首页> 外文期刊>The Journal of Membrane Biology: An International Journal for Studies on the Structure, Function & Genesis of Biomembranes >Dependence of Electroporation Detection Threshold on Cell Radius: An Explanation to Observations Non Compatible with Schwan's Equation Model
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Dependence of Electroporation Detection Threshold on Cell Radius: An Explanation to Observations Non Compatible with Schwan's Equation Model

机译:电穿孔检测阈值对细胞半径的依赖性:对与施万方程模型不兼容的观测结果的解释

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摘要

It is widely accepted that electroporation occurs when the cell transmembrane voltage induced by an external applied electric field reaches a threshold. Under this assumption, in order to trigger electroporation in a spherical cell, Schwan's equation leads to an inversely proportional relationship between the cell radius and the minimum magnitude of the applied electric field. And, indeed, several publications report experimental evidences of an inverse relationship between the cell size and the field required to achieve electroporation. However, this dependence is not always observed or is not as steep as predicted by Schwan's equation. The present numerical study attempts to explain these observations that do not fit Schwan's equation on the basis of the interplay between cell membrane conductivity, permeability, and transmembrane voltage. For that, a single cell in suspension was modeled and the electric field necessary to achieve electroporation with a single pulse was determined according to two effectiveness criteria: a specific permeabilization level, understood as the relative area occupied by the pores during the pulse, and a final intracellular concentration of a molecule due to uptake by diffusion after the pulse, during membrane resealing. The results indicate that plausible model parameters can lead to divergent dependencies of the electric field threshold on the cell radius. These divergent dependencies were obtained through both criteria and using two different permeabilization models. This suggests that the interplay between cell membrane conductivity, permeability, and transmembrane voltage might be the cause of results which are noncompatible with the Schwan's equation model.
机译:普遍认为,当由外部施加的电场感应的细胞跨膜电压达到阈值时,就会发生电穿孔。在此假设下,为了触发球形细胞中的电穿孔,Schwan方程导致了细胞半径与施加电场的最小幅度之间的反比例关系。而且,的确,一些出版物报道了实验证明,细胞大小与实现电穿孔所需的电场之间存在反比关系。但是,这种依赖性并不总是可以观察到,也不像Schwan方程所预测的那样陡峭。本数值研究试图根据细胞膜电导率,渗透性和跨膜电压之间的相互作用来解释这些不符合Schwan方程的观察结果。为此,对悬浮中的单个细胞进行建模,并根据两个有效性标准确定实现单个脉冲电穿孔所需的电场:特定的通透性水平,即在脉冲过程中孔所占据的相对面积,以及膜重封期间,由于脉冲后扩散吸收而导致的分子最终细胞内浓度。结果表明,合理的模型参数可能导致电场阈值对细胞半径的不同依赖性。这些不同的依赖关系是通过两个标准以及使用两个不同的渗透模型获得的。这表明细胞膜电导率,渗透性和跨膜电压之间的相互作用可能是导致与Schwan方程模型不兼容的结果的原因。

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