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Advanced bredigite-containing magnesium-matrix composites for biodegradable bone implant applications

机译:用于可生物降解的骨植入应用的先进的BEDIGITE镁基复合材料

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摘要

The present research was aimed at developing magnesium-matrix composites that could allow effective control over their physiochemical and mechanical responses when in contact with physiological solutions. A biodegradable, bioactive ceramic- bredigite was chosen as the reinforcing phase in the composites, based on the hypothesis that the silicon- and magnesium-containing ceramic could protect magnesium from fast corrosion and at the same time stimulate cell proliferation. Methods to prepare composites with integrated microstructures- a prerequisite to achieve controlled biodegradation were developed. A systematic experimental approach was taken in order to elucidate the in vitro biodegradation mechanisms and kinetics of the composites. It was found that the composites with 20-40% homogenously dispersed bredigite particles, prepared from powders, could indeed significantly decrease the degradation rate of magnesium by up to 24 times. Slow degradation of the composites resulted in the retention of the mechanical integrity of the composites within the strength range of cortical bone after 12 days of immersion in a cell culture medium. Cell attachment, cytotoxicity and.bioactivity tests confirmed the stimulatory effects of bredigite embedded in the composites on the attachment, viability and differentiation of bone marrow stromal cells. Thus, the multiple benefits of adding bredigite to magnesium in enhancing degradation behavior, mechanical properties, biocompatibility and bioactivity were obtained. The results from this research showed the excellent potential of the bredigite-containing composites for bone implant applications, thus warranting further in vitro and in vivo research. (C) 2017 Elsevier B.V. All rights reserved.
机译:本研究旨在开发镁基复合材料,该复合材料可以在与生理溶液接触时有效地控制其生理化学和机械响应。选择可生物活性的生物活性陶瓷 - Bredigite作为复合材料中的增强相,基于含硅和含镁的陶瓷可以保护镁从快速腐蚀,同时刺激细胞增殖。制备具有集成微观结构的复合材料的方法 - 开发了实现受控生物降解的先决条件。采取了系统的实验方法,以阐明复合材料的体外生物降解机制和动力学。结果发现,由粉末制备的20-40%均匀分散的Bredigite颗粒的复合材料确实可以显着降低镁的降解速率最高24倍。复合材料的缓慢降解导致在细胞培养基中浸入12天后在皮质骨的强度范围内保持复合材料的机械完整性。细胞附着,细胞毒性和。生物毒性试验证实了Bredigite嵌入复合材料上的Bredigite对骨髓基质细胞的附着,活力和分化的刺激作用。因此,获得了在增强降解行为,机械性能,生物相容性和生物活性方面加入Bredigite对镁的多种益处。该研究的结果表明,含骨植入应用的Bredigite复合材料的优异电位,从而在体外和体内研究中进一步保证。 (c)2017 Elsevier B.v.保留所有权利。

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