首页> 美国卫生研究院文献>Journal of Virology >Dual Split Protein-Based Fusion Assay Reveals that Mutations to Herpes Simplex Virus (HSV) Glycoprotein gB Alter the Kinetics of Cell-Cell Fusion Induced by HSV Entry Glycoproteins
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Dual Split Protein-Based Fusion Assay Reveals that Mutations to Herpes Simplex Virus (HSV) Glycoprotein gB Alter the Kinetics of Cell-Cell Fusion Induced by HSV Entry Glycoproteins

机译:基于双分裂蛋白的融合测定揭示了单纯疱疹病毒(HSV)糖蛋白gB的突变改变了由HSV进入糖蛋白诱导的细胞-细胞融合的动力学。

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摘要

Herpes simplex virus (HSV) entry and cell-cell fusion require glycoproteins gD, gH/gL, and gB. We propose that receptor-activated changes to gD cause it to activate gH/gL, which then triggers gB into an active form. We employed a dual split-protein (DSP) assay to monitor the kinetics of HSV glycoprotein-induced cell-cell fusion. This assay measures content mixing between two cells, i.e., fusion, within the same cell population in real time (minutes to hours). Titration experiments suggest that both gD and gH/gL act in a catalytic fashion to trigger gB. In fact, fusion rates are governed by the amount of gB on the cell surface. We then used the DSP assay to focus on mutants in two functional regions (FRs) of gB, FR1 and FR3. FR1 contains the fusion loops (FL1 and FL2), and FR3 encompasses the crown at the trimer top. All FL mutants initiated fusion very slowly, if at all. However, the fusion rates caused by some FL2 mutants increased over time, so that total fusion by 8 h looked much like that of the WT. Two distinct kinetic patterns, “slow and fast,” emerged for mutants in the crown of gB (FR3), again showing differences in initiation and ongoing fusion. Of note are the fusion kinetics of the gB syn mutant (LL871/872AA). Although this mutant was originally included as an ongoing high-rate-of-fusion control, its initiation of fusion is so rapid that it appears to be on a “hair trigger.” Thus, the DSP assay affords a unique way to examine the dynamics of HSV glycoprotein-induced cell fusion.
机译:单纯疱疹病毒(HSV)进入和细胞融合需要糖蛋白gD,gH / gL和gB。我们建议受体激活的gD改变导致其激活gH / gL,然后触发gB进入活性形式。我们采用双重分裂蛋白(DSP)分析来监测HSV糖蛋白诱导的细胞-细胞融合的动力学。该测定法实时(数分钟至数小时)测量同一细胞群内两个细胞之间的含量混合,即融合。滴定实验表明,gD和gH / gL均以催化方式触发gB。实际上,融合率取决于细胞表面的gB量。然后,我们使用DSP分析将重点放在gB,FR1和FR3的两个功能区(FR)中的突变体上。 FR1包含融合环(FL1和FL2),FR3包含三聚体顶部的冠。如果有的话,所有FL突变体的融合开始都非常缓慢。然而,由一些FL2突变体引起的融合率随时间增加,因此8小时的总融合看起来与野生型非常相似。在gB(FR3)冠的突变体中出现了两种不同的动力学模式“慢和快”,再次显示了起始和进行中融合的差异。值得注意的是gB syn突变体(LL871 / 872AA)的融合动力学。尽管此突变体最初被包括在进行中的高融合率控制中,但其融合的启动是如此之快,以至于看起来像是在“触发”。因此,DSP分析提供了一种独特的方法来检查HSV糖蛋白诱导的细胞融合的动力学。

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