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Distribution of AC Electric Field-Induced Transmembrane Voltage in Escherichia coli Cell Wall Layers
Authors:Dominique Rauly  Médéric Vindret  Eric Chamberod  Jean M. F. Martins  Pascal Xavier
Affiliation:1. Univ. Grenoble Alpes, Univ. Savoie Mont Blanc, CNRS, Grenoble INP, IMEP-LAHC, 38000, Grenoble, France;2. Univ. Grenoble Alpes, Grenoble, France;3. Univ. Grenoble Alpes, Inst. Geosci Environ. IGE HyDRIMZ, CNRS, Grenoble 4. INP, IRD, UGA CS 40700, Grenoble, France
Abstract:On the basis of Gram-negative bacterium Escherichia coli models previously published in the literature, the transmembrane voltage induced by the application of an alternating current (AC) electric field on a bacterial suspension is calculated using COMSOL Multiphysics software, in the range 1–20 MHz, for longitudinal and transverse field orientations. The voltages developed on each of the three layers of the cell wall are then calculated using an electrical equivalent circuit. This study shows that the overall voltage on the cell wall, whose order of magnitude is a few tens of µV, is mainly distributed on inner and outer layers, while a near-zero voltage is found on the periplasm, due to its much higher electrical conductivity compared with the other layers. Although the outer membrane electrical conductivity taken in the model is a thousand times higher than that of the inner membrane, the voltage there is about half of that on the inner membrane, due to capacitive effects. It follows that the expression of protein complexes anchored in the inner membrane could potentially be disrupted, inducing in particular a possible perturbation of biological processes related to cellular respiration and proton cycle, and leading to growth inhibition as a consequence. Protein complexes anchored in the outer membrane or constituting a bridge between the three layers of the cell wall, such as some porins, may also undergo the same action, which would add another growth inhibition factor, as a result of deficiency in porin filtration function when the external environment contains biocides. Bioelectromagnetics. 2020;41:279–288 © 2020 Bioelectromagnetics Society.
Keywords:finite element modeling  weak electric field  Escherichia coli  membrane proteins
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