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大气压等离子体诱导电势对细胞反应的影响。

Influence of electric potential-induced by atmospheric pressure plasma on cell response.

机构信息

Faculty of Information Science and Electrical Engineering, Kyushu University, Fukuoka, Fukuoka, 819-0395, Japan.

Institute of Fluid Science, Tohoku University, Sendai, Miyagi, 980-8577, Japan.

出版信息

Sci Rep. 2023 Sep 25;13(1):15960. doi: 10.1038/s41598-023-42976-4.

Abstract

Plasma irradiation leads not only active species, but also reactive chemical species, ultraviolet light, electric fields, magnetic fields, and shock waves. To date the effects of reactive chemical species have been mainly discussed. To understand the biological effect caused by an electric potential induced with an atmospheric-pressure plasma, the behavior of cell stimulated by electric potential was investigated using HeLa cell. The cell concentration assay revealed that less than 20% of cells inactivated by potential stimulation and the remained cells proliferate afterward. Fluorescent microscopic observation revealed that potential stimulation is appreciable to transport the molecules through membrane. These results show that potential stimulation induces intracellular and extracellular molecular transport, while the stimulation has a low lethal effect. A possible mechanism for this molecular transport by potential stimulation was also shown using numerical simulation based on an equivalent circuit of the experimental system including adhered HeLa cell. The potential formation caused by plasma generation is decisive in the contribution of plasma science to molecular biology and the elucidation of the mechanism underlying a biological response induction by plasma irradiation.

摘要

等离子体辐照不仅会产生活性物质,还会产生反应性化学物质、紫外线、电场、磁场和冲击波。迄今为止,主要讨论了反应性化学物质的影响。为了了解大气压等离子体产生的电势引起的生物学效应,使用 HeLa 细胞研究了被电势刺激的细胞的行为。细胞浓度测定表明,电位刺激使不到 20%的细胞失活,其余细胞随后增殖。荧光显微镜观察表明,电位刺激可明显促进分子通过细胞膜的运输。这些结果表明,电位刺激诱导细胞内和细胞外分子的运输,而刺激的致死作用较低。还使用基于包括贴壁 HeLa 细胞在内的实验系统的等效电路的数值模拟,显示了电位刺激引起这种分子运输的可能机制。等离子体产生引起的电势形成对等离子体科学在分子生物学中的贡献以及阐明等离子体辐照诱导生物学反应的机制至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55b2/10520067/de6ef8b15290/41598_2023_42976_Fig1_HTML.jpg

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