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Biodegradation behavior of micro-arc oxidation coating on magnesium alloy-from a protein perspective

机译:从蛋白质角度看镁合金微弧氧化膜的生物降解行为

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摘要

Protein exerts a critical influence on the degradation behavior of absorbable magnesium (Mg)-based implants. However, the interaction mechanism between protein and a micro-arc oxidation (MAO) coating on Mg alloys remains unclear. Hereby, a MAO coating was fabricated on AZ31 Mg alloy. And its degradation behavior in phosphate buffer saline (PBS) containing bovine serum albumin (BSA) was investigated and compared with that of the uncoated alloy. Surface morphologies and chemical compositions were studied using Field-emission scanning electron microscope (FE-SEM), Fourier transform infrared spectrophotometer (FT-IR) and X-ray diffraction (XRD). The degradation behavior of the bare Mg alloy and its MAO coating was studied through electrochemical and hydrogen evolution tests. Cytotoxicity assay was applied to evaluate the biocompatibility of Mg alloy substrate and MAO coating. Results indicated that the presence of BSA decreased the degradation rate of Mg alloy substrate because BSA (RCH(NH )COO‾) molecules combined with Mg ions to form (RCH(NH )COO) Mg and thus inhibited the dissolution of Mg(OH) by impeding the attack of Cl‾ ions. In the case of MAO coated Mg alloy, the adsorption of BSA on MAO coating and the formation of (RCH(NH )COO) Mg exhibited a synergistic effect and enhanced the corrosion resistance of the coated alloy significantly. Furthermore, cell bioactive assay suggested that the MAO coating had good viability for MG63 cells due to its high surface area.
机译:蛋白质对可吸收的镁(Mg)基植入物的降解行为产生关键影响。但是,蛋白质与镁合金上的微弧氧化(MAO)涂层之间的相互作用机理仍不清楚。由此,在AZ31镁合金上制造了MAO涂层。并研究了其在含牛血清白蛋白(BSA)的磷酸盐缓冲盐水(PBS)中的降解行为,并将其与未涂层合金的降解行为进行了比较。使用场发射扫描电子显微镜(FE-SEM),傅立叶变换红外分光光度计(FT-IR)和X射线衍射(XRD)研究了表面形态和化学成分。通过电化学和析氢试验研究了裸镁合金及其MAO涂层的降解行为。采用细胞毒性试验评价镁合金基底和MAO涂层的生物相容性。结果表明,牛血清白蛋白的存在降低了镁合金基底的降解速率,因为牛血清白蛋白(RCH(NH)COO‾)分子与镁离子结合形成(RCH(NH)COO)Mg,从而抑制了Mg(OH)的溶解。通过阻止Cl +离子的侵蚀。在MAO涂层镁合金的情况下,BSA在MAO涂层上的吸附和(RCH(NH)COO)Mg的形成表现出协同作用,并显着提高了涂层合金的耐腐蚀性。此外,细胞生物活性测定表明,由于其高表面积,MAO涂层对于MG63细胞具有良好的生存能力。

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