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首页> 外文期刊>Colloids and Surfaces, B. Biointerfaces >The adsorption of human serum albumin (HSA) on CO_2 laser modified magnesia partially stabilised zirconia (MgO-PSZ)
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The adsorption of human serum albumin (HSA) on CO_2 laser modified magnesia partially stabilised zirconia (MgO-PSZ)

机译:人血清白蛋白(HSA)对CO_2激光改性氧化镁部分稳定的氧化锆(MgO-PSZ)

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Magnesia partially stabilised zirconia (MgO-PSZ), a bioinert ceramic, exhibits high mechanical strength, excellent corrosion resistance and good biocompatibility, but it does not naturally form a direct bond with bone resulting in a lack of osteointegration. The surface properties and structure of a biomaterial play an essential role in protein adsorption. As such, changes in the surface properties and structure of biomaterials may in turn alter their bioactivity. So, the fundamental reactions at the interface of biomaterials and tissue should influence their integration and bone-bonding properties. To this end, CO_2 laser radiation was used to modify the surface roughness, crystal size, phase and surface energy of the MgO-PSZ. The basic mechanisms active in improving the surface energy were analysed and found to be the phase change and augmented surface area. The adsorption of human serum albumin (HSA), which is a non-cell adhesive protein, was compared on the untreated and CO_2 laser modified MgO-PSZ. It was observed that the thickness of the adsorbed HSA decreased as the polar surface energy of the MgO-PSZ increased, indicating that HSA adsorbed more effectively on the hydrophobic MgO-PSZ surface than the hydrophilic surface. The current study provided important information regarding protein-biomaterial interactions and possible mechanisms behind the cell interaction and in vivo behaviour.
机译:氧化镁部分稳定的氧化锆(MgO-PSZ),一种生物尼陶瓷,具有高机械强度,优异的耐腐蚀性和良好的生物相容性,但它并不是自然形成与骨骼的直接键,导致缺乏骨囊肿。生物材料的表面性质和结构在蛋白质吸附中起重要作用。因此,生物材料的表面性质和结构的变化可能反过来改变它们的生物活性。因此,生物材料和组织界面处的根本反应应影响其整合和骨粘合性能。为此,使用CO_2激光辐射来改变MgO-PSZ的表面粗糙度,晶体尺寸,相和表面能。分析了在改善表面能的基本机制,发现是相变和增强表面积。在未处理的和CO_2激光改性的MgO-PSZ上比较了人血清白蛋白(HSA)的吸附,即非细胞粘合剂蛋白。观察到,随着MgO-PSZ的极性表面能增加,吸附的HSA的厚度降低,表明HSA更有效地吸附在疏水性MgO-PSZ表面上的表面比亲水表面。目前的研究提供了关于蛋白质 - 生物材料相互作用的重要信息和细胞相互作用背后的可能机制和体内行为。

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