Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine
Cell therapy is an innovative strategy for tissue repair, since adult stem cells could have limited regenerative ability as in the case of myocardial damage. This leads to a local contractile dysfunction due to scar formation. For these reasons, refining strategy approaches for “in vitro&a...
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doaj-3989257064f64efa9a4c0584beca56802020-11-25T01:21:34ZengMDPI AGInternational Journal of Molecular Sciences1422-00672018-08-01198232410.3390/ijms19082324ijms19082324Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative MedicineMario Ledda0Enrico D’Emilia1Maria Grazia Lolli2Rodolfo Marchese3Claudio De Lazzari4Antonella Lisi5Institute of Translational Pharmacology, National Research Council, (CNR), via del Fosso del Cavaliere 100, 00133 Rome, ItalyDipartimento Innovazioni Tecnologiche (INAIL-DIT), Via Fontana Candida 1, Monte Porzio Catone, 00078 Rome, ItalyInstitute of Translational Pharmacology, National Research Council, (CNR), via del Fosso del Cavaliere 100, 00133 Rome, ItalyResearch Center, FBF S. Peter Hospital, Via Cassia 600, 00189 Rome, ItalyInstitute of Clinical Physiology, National Research Council, (CNR), Via Palestro 32, 00185 Rome, ItalyInstitute of Translational Pharmacology, National Research Council, (CNR), via del Fosso del Cavaliere 100, 00133 Rome, ItalyCell therapy is an innovative strategy for tissue repair, since adult stem cells could have limited regenerative ability as in the case of myocardial damage. This leads to a local contractile dysfunction due to scar formation. For these reasons, refining strategy approaches for “in vitro” stem cell commitment, preparatory to the “in vivo” stem cell differentiation, is imperative. In this work, we isolated and characterized at molecular and cellular level, human Amniotic Mesenchymal Stromal Cells (hAMSCs) and exposed them to a physical Extremely Low Frequency Electromagnetic Field (ELF-EMF) stimulus and to a chemical Nitric Oxide treatment. Physically exposed cells showed a decrease of cell proliferation and no change in metabolic activity, cell vitality and apoptotic rate. An increase in the mRNA expression of cardiac and angiogenic differentiation markers, confirmed at the translational level, was also highlighted in exposed cells. Our data, for the first time, provide evidence that physical ELF-EMF stimulus (7 Hz, 2.5 µT), similarly to the chemical treatment, is able to trigger hAMSC cardiac commitment. More importantly, we also observed that only the physical stimulus is able to induce both types of commitments contemporarily (cardiac and angiogenic), suggesting its potential use to obtain a better regenerative response in cell-therapy protocols.http://www.mdpi.com/1422-0067/19/8/2324hAMSCscardiac commitmentangiogenic commitmentNitric OxideELF-EMFregenerative medicine |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mario Ledda Enrico D’Emilia Maria Grazia Lolli Rodolfo Marchese Claudio De Lazzari Antonella Lisi |
spellingShingle |
Mario Ledda Enrico D’Emilia Maria Grazia Lolli Rodolfo Marchese Claudio De Lazzari Antonella Lisi Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine International Journal of Molecular Sciences hAMSCs cardiac commitment angiogenic commitment Nitric Oxide ELF-EMF regenerative medicine |
author_facet |
Mario Ledda Enrico D’Emilia Maria Grazia Lolli Rodolfo Marchese Claudio De Lazzari Antonella Lisi |
author_sort |
Mario Ledda |
title |
Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine |
title_short |
Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine |
title_full |
Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine |
title_fullStr |
Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine |
title_full_unstemmed |
Non-Ionizing Radiation for Cardiac Human Amniotic Mesenchymal Stromal Cell Commitment: A Physical Strategy in Regenerative Medicine |
title_sort |
non-ionizing radiation for cardiac human amniotic mesenchymal stromal cell commitment: a physical strategy in regenerative medicine |
publisher |
MDPI AG |
series |
International Journal of Molecular Sciences |
issn |
1422-0067 |
publishDate |
2018-08-01 |
description |
Cell therapy is an innovative strategy for tissue repair, since adult stem cells could have limited regenerative ability as in the case of myocardial damage. This leads to a local contractile dysfunction due to scar formation. For these reasons, refining strategy approaches for “in vitro” stem cell commitment, preparatory to the “in vivo” stem cell differentiation, is imperative. In this work, we isolated and characterized at molecular and cellular level, human Amniotic Mesenchymal Stromal Cells (hAMSCs) and exposed them to a physical Extremely Low Frequency Electromagnetic Field (ELF-EMF) stimulus and to a chemical Nitric Oxide treatment. Physically exposed cells showed a decrease of cell proliferation and no change in metabolic activity, cell vitality and apoptotic rate. An increase in the mRNA expression of cardiac and angiogenic differentiation markers, confirmed at the translational level, was also highlighted in exposed cells. Our data, for the first time, provide evidence that physical ELF-EMF stimulus (7 Hz, 2.5 µT), similarly to the chemical treatment, is able to trigger hAMSC cardiac commitment. More importantly, we also observed that only the physical stimulus is able to induce both types of commitments contemporarily (cardiac and angiogenic), suggesting its potential use to obtain a better regenerative response in cell-therapy protocols. |
topic |
hAMSCs cardiac commitment angiogenic commitment Nitric Oxide ELF-EMF regenerative medicine |
url |
http://www.mdpi.com/1422-0067/19/8/2324 |
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