Department of Engineering "Enzo Ferrari", University of Modena and Reggio Emilia, Via P. Vivarelli 10, 41125 Modena, Italy.
Department of Medical and Surgical Sciences for Children & Adults, University of Modena and Reggio Emilia, Hospital of Modena, Via del Pozzo 71, 44125 Modena, Italy; Scientific and Technological Park of Medicine "Mario Veronesi", Via 29 Maggio 6, 41037 Mirandola, Italy.
Mater Sci Eng C Mater Biol Appl. 2020 May;110:110699. doi: 10.1016/j.msec.2020.110699. Epub 2020 Jan 27.
In this work, a new bioactive glass was designed, prepared by means of a melt-quenching route and characterized in terms of both thermal properties and biological performance. The main objective was to obtain a novel product with high temperature of crystallization in view of possible thermal treatments, as well as remarkable biological responsiveness. Thermal behavior was investigated by heating microscopy, differential thermal analysis (DTA) and sintering tests. The glass displayed a very high crystallization temperature and the samples remained completely amorphous after sintering. Bioactivity was evaluated by means of Simulated Body Fluid (SBF) assay, which is a widely used method to preliminary investigate samples' reactivity in vitro; the glass showed a strong apatite forming ability. Additionally, in order to exclude cytotoxic effects, biocompatibility was verified according to ISO standard 10993. Finally, the biological potential of the new glass was tested by using an innovative 3D cellular model, that mimicked the potential clinical application of a given biomaterial. Human bone marrow mesenchymal stem cells (BM-MSCs) were employed to study the performance of bioactive glass granules in such 3D cellular model. The results showed that the bioactive glass supported human BM-MSCs adhesion, colonization and bone differentiation. Thus, this new bioactive glass looks particularly promising for orthopedic applications, bone tissue engineering and regenerative medicine, especially when a thermal treatment is necessary for the production of specific devices.
在这项工作中,设计了一种新型生物活性玻璃,通过熔融淬火法制备,并对其热性能和生物性能进行了表征。主要目的是获得一种具有高结晶温度的新型产品,以便进行可能的热处理,同时具有显著的生物响应性。通过加热显微镜、差示热分析(DTA)和烧结试验研究了热行为。该玻璃显示出非常高的结晶温度,并且在烧结后样品仍然完全非晶态。通过模拟体液(SBF)试验评估了生物活性,这是一种广泛用于初步研究样品体外反应性的方法;玻璃显示出很强的磷灰石形成能力。此外,为了排除细胞毒性作用,根据 ISO 标准 10993 进行了生物相容性验证。最后,使用创新的 3D 细胞模型测试了新型玻璃的生物学潜力,该模型模拟了给定生物材料的潜在临床应用。用人骨髓间充质干细胞(BM-MSCs)研究了生物活性玻璃颗粒在这种 3D 细胞模型中的性能。结果表明,生物活性玻璃支持人 BM-MSCs 的黏附、定植和骨分化。因此,这种新型生物活性玻璃在骨科应用、骨组织工程和再生医学方面具有很大的应用前景,特别是在生产特定器械时需要进行热处理的情况下。