Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement

Glass-ionomer-cement (GIC) is helpful in Minimal Intervention Dentistry because it releases fluoride ions and is highly biocompatible. The aim of this study is to investigate the mechanisms by which hydroxyapatite (HAp) improves the mechanical strength and bioactive functioning of GIC when these mat...

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Main Authors: Szu-Yu Chiu, Yukari Shinonaga, Yoko Abe, Kyoko Harada, Kenji Arita
Format: Article
Language:English
Published: MDPI AG 2017-01-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/10/1/27
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spelling doaj-232a9ec1d0d8454487b94f1807789daa2020-11-24T23:52:57ZengMDPI AGMaterials1996-19442017-01-011012710.3390/ma10010027ma10010027Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer CementSzu-Yu Chiu0Yukari Shinonaga1Yoko Abe2Kyoko Harada3Kenji Arita4Department of Pediatric Dentistry, Graduate School of Dentistry, Osaka Dental University, 8-1, Kuzuhahanazono-cho, Hirakata, 573-1121 Osaka, JapanDepartment of Pediatric Dentistry, Osaka Dental University, 1-5-17, Otemae, Chuo-ku, 540-0008 Osaka, JapanDepartment of Pediatric Dentistry, Osaka Dental University, 1-5-17, Otemae, Chuo-ku, 540-0008 Osaka, JapanDepartment of Pediatric Dentistry, Osaka Dental University, 1-5-17, Otemae, Chuo-ku, 540-0008 Osaka, JapanDepartment of Pediatric Dentistry, Osaka Dental University, 1-5-17, Otemae, Chuo-ku, 540-0008 Osaka, JapanGlass-ionomer-cement (GIC) is helpful in Minimal Intervention Dentistry because it releases fluoride ions and is highly biocompatible. The aim of this study is to investigate the mechanisms by which hydroxyapatite (HAp) improves the mechanical strength and bioactive functioning of GIC when these materials are combined to make apatite ionomer cement (AIC). A conventional GIC powder was mixed with porous, spherical-HAp particles (HApS), crystalline HAp (HAp200) or one of two types of cellulose. The micro-compressive strengths of the additive particles were measured, and various specimens were evaluated with regard to their compressive strengths (CS), fluoride release concentrations (fluoride electrode) and multi-element release concentrations. The AIC was found to release higher concentrations of fluoride (1.2 times) and strontium ions (1.5 times) compared to the control GIC. It was detected the more release of calcium originated from HApS than HAp200 in AIC. The CS of the AIC incorporating an optimum level of HAp was also significantly higher than that of the GIC. These results suggest that adding HAp can increase the release concentration of ions required for remineralization while maintaining the CS of the GIC. This effect does not result from a physical phenomenon, but rather from chemical reactions between the HAp and polyacrylic acid of GIC.http://www.mdpi.com/1996-1944/10/1/27glass ionomer cementimprovementhydroxyapatitecellulosecompressive strengthfluoride releasemineral release
collection DOAJ
language English
format Article
sources DOAJ
author Szu-Yu Chiu
Yukari Shinonaga
Yoko Abe
Kyoko Harada
Kenji Arita
spellingShingle Szu-Yu Chiu
Yukari Shinonaga
Yoko Abe
Kyoko Harada
Kenji Arita
Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement
Materials
glass ionomer cement
improvement
hydroxyapatite
cellulose
compressive strength
fluoride release
mineral release
author_facet Szu-Yu Chiu
Yukari Shinonaga
Yoko Abe
Kyoko Harada
Kenji Arita
author_sort Szu-Yu Chiu
title Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement
title_short Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement
title_full Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement
title_fullStr Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement
title_full_unstemmed Influence of Porous Spherical-Shaped Hydroxyapatite on Mechanical Strength and Bioactive Function of Conventional Glass Ionomer Cement
title_sort influence of porous spherical-shaped hydroxyapatite on mechanical strength and bioactive function of conventional glass ionomer cement
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2017-01-01
description Glass-ionomer-cement (GIC) is helpful in Minimal Intervention Dentistry because it releases fluoride ions and is highly biocompatible. The aim of this study is to investigate the mechanisms by which hydroxyapatite (HAp) improves the mechanical strength and bioactive functioning of GIC when these materials are combined to make apatite ionomer cement (AIC). A conventional GIC powder was mixed with porous, spherical-HAp particles (HApS), crystalline HAp (HAp200) or one of two types of cellulose. The micro-compressive strengths of the additive particles were measured, and various specimens were evaluated with regard to their compressive strengths (CS), fluoride release concentrations (fluoride electrode) and multi-element release concentrations. The AIC was found to release higher concentrations of fluoride (1.2 times) and strontium ions (1.5 times) compared to the control GIC. It was detected the more release of calcium originated from HApS than HAp200 in AIC. The CS of the AIC incorporating an optimum level of HAp was also significantly higher than that of the GIC. These results suggest that adding HAp can increase the release concentration of ions required for remineralization while maintaining the CS of the GIC. This effect does not result from a physical phenomenon, but rather from chemical reactions between the HAp and polyacrylic acid of GIC.
topic glass ionomer cement
improvement
hydroxyapatite
cellulose
compressive strength
fluoride release
mineral release
url http://www.mdpi.com/1996-1944/10/1/27
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AT kyokoharada influenceofporoussphericalshapedhydroxyapatiteonmechanicalstrengthandbioactivefunctionofconventionalglassionomercement
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