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细胞膜电穿孔建模:一种多物理场方法。

Cell membrane electroporation modeling: A multiphysics approach.

机构信息

Centro Atómico Constituyentes, Comisión Nacional de Energía Atómica, Buenos Aires, Argentina.

Instituto de Física del Plasma, Consejo Nacional de Investigaciones Científicas y Técnicas, Departamento de Física, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Buenos Aires, Argentina.

出版信息

Bioelectrochemistry. 2018 Dec;124:28-39. doi: 10.1016/j.bioelechem.2018.06.010. Epub 2018 Jul 3.

Abstract

Electroporation-based techniques, i.e. techniques based on the perturbation of the cell membrane through the application of electric pulses, are widely used at present in medicine and biotechnology. However, the electric pulse - cell membrane interaction is not yet completely understood neither explicitly formalized. Here we introduce a Multiphysics (MP) model describing electric pulse - cell membrane interaction consisting on the Poisson equation for the electric field, the Nernst-Planck equations for ion transport (protons, hydroxides, sodium or calcium, and chloride), the Maxwell tensor and mechanical equilibrium equation for membrane deformations (with an explicit discretization of the cell membrane), and the Smoluchowski equation for membrane permeabilization. The MP model predicts that during the application of an electric pulse to a spherical cell an elastic deformation of its membrane takes place affecting the induced transmembrane potential, the pore creation dynamics and the ionic transport. Moreover, the coincidence among maximum membrane deformation, maximum pore aperture, and maximum ion uptake is predicted. Such behavior has been corroborated experimentally by previously published results in red blood and CHO cells as well as in supramolecular lipid vesicles.

摘要

基于电穿孔的技术,即通过施加电脉冲来扰动细胞膜的技术,目前在医学和生物技术中得到了广泛应用。然而,电脉冲-细胞膜相互作用尚未被完全理解,也没有被明确形式化。在这里,我们引入了一个多物理场(MP)模型来描述电脉冲-细胞膜相互作用,该模型由电场的泊松方程、离子传输的 Nernst-Planck 方程(质子、氢氧根、钠或钙和氯离子)、Maxwell 张量和细胞膜变形的力学平衡方程(对细胞膜进行显式离散化)以及细胞膜通透性的 Smoluchowski 方程组成。MP 模型预测,在向球形细胞施加电脉冲时,其细胞膜会发生弹性变形,从而影响诱导的跨膜电位、孔形成动力学和离子传输。此外,还预测了最大膜变形、最大孔孔径和最大离子摄取之间的一致性。这种行为已经通过先前在红细胞和 CHO 细胞以及超分子脂质体中发表的实验结果得到了证实。

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