Molecular Dynamics Simulations of Shockwave Affected STMV Virus to Measure the Frequencies of the Oscillatory Response

IF 1.3 Q3 ACOUSTICS
Jeffrey Burkhartsmeyer, K. Wong
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Abstract

Acoustic shockwaves are of interest as a possible means of the selective inactivation of viruses. It has been proposed that such inactivation may be enhanced by driving the virus particles at frequencies matching the characteristic frequency corresponding to acoustic modes of the viral structures, setting up a resonant response. Characteristic frequencies of viruses have been previously studied through opto-mechanical techniques. In contrast to optical excitation, shockwaves may be able to probe acoustic modes without the limitation of optical selection rules. This work explores molecular dynamics simulations of shockwaves interacting with a single STMV virus structure, in full atomistic detail, in order to measure the frequency of the response of the overall structure. Shockwaves of varying energy were set up in a water box containing the STMV structure by assigning water molecules at the edge of the box with an elevated velocity inward—in the direction of the virus. It was found that the structure compressed and stretched in a periodic oscillation of frequency 65 ± 6.5 GHz. This measured frequency did not show strong dependency on the energy of the shockwave perturbing the structure, suggesting the frequency is a characteristic of the structure. The measured frequency is also consistent with values predicted from elastic theory. Additionally, it was found that subjecting the virus to repeated shockwaves led to further deformation of the structure and the magnitude of the overall deformation could be altered by varying the time delay between repeated shockwave pulses.
冲击波作用下STMV病毒振荡反应频率的分子动力学模拟
声学冲击波作为选择性灭活病毒的一种可能手段,引起了人们的兴趣。已经提出,可以通过以与病毒结构的声学模式对应的特征频率匹配的频率驱动病毒颗粒,建立共振响应来增强这种失活。病毒的特征频率先前已经通过光机械技术进行了研究。与光学激励相反,冲击波可以在不受光学选择规则限制的情况下探测声学模式。这项工作探索了冲击波与单个STMV病毒结构相互作用的分子动力学模拟,以完整的原子细节,从而测量整个结构的响应频率。在一个装有STMV结构的水箱中,通过将水箱边缘的水分子以更高的速度向内——朝着病毒的方向——设置不同能量的冲击波。研究发现,该结构在频率为65±6.5GHz的周期振荡中被压缩和拉伸。该测量频率没有显示出对扰动结构的冲击波能量的强烈依赖性,这表明频率是结构的一个特征。测得的频率也与弹性理论预测的值一致。此外,研究发现,对病毒进行重复冲击波会导致结构进一步变形,并且可以通过改变重复冲击波脉冲之间的时间延迟来改变整体变形的幅度。
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
CiteScore
3.70
自引率
0.00%
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0
审稿时长
11 weeks
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