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Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells

In regenerative medicine finding a new method for cell differentiation without pharmacological treatment or gene modification and minimal cell manipulation is a challenging goal. In this work we reported a neuronal induced differentiation and consequent reduction of tumorigenicity in NT2 human pluri...

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Autores principales: Ledda, Mario, Megiorni, Francesca, Pozzi, Deleana, Giuliani, Livio, D’Emilia, Enrico, Piccirillo, Sara, Mattei, Cristiana, Grimaldi, Settimio, Lisi, Antonella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3621667/
https://www.ncbi.nlm.nih.gov/pubmed/23585910
http://dx.doi.org/10.1371/journal.pone.0061535
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author Ledda, Mario
Megiorni, Francesca
Pozzi, Deleana
Giuliani, Livio
D’Emilia, Enrico
Piccirillo, Sara
Mattei, Cristiana
Grimaldi, Settimio
Lisi, Antonella
author_facet Ledda, Mario
Megiorni, Francesca
Pozzi, Deleana
Giuliani, Livio
D’Emilia, Enrico
Piccirillo, Sara
Mattei, Cristiana
Grimaldi, Settimio
Lisi, Antonella
author_sort Ledda, Mario
collection PubMed
description In regenerative medicine finding a new method for cell differentiation without pharmacological treatment or gene modification and minimal cell manipulation is a challenging goal. In this work we reported a neuronal induced differentiation and consequent reduction of tumorigenicity in NT2 human pluripotent embryonal carcinoma cells exposed to an extremely low frequency electromagnetic field (ELF-EMF), matching the cyclotron frequency corresponding to the charge/mass ratio of calcium ion (Ca(2+)-ICR). These cells, capable of differentiating into post-mitotic neurons following treatment with Retinoic Acid (RA), were placed in a solenoid and exposed for 5 weeks to Ca(2+)-ICR. The solenoid was installed in a μ-metal shielded room to avoid the effect of the geomagnetic field and obtained totally controlled and reproducible conditions. Contrast microscopy analysis reveled, in the NT2 exposed cells, an important change in shape and morphology with the outgrowth of neuritic-like structures together with a lower proliferation rate and metabolic activity alike those found in the RA treated cells. A significant up-regulation of early and late neuronal differentiation markers and a significant down-regulation of the transforming growth factor-α (TGF-α) and the fibroblast growth factor-4 (FGF-4) were also observed in the exposed cells. The decreased protein expression of the transforming gene Cripto-1 and the reduced capability of the exposed NT2 cells to form colonies in soft agar supported these last results. In conclusion, our findings demonstrate that the Ca(2+)-ICR frequency is able to induce differentiation and reduction of tumorigenicity in NT2 exposed cells suggesting a new potential therapeutic use in regenerative medicine.
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spelling pubmed-36216672013-04-12 Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells Ledda, Mario Megiorni, Francesca Pozzi, Deleana Giuliani, Livio D’Emilia, Enrico Piccirillo, Sara Mattei, Cristiana Grimaldi, Settimio Lisi, Antonella PLoS One Research Article In regenerative medicine finding a new method for cell differentiation without pharmacological treatment or gene modification and minimal cell manipulation is a challenging goal. In this work we reported a neuronal induced differentiation and consequent reduction of tumorigenicity in NT2 human pluripotent embryonal carcinoma cells exposed to an extremely low frequency electromagnetic field (ELF-EMF), matching the cyclotron frequency corresponding to the charge/mass ratio of calcium ion (Ca(2+)-ICR). These cells, capable of differentiating into post-mitotic neurons following treatment with Retinoic Acid (RA), were placed in a solenoid and exposed for 5 weeks to Ca(2+)-ICR. The solenoid was installed in a μ-metal shielded room to avoid the effect of the geomagnetic field and obtained totally controlled and reproducible conditions. Contrast microscopy analysis reveled, in the NT2 exposed cells, an important change in shape and morphology with the outgrowth of neuritic-like structures together with a lower proliferation rate and metabolic activity alike those found in the RA treated cells. A significant up-regulation of early and late neuronal differentiation markers and a significant down-regulation of the transforming growth factor-α (TGF-α) and the fibroblast growth factor-4 (FGF-4) were also observed in the exposed cells. The decreased protein expression of the transforming gene Cripto-1 and the reduced capability of the exposed NT2 cells to form colonies in soft agar supported these last results. In conclusion, our findings demonstrate that the Ca(2+)-ICR frequency is able to induce differentiation and reduction of tumorigenicity in NT2 exposed cells suggesting a new potential therapeutic use in regenerative medicine. Public Library of Science 2013-04-09 /pmc/articles/PMC3621667/ /pubmed/23585910 http://dx.doi.org/10.1371/journal.pone.0061535 Text en © 2013 Ledda et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ledda, Mario
Megiorni, Francesca
Pozzi, Deleana
Giuliani, Livio
D’Emilia, Enrico
Piccirillo, Sara
Mattei, Cristiana
Grimaldi, Settimio
Lisi, Antonella
Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells
title Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells
title_full Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells
title_fullStr Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells
title_full_unstemmed Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells
title_short Non Ionising Radiation as a Non Chemical Strategy in Regenerative Medicine: Ca(2+)-ICR “In Vitro” Effect on Neuronal Differentiation and Tumorigenicity Modulation in NT2 Cells
title_sort non ionising radiation as a non chemical strategy in regenerative medicine: ca(2+)-icr “in vitro” effect on neuronal differentiation and tumorigenicity modulation in nt2 cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3621667/
https://www.ncbi.nlm.nih.gov/pubmed/23585910
http://dx.doi.org/10.1371/journal.pone.0061535
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