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A Biodegradable and Bioactive Composite Potentially for Orthopaedic Applications

机译:骨科应用中潜在的可生物降解和生物活性复合材料

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Magnesium has shown potential to become a biodegradable implant material for orthopaedic applications. However, it degrades too fast in physiological solutions. Proper alloying can reduce its degradation rate but may introduce cytotoxic elements. Moreover, magnesium itself lacks bioactivity. It was hypothesized that adding bioactive agents to magnesium could induce the formation of a surface mineral layer that could protect it from fast degradation and enhance its surface bioactivity. A mixture of pure magnesium and bioactive glass powders was compacted, sintered and extruded. Full consolidation and uniform distribution of bioactive glass particles were achieved. EDX indicated the lack of interactions between the matrix and bioactive glass. Immersion tests in a cell culture medium showed weight gain, attributed to the formation of a mineralized layer containing O, Ca, P, Na, Si and Mg on composite surface. P/M was found to be a viable route to produce biocomposites with reduced degradation rate and enhanced bioactivity.
机译:镁已显示出潜力成为骨科应用中可生物降解的植入物材料。但是,它在生理溶液中降解得太快。适当的合金化可以降低其降解速率,但可能会引入细胞毒性元素。此外,镁本身缺乏生物活性。据推测,向镁中添加生物活性剂可以诱导表面矿物质层的形成,从而可以保护镁免受快速降解并增强其表面生物活性。将纯镁和生物活性玻璃粉末的混合物压实,烧结并挤出。实现了生物活性玻璃颗粒的完全固结和均匀分布。 EDX表明基质和生物活性玻璃之间缺乏相互作用。在细胞培养基中的浸入测试显示重量增加,这归因于在复合材料表面上形成了包含O,Ca,P,Na,Si和Mg的矿化层。发现P / M是生产具有降低的降解速率和增强的生物活性的生物复合材料的可行途径。

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