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MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †

In this review, we described different factors that modulate pluripotency in stem cells, in particular we aimed at following the steps of two large families of miRNAs: the miR-200 family and the miR-302 family. We analyzed some factors tuning stem cells behavior as TGF-β, which plays a pivotal role...

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Autores principales: Balzano, Francesca, Cruciani, Sara, Basoli, Valentina, Santaniello, Sara, Facchin, Federica, Ventura, Carlo, Maioli, Margherita
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6017081/
https://www.ncbi.nlm.nih.gov/pubmed/29385685
http://dx.doi.org/10.3390/molecules23020282
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author Balzano, Francesca
Cruciani, Sara
Basoli, Valentina
Santaniello, Sara
Facchin, Federica
Ventura, Carlo
Maioli, Margherita
author_facet Balzano, Francesca
Cruciani, Sara
Basoli, Valentina
Santaniello, Sara
Facchin, Federica
Ventura, Carlo
Maioli, Margherita
author_sort Balzano, Francesca
collection PubMed
description In this review, we described different factors that modulate pluripotency in stem cells, in particular we aimed at following the steps of two large families of miRNAs: the miR-200 family and the miR-302 family. We analyzed some factors tuning stem cells behavior as TGF-β, which plays a pivotal role in pluripotency inhibition together with specific miRNAs, reactive oxygen species (ROS), but also hypoxia, and physical stimuli, such as ad hoc conveyed electromagnetic fields. TGF-β plays a crucial role in the suppression of pluripotency thus influencing the achievement of a specific phenotype. ROS concentration can modulate TGF-β activation that in turns down regulates miR-200 and miR-302. These two miRNAs are usually requested to maintain pluripotency, while they are down-regulated during the acquirement of a specific cellular phenotype. Moreover, also physical stimuli, such as extremely-low frequency electromagnetic fields or high-frequency electromagnetic fields conveyed with a radioelectric asymmetric conveyer (REAC), and hypoxia can deeply influence stem cell behavior by inducing the appearance of specific phenotypes, as well as a direct reprogramming of somatic cells. Unraveling the molecular mechanisms underlying the complex interplay between externally applied stimuli and epigenetic events could disclose novel target molecules to commit stem cell fate.
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spelling pubmed-60170812018-11-13 MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior † Balzano, Francesca Cruciani, Sara Basoli, Valentina Santaniello, Sara Facchin, Federica Ventura, Carlo Maioli, Margherita Molecules Review In this review, we described different factors that modulate pluripotency in stem cells, in particular we aimed at following the steps of two large families of miRNAs: the miR-200 family and the miR-302 family. We analyzed some factors tuning stem cells behavior as TGF-β, which plays a pivotal role in pluripotency inhibition together with specific miRNAs, reactive oxygen species (ROS), but also hypoxia, and physical stimuli, such as ad hoc conveyed electromagnetic fields. TGF-β plays a crucial role in the suppression of pluripotency thus influencing the achievement of a specific phenotype. ROS concentration can modulate TGF-β activation that in turns down regulates miR-200 and miR-302. These two miRNAs are usually requested to maintain pluripotency, while they are down-regulated during the acquirement of a specific cellular phenotype. Moreover, also physical stimuli, such as extremely-low frequency electromagnetic fields or high-frequency electromagnetic fields conveyed with a radioelectric asymmetric conveyer (REAC), and hypoxia can deeply influence stem cell behavior by inducing the appearance of specific phenotypes, as well as a direct reprogramming of somatic cells. Unraveling the molecular mechanisms underlying the complex interplay between externally applied stimuli and epigenetic events could disclose novel target molecules to commit stem cell fate. MDPI 2018-01-30 /pmc/articles/PMC6017081/ /pubmed/29385685 http://dx.doi.org/10.3390/molecules23020282 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Balzano, Francesca
Cruciani, Sara
Basoli, Valentina
Santaniello, Sara
Facchin, Federica
Ventura, Carlo
Maioli, Margherita
MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †
title MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †
title_full MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †
title_fullStr MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †
title_full_unstemmed MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †
title_short MiR200 and miR302: Two Big Families Influencing Stem Cell Behavior †
title_sort mir200 and mir302: two big families influencing stem cell behavior †
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6017081/
https://www.ncbi.nlm.nih.gov/pubmed/29385685
http://dx.doi.org/10.3390/molecules23020282
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