电穿孔
脂质双层
膜
化学
磁导率
双层
生物物理学
电导
膜透性
分析化学(期刊)
脂质氧化
电场
化学工程
色谱法
有机化学
生物化学
抗氧化剂
物理
数学
组合数学
量子力学
基因
工程类
生物
作者
Katja Balantič,Victor U. Weiss,Ernst Pittenauer,Damijan Miklavčič,Peter Kramar
标识
DOI:10.1016/j.bioelechem.2023.108498
摘要
Electroporation is a useful tool for the manipulation with the cell membrane permeability. Underlying physicochemical processes taking place at the molecular level during electroporation are relatively well studied. However, various processes remain unknown, one of them is lipid oxidation, a chain reaction that causes degradation of lipids, and might explain the long-lasting membrane permeability after the electric field has ceased. The aim of our study was to observe the differences in the electrical properties of planar lipid bilayers, as in vitro cell membrane models, due to lipid oxidation. Phospholipids were chemically oxidized and oxidation products were analysed using mass spectrometry. Electrical properties, resistance R (Ω) and capacitance C (F) were measured using an LCR meter. Using a previously developed measuring device, a linear increasing signal was applied to a stable bilayer in order to measure its breakdown voltage Ubr (V) and lifetime tbr (µs). We observed an increase in conductance and capacitance of the oxidized planar lipid bilayers when compared to their non-oxidized counterparts. With increasing lipid oxidation, the core of the bilayer becomes more polar, and consequently more permeable. Our findings can explain the long-lasting permeability of the cell membrane after electroporation.
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