Suppr超能文献

暴露于纳秒脉冲电场的细胞跨膜电位的理论分析

Theoretical analysis of transmembrane potential of cells exposed to nanosecond pulsed electric field.

作者信息

Lu Wei, Wu Ke, Hu Xiangjun, Xie Xiangdong, Ning Jing, Wang Changzhen, Zhou Hongmei, Yang Guoshan

机构信息

a Laboratory of Health Physics , Beijing Institute of Radiation Medicine , Beijing , China.

b Laboratory of Experimental Pathology , Beijing Institute of Radiation Medicine , Beijing , China.

出版信息

Int J Radiat Biol. 2017 Feb;93(2):231-239. doi: 10.1080/09553002.2017.1230244. Epub 2016 Oct 10.

Abstract

PURPOSE

Intracellular electroporation occurs when the cells are exposed to nanosecond pulsed electric field (nsPEF). It is believed the electroporation (formation and extension of pores on the membrane induced by external electric field) is affected significantly by the transmembrane potential. This paper analyzed transmembrane potential induced by nsPEF in the term of pulse frequency spectrum, aiming to provide a theoretical explanation to intracellular bio-effects.

METHODS

Based on the double-shelled spherical cell model, the frequency dependence of transmembrane potential was obtained by solving Laplace's equation, while the time course of transmembrane potential was obtained by a method combined with discrete Fourier transform and Laplace transform. First-order Debye equation was used to describe the dielectric relaxation of the cell medium.

RESULTS

Frequency-domain analysis showed that when the electric field frequency was higher than 10 Hz, the transmembrane potential on the organelle membrane (ΔΦ) was increasing to exceed the transmembrane potential on the cellular membrane (ΔΦ). In the time-domain analysis, transmembrane potentials induced by four nsPEF (short trapezoid, long trapezoid, bipolar and sine shapes) with the same field strength were compared with each other. It showed that ΔΦ is obviously larger than ΔΦ if the curve of the normalized frequency spectrum of the pulse is more similar with the curve of normalized ΔΦ in frequency domain. Pulses with major frequency components higher than 10 Hz lead to both small ΔΦ and ΔΦ. This may explain why high power pulsed microwave lead to unobvious bio-effects of cells than nsPEF with trapezoid form.

CONCLUSION

Through the pulse frequency spectrum it is clearer to understand the relationship between nsPEF and the transmembrane potential.

摘要

目的

当细胞暴露于纳秒级脉冲电场(nsPEF)时会发生细胞内电穿孔。据信,电穿孔(由外部电场诱导的细胞膜上孔的形成和扩展)受跨膜电位的显著影响。本文从脉冲频谱的角度分析了nsPEF诱导的跨膜电位,旨在为细胞内生物效应提供理论解释。

方法

基于双壳球形细胞模型,通过求解拉普拉斯方程获得跨膜电位的频率依赖性,同时采用离散傅里叶变换和拉普拉斯变换相结合的方法获得跨膜电位的时间历程。用一阶德拜方程描述细胞介质的介电弛豫。

结果

频域分析表明,当电场频率高于10Hz时,细胞器膜上的跨膜电位(ΔΦ)增大并超过细胞膜上的跨膜电位(ΔΦ)。在时域分析中,比较了四种场强相同的nsPEF(短梯形、长梯形、双极形和正弦形)诱导的跨膜电位。结果表明,如果脉冲归一化频谱曲线在频域中与归一化ΔΦ曲线更相似,则ΔΦ明显大于ΔΦ。主要频率成分高于10Hz的脉冲导致ΔΦ和ΔΦ都较小。这可能解释了为什么高功率脉冲微波比梯形nsPEF对细胞的生物效应不明显。

结论

通过脉冲频谱可以更清楚地了解nsPEF与跨膜电位之间的关系。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验