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Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate

Redox homeostasis is determinant in the modulation of quiescence/self-renewal/differentiation of stem cell lines. The aim of this study consisted of defining the impact of redox modifications on cell fate in a human hepatic progenitor line. To achieve this, the HepaRG cell line, which shows oval duc...

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Autores principales: Bellanti, Francesco, Mangieri, Domenica, di Bello, Giorgia, Lo Buglio, Aurelio, Pannone, Giuseppe, Pedicillo, Maria Carmela, Fersini, Alberto, Dobrakowski, Michał, Kasperczyk, Aleksandra, Kasperczyk, Sławomir, Vendemiale, Gianluigi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9916526/
https://www.ncbi.nlm.nih.gov/pubmed/36768260
http://dx.doi.org/10.3390/ijms24031934
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author Bellanti, Francesco
Mangieri, Domenica
di Bello, Giorgia
Lo Buglio, Aurelio
Pannone, Giuseppe
Pedicillo, Maria Carmela
Fersini, Alberto
Dobrakowski, Michał
Kasperczyk, Aleksandra
Kasperczyk, Sławomir
Vendemiale, Gianluigi
author_facet Bellanti, Francesco
Mangieri, Domenica
di Bello, Giorgia
Lo Buglio, Aurelio
Pannone, Giuseppe
Pedicillo, Maria Carmela
Fersini, Alberto
Dobrakowski, Michał
Kasperczyk, Aleksandra
Kasperczyk, Sławomir
Vendemiale, Gianluigi
author_sort Bellanti, Francesco
collection PubMed
description Redox homeostasis is determinant in the modulation of quiescence/self-renewal/differentiation of stem cell lines. The aim of this study consisted of defining the impact of redox modifications on cell fate in a human hepatic progenitor line. To achieve this, the HepaRG cell line, which shows oval ductular bipotent characteristics, was used. The impact of redox status on the balance between self-renewal and differentiation of HepaRG cells was investigated using different methodological approaches. A bioinformatic analysis initially proved that the trans-differentiation of HepaRG toward bipotent progenitors is associated with changes in redox metabolism. We then exposed confluent HepaRG (intermediate differentiation phase) to oxidized (H(2)O(2)) or reduced (N-acetylcysteine) extracellular environments, observing that oxidation promotes the acquisition of a mature HepaRG phenotype, while a reduced culture medium stimulates de-differentiation. These results were finally confirmed through pharmacological modulation of the nuclear factor (erythroid-derived 2)-like 2 (NRF2), a principal modulator of the antioxidant response, in confluent HepaRG. NRF2 inhibition led to intracellular pro-oxidative status and HepaRG differentiation, while its activation was associated with low levels of reactive species and de-differentiation. In conclusion, this study shows that both intra- and extracellular redox balance are crucial in the determination of HepaRG fate. The impact of redox status in the differentiation potential of HepaRG cells is significant on the utilization of this cell line in pre-clinical studies.
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spelling pubmed-99165262023-02-11 Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate Bellanti, Francesco Mangieri, Domenica di Bello, Giorgia Lo Buglio, Aurelio Pannone, Giuseppe Pedicillo, Maria Carmela Fersini, Alberto Dobrakowski, Michał Kasperczyk, Aleksandra Kasperczyk, Sławomir Vendemiale, Gianluigi Int J Mol Sci Article Redox homeostasis is determinant in the modulation of quiescence/self-renewal/differentiation of stem cell lines. The aim of this study consisted of defining the impact of redox modifications on cell fate in a human hepatic progenitor line. To achieve this, the HepaRG cell line, which shows oval ductular bipotent characteristics, was used. The impact of redox status on the balance between self-renewal and differentiation of HepaRG cells was investigated using different methodological approaches. A bioinformatic analysis initially proved that the trans-differentiation of HepaRG toward bipotent progenitors is associated with changes in redox metabolism. We then exposed confluent HepaRG (intermediate differentiation phase) to oxidized (H(2)O(2)) or reduced (N-acetylcysteine) extracellular environments, observing that oxidation promotes the acquisition of a mature HepaRG phenotype, while a reduced culture medium stimulates de-differentiation. These results were finally confirmed through pharmacological modulation of the nuclear factor (erythroid-derived 2)-like 2 (NRF2), a principal modulator of the antioxidant response, in confluent HepaRG. NRF2 inhibition led to intracellular pro-oxidative status and HepaRG differentiation, while its activation was associated with low levels of reactive species and de-differentiation. In conclusion, this study shows that both intra- and extracellular redox balance are crucial in the determination of HepaRG fate. The impact of redox status in the differentiation potential of HepaRG cells is significant on the utilization of this cell line in pre-clinical studies. MDPI 2023-01-18 /pmc/articles/PMC9916526/ /pubmed/36768260 http://dx.doi.org/10.3390/ijms24031934 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
Bellanti, Francesco
Mangieri, Domenica
di Bello, Giorgia
Lo Buglio, Aurelio
Pannone, Giuseppe
Pedicillo, Maria Carmela
Fersini, Alberto
Dobrakowski, Michał
Kasperczyk, Aleksandra
Kasperczyk, Sławomir
Vendemiale, Gianluigi
Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate
title Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate
title_full Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate
title_fullStr Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate
title_full_unstemmed Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate
title_short Redox-Dependent Modulation of Human Liver Progenitor Cell Line Fate
title_sort redox-dependent modulation of human liver progenitor cell line fate
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9916526/
https://www.ncbi.nlm.nih.gov/pubmed/36768260
http://dx.doi.org/10.3390/ijms24031934
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