Molecular dynamics simulations show how antibodies may rescue HIV-1 mutants incapable of infecting host cells.

IF 2.7 3区 生物学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY
Dharanish Rajendra, Nikhil Maroli, Narendra M Dixit, Prabal K Maiti
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引用次数: 0

Abstract

High mutation and replication rates of HIV-1 result in the continuous generation of variants, allowing it to adapt to changing host environments. Mutations often have deleterious effects, but variants carrying them are rapidly purged. Surprisingly, a particular variant incapable of entering host cells was found to be rescued by host antibodies targeting HIV-1. Understanding the molecular mechanism of this rescue is important to develop and improve antibody-based therapies. To unravel the underlying mechanisms, we performed fully atomistic molecular dynamics simulations of the HIV-1 gp41 trimer responsible for viral entry into host cells, its entry-deficient variant, and its complex with the rescuing antibody. We find that the Q563R mutation, which the entry-deficient variant carries, prevents the native conformation of the gp41 6-helix bundle required for entry and stabilizes an alternative conformation instead. This is the consequence of substantial changes in the secondary structure and interactions between the domains of gp41. Binding of the antibody F240 to gp41 reverses these changes and re-establishes the native conformation, resulting in rescue. To test the generality of this mechanism, we performed simulations with the entry-deficient L565A variant and antibody 3D6. We find that 3D6 binding was able to reverse structural and interaction changes introduced by the mutation and restore the native gp41 conformation. Viral variants may not only escape antibodies but be aided by them in their survival, potentially compromising antibody-based therapies, including vaccination and passive immunization. Our simulation framework could serve as a tool to assess the likelihood of such resistance against specific antibodies.

分子动力学模拟显示了抗体如何挽救无法感染宿主细胞的 HIV-1 突变体。
HIV-1 的高突变率和复制率导致不断产生变体,使其能够适应不断变化的宿主环境。变异通常会产生有害影响,但携带变异的病毒会被迅速清除。令人惊讶的是,一种无法进入宿主细胞的变异体被宿主针对HIV-1的抗体所拯救。了解这种拯救的分子机制对于开发和改进基于抗体的疗法非常重要。为了揭示其基本机制,我们对负责病毒进入宿主细胞的 HIV-1 gp41 三聚体、其进入缺陷变体及其与拯救抗体的复合物进行了全原子分子动力学模拟。我们发现,进入缺陷变体携带的 Q563R 突变阻止了进入所需的 gp41 6 螺旋束的原生构象,而稳定了另一种构象。这是 gp41 二级结构和结构域之间相互作用发生重大变化的结果。将抗体 F240 与 gp41 结合可逆转这些变化并重建原生构象,从而起到拯救作用。为了测试这一机制的普遍性,我们用入口缺陷的 L565A 变体和抗体 3D6 进行了模拟。我们发现,3D6 的结合能够逆转突变带来的结构和相互作用变化,并恢复 gp41 的原生构象。病毒变体不仅可能逃避抗体,还可能在抗体的帮助下存活,这可能会影响以抗体为基础的疗法,包括疫苗接种和被动免疫。我们的模拟框架可作为一种工具,用于评估这种抵抗特定抗体的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Biomolecular Structure & Dynamics
Journal of Biomolecular Structure & Dynamics 生物-生化与分子生物学
CiteScore
8.90
自引率
9.10%
发文量
597
审稿时长
2 months
期刊介绍: The Journal of Biomolecular Structure and Dynamics welcomes manuscripts on biological structure, dynamics, interactions and expression. The Journal is one of the leading publications in high end computational science, atomic structural biology, bioinformatics, virtual drug design, genomics and biological networks.
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