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Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies

The increasing need for novel bone replacement materials has been driving numerous studies on modifying their surface to stimulate osteogenic cells expansion and to accelerate bone tissue regeneration. The goal of the presented study was to optimize the production of titania-based bioactive material...

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Autores principales: Ehlert, Michalina, Roszek, Katarzyna, Jędrzejewski, Tomasz, Bartmański, Michał, Radtke, Aleksandra
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6888681/
https://www.ncbi.nlm.nih.gov/pubmed/31718064
http://dx.doi.org/10.3390/ijms20225642
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author Ehlert, Michalina
Roszek, Katarzyna
Jędrzejewski, Tomasz
Bartmański, Michał
Radtke, Aleksandra
author_facet Ehlert, Michalina
Roszek, Katarzyna
Jędrzejewski, Tomasz
Bartmański, Michał
Radtke, Aleksandra
author_sort Ehlert, Michalina
collection PubMed
description The increasing need for novel bone replacement materials has been driving numerous studies on modifying their surface to stimulate osteogenic cells expansion and to accelerate bone tissue regeneration. The goal of the presented study was to optimize the production of titania-based bioactive materials with high porosity and defined nanostructure, which supports the cell viability and growth. We have chosen to our experiments TiO(2) nanofibers, produced by chemical oxidation of Ti6Al4V alloy. Fibrous nanocoatings were characterized structurally (X-ray diffraction (XRD)) and morphologically (scanning electron microscopy (SEM)). The wettability of the coatings and their mechanical properties were also evaluated. We have investigated the direct influence of the modified titanium alloy surfaces on the survival and proliferation of mesenchymal stem cells derived from adipose tissue (ADSCs). In parallel, proliferation of bone tissue cells—human osteoblasts MG-63 and connective tissue cells - mouse fibroblasts L929, as well as cell viability in co-cultures (osteoblasts/ADSCs and fibroblasts/ADSCs has been studied. The results of our experiments proved that among all tested nanofibrous coatings, the amorphous titania-based ones were the most optimal scaffolds for the integration and proliferation of ADSCs, fibroblasts, and osteoblasts. Thus, we postulated these scaffolds to have the osteopromotional potential. However, from the co-culture experiments it can be concluded that ADSCs have the ability to functionalize the initially unfavorable surface, and make it suitable for more specialized and demanding cells.
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spelling pubmed-68886812019-12-09 Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies Ehlert, Michalina Roszek, Katarzyna Jędrzejewski, Tomasz Bartmański, Michał Radtke, Aleksandra Int J Mol Sci Article The increasing need for novel bone replacement materials has been driving numerous studies on modifying their surface to stimulate osteogenic cells expansion and to accelerate bone tissue regeneration. The goal of the presented study was to optimize the production of titania-based bioactive materials with high porosity and defined nanostructure, which supports the cell viability and growth. We have chosen to our experiments TiO(2) nanofibers, produced by chemical oxidation of Ti6Al4V alloy. Fibrous nanocoatings were characterized structurally (X-ray diffraction (XRD)) and morphologically (scanning electron microscopy (SEM)). The wettability of the coatings and their mechanical properties were also evaluated. We have investigated the direct influence of the modified titanium alloy surfaces on the survival and proliferation of mesenchymal stem cells derived from adipose tissue (ADSCs). In parallel, proliferation of bone tissue cells—human osteoblasts MG-63 and connective tissue cells - mouse fibroblasts L929, as well as cell viability in co-cultures (osteoblasts/ADSCs and fibroblasts/ADSCs has been studied. The results of our experiments proved that among all tested nanofibrous coatings, the amorphous titania-based ones were the most optimal scaffolds for the integration and proliferation of ADSCs, fibroblasts, and osteoblasts. Thus, we postulated these scaffolds to have the osteopromotional potential. However, from the co-culture experiments it can be concluded that ADSCs have the ability to functionalize the initially unfavorable surface, and make it suitable for more specialized and demanding cells. MDPI 2019-11-11 /pmc/articles/PMC6888681/ /pubmed/31718064 http://dx.doi.org/10.3390/ijms20225642 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
Ehlert, Michalina
Roszek, Katarzyna
Jędrzejewski, Tomasz
Bartmański, Michał
Radtke, Aleksandra
Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies
title Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies
title_full Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies
title_fullStr Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies
title_full_unstemmed Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies
title_short Titania Nanofiber Scaffolds with Enhanced Biointegration Activity—Preliminary In Vitro Studies
title_sort titania nanofiber scaffolds with enhanced biointegration activity—preliminary in vitro studies
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6888681/
https://www.ncbi.nlm.nih.gov/pubmed/31718064
http://dx.doi.org/10.3390/ijms20225642
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