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A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells

Human amniotic membrane-derived mesenchymal stem cells (hAM-MSCs) are a potential source of cells for therapeutic applications in bone regeneration. Recent evidence reveals a role for microRNAs (miRNAs) in the fine-tuning regulation of osteogenesis (osteomiRs) suggesting that they can be potential t...

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Autores principales: Avendaño-Félix, Mariana, Fuentes-Mera, Lizeth, Ramos-Payan, Rosalío, Aguilar-Medina, Maribel, Pérez-Silos, Vanessa, Moncada-Saucedo, Nidia, Marchat, Laurence A., González-Barrios, Juan Antonio, Ruiz-García, Erika, Astudillo-de la Vega, Horacio, Cruz-Colin, José L., López-Camarillo, César
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6451790/
https://www.ncbi.nlm.nih.gov/pubmed/31019974
http://dx.doi.org/10.1155/2019/8987268
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author Avendaño-Félix, Mariana
Fuentes-Mera, Lizeth
Ramos-Payan, Rosalío
Aguilar-Medina, Maribel
Pérez-Silos, Vanessa
Moncada-Saucedo, Nidia
Marchat, Laurence A.
González-Barrios, Juan Antonio
Ruiz-García, Erika
Astudillo-de la Vega, Horacio
Cruz-Colin, José L.
López-Camarillo, César
author_facet Avendaño-Félix, Mariana
Fuentes-Mera, Lizeth
Ramos-Payan, Rosalío
Aguilar-Medina, Maribel
Pérez-Silos, Vanessa
Moncada-Saucedo, Nidia
Marchat, Laurence A.
González-Barrios, Juan Antonio
Ruiz-García, Erika
Astudillo-de la Vega, Horacio
Cruz-Colin, José L.
López-Camarillo, César
author_sort Avendaño-Félix, Mariana
collection PubMed
description Human amniotic membrane-derived mesenchymal stem cells (hAM-MSCs) are a potential source of cells for therapeutic applications in bone regeneration. Recent evidence reveals a role for microRNAs (miRNAs) in the fine-tuning regulation of osteogenesis (osteomiRs) suggesting that they can be potential targets for skeleton diseases treatment. However, the functions of osteomiRs during differentiation of hAM-MSCs to osteogenic lineage are poorly understood. In this investigation, we discovered a novel miRNAs expression signature corresponding to the matrix maturation (preosteoblast) and mineralization (mature osteoblast) stages of dexamethasone-induced osteoblastic differentiation of hAM-MSCs. Comprehensive miRNAs profiling using TaqMan Low Density Arrays showed that 18 miRNAs were significantly downregulated, whereas 3 were upregulated in the matrix maturation stage (7 days after osteogenic induction) in comparison to undifferentiated cells used as control. Likewise, 47 miRNAs were suppressed and 25 were overexpressed at mineralization stage (14 days after osteogenic induction) in comparison to osteoprogenitors cells. Five out 93 miRNAs (miR-19b-3p, miR-335-3p, miR-197-3p, miR-34b-39, and miR-576-3p) were regulated at both 7 and 14 days suggesting a role in coordinated guidance of osteoblastic differentiation. Exhaustive bioinformatic predictions showed that the set of modulated miRNAs may target multiple genes involved in regulatory networks driving osteogenesis including key members of BMP, TGF-β, and WNT/β-catenin signaling pathways. Of these miRNAs, we selected miR-204, a noncoding small RNA that was expressed at matrix maturation phase and downregulated at maturation stage, for further functional studies. Interestingly, gain-of-function analysis showed that restoration of miR-204 using RNA mimics at the onset of mineralization stage dramatically inhibited deposition of calcium and osteogenic maturation of hAM-MSCs. Moreover in silico analysis detected a conserved miR-204 binding site at the 3′UTR of TGF-βR2 receptor gene. Using luciferase assays we confirmed that TGF-βR2 is a downstream effector of miR-204. In conclusion, we have identified a miRNAs signature for osteoblast differentiation of hAM-MSCs. The results from this study suggested that these miRNAs may act as potential inhibitors or activators of osteogenesis. Our findings also points towards the idea that miR-204/TGF-βR2 axis has a regulatory role in differentiation of hAM-MSCs committed to osteoblastic lineage.
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spelling pubmed-64517902019-04-24 A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells Avendaño-Félix, Mariana Fuentes-Mera, Lizeth Ramos-Payan, Rosalío Aguilar-Medina, Maribel Pérez-Silos, Vanessa Moncada-Saucedo, Nidia Marchat, Laurence A. González-Barrios, Juan Antonio Ruiz-García, Erika Astudillo-de la Vega, Horacio Cruz-Colin, José L. López-Camarillo, César Biomed Res Int Research Article Human amniotic membrane-derived mesenchymal stem cells (hAM-MSCs) are a potential source of cells for therapeutic applications in bone regeneration. Recent evidence reveals a role for microRNAs (miRNAs) in the fine-tuning regulation of osteogenesis (osteomiRs) suggesting that they can be potential targets for skeleton diseases treatment. However, the functions of osteomiRs during differentiation of hAM-MSCs to osteogenic lineage are poorly understood. In this investigation, we discovered a novel miRNAs expression signature corresponding to the matrix maturation (preosteoblast) and mineralization (mature osteoblast) stages of dexamethasone-induced osteoblastic differentiation of hAM-MSCs. Comprehensive miRNAs profiling using TaqMan Low Density Arrays showed that 18 miRNAs were significantly downregulated, whereas 3 were upregulated in the matrix maturation stage (7 days after osteogenic induction) in comparison to undifferentiated cells used as control. Likewise, 47 miRNAs were suppressed and 25 were overexpressed at mineralization stage (14 days after osteogenic induction) in comparison to osteoprogenitors cells. Five out 93 miRNAs (miR-19b-3p, miR-335-3p, miR-197-3p, miR-34b-39, and miR-576-3p) were regulated at both 7 and 14 days suggesting a role in coordinated guidance of osteoblastic differentiation. Exhaustive bioinformatic predictions showed that the set of modulated miRNAs may target multiple genes involved in regulatory networks driving osteogenesis including key members of BMP, TGF-β, and WNT/β-catenin signaling pathways. Of these miRNAs, we selected miR-204, a noncoding small RNA that was expressed at matrix maturation phase and downregulated at maturation stage, for further functional studies. Interestingly, gain-of-function analysis showed that restoration of miR-204 using RNA mimics at the onset of mineralization stage dramatically inhibited deposition of calcium and osteogenic maturation of hAM-MSCs. Moreover in silico analysis detected a conserved miR-204 binding site at the 3′UTR of TGF-βR2 receptor gene. Using luciferase assays we confirmed that TGF-βR2 is a downstream effector of miR-204. In conclusion, we have identified a miRNAs signature for osteoblast differentiation of hAM-MSCs. The results from this study suggested that these miRNAs may act as potential inhibitors or activators of osteogenesis. Our findings also points towards the idea that miR-204/TGF-βR2 axis has a regulatory role in differentiation of hAM-MSCs committed to osteoblastic lineage. Hindawi 2019-03-24 /pmc/articles/PMC6451790/ /pubmed/31019974 http://dx.doi.org/10.1155/2019/8987268 Text en Copyright © 2019 Mariana Avendaño-Félix et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Avendaño-Félix, Mariana
Fuentes-Mera, Lizeth
Ramos-Payan, Rosalío
Aguilar-Medina, Maribel
Pérez-Silos, Vanessa
Moncada-Saucedo, Nidia
Marchat, Laurence A.
González-Barrios, Juan Antonio
Ruiz-García, Erika
Astudillo-de la Vega, Horacio
Cruz-Colin, José L.
López-Camarillo, César
A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells
title A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells
title_full A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells
title_fullStr A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells
title_full_unstemmed A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells
title_short A Novel OsteomiRs Expression Signature for Osteoblast Differentiation of Human Amniotic Membrane-Derived Mesenchymal Stem Cells
title_sort novel osteomirs expression signature for osteoblast differentiation of human amniotic membrane-derived mesenchymal stem cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6451790/
https://www.ncbi.nlm.nih.gov/pubmed/31019974
http://dx.doi.org/10.1155/2019/8987268
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