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细胞外钙诱导的小分子电转染效率降低:微秒级和纳秒级电脉冲的比较

Extracellular-Ca-Induced Decrease in Small Molecule Electrotransfer Efficiency: Comparison between Microsecond and Nanosecond Electric Pulses.

作者信息

Navickaite Diana, Ruzgys Paulius, Novickij Vitalij, Jakutaviciute Milda, Maciulevicius Martynas, Sinceviciute Ruta, Satkauskas Saulius

机构信息

Biophysical Research Group, Faculty of Natural Sciences, Vytautas Magnus University, Vileikos st. 8, LT 44404 Kaunas, Lithuania.

Faculty of Electronics, Vilnius Gediminas Technical University, 10221 Vilnius, Lithuania.

出版信息

Pharmaceutics. 2020 May 4;12(5):422. doi: 10.3390/pharmaceutics12050422.

Abstract

Electroporation-a transient electric-field-induced increase in cell membrane permeability-can be used to facilitate the delivery of anticancer drugs for antitumour electrochemotherapy. In recent years, Ca electroporation has emerged as an alternative modality to electrochemotherapy. The antitumor effect of calcium electroporation is achieved as a result of the introduction of supraphysiological calcium doses. However, calcium is also known to play a key role in membrane resealing, potentially altering the pore dynamics and molecular delivery during electroporation. To elucidate the role of calcium for the electrotransfer of small charged molecule into cell we have performed experiments using nano- and micro-second electric pulses. The results demonstrate that extracellular calcium ions inhibit the electrotransfer of small charged molecules. Experiments revealed that this effect is related to an increased rate of membrane resealing. We also employed mathematical modelling methods in order to explain the differences between the CaCl effects after the application of nano- and micro-second duration electric pulses. Simulation showed that these differences occur due to the changes in transmembrane voltage generation in response to the increase in specific conductivity when CaCl concentration is increased.

摘要

电穿孔——一种由瞬态电场诱导的细胞膜通透性增加——可用于促进抗癌药物的递送,以进行抗肿瘤电化学疗法。近年来,钙电穿孔已成为电化学疗法的一种替代方式。钙电穿孔的抗肿瘤作用是通过引入超生理剂量的钙来实现的。然而,众所周知,钙在细胞膜重新封闭中也起着关键作用,这可能会改变电穿孔过程中的孔动力学和分子递送。为了阐明钙在小带电分子电转移到细胞中的作用,我们使用纳秒和微秒电脉冲进行了实验。结果表明,细胞外钙离子会抑制小带电分子的电转移。实验表明,这种效应与细胞膜重新封闭速率的增加有关。我们还采用了数学建模方法来解释在施加纳秒和微秒持续时间电脉冲后氯化钙效应之间的差异。模拟表明,这些差异是由于当氯化钙浓度增加时,跨膜电压产生因比电导率增加而发生变化所致。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2a79/7285190/b4f4ad25ff2d/pharmaceutics-12-00422-g001.jpg

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