电场作用下微生物膜的局部加热和应力

B. Song, I. Timoshkin, M. Maclean, M. Wilson, M. Given, S. Macgregor, K. Satoh, H. Kawaguchi
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引用次数: 1

摘要

脉冲电场(PEF)可能会对微生物的生物膜造成不可逆的损伤,因为通过它们的膜诱导的机电应力可以拉伸和破裂这些磷脂双层。局部加热对于进一步理解外外加电场的生物作用很重要,因为PEF处理通常被认为是一个非热过程:在此过程中微生物液体悬浮液的整体温度的任何增加都不会导致微生物的热失活。本文旨在利用COMSOL Multiphysics开发的模型,研究外电场胁迫下模型微生物生物膜的瞬态局部加热和瞬态机械应力。所得结果表明,与外部悬浮液的整体温度相比,高场脉冲可以导致膜上产生强烈的局部机电应力,以及膜和细胞壁的明显局部过热。这些结果和建立的模型有助于进一步了解脉冲电场的生物作用,并有助于进一步开发和优化脉冲电场技术。
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Local heating and stresses across membranes of microorganisms stressed with electric field
Pulsed electric field (PEF) may cause irreversible damage to bio-membranes of microorganisms, as electromechanical stresses induced across their membranes can stretch and rupture these phospholipid bi-layers. Local heating is important for further understanding of the biological action of the externally applied electric field as typically the PEF treatment is considered to be a nonthermal process: any increase in the global temperature of the microbial liquid suspension during this process does not result in the thermal inactivation of microorganisms. This paper is aimed at investigation of the transient local heating and transient mechanical stresses across biomembranes of model microorganisms stressed with the external electric field using a model developed in COMSOL Multiphysics. The obtained results demonstrate that high-field impulses can result in the development of strong local electro-mechanical stresses across the membrane, and significant local over-heating of the membrane and the cell wall, as compared with the global temperature of the external suspension. These results and the developed model can help in further understanding the biological action of the impulsive electric fields, and in further development and optimisation of the PEF technology.
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