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Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites

We embedded copper-doped mesoporous bioactive glass nanospheres (Cu-MBGN) with antibacterial and ion-releasing properties into experimental dental composites and investigated the effect of Cu-MBGN on the polymerisation properties. We prepared seven composites with a BisGMA/TEGDMA (60/40) matrix and...

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Detalles Bibliográficos
Autores principales: Marovic, Danijela, Par, Matej, Tauböck, Tobias T., Haugen, Håvard J., Negovetic Mandic, Visnja, Wüthrich, Damian, Burrer, Phoebe, Zheng, Kai, Attin, Thomas, Tarle, Zrinka, Boccaccini, Aldo R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9332616/
https://www.ncbi.nlm.nih.gov/pubmed/35897771
http://dx.doi.org/10.3390/ijms23158195
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author Marovic, Danijela
Par, Matej
Tauböck, Tobias T.
Haugen, Håvard J.
Negovetic Mandic, Visnja
Wüthrich, Damian
Burrer, Phoebe
Zheng, Kai
Attin, Thomas
Tarle, Zrinka
Boccaccini, Aldo R.
author_facet Marovic, Danijela
Par, Matej
Tauböck, Tobias T.
Haugen, Håvard J.
Negovetic Mandic, Visnja
Wüthrich, Damian
Burrer, Phoebe
Zheng, Kai
Attin, Thomas
Tarle, Zrinka
Boccaccini, Aldo R.
author_sort Marovic, Danijela
collection PubMed
description We embedded copper-doped mesoporous bioactive glass nanospheres (Cu-MBGN) with antibacterial and ion-releasing properties into experimental dental composites and investigated the effect of Cu-MBGN on the polymerisation properties. We prepared seven composites with a BisGMA/TEGDMA (60/40) matrix and 65 wt.% total filler content, added Cu-MBGN or a combination of Cu-MBGN and silanised silica to the silanised barium glass base, and examined nine parameters: light transmittance, degree of conversion (DC), maximum polymerisation rate (R(max)), time to reach R(max), linear shrinkage, shrinkage stress (PSS), maximum PSS rate, time to reach maximum PSS rate, and depth of cure. Cu-MBGN without silica accelerated polymerisation, reduced light transmission, and had the highest DC (58.8 ± 0.9%) and R(max) (9.8 ± 0.2%/s), but lower shrinkage (3 ± 0.05%) and similar PSS (0.89 ± 0.07 MPa) versus the inert reference (0.83 ± 0.13 MPa). Combined Cu-MBGN and silica slowed the R(max) and achieved a similar DC but resulted in higher shrinkage. However, using a combined 5 wt.% Cu-MBGN and silica, the PSS resembled that of the inert reference. The synergistic action of 5 wt.% Cu-MBGN and silanised silica in combination with silanised barium glass resulted in a material with the highest likelihood for dental applications in future.
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spelling pubmed-93326162022-07-29 Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites Marovic, Danijela Par, Matej Tauböck, Tobias T. Haugen, Håvard J. Negovetic Mandic, Visnja Wüthrich, Damian Burrer, Phoebe Zheng, Kai Attin, Thomas Tarle, Zrinka Boccaccini, Aldo R. Int J Mol Sci Article We embedded copper-doped mesoporous bioactive glass nanospheres (Cu-MBGN) with antibacterial and ion-releasing properties into experimental dental composites and investigated the effect of Cu-MBGN on the polymerisation properties. We prepared seven composites with a BisGMA/TEGDMA (60/40) matrix and 65 wt.% total filler content, added Cu-MBGN or a combination of Cu-MBGN and silanised silica to the silanised barium glass base, and examined nine parameters: light transmittance, degree of conversion (DC), maximum polymerisation rate (R(max)), time to reach R(max), linear shrinkage, shrinkage stress (PSS), maximum PSS rate, time to reach maximum PSS rate, and depth of cure. Cu-MBGN without silica accelerated polymerisation, reduced light transmission, and had the highest DC (58.8 ± 0.9%) and R(max) (9.8 ± 0.2%/s), but lower shrinkage (3 ± 0.05%) and similar PSS (0.89 ± 0.07 MPa) versus the inert reference (0.83 ± 0.13 MPa). Combined Cu-MBGN and silica slowed the R(max) and achieved a similar DC but resulted in higher shrinkage. However, using a combined 5 wt.% Cu-MBGN and silica, the PSS resembled that of the inert reference. The synergistic action of 5 wt.% Cu-MBGN and silanised silica in combination with silanised barium glass resulted in a material with the highest likelihood for dental applications in future. MDPI 2022-07-25 /pmc/articles/PMC9332616/ /pubmed/35897771 http://dx.doi.org/10.3390/ijms23158195 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Marovic, Danijela
Par, Matej
Tauböck, Tobias T.
Haugen, Håvard J.
Negovetic Mandic, Visnja
Wüthrich, Damian
Burrer, Phoebe
Zheng, Kai
Attin, Thomas
Tarle, Zrinka
Boccaccini, Aldo R.
Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites
title Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites
title_full Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites
title_fullStr Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites
title_full_unstemmed Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites
title_short Impact of Copper-Doped Mesoporous Bioactive Glass Nanospheres on the Polymerisation Kinetics and Shrinkage Stress of Dental Resin Composites
title_sort impact of copper-doped mesoporous bioactive glass nanospheres on the polymerisation kinetics and shrinkage stress of dental resin composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9332616/
https://www.ncbi.nlm.nih.gov/pubmed/35897771
http://dx.doi.org/10.3390/ijms23158195
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