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In Vitro Osteoinductivity Assay of Hydroxylapatite Scaffolds, Obtained with Biomorphic Transformation Processes, Assessed Using Human Adipose Stem Cell Cultures.
Iaquinta, Maria Rosa; Torreggiani, Elena; Mazziotta, Chiara; Ruffini, Andrea; Sprio, Simone; Tampieri, Anna; Tognon, Mauro; Martini, Fernanda; Mazzoni, Elisa.
Afiliação
  • Iaquinta MR; Department of Medical Sciences, Section of Experimental Medicine, School of Medicine, University of Ferrara, 64b Fossato di Mortara Street, 44121 Ferrara, Italy.
  • Torreggiani E; Department of Medical Sciences, Section of Experimental Medicine, School of Medicine, University of Ferrara, 64b Fossato di Mortara Street, 44121 Ferrara, Italy.
  • Mazziotta C; Department of Medical Sciences, Section of Experimental Medicine, School of Medicine, University of Ferrara, 64b Fossato di Mortara Street, 44121 Ferrara, Italy.
  • Ruffini A; Institute of Science and Technology for Ceramics, National Research Council, 48018 Faenza, Italy.
  • Sprio S; Institute of Science and Technology for Ceramics, National Research Council, 48018 Faenza, Italy.
  • Tampieri A; Institute of Science and Technology for Ceramics, National Research Council, 48018 Faenza, Italy.
  • Tognon M; Department of Medical Sciences, Section of Experimental Medicine, School of Medicine, University of Ferrara, 64b Fossato di Mortara Street, 44121 Ferrara, Italy.
  • Martini F; Department of Medical Sciences, Section of Experimental Medicine, School of Medicine, University of Ferrara, 64b Fossato di Mortara Street, 44121 Ferrara, Italy.
  • Mazzoni E; Laboratory for Technologies of Advanced Therapies (LTTA), University of Ferrara, 44121 Ferrara, Italy.
Int J Mol Sci ; 22(13)2021 Jun 30.
Article em En | MEDLINE | ID: mdl-34209351
In this study, the in vitro biocompatibility and osteoinductive ability of a recently developed biomorphic hydroxylapatite ceramic scaffold (B-HA) derived from transformation of wood structures were analyzed using human adipose stem cells (hASCs). Cell viability and metabolic activity were evaluated in hASCs, parental cells and in recombinant genetically engineered hASC-eGFP cells expressing the green fluorescence protein. B-HA osteoinductivity properties, such as differentially expressed genes (DEG) involved in the skeletal development pathway, osteocalcin (OCN) protein expression and mineral matrix deposition in hASCs, were evaluated. In vitro induction of osteoblastic genes, such as Alkaline phosphatase (ALPL), Bone gamma-carboxyglutamate (gla) protein (BGLAP), SMAD family member 3 (SMAD3), Sp7 transcription factor (SP7) and Transforming growth factor, beta 3 (TGFB3) and Tumor necrosis factor (ligand) superfamily, member 11 (TNFSF11)/Receptor activator of NF-κB (RANK) ligand (RANKL), involved in osteoclast differentiation, was undertaken in cells grown on B-HA. Chondrogenic transcription factor SRY (sex determining region Y)-box 9 (SOX9), tested up-regulated in hASCs grown on the B-HA scaffold. Gene expression enhancement in the skeletal development pathway was detected in hASCs using B-HA compared to sintered hydroxylapatite (S-HA). OCN protein expression and calcium deposition were increased in hASCs grown on B-HA in comparison with the control. This study demonstrates the biocompatibility of the novel biomorphic B-HA scaffold and its potential use in osteogenic differentiation for hASCs. Our data highlight the relevance of B-HA for bone regeneration purposes.
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Texto completo: 1 Base de dados: MEDLINE Assunto principal: Osteogênese / Células-Tronco / Diferenciação Celular / Tecido Adiposo / Durapatita / Alicerces Teciduais Idioma: En Ano de publicação: 2021 Tipo de documento: Article País de afiliação: Itália

Texto completo: 1 Base de dados: MEDLINE Assunto principal: Osteogênese / Células-Tronco / Diferenciação Celular / Tecido Adiposo / Durapatita / Alicerces Teciduais Idioma: En Ano de publicação: 2021 Tipo de documento: Article País de afiliação: Itália