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Bioactivity and Physico-Chemical Properties of Dental Composites Functionalized with Nano- vs. Micro-Sized Bioactive Glass

机译:纳米与微型生物活性玻璃官能化牙科复合材料的生物活性和物理化学性质

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摘要

Bioactive resin composites can contribute to the prevention of secondary caries, which is one of the main reasons for failure of contemporary dental restorations. This study investigated the effect of particle size of bioactive glass 45S5 on chemical and physical composite properties. Four experimental composites were prepared by admixing the following fillers into a commercial flowable composite: (1) 15 wt% of micro-sized bioactive glass, (2) 15 wt% of nano-sized bioactive glass, (3) a combination of micro- (7.5 wt%) and nano-sized (7.5 wt%) bioactive glass, and (4) 15 wt% of micro-sized inert barium glass. Hydroxyapatite precipitation and pH rise in phosphate-buffered saline were evaluated during 28 days. Degree of conversion and Knoop microhardness were measured 24 h after specimen preparation and after 28 days of phosphate-buffered saline immersion. Data were analyzed using non-parametric statistics (Kruskal−Wallis and Wilcoxon tests) at an overall level of significance of 5%. Downsizing the bioactive glass particles from micro- to nano-size considerably improved their capability to increase pH. The effect of nano-sized bioactive glass on degree of conversion and Knoop microhardness was similar to that of micro-sized bioactive glass. Composites containing nano-sized bioactive glass formed a more uniform hydroxyapatite layer after phosphate-buffered saline immersion than composites containing exclusively micro-sized particles. Partial replacement of nano- by micro-sized bioactive glass in the hybrid composite did not impair its reactivity, degree of conversion (p > 0.05), and Knoop microhardness (p > 0.05). It is concluded that downsizing bioactive glass particles to nano-size improves the alkalizing potential of experimental composites with no negative effects on their fundamental properties.
机译:生物活性树脂复合材料可以有助于预防二次龋齿,这是当代牙科修复件失败的主要原因之一。该研究研究了生物活性玻璃45s5粒径对化学和物理复合性能的影响。通过将下列填料混合到商用可流动的复合材料中来制备四种实验复合材料:(1)15wt%的微尺寸生物活性玻璃,(2)15wt%的纳米大小的生物活性玻璃,(3)微型的组合(7.5wt%)和纳米大小(7.5wt%)生物活性玻璃,(4)15wt%的微尺寸惰性钡玻璃。在28天内评价羟基磷灰石沉淀和磷酸盐缓冲盐水的pH值。在样品制备后24小时和磷酸盐缓冲盐水浸渍后24小时测量转化和Knoop微硬度。使用非参数统计(Kruskal-Wallis和Wilcoxon测试)分析数据,其总显着性为5%。将生物活性玻璃颗粒缩小到微量至纳米尺寸的显着提高了它们的增加能力。纳米大小的生物活性玻璃对转化程度和Knoop微硬度的影响与微尺寸的生物活性玻璃相似。含有纳米大小生物活性玻璃的复合材料在磷酸盐缓冲的盐水浸渍之后形成更均匀的羟基磷灰石层,而不是含有专门的微尺寸颗粒的复合材料。杂交复合材料中通过微尺寸的生物活性玻璃的部分替代含有微尺寸的生物活性玻璃并未损害其反应性,转化程度(P> 0.05)和Knoop微硬度(P> 0.05)。得出结论,将生物活性玻璃颗粒缩小到纳米尺寸的缩小性改善了实验复合材料的碱化潜力,对其基本性质没有负面影响。

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