融合
脂质双层融合
计算生物学
融合机制
杠杆(统计)
蛋白质-蛋白质相互作用
融合蛋白
化学
生物物理学
分子动力学
蛋白质结构
病毒膜
突变
生物
人工智能
膜蛋白
病毒包膜
膜
糖蛋白
生物系统
分子模型
蛋白质折叠
血浆蛋白结合
计算机科学
结构生物信息学
相互作用模型
结构母题
膜透性
分子识别
病毒复制
交互网络
鉴定(生物学)
机制(生物学)
内在无序蛋白质
细胞生物学
结构生物学
疱疹病毒糖蛋白B
理论(学习稳定性)
作者
Ryan E. Odstrcil,Albina Makio,McKenna A. Hull,Prashanta Dutta,Anthony V. Nicola,Jin Liu
出处
期刊:Nanoscale
[Royal Society of Chemistry]
日期:2025-01-01
卷期号:17 (47): 27250-27258
被引量:1
摘要
Enveloped viruses must enter host cells to initiate infections through a fusion process, during which the fusion proteins undergo significant and complex structural changes from pre-fusion to post-fusion conformations. Understanding of the fusion protein conformational stability, and rapid and accurate identification of the stabilizing interactions are critically important for inhibiting the infections. Here, we leverage molecular dynamics simulations, novel machine learning models and biological experiments to identify the crucial interactions dictating the structural stability of glycoprotein B (gB), a class III fusion protein. We focused on the interactions between the fusion loops and the membrane proximal region in gB. A new Q181-R747 polar interaction was identified from our machine learning model as critical in stabilizing the gB pre-fusion conformation. Molecular simulations revealed that mutation of Q181 with proline (Q181P) disrupted the fusion loop secondary structure and reduced gB pre-fusion stability. Experiments were designed to evaluate the impact of the Q181P on fusion. Strikingly, the mutation completely abrogated gB membrane fusion activity. The experiments confirmed the importance of Q181-R747 interaction on fusion, which is consistent with the model predictions. The results deepen our fundamental understanding of the molecular mechanisms of gB during viral fusion, which may lead to novel antiviral interventions. The modeling and experimental framework can be generalized to rapidly identify the critical intermolecular interactions in other important biological processes.
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