Louvain Institute of Biomolecular Science and Technology, Université catholique de Louvain, Louvain-la-Neuve, Belgium.
Leibniz Institute for Food Systems Biology, Technical University of Munich, Freising, Germany.
Nanoscale Horiz. 2024 Oct 21;9(11):1925-1937. doi: 10.1039/d4nh00315b.
Understanding the mechanisms underlying viral entry is crucial for controlling viral diseases. In this study, we investigated the interactions between reovirus and Nogo-receptor 1 (NgR1), a key mediator of reovirus entry into the host central nervous system. NgR1 exhibits a unique bivalent interaction with the reovirus capsid, specifically binding at the interface between adjacent heterohexamers arranged in a precise structural pattern on the curved virus surface. Using single-molecule techniques, we explored for the first time how the capsid molecular architecture and receptor polymorphism influence virus binding. We compared the binding affinities of human and mouse NgR1 to reovirus μ1/σ3 proteins in their isolated form, self-assembled in 2D capsid patches, and within the native 3D viral topology. Our results underscore the essential role of the concave side of NgR1 and emphasize that the spatial organization and curvature of the virus are critical determinants of the stability of the reovirus-NgR1 complex. This study highlights the importance of characterizing interactions in physiologically relevant spatial configurations, providing precise insights into virus-host interactions and opening new avenues for therapeutic interventions against viral infections.
了解病毒进入的机制对于控制病毒性疾病至关重要。在这项研究中,我们研究了呼肠孤病毒与 Nogo 受体 1(NgR1)之间的相互作用,NgR1 是呼肠孤病毒进入宿主中枢神经系统的关键介质。NgR1 与呼肠孤病毒衣壳具有独特的二价相互作用,特异性结合在排列成精确结构模式的相邻异六聚体之间的界面上,这些异六聚体在弯曲的病毒表面上排列。我们首次使用单分子技术探索了衣壳分子结构和受体多态性如何影响病毒结合。我们比较了人 NgR1 和鼠 NgR1 与呼肠孤病毒 μ1/σ3 蛋白在其分离形式、在 2D 衣壳斑块中自组装形式以及在天然 3D 病毒拓扑结构中的结合亲和力。我们的结果强调了 NgR1 凹面的重要作用,并强调了病毒的空间组织和曲率是呼肠孤病毒-NgR1 复合物稳定性的关键决定因素。这项研究强调了在生理相关的空间构象中表征相互作用的重要性,为病毒-宿主相互作用提供了精确的见解,并为针对病毒感染的治疗干预开辟了新途径。