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多孔球形羟基磷灰石对传统玻璃离子水门汀机械强度和生物活性功能的影响

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

作者信息

Chiu Szu-Yu, Shinonaga Yukari, Abe Yoko, Harada Kyoko, Arita Kenji

机构信息

Department of Pediatric Dentistry, Graduate School of Dentistry, Osaka Dental University, 8-1, Kuzuhahanazono-cho, Hirakata, 573-1121 Osaka, Japan.

Department of Pediatric Dentistry, Osaka Dental University, 1-5-17, Otemae, Chuo-ku, 540-0008 Osaka, Japan.

出版信息

Materials (Basel). 2017 Jan 3;10(1):27. doi: 10.3390/ma10010027.

Abstract

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.

摘要

玻璃离子水门汀(GIC)在微创牙科中很有用,因为它能释放氟离子且具有高度生物相容性。本研究的目的是探究当羟基磷灰石(HAp)与GIC结合制成磷灰石离子水门汀(AIC)时,HAp改善GIC机械强度和生物活性功能的机制。将传统GIC粉末与多孔球形HAp颗粒(HApS)、结晶HAp(HAp200)或两种纤维素之一混合。测量了添加剂颗粒的微压缩强度,并对各种试样的抗压强度(CS)、氟释放浓度(氟电极)和多元素释放浓度进行了评估。结果发现,与对照GIC相比,AIC释放的氟浓度更高(1.2倍),锶离子浓度更高(1.5倍)。在AIC中检测到,源自HApS的钙释放量比HAp200更多。掺入最佳水平HAp的AIC的CS也显著高于GIC。这些结果表明,添加HAp可以提高再矿化所需离子的释放浓度,同时保持GIC的CS。这种效果不是由物理现象导致的,而是由HAp与GIC的聚丙烯酸之间的化学反应引起的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2128/5344612/d88276fe945c/materials-10-00027-g001.jpg

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