圆柱形(埃博拉病毒)和球形(SARS-CoV-2)病毒颗粒与细胞膜之间的粘附接触。

Mechanics of soft materials Pub Date : 2020-01-01 Epub Date: 2020-08-28 DOI:10.1007/s42558-020-00026-3
Jiajun Wang, Nicole Lapinski, Xiaohui Zhang, Anand Jagota
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引用次数: 0

摘要

病毒粒子感染细胞过程中的一个关键事件是附着,这一过程由粘附相互作用驱动,并受到弯曲和张力的阻力。人们对这一过程的生物物理学进行了广泛研究,但通常忽略了外部作用力或位移的附加作用。在这项工作中,我们研究了病毒颗粒对细胞膜的粘附力-位移反应。我们建立了两个模型:一个是圆柱形病毒粒子(例如埃博拉病毒等丝状病毒的代表),另一个是球形病毒粒子(例如 SARS-CoV-2 和寨卡)。我们感兴趣的是初始粘附,在这种情况下变形很小,系统的数学模型可以大大简化。表征这一过程的参数组合成两个无量纲组,分别代表归一化的膜弯曲刚度和张力。在弯曲占主导地位的极限情况下,对于足够大的归一化弯曲硬度值,病毒颗粒与细胞膜之间在没有外力作用的情况下不会发生粘连。(对于较大的归一化膜张力值,病毒与细胞膜之间的粘附力很弱,但很稳定。(我们对拉脱力和零外力接触宽度的研究结果有助于量化一些条件,这些条件有助于开发通过阻止病毒的初始粘附来阻止病毒进入细胞的疗法。
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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Adhesive contact between cylindrical (Ebola) and spherical (SARS-CoV-2) viral particles and a cell membrane.

A critical event during the process of cell infection by a viral particle is attachment, which is driven by adhesive interactions and resisted by bending and tension. The biophysics of this process has been studied extensively, but the additional role of externally applied force or displacement has generally been neglected. In this work, we study the adhesive force-displacement response of viral particles against a cell membrane. We have built two models: one in which the viral particle is cylindrical (say, representative of a filamentous virus such as Ebola) and another in which it is spherical (such as SARS-CoV-2 and Zika). Our interest is in initial adhesion, in which case deformations are small, and the mathematical model for the system can be simplified considerably. The parameters that characterize the process combine into two dimensionless groups that represent normalized membrane bending stiffness and tension. In the limit where bending dominates, for sufficiently large values of normalized bending stiffness, there is no adhesion between viral particles and the cell membrane without applied force. (The zero external force contact width and pull-off force are both zero.) For large values of normalized membrane tension, the adhesion between virus and cell membrane is weak but stable. (The contact width at zero external force has a small value.) Our results for pull-off force and zero force contact width help to quantify conditions that could aid the development of therapies based on denying the virus entry into the cell by blocking its initial adhesion.

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