域可防止茎的过早重排和F激活。细胞内预组装影响MeV融合特征,并可能导致麻疹病毒属特有的高细胞间融合活性。
麻疹病毒属的副粘病毒,如麻疹病毒,是高度传染性的主要人类和动物病原体。MeV包膜糖蛋白在细胞内预组装成紧密结合的异源寡聚体。为了探究预组装是否反映了独特的麻疹病毒进入策略,我们表征了细胞内和表面暴露的融合复合物的蛋白质-蛋白质界面,并研究了附着蛋白头部结构域、糖蛋白成熟以及细胞表面改变的生化条件对麻疹病毒融合复合物的影响。我们的结果表明,麻疹病毒在功能上改变了副粘病毒进入途径的保守元件,为麻疹病毒属的高细胞间融合活性提供了一种可能的解释。从这些数据中获得的见解影响了有效的广谱副粘病毒进入抑制剂的设计。