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Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis

The culture of progenitor mesenchymal stem cells (MSC) onto osteoconductive materials to induce a proper osteogenic differentiation and mineralized matrix regeneration represents a promising and widely diffused experimental approach for tissue-engineering (TE) applications in orthopaedics. Among mod...

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Autores principales: Viti, Federica, Landini, Martina, Mezzelani, Alessandra, Petecchia, Loredana, Milanesi, Luciano, Scaglione, Silvia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4734718/
https://www.ncbi.nlm.nih.gov/pubmed/26828589
http://dx.doi.org/10.1371/journal.pone.0148173
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author Viti, Federica
Landini, Martina
Mezzelani, Alessandra
Petecchia, Loredana
Milanesi, Luciano
Scaglione, Silvia
author_facet Viti, Federica
Landini, Martina
Mezzelani, Alessandra
Petecchia, Loredana
Milanesi, Luciano
Scaglione, Silvia
author_sort Viti, Federica
collection PubMed
description The culture of progenitor mesenchymal stem cells (MSC) onto osteoconductive materials to induce a proper osteogenic differentiation and mineralized matrix regeneration represents a promising and widely diffused experimental approach for tissue-engineering (TE) applications in orthopaedics. Among modern biomaterials, calcium phosphates represent the best bone substitutes, due to their chemical features emulating the mineral phase of bone tissue. Although many studies on stem cells differentiation mechanisms have been performed involving calcium-based scaffolds, results often focus on highlighting production of in vitro bone matrix markers and in vivo tissue ingrowth, while information related to the biomolecular mechanisms involved in the early cellular calcium-mediated differentiation is not well elucidated yet. Genetic programs for osteogenesis have been just partially deciphered, and the description of the different molecules and pathways operative in these differentiations is far from complete, as well as the activity of calcium in this process. The present work aims to shed light on the involvement of extracellular calcium in MSC differentiation: a better understanding of the early stage osteogenic differentiation program of MSC seeded on calcium-based biomaterials is required in order to develop optimal strategies to promote osteogenesis through the use of new generation osteoconductive scaffolds. A wide spectrum of analysis has been performed on time-dependent series: gene expression profiles are obtained from samples (MSC seeded on calcium-based scaffolds), together with related microRNAs expression and in vivo functional validation. On this basis, and relying on literature knowledge, hypotheses are made on the biomolecular players activated by the biomaterial calcium-phosphate component. Interestingly, a key role of miR-138 was highlighted, whose inhibition markedly increases osteogenic differentiation in vitro and enhance ectopic bone formation in vivo. Moreover, there is evidence that Ca-P substrate triggers osteogenic differentiation through genes (SMAD and RAS family) that are typically regulated during dexamethasone (DEX) induced differentiation.
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spelling pubmed-47347182016-02-04 Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis Viti, Federica Landini, Martina Mezzelani, Alessandra Petecchia, Loredana Milanesi, Luciano Scaglione, Silvia PLoS One Research Article The culture of progenitor mesenchymal stem cells (MSC) onto osteoconductive materials to induce a proper osteogenic differentiation and mineralized matrix regeneration represents a promising and widely diffused experimental approach for tissue-engineering (TE) applications in orthopaedics. Among modern biomaterials, calcium phosphates represent the best bone substitutes, due to their chemical features emulating the mineral phase of bone tissue. Although many studies on stem cells differentiation mechanisms have been performed involving calcium-based scaffolds, results often focus on highlighting production of in vitro bone matrix markers and in vivo tissue ingrowth, while information related to the biomolecular mechanisms involved in the early cellular calcium-mediated differentiation is not well elucidated yet. Genetic programs for osteogenesis have been just partially deciphered, and the description of the different molecules and pathways operative in these differentiations is far from complete, as well as the activity of calcium in this process. The present work aims to shed light on the involvement of extracellular calcium in MSC differentiation: a better understanding of the early stage osteogenic differentiation program of MSC seeded on calcium-based biomaterials is required in order to develop optimal strategies to promote osteogenesis through the use of new generation osteoconductive scaffolds. A wide spectrum of analysis has been performed on time-dependent series: gene expression profiles are obtained from samples (MSC seeded on calcium-based scaffolds), together with related microRNAs expression and in vivo functional validation. On this basis, and relying on literature knowledge, hypotheses are made on the biomolecular players activated by the biomaterial calcium-phosphate component. Interestingly, a key role of miR-138 was highlighted, whose inhibition markedly increases osteogenic differentiation in vitro and enhance ectopic bone formation in vivo. Moreover, there is evidence that Ca-P substrate triggers osteogenic differentiation through genes (SMAD and RAS family) that are typically regulated during dexamethasone (DEX) induced differentiation. Public Library of Science 2016-02-01 /pmc/articles/PMC4734718/ /pubmed/26828589 http://dx.doi.org/10.1371/journal.pone.0148173 Text en © 2016 Viti et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Viti, Federica
Landini, Martina
Mezzelani, Alessandra
Petecchia, Loredana
Milanesi, Luciano
Scaglione, Silvia
Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis
title Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis
title_full Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis
title_fullStr Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis
title_full_unstemmed Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis
title_short Osteogenic Differentiation of MSC through Calcium Signaling Activation: Transcriptomics and Functional Analysis
title_sort osteogenic differentiation of msc through calcium signaling activation: transcriptomics and functional analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4734718/
https://www.ncbi.nlm.nih.gov/pubmed/26828589
http://dx.doi.org/10.1371/journal.pone.0148173
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