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Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation

Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) and cold plasma-stimulated medium (PSM) have been shown to exhibit tumor-selective cytotoxicity and have emerged as promising new tools for cancer treatment. However, to date, at least to the best of our knowledge, no data are available...

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Autores principales: Tokunaga, Tomohiko, Ando, Takashi, Suzuki-Karasaki, Miki, Ito, Tomohisa, Onoe-Takahashi, Asuka, Ochiai, Toyoko, Soma, Masayoshi, Suzuki-Karasaki, Yoshihiro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: D.A. Spandidos 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5807047/
https://www.ncbi.nlm.nih.gov/pubmed/29393427
http://dx.doi.org/10.3892/ijo.2018.4251
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author Tokunaga, Tomohiko
Ando, Takashi
Suzuki-Karasaki, Miki
Ito, Tomohisa
Onoe-Takahashi, Asuka
Ochiai, Toyoko
Soma, Masayoshi
Suzuki-Karasaki, Yoshihiro
author_facet Tokunaga, Tomohiko
Ando, Takashi
Suzuki-Karasaki, Miki
Ito, Tomohisa
Onoe-Takahashi, Asuka
Ochiai, Toyoko
Soma, Masayoshi
Suzuki-Karasaki, Yoshihiro
author_sort Tokunaga, Tomohiko
collection PubMed
description Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) and cold plasma-stimulated medium (PSM) have been shown to exhibit tumor-selective cytotoxicity and have emerged as promising new tools for cancer treatment. However, to date, at least to the best of our knowledge, no data are available as to which substance is more potent in killing cancer cells. Thus, in this study, we systematically compared their abilities to kill human malignant cells from different origins. We found that PSM dose-dependently killed TRAIL-resistant melanoma, osteosarcoma and neuroblastoma cells. Moreover, PSM had little cytotoxicity toward osteoblasts. PSM was more potent than TRAIL in inducing caspase-3/7 activation, mitochondrial network aberration and caspase-independent cell death. We also found that PSM was more potent in inducing plasma membrane depolarization (PMD) and disrupting endoplasmic-mitochondrial Ca(2+) homeostasis. Moreover, persistent PMD was caused by different membrane-depolarizing agents; the use of the anti-type II diabetes drug, glibenclamide, alone caused mitochondrial fragmentation and enhanced TRAIL-induced Ca(2+) modulation, mitochondrial network abnormalities and caspase-independent cell killing. These results demonstrate that PSM has a therapeutic advantage over TRAIL owing to its greater capacity to evoke caspase-independent cell death via mitochondrial network aberration by disrupting membrane potential and Ca(2+) homeostasis. These findings may provide a strong rationale for developing PSM as a novel approach for the treatment of TRAIL-resistant malignant cells.
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spelling pubmed-58070472018-02-27 Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation Tokunaga, Tomohiko Ando, Takashi Suzuki-Karasaki, Miki Ito, Tomohisa Onoe-Takahashi, Asuka Ochiai, Toyoko Soma, Masayoshi Suzuki-Karasaki, Yoshihiro Int J Oncol Articles Tumor necrosis factor-related apoptosis-inducing ligand (TRAIL) and cold plasma-stimulated medium (PSM) have been shown to exhibit tumor-selective cytotoxicity and have emerged as promising new tools for cancer treatment. However, to date, at least to the best of our knowledge, no data are available as to which substance is more potent in killing cancer cells. Thus, in this study, we systematically compared their abilities to kill human malignant cells from different origins. We found that PSM dose-dependently killed TRAIL-resistant melanoma, osteosarcoma and neuroblastoma cells. Moreover, PSM had little cytotoxicity toward osteoblasts. PSM was more potent than TRAIL in inducing caspase-3/7 activation, mitochondrial network aberration and caspase-independent cell death. We also found that PSM was more potent in inducing plasma membrane depolarization (PMD) and disrupting endoplasmic-mitochondrial Ca(2+) homeostasis. Moreover, persistent PMD was caused by different membrane-depolarizing agents; the use of the anti-type II diabetes drug, glibenclamide, alone caused mitochondrial fragmentation and enhanced TRAIL-induced Ca(2+) modulation, mitochondrial network abnormalities and caspase-independent cell killing. These results demonstrate that PSM has a therapeutic advantage over TRAIL owing to its greater capacity to evoke caspase-independent cell death via mitochondrial network aberration by disrupting membrane potential and Ca(2+) homeostasis. These findings may provide a strong rationale for developing PSM as a novel approach for the treatment of TRAIL-resistant malignant cells. D.A. Spandidos 2018-01-23 /pmc/articles/PMC5807047/ /pubmed/29393427 http://dx.doi.org/10.3892/ijo.2018.4251 Text en Copyright: © Tokunaga et al. This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which permits use and distribution in any medium, provided the original work is properly cited, the use is non-commercial and no modifications or adaptations are made.
spellingShingle Articles
Tokunaga, Tomohiko
Ando, Takashi
Suzuki-Karasaki, Miki
Ito, Tomohisa
Onoe-Takahashi, Asuka
Ochiai, Toyoko
Soma, Masayoshi
Suzuki-Karasaki, Yoshihiro
Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
title Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
title_full Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
title_fullStr Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
title_full_unstemmed Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
title_short Plasma-stimulated medium kills TRAIL-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
title_sort plasma-stimulated medium kills trail-resistant human malignant cells by promoting caspase-independent cell death via membrane potential and calcium dynamics modulation
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5807047/
https://www.ncbi.nlm.nih.gov/pubmed/29393427
http://dx.doi.org/10.3892/ijo.2018.4251
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