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Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway

Cancer is the second leading cause of death worldwide after heart disease. The current treatment options to fight cancer are limited, and there is a critical need for better treatment strategies. During the last several decades, several electric field (EF)-based approaches for anti-cancer therapies...

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Autores principales: Kaynak, Ahmet, N’Guessan, Kombo F., Patel, Priyankaben H., Lee, Jing-Huei, Kogan, Andrei B., Narmoneva, Daria A., Qi, Xiaoyang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9953458/
https://www.ncbi.nlm.nih.gov/pubmed/36831002
http://dx.doi.org/10.3390/biomedicines11020466
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author Kaynak, Ahmet
N’Guessan, Kombo F.
Patel, Priyankaben H.
Lee, Jing-Huei
Kogan, Andrei B.
Narmoneva, Daria A.
Qi, Xiaoyang
author_facet Kaynak, Ahmet
N’Guessan, Kombo F.
Patel, Priyankaben H.
Lee, Jing-Huei
Kogan, Andrei B.
Narmoneva, Daria A.
Qi, Xiaoyang
author_sort Kaynak, Ahmet
collection PubMed
description Cancer is the second leading cause of death worldwide after heart disease. The current treatment options to fight cancer are limited, and there is a critical need for better treatment strategies. During the last several decades, several electric field (EF)-based approaches for anti-cancer therapies have been introduced, such as electroporation and tumor-treating fields; still, they are far from optimal due to their invasive nature, limited efficacy and significant side effects. In this study, we developed a non-contact EF stimulation system to investigate the in vitro effects of a novel EF modality on cancer biomarkers in normal (human astrocytes, human pancreatic ductal epithelial -HDPE-cells) and cancer cell lines (glioblastoma U87-GBM, human pancreatic cancer cfPac-1, and MiaPaCa-2). Our results demonstrate that this EF modality can successfully modulate an important cancer cell biomarker-cell surface phosphatidylserine (PS). Our results further suggest that moderate, but not low, amplitude EF induces p38 mitogen-activated protein kinase (MAPK), actin polymerization, and cell cycle arrest in cancer cell lines. Based on our results, we propose a mechanism for EF-mediated PS exposure in cancer cells, where the magnitude of induced EF on the cell surface can differentially regulate intracellular calcium (Ca(2+)) levels, thereby modulating surface PS exposure.
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spelling pubmed-99534582023-02-25 Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway Kaynak, Ahmet N’Guessan, Kombo F. Patel, Priyankaben H. Lee, Jing-Huei Kogan, Andrei B. Narmoneva, Daria A. Qi, Xiaoyang Biomedicines Article Cancer is the second leading cause of death worldwide after heart disease. The current treatment options to fight cancer are limited, and there is a critical need for better treatment strategies. During the last several decades, several electric field (EF)-based approaches for anti-cancer therapies have been introduced, such as electroporation and tumor-treating fields; still, they are far from optimal due to their invasive nature, limited efficacy and significant side effects. In this study, we developed a non-contact EF stimulation system to investigate the in vitro effects of a novel EF modality on cancer biomarkers in normal (human astrocytes, human pancreatic ductal epithelial -HDPE-cells) and cancer cell lines (glioblastoma U87-GBM, human pancreatic cancer cfPac-1, and MiaPaCa-2). Our results demonstrate that this EF modality can successfully modulate an important cancer cell biomarker-cell surface phosphatidylserine (PS). Our results further suggest that moderate, but not low, amplitude EF induces p38 mitogen-activated protein kinase (MAPK), actin polymerization, and cell cycle arrest in cancer cell lines. Based on our results, we propose a mechanism for EF-mediated PS exposure in cancer cells, where the magnitude of induced EF on the cell surface can differentially regulate intracellular calcium (Ca(2+)) levels, thereby modulating surface PS exposure. MDPI 2023-02-06 /pmc/articles/PMC9953458/ /pubmed/36831002 http://dx.doi.org/10.3390/biomedicines11020466 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kaynak, Ahmet
N’Guessan, Kombo F.
Patel, Priyankaben H.
Lee, Jing-Huei
Kogan, Andrei B.
Narmoneva, Daria A.
Qi, Xiaoyang
Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway
title Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway
title_full Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway
title_fullStr Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway
title_full_unstemmed Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway
title_short Electric Fields Regulate In Vitro Surface Phosphatidylserine Exposure of Cancer Cells via a Calcium-Dependent Pathway
title_sort electric fields regulate in vitro surface phosphatidylserine exposure of cancer cells via a calcium-dependent pathway
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9953458/
https://www.ncbi.nlm.nih.gov/pubmed/36831002
http://dx.doi.org/10.3390/biomedicines11020466
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