Comparison of the Anticancer Effects of Pulsed Electric Field and He + O2 Plasma Jet

被引:0
作者
Hao Zhang
Jishen Zhang
Shengduo Xu
Yifan Liu
Bowen Sun
Zifeng Wang
Dehui Xu
Li Guo
Dingxin Liu
Michael G. Kong
机构
[1] Xi’an Jiaotong University,State Key Laboratory of Electrical Insulation and Power Equipment, Centre for Plasma Biomedicine
[2] Old Dominion University,Frank Reidy Center for Bioelectrics
[3] Old Dominion University,Department of Electrical and Computer Engineering
来源
Plasma Chemistry and Plasma Processing | 2021年 / 41卷
关键词
Plasma jet; Pulsed electric field; 3D multicellular tumor spheroids; Reactive oxygen species; Cancer therapy;
D O I
暂无
中图分类号
学科分类号
摘要
Cold atmospheric plasma (CAP) and pulsed electric field (PEF) technologies have received extensive attention for their potential beneficial effects in cancer therapy. As two emerging anticancer technologies, both CAP and PEF are related to high voltage electricity, so it is useful to compare their anticancer effects and underlying mechanism to further promote their clinical application. Here, based on three-dimensional (3D) multicellular tumor spheroids, the cytotoxicity of a He + O2 plasma jet or pulsed electric field on cancer cells was tested. It was found that the anticancer effects of the PEF mainly occurred within the first four hours of treatment, while the anticancer effects of the plasma jet were maintained for at least 24 h after irradiation. The PEF was shown to destroy the integrity of the cell membrane and selectively kill cancer cells in the S and G2/M phases, and the apoptosis was observed in the entire region of the 3D tumor spheroids. In contrast, the He + O2 plasma jet was shown to induce apoptosis by increasing cellular oxidative stress, and the apoptosis was observed only on the outermost layer of the 3D tumor spheroids.
引用
收藏
页码:973 / 987
页数:14
相关论文
共 326 条
  • [1] Chen WQ(2016)Cancer statistics in China, 2015: Cancer Statistics in China, 2015 CA-Cancer J Clin 66 115-132
  • [2] Zheng RS(2018)Addressing drug resistance in cancer with macromolecular chemotherapeutic agents J Am Chem Soc 140 4244-4252
  • [3] Baade PD(2018)Surveillance or metastasis-directed therapy for oligometastatic prostate cancer recurrence: a prospective, randomized, multicenter phase II trial J Clin Oncol 36 446-453
  • [4] Zhang SW(2007)IEEE Trns Dielectr Electr Insul 14 1088-1109
  • [5] Zeng HM(2004)Experimental studies on killing and inhibiting effects of steep pulsed electric field (SPEF) to target cancer cell and solid tumor IEEE Trans Plasma Sci 32 1626-1633
  • [6] Bray F(2003)The local liver ablation with pulsed electric field stimulate systemic immune reaction against hepatocellular carcinoma (HCC) with time-dependent cytokine profile Faseb J 17 1493-1495
  • [7] Jemal A(2017)From killing bacteria to destroying cancer cells: 20 years of plasma medicine: from killing bacteria to destroying cancer cells Cytokine 93 44-50
  • [8] Yu XQ(2014)Cold atmospheric plasma as a potential tool for multiple myeloma treatment Plasma Process Polym 11 1138-1141
  • [9] He J(2018)Atmospheric‐pressure pulsed discharges and plasmas: mechanism, characteristics and applications Oncotarget 9 18002-18017
  • [10] Park NH(2018)Effect of indirect nonequilibrium atmospheric pressure plasma on anti-proliferative activity against chronic chemo-resistant ovarian cancer cells in vitro and in vivo High Voltage 3 14-20