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Electrostatic polarization fields trigger glioblastoma stem cell differentiation

Over the last few years it has been understood that the interface between living cells and the underlying materials can be a powerful tool to manipulate cell functions. In this study, we explore the hypothesis that the electrical cell/material interface can regulate the differentiation of cancer ste...

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Autores principales: Fernandez Cabada, Tamara, Ruben, Massimo, El Merhie, Amira, Proietti Zaccaria, Remo, Alabastri, Alessandro, Petrini, Enrica Maria, Barberis, Andrea, Salerno, Marco, Crepaldi, Marco, Davis, Alexander, Ceseracciu, Luca, Catelani, Tiziano, Athanassiou, Athanassia, Pellegrino, Teresa, Cingolani, Roberto, Papadopoulou, Evie L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9765404/
https://www.ncbi.nlm.nih.gov/pubmed/36426604
http://dx.doi.org/10.1039/d2nh00453d
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author Fernandez Cabada, Tamara
Ruben, Massimo
El Merhie, Amira
Proietti Zaccaria, Remo
Alabastri, Alessandro
Petrini, Enrica Maria
Barberis, Andrea
Salerno, Marco
Crepaldi, Marco
Davis, Alexander
Ceseracciu, Luca
Catelani, Tiziano
Athanassiou, Athanassia
Pellegrino, Teresa
Cingolani, Roberto
Papadopoulou, Evie L.
author_facet Fernandez Cabada, Tamara
Ruben, Massimo
El Merhie, Amira
Proietti Zaccaria, Remo
Alabastri, Alessandro
Petrini, Enrica Maria
Barberis, Andrea
Salerno, Marco
Crepaldi, Marco
Davis, Alexander
Ceseracciu, Luca
Catelani, Tiziano
Athanassiou, Athanassia
Pellegrino, Teresa
Cingolani, Roberto
Papadopoulou, Evie L.
author_sort Fernandez Cabada, Tamara
collection PubMed
description Over the last few years it has been understood that the interface between living cells and the underlying materials can be a powerful tool to manipulate cell functions. In this study, we explore the hypothesis that the electrical cell/material interface can regulate the differentiation of cancer stem-like cells (CSCs). Electrospun polymer fibres, either polyamide 66 or poly(lactic acid), with embedded graphene nanoplatelets (GnPs), have been fabricated as CSC scaffolds, providing both the 3D microenvironment and a suitable electrical environment favorable for CSCs adhesion, growth and differentiation. We have investigated the impact of these scaffolds on the morphological, immunostaining and electrophysiological properties of CSCs extracted from human glioblastoma multiform (GBM) tumor cell line. Our data provide evidence in favor of the ability of GnP-incorporating scaffolds to promote CSC differentiation to the glial phenotype. Numerical simulations support the hypothesis that the electrical interface promotes the hyperpolarization of the cell membrane potential, thus triggering the CSC differentiation. We propose that the electrical cell/material interface can regulate endogenous bioelectrical cues, through the membrane potential manipulation, resulting in the differentiation of CSCs. Material-induced differentiation of stem cells and particularly of CSCs, can open new horizons in tissue engineering and new approaches to cancer treatment, especially GBM.
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spelling pubmed-97654042023-01-04 Electrostatic polarization fields trigger glioblastoma stem cell differentiation Fernandez Cabada, Tamara Ruben, Massimo El Merhie, Amira Proietti Zaccaria, Remo Alabastri, Alessandro Petrini, Enrica Maria Barberis, Andrea Salerno, Marco Crepaldi, Marco Davis, Alexander Ceseracciu, Luca Catelani, Tiziano Athanassiou, Athanassia Pellegrino, Teresa Cingolani, Roberto Papadopoulou, Evie L. Nanoscale Horiz Chemistry Over the last few years it has been understood that the interface between living cells and the underlying materials can be a powerful tool to manipulate cell functions. In this study, we explore the hypothesis that the electrical cell/material interface can regulate the differentiation of cancer stem-like cells (CSCs). Electrospun polymer fibres, either polyamide 66 or poly(lactic acid), with embedded graphene nanoplatelets (GnPs), have been fabricated as CSC scaffolds, providing both the 3D microenvironment and a suitable electrical environment favorable for CSCs adhesion, growth and differentiation. We have investigated the impact of these scaffolds on the morphological, immunostaining and electrophysiological properties of CSCs extracted from human glioblastoma multiform (GBM) tumor cell line. Our data provide evidence in favor of the ability of GnP-incorporating scaffolds to promote CSC differentiation to the glial phenotype. Numerical simulations support the hypothesis that the electrical interface promotes the hyperpolarization of the cell membrane potential, thus triggering the CSC differentiation. We propose that the electrical cell/material interface can regulate endogenous bioelectrical cues, through the membrane potential manipulation, resulting in the differentiation of CSCs. Material-induced differentiation of stem cells and particularly of CSCs, can open new horizons in tissue engineering and new approaches to cancer treatment, especially GBM. The Royal Society of Chemistry 2022-11-17 /pmc/articles/PMC9765404/ /pubmed/36426604 http://dx.doi.org/10.1039/d2nh00453d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Fernandez Cabada, Tamara
Ruben, Massimo
El Merhie, Amira
Proietti Zaccaria, Remo
Alabastri, Alessandro
Petrini, Enrica Maria
Barberis, Andrea
Salerno, Marco
Crepaldi, Marco
Davis, Alexander
Ceseracciu, Luca
Catelani, Tiziano
Athanassiou, Athanassia
Pellegrino, Teresa
Cingolani, Roberto
Papadopoulou, Evie L.
Electrostatic polarization fields trigger glioblastoma stem cell differentiation
title Electrostatic polarization fields trigger glioblastoma stem cell differentiation
title_full Electrostatic polarization fields trigger glioblastoma stem cell differentiation
title_fullStr Electrostatic polarization fields trigger glioblastoma stem cell differentiation
title_full_unstemmed Electrostatic polarization fields trigger glioblastoma stem cell differentiation
title_short Electrostatic polarization fields trigger glioblastoma stem cell differentiation
title_sort electrostatic polarization fields trigger glioblastoma stem cell differentiation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9765404/
https://www.ncbi.nlm.nih.gov/pubmed/36426604
http://dx.doi.org/10.1039/d2nh00453d
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