Cargando…

MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation

Mesenchymal stromal cells (hMSCs) display a pleiotropic function in bone regeneration. The signaling involved in osteoblast commitment is still not completely understood, and that determines the failure of current therapies being used. In our recent studies, we identified two miRNAs as regulators of...

Descripción completa

Detalles Bibliográficos
Autores principales: Costa, Viviana, Carina, Valeria, Raimondi, Lavinia, De Luca, Angela, Bellavia, Daniele, Conigliaro, Alice, Salamanna, Francesca, Alessandro, Riccardo, Fini, Milena, Giavaresi, Gianluca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6953103/
https://www.ncbi.nlm.nih.gov/pubmed/31771093
http://dx.doi.org/10.3390/cells8121495
_version_ 1783486574448607232
author Costa, Viviana
Carina, Valeria
Raimondi, Lavinia
De Luca, Angela
Bellavia, Daniele
Conigliaro, Alice
Salamanna, Francesca
Alessandro, Riccardo
Fini, Milena
Giavaresi, Gianluca
author_facet Costa, Viviana
Carina, Valeria
Raimondi, Lavinia
De Luca, Angela
Bellavia, Daniele
Conigliaro, Alice
Salamanna, Francesca
Alessandro, Riccardo
Fini, Milena
Giavaresi, Gianluca
author_sort Costa, Viviana
collection PubMed
description Mesenchymal stromal cells (hMSCs) display a pleiotropic function in bone regeneration. The signaling involved in osteoblast commitment is still not completely understood, and that determines the failure of current therapies being used. In our recent studies, we identified two miRNAs as regulators of hMSCs osteoblast differentiation driving hypoxia signaling and cytoskeletal reorganization. Other signalings involved in this process are epithelial to mesenchymal transition (EMT) and epidermal growth factor receptor (EGFR) signalings through the regulation of Yes-associated protein (YAP)/PDZ-binding motif (TAZ) expression. In the current study, we investigated the role of miR-33a family as a (i) modulator of YAP/TAZ expression and (ii) a regulator of EGFR signaling during osteoblast commitments. Starting from the observation on hMSCs and primary osteoblast cell lines (Nh-Ost) in which EMT genes and miR-33a displayed a specific expression, we performed a gain and loss of function study with miR-33a-5p and 3p on hMSCs cells and Nh-Ost. After 24 h of transfections, we evaluated the modulation of EMT and osteoblast genes expression by qRT-PCR, Western blot, and Osteoimage assays. Through bioinformatic analysis, we identified YAP as the putative target of miR-33a-3p. Its role was investigated by gain and loss of function studies with miR-33a-3p on hMSCs; qRT-PCR and Western blot analyses were also carried out. Finally, the possible role of EGFR signaling in YAP/TAZ modulation by miR-33a-3p expression was evaluated. Human MSCs were treated with EGF-2 and EGFR inhibitor for different time points, and qRT-PCR and Western blot analyses were performed. The above-mentioned methods revealed a balance between miR-33a-5p and miR-33a-3p expression during hMSCs osteoblast differentiation. The human MSCs phenotype was maintained by miR-33a-5p, while the maintenance of the osteoblast phenotype in the Nh-Ost cell model was permitted by miR-33a-3p expression, which regulated YAP/TAZ through the modulation of EGFR signaling. The inhibition of EGFR blocked the effects of miR-33a-3p on YAP/TAZ modulation, favoring the maintenance of hMSCs in a committed phenotype. A new possible personalized therapeutic approach to bone regeneration was discussed, which might be mediated by customizing delivery of miR-33a in simultaneously targeting EGFR and YAP signaling with combined use of drugs.
format Online
Article
Text
id pubmed-6953103
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-69531032020-01-23 MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation Costa, Viviana Carina, Valeria Raimondi, Lavinia De Luca, Angela Bellavia, Daniele Conigliaro, Alice Salamanna, Francesca Alessandro, Riccardo Fini, Milena Giavaresi, Gianluca Cells Article Mesenchymal stromal cells (hMSCs) display a pleiotropic function in bone regeneration. The signaling involved in osteoblast commitment is still not completely understood, and that determines the failure of current therapies being used. In our recent studies, we identified two miRNAs as regulators of hMSCs osteoblast differentiation driving hypoxia signaling and cytoskeletal reorganization. Other signalings involved in this process are epithelial to mesenchymal transition (EMT) and epidermal growth factor receptor (EGFR) signalings through the regulation of Yes-associated protein (YAP)/PDZ-binding motif (TAZ) expression. In the current study, we investigated the role of miR-33a family as a (i) modulator of YAP/TAZ expression and (ii) a regulator of EGFR signaling during osteoblast commitments. Starting from the observation on hMSCs and primary osteoblast cell lines (Nh-Ost) in which EMT genes and miR-33a displayed a specific expression, we performed a gain and loss of function study with miR-33a-5p and 3p on hMSCs cells and Nh-Ost. After 24 h of transfections, we evaluated the modulation of EMT and osteoblast genes expression by qRT-PCR, Western blot, and Osteoimage assays. Through bioinformatic analysis, we identified YAP as the putative target of miR-33a-3p. Its role was investigated by gain and loss of function studies with miR-33a-3p on hMSCs; qRT-PCR and Western blot analyses were also carried out. Finally, the possible role of EGFR signaling in YAP/TAZ modulation by miR-33a-3p expression was evaluated. Human MSCs were treated with EGF-2 and EGFR inhibitor for different time points, and qRT-PCR and Western blot analyses were performed. The above-mentioned methods revealed a balance between miR-33a-5p and miR-33a-3p expression during hMSCs osteoblast differentiation. The human MSCs phenotype was maintained by miR-33a-5p, while the maintenance of the osteoblast phenotype in the Nh-Ost cell model was permitted by miR-33a-3p expression, which regulated YAP/TAZ through the modulation of EGFR signaling. The inhibition of EGFR blocked the effects of miR-33a-3p on YAP/TAZ modulation, favoring the maintenance of hMSCs in a committed phenotype. A new possible personalized therapeutic approach to bone regeneration was discussed, which might be mediated by customizing delivery of miR-33a in simultaneously targeting EGFR and YAP signaling with combined use of drugs. MDPI 2019-11-22 /pmc/articles/PMC6953103/ /pubmed/31771093 http://dx.doi.org/10.3390/cells8121495 Text en © 2019 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 Article
Costa, Viviana
Carina, Valeria
Raimondi, Lavinia
De Luca, Angela
Bellavia, Daniele
Conigliaro, Alice
Salamanna, Francesca
Alessandro, Riccardo
Fini, Milena
Giavaresi, Gianluca
MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation
title MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation
title_full MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation
title_fullStr MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation
title_full_unstemmed MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation
title_short MiR-33a Controls hMSCS Osteoblast Commitment Modulating the Yap/Taz Expression Through EGFR Signaling Regulation
title_sort mir-33a controls hmscs osteoblast commitment modulating the yap/taz expression through egfr signaling regulation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6953103/
https://www.ncbi.nlm.nih.gov/pubmed/31771093
http://dx.doi.org/10.3390/cells8121495
work_keys_str_mv AT costaviviana mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT carinavaleria mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT raimondilavinia mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT delucaangela mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT bellaviadaniele mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT conigliaroalice mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT salamannafrancesca mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT alessandroriccardo mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT finimilena mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation
AT giavaresigianluca mir33acontrolshmscsosteoblastcommitmentmodulatingtheyaptazexpressionthroughegfrsignalingregulation