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细胞膜电穿孔和电渗透作用:机制和模型。

Membrane Electroporation and Electropermeabilization: Mechanisms and Models.

机构信息

Faculty of Electrical Engineering, University of Ljubljana, SI-1000 Ljubljana, Slovenia; email:

Science for Life Laboratory, Department of Applied Physics, KTH Royal Institute of Technology, 17165 Solna, Sweden; email:

出版信息

Annu Rev Biophys. 2019 May 6;48:63-91. doi: 10.1146/annurev-biophys-052118-115451. Epub 2019 Feb 20.

Abstract

Exposure of biological cells to high-voltage, short-duration electric pulses causes a transient increase in their plasma membrane permeability, allowing transmembrane transport of otherwise impermeant molecules. In recent years, large steps were made in the understanding of underlying events. Formation of aqueous pores in the lipid bilayer is now a widely recognized mechanism, but evidence is growing that changes to individual membrane lipids and proteins also contribute, substantiating the need for terminological distinction between electroporation and electropermeabilization. We first revisit experimental evidence for electrically induced membrane permeability, its correlation with transmembrane voltage, and continuum models of electropermeabilization that disregard the molecular-level structure and events. We then present insights from molecular-level modeling, particularly atomistic simulations that enhance understanding of pore formation, and evidence of chemical modifications of membrane lipids and functional modulation of membrane proteins affecting membrane permeability. Finally, we discuss the remaining challenges to our full understanding of electroporation and electropermeabilization.

摘要

生物细胞暴露在高压、短持续时间的电脉冲下会导致其细胞膜通透性短暂增加,允许原本不可渗透的分子进行跨膜运输。近年来,人们对其潜在事件的理解取得了重大进展。目前,脂质双层中形成水相孔是一种广泛认可的机制,但越来越多的证据表明,单个膜脂质和蛋白质的变化也有贡献,这证实了有必要在电穿孔和电渗透之间进行术语区分。我们首先重新审视实验证据,证明电诱导的细胞膜通透性与跨膜电压的相关性,以及忽略分子水平结构和事件的电渗透连续体模型。然后,我们介绍来自分子水平建模的见解,特别是有助于理解孔形成的原子模拟,以及膜脂质的化学修饰和影响膜通透性的膜蛋白功能调节的证据。最后,我们讨论了对电穿孔和电渗透的全面理解仍然存在的挑战。

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