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首页> 外文期刊>The Journal of biological chemistry >Base of the Measles Virus Fusion Trimer Head Receives the Signal That Triggers Membrane Fusion
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Base of the Measles Virus Fusion Trimer Head Receives the Signal That Triggers Membrane Fusion

机译:麻疹病毒融合修剪器头部接收触发膜融合的信号

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The measles virus (MV) fusion (F) protein trimer executes membrane fusion after receiving a signal elicited by receptor binding to the hemagglutinin (H) tetramer. Where and how this signal is received is understood neither for MV nor for other paramyxoviruses. Because only the prefusion structure of the parainfluenza virus 5 (PIV5) F-trimer is available, to study signal receipt by the MV F-trimer, we generated and energy-refined a homology model. We used two approaches to predict surface residues of the model interacting with other proteins. Both approaches measured interface propensity values for patches of residues. The second approach identified, in addition, individual residues based on the conservation of physical chemical properties among F-proteins. Altogether, about 50 candidate interactive residues were identified. Through iterative cycles of mutagenesis and functional analysis, we characterized six residues that are required specifically for signal transmission; their mutation interferes with fusion, although still allowing efficient F-protein processing and cell surface transport. One residue is located adjacent to the fusion peptide, four line a cavity in the base of the F-trimer head, while the sixth residue is located near this cavity. Hydrophobic interactions in the cavity sustain the fusion process and contacts with H. The cavity is flanked by two different subunits of the F-trimer. Tetrameric H-stalks may be lodged in apposed cavities of two F-trimers. Because these insights are based on a PIV5 homology model, the signal receipt mechanism may be conserved among paramyxoviruses.
机译:麻疹病毒(MV)融合(F)蛋白质三聚体在接受受血凝素(H)四聚体引起的受体结合引起的信号后执行膜融合。接收到该信号的位置和方式既不会理解MV也没有用于其他副杂页病毒。因为只有Parainfluenza病毒5(PIV5)F-Trimer的预防结构可用,所以通过MV F-Trimer学习信号收据,我们产生和能量精制了同源模型。我们使用两种方法来预测与其他蛋白质相互作用的模型的表面残留物。两者都接近了残留斑块的测量界面倾向值。另外,第二种方法另外,基于F蛋白的物理化学性质的保护。完全,确定了约50个候选互动残留物。通过迭代循环的诱变和功能分析,我们表征了六个残留物,该残留物专门用于信号传输;它们的突变干扰了融合,尽管仍然允许有效的F蛋白质加工和细胞表面传输。一个残余物位于融合肽附近,在F形三角头的底座中,四线腔,而第六残留物位于该空腔附近。腔体中的疏水性相互作用维持融合过程和与H的触点。腔体侧翼被F形三聚体的两个不同亚基侧翼。可以在两个F-三聚体的所持空腔中加入四聚体H-茎。因为这些见解基于PIV5同源模型,所以信号收据机制可能在副缺陷中保守。

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