Computational analysis of the simultaneous application of ultrasound and electric fields in a lipid bilayer

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Wagner Augusto Müller, Júlia Ribeiro Sarkis, Ligia Damasceno Ferreira Marczak, André Rodrigues Muniz
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引用次数: 0

Abstract

The combined application of electric fields and ultrasonic waves has shown promise in controlling cell membrane permeability, potentially resulting in synergistic effects that can be explored in the biotechnology industry. However, further clarification on how these processes interact is still needed. The objective of the present study was to investigate the atomic-scale effects of these processes on a DPPC lipid bilayer using molecular dynamics simulations. For higher electric fields, capable of independently forming pores, the application of an ultrasonic wave in the absence of cavitation yielded no additional effects on pore formation. However, for lower electric fields, the reduction in bilayer thickness induced by the shock wave catalyzed the electroporation process, effectively shortening the mean path that water molecules must traverse to form pores. When cavitation was considered, synergistic effects were evident only if the wave alone was able to generate pores through the formation of a water nanojet. In these cases, sonoporation acted as a mean to focus the electroporation effects on the initial pore formed by the nanojet. This study contributes to a better understanding of the synergy between electric fields and ultrasonic waves and to an optimal selection of processing parameters in practical applications of these processes.

Abstract Image

在脂质双分子层中同时应用超声波和电场的计算分析。
电场和超声波的联合应用在控制细胞膜通透性方面已显示出前景,有可能产生协同效应,可在生物技术行业进行探索。然而,仍需进一步阐明这些过程是如何相互作用的。本研究的目的是利用分子动力学模拟研究这些过程对 DPPC 脂质双分子层的原子尺度效应。对于能够独立形成孔隙的较高电场,在没有空化的情况下应用超声波不会对孔隙的形成产生额外的影响。然而,对于较低的电场,冲击波引起的双分子层厚度的减少催化了电穿孔过程,有效地缩短了水分子形成孔隙必须经过的平均路径。在考虑空化作用时,只有当冲击波本身能够通过形成纳米水射流来产生孔隙时,协同效应才会显现出来。在这些情况下,声波探测可作为一种手段,将电穿孔效应集中在纳米射流形成的初始孔隙上。这项研究有助于更好地理解电场和超声波之间的协同作用,并有助于在这些工艺的实际应用中优化加工参数的选择。
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
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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