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Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity

The surfaces of silicon nitride (β-Si(3)N(4)) and zirconia toughened alumina (ZTA) were patterned using a high-energy laser source, which operated at a wavelength of 1064 nm. The patterning procedure yielded a series regular, cylindrical cavities 500 and 300 μm in diameter and depth, respectively. T...

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Autores principales: Marin, Elia, Horiguchi, Satoshi, Zanocco, Matteo, Boschetto, Francesco, Rondinella, Alfredo, Zhu, Wenliang, Bock, Ryan M., McEntire, Bryan J., Adachi, Tetsuya, Bal, B. Sonny, Pezzotti, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6288463/
https://www.ncbi.nlm.nih.gov/pubmed/30560211
http://dx.doi.org/10.1016/j.heliyon.2018.e01016
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author Marin, Elia
Horiguchi, Satoshi
Zanocco, Matteo
Boschetto, Francesco
Rondinella, Alfredo
Zhu, Wenliang
Bock, Ryan M.
McEntire, Bryan J.
Adachi, Tetsuya
Bal, B. Sonny
Pezzotti, Giuseppe
author_facet Marin, Elia
Horiguchi, Satoshi
Zanocco, Matteo
Boschetto, Francesco
Rondinella, Alfredo
Zhu, Wenliang
Bock, Ryan M.
McEntire, Bryan J.
Adachi, Tetsuya
Bal, B. Sonny
Pezzotti, Giuseppe
author_sort Marin, Elia
collection PubMed
description The surfaces of silicon nitride (β-Si(3)N(4)) and zirconia toughened alumina (ZTA) were patterned using a high-energy laser source, which operated at a wavelength of 1064 nm. The patterning procedure yielded a series regular, cylindrical cavities 500 and 300 μm in diameter and depth, respectively. These cavities were subsequently filled with bioglass mixed with different fractions of Si(3)N(4) powder (0, 5, and 10 mol.%) to obtain bioactive functionalized bioceramic surfaces. The laser-patterned samples were first characterized using several spectroscopic techniques before and after functionalization, and then tested in vitro with respect to their osteoconductivity using a human osteosarcoma cell line (SaOS-2). After in vitro testing, fluorescence microscopy was used to address the biological response and to estimate osteopontin and osteocalcin protein contents and distributions. The presence of bioglass greatly enhanced the biological response of both ceramic surfaces, but mainly induced production of inorganic apatite. On the other hand, the addition of minor fraction of Si(3)N(4) into the bioglass-filled holes greatly enhanced bio-mineralization and stimulated the SaOS-2 cells to produce higher amounts of bone extracellular matrix (collagen and proteins), thus enhancing the osteopontin to osteocalcin ratio. It was also observed that the presence of a fraction of Si(3)N(4) in the powder mixture filling the holes bestowed more uniform cell colonization on the otherwise bioinert ZTA surface.
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spelling pubmed-62884632018-12-17 Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity Marin, Elia Horiguchi, Satoshi Zanocco, Matteo Boschetto, Francesco Rondinella, Alfredo Zhu, Wenliang Bock, Ryan M. McEntire, Bryan J. Adachi, Tetsuya Bal, B. Sonny Pezzotti, Giuseppe Heliyon Article The surfaces of silicon nitride (β-Si(3)N(4)) and zirconia toughened alumina (ZTA) were patterned using a high-energy laser source, which operated at a wavelength of 1064 nm. The patterning procedure yielded a series regular, cylindrical cavities 500 and 300 μm in diameter and depth, respectively. These cavities were subsequently filled with bioglass mixed with different fractions of Si(3)N(4) powder (0, 5, and 10 mol.%) to obtain bioactive functionalized bioceramic surfaces. The laser-patterned samples were first characterized using several spectroscopic techniques before and after functionalization, and then tested in vitro with respect to their osteoconductivity using a human osteosarcoma cell line (SaOS-2). After in vitro testing, fluorescence microscopy was used to address the biological response and to estimate osteopontin and osteocalcin protein contents and distributions. The presence of bioglass greatly enhanced the biological response of both ceramic surfaces, but mainly induced production of inorganic apatite. On the other hand, the addition of minor fraction of Si(3)N(4) into the bioglass-filled holes greatly enhanced bio-mineralization and stimulated the SaOS-2 cells to produce higher amounts of bone extracellular matrix (collagen and proteins), thus enhancing the osteopontin to osteocalcin ratio. It was also observed that the presence of a fraction of Si(3)N(4) in the powder mixture filling the holes bestowed more uniform cell colonization on the otherwise bioinert ZTA surface. Elsevier 2018-12-08 /pmc/articles/PMC6288463/ /pubmed/30560211 http://dx.doi.org/10.1016/j.heliyon.2018.e01016 Text en © 2018 Published by Elsevier Ltd. http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Marin, Elia
Horiguchi, Satoshi
Zanocco, Matteo
Boschetto, Francesco
Rondinella, Alfredo
Zhu, Wenliang
Bock, Ryan M.
McEntire, Bryan J.
Adachi, Tetsuya
Bal, B. Sonny
Pezzotti, Giuseppe
Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
title Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
title_full Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
title_fullStr Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
title_full_unstemmed Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
title_short Bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
title_sort bioglass functionalization of laser-patterned bioceramic surfaces and their enhanced bioactivity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6288463/
https://www.ncbi.nlm.nih.gov/pubmed/30560211
http://dx.doi.org/10.1016/j.heliyon.2018.e01016
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