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Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro

Despite continuous advances in therapy, malignant melanoma is still among the deadliest types of cancer. At the same time, owing to its high plasticity and immunogenicity, melanoma is regarded as a model tumor entity when testing new treatment approaches. Cold physical plasma is a novel anticancer t...

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Autores principales: Pasqual-Melo, Gabriella, Sagwal, Sanjeev Kumar, Freund, Eric, Gandhirajan, Rajesh Kumar, Frey, Benjamin, von Woedtke, Thomas, Gaipl, Udo, Bekeschus, Sander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7073141/
https://www.ncbi.nlm.nih.gov/pubmed/32085661
http://dx.doi.org/10.3390/ijms21041379
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author Pasqual-Melo, Gabriella
Sagwal, Sanjeev Kumar
Freund, Eric
Gandhirajan, Rajesh Kumar
Frey, Benjamin
von Woedtke, Thomas
Gaipl, Udo
Bekeschus, Sander
author_facet Pasqual-Melo, Gabriella
Sagwal, Sanjeev Kumar
Freund, Eric
Gandhirajan, Rajesh Kumar
Frey, Benjamin
von Woedtke, Thomas
Gaipl, Udo
Bekeschus, Sander
author_sort Pasqual-Melo, Gabriella
collection PubMed
description Despite continuous advances in therapy, malignant melanoma is still among the deadliest types of cancer. At the same time, owing to its high plasticity and immunogenicity, melanoma is regarded as a model tumor entity when testing new treatment approaches. Cold physical plasma is a novel anticancer tool that utilizes a plethora of reactive oxygen species (ROS) being deposited on the target cells and tissues. To test whether plasma treatment would enhance the toxicity of an established antitumor therapy, ionizing radiation, we combined both physical treatment modalities targeting B16F10 murine melanoma cell in vitro. Repeated rather than single radiotherapy, in combination with gas plasma-introduced ROS, induced apoptosis and cell cycle arrest in an additive fashion. In tendency, gas plasma treatment sensitized the cells to subsequent radiotherapy rather than the other way around. This was concomitant with increased levels of TNFα, IL6, and GM-CSF in supernatants. Murine JAWS dendritic cells cultured in these supernatants showed an increased expression of cell surface activation markers, such as MHCII and CD83. For PD-L1 and PD-L2, increased expression was observed. Our results are the first to suggest an additive therapeutic effect of gas plasma and radiotherapy, and translational tumor models are needed to develop this concept further.
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spelling pubmed-70731412020-03-19 Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro Pasqual-Melo, Gabriella Sagwal, Sanjeev Kumar Freund, Eric Gandhirajan, Rajesh Kumar Frey, Benjamin von Woedtke, Thomas Gaipl, Udo Bekeschus, Sander Int J Mol Sci Article Despite continuous advances in therapy, malignant melanoma is still among the deadliest types of cancer. At the same time, owing to its high plasticity and immunogenicity, melanoma is regarded as a model tumor entity when testing new treatment approaches. Cold physical plasma is a novel anticancer tool that utilizes a plethora of reactive oxygen species (ROS) being deposited on the target cells and tissues. To test whether plasma treatment would enhance the toxicity of an established antitumor therapy, ionizing radiation, we combined both physical treatment modalities targeting B16F10 murine melanoma cell in vitro. Repeated rather than single radiotherapy, in combination with gas plasma-introduced ROS, induced apoptosis and cell cycle arrest in an additive fashion. In tendency, gas plasma treatment sensitized the cells to subsequent radiotherapy rather than the other way around. This was concomitant with increased levels of TNFα, IL6, and GM-CSF in supernatants. Murine JAWS dendritic cells cultured in these supernatants showed an increased expression of cell surface activation markers, such as MHCII and CD83. For PD-L1 and PD-L2, increased expression was observed. Our results are the first to suggest an additive therapeutic effect of gas plasma and radiotherapy, and translational tumor models are needed to develop this concept further. MDPI 2020-02-18 /pmc/articles/PMC7073141/ /pubmed/32085661 http://dx.doi.org/10.3390/ijms21041379 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Pasqual-Melo, Gabriella
Sagwal, Sanjeev Kumar
Freund, Eric
Gandhirajan, Rajesh Kumar
Frey, Benjamin
von Woedtke, Thomas
Gaipl, Udo
Bekeschus, Sander
Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro
title Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro
title_full Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro
title_fullStr Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro
title_full_unstemmed Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro
title_short Combination of Gas Plasma and Radiotherapy Has Immunostimulatory Potential and Additive Toxicity in Murine Melanoma Cells In Vitro
title_sort combination of gas plasma and radiotherapy has immunostimulatory potential and additive toxicity in murine melanoma cells in vitro
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7073141/
https://www.ncbi.nlm.nih.gov/pubmed/32085661
http://dx.doi.org/10.3390/ijms21041379
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