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Novel Nanotechnology of TiO2 Improves Physical-Chemical and Biological Properties of Glass Ionomer Cement

机译:新型的TiO2纳米技术改善了玻璃离聚物水泥的物理化学和生物性能

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摘要

The aim of this study was to assess the performance of glass ionomer cement (GIC) added with TiO2 nanotubes. TiO2 nanotubes [3%, 5%, and 7% (w/w)] were incorporated into GIC's (Ketac Molar EasyMix™) powder component, whereas unblended powder was used as control. Physical-chemical-biological analysis included energy dispersive spectroscopy (EDS), surface roughness (SR), Knoop hardness (SH), fluoride-releasing analysis, cytotoxicity, cell morphology, and extracellular matrix (ECM) composition. Parametric or nonparametric ANOVA were used for statistical comparisons (α ≤ 0.05). Data analysis revealed that EDS only detected Ti at the 5% and 7% groups and that GIC's physical-chemical properties were significantly improved by the addition of 5% TiO2 as compared to 3% and GIC alone. Furthermore, regardless of TiO2 concentration, no significant effect was found on SR, whereas GIC-containing 7% TiO2 presented decreased SH values. Fluoride release lasted longer for the 5% and 7% TiO2 groups, and cell morphology/spreading and ECM composition were found to be positively affected by TiO2 at 5%. In conclusion, in the current study, nanotechnology incorporated in GIC affected ECM composition and was important for the superior microhardness and fluoride release, suggesting its potential for higher stress-bearing site restorations.
机译:这项研究的目的是评估添加了TiO2纳米管的玻璃离聚物水泥(GIC)的性能。将TiO2纳米管[3%,5%和7%(w / w)]掺入GIC(Ketac Molar EasyMix™)粉末组分中,而未掺混的粉末用作对照。物理化学生物学分析包括能量色散光谱(EDS),表面粗糙度(SR),努氏硬度(SH),氟化物释放分析,细胞毒性,细胞形态和细胞外基质(ECM)组成。使用参数或非参数方差分析进行统计比较(α≤0.05)。数据分析表明,EDS仅在5%和7%组中检测到Ti,并且与单独添加3%和GIC相比,添加5%TiO2显着改善了GIC的物理化学性能。此外,无论TiO2浓度如何,均未发现对SR有显着影响,而含GIC的7%TiO2呈现出降低的SH值。对于5%和7%的TiO2,氟化物的释放持续时间更长,而5%的TiO2对细胞形态/扩散和ECM组成有积极影响。总而言之,在当前的研究中,GIC中包含的纳米技术影响了ECM的组成,并且对于优异的显微硬度和氟化物释放非常重要,表明其具有更高的承受应力部位的修复潜力。

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