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Electrochemical Analysis and In Vitro Assay of Mg-0.5Ca-xY Biodegradable Alloys

机译:Mg-0.5Ca-XY可生物降解合金的电化学分析和体外测定

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摘要

In recent years, biodegradable Mg-based materials have been increasingly studied to be used in the medical industry and beyond. A way to improve biodegradability rate in sync with the healing process of the natural human bone is to alloy Mg with other biocompatible elements. The aim of this research was to improve biodegradability rate and biocompatibility of Mg-0.5Ca alloy through addition of Y in 0.5/1.0/1.5/2.0/3.0wt.%. To characterize the chemical composition and microstructure of experimental Mg alloys, scanning electron microscopy (SEM), energy-dispersive spectroscopy (EDS), light microscopy (LM), and X-ray diffraction (XRD) were used. The linear polarization resistance (LPR) method was used to calculate corrosion rate as a measure of biodegradability rate. The cytocompatibility was evaluated by MTT assay (3-(4,5-dimethylthiazole-2-yl)-2,5-diphenyltetrazolium bromide) and fluorescence microscopy. Depending on chemical composition, the dendritic α-Mg solid solution, as well as lamellar Mg Ca and Mg Y intermetallic compounds were found. The lower biodegradability rates were found for Mg-0.5Ca-2.0Y and Mg-0.5Ca-3.0Y which have correlated with values of cell viability. The addition of 2–3 wt.%Y in the Mg-0.5Ca alloy improved both the biodegradability rate and cytocompatibility behavior.
机译:近年来,已经越来越多地研究了可生物降解的MG基材料,以便在医疗行业及以后使用。一种改善与天然人骨的愈合过程同步的生物降解性率的方法是用其他生物相容性元素合金Mg。该研究的目的是通过在0.5 / 1.0 / 1.5 / 2.0 / 3.0 / 3.0 / 3.0 / 3.%中提高Mg-0.5Ca合金的生物降解性率和生物相容性。%。为了表征实验Mg合金的化学成分和微观结构,使用扫描电子显微镜(SEM),能量分散光谱(EDS),光学显微镜(LM)和X射线衍射(XRD)。线性偏振电阻(LPR)方法用于计算腐蚀速率作为生物降解性率的衡量标准。通过MTT测定(3-(4,5-二甲基噻唑-2-基)-2,5-二苯基四唑溴化铵)和荧光显微镜评估细胞锁定性。根据化学成分,发现树枝状α-Mg固溶体以及层状Mg Ca和Mg Y金属间化合物。发现较低的生物降解性速率对于Mg-0.5ca-2.0y和mg-0.5ca-3.0y,其与细胞活力的值相关。在Mg-0.5Ca合金中加入2-3重量%Y改善了生物降解性率和细胞相容性。

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