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首页> 外文期刊>ACS Omega >Antimicrobial Properties of MgO Nanostructures on Magnesium Substrates
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Antimicrobial Properties of MgO Nanostructures on Magnesium Substrates

机译:MgO纳米结构对镁基材的抗菌性质

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Magnesium (Mg) and its alloys have attracted increasing attention in recent years as medical implants for repairing musculoskeletal injuries because of their promising mechanical and biological properties. However, rapid degradation of Mg and its alloys in physiological fluids limited their clinical translation because the accumulation of hydrogen (H_(2)) gas and fast release of OH~(–) ions could adversely affect the healing process. Moreover, infection is a major concern for internally implanted devices because it could lead to biofilm formation, prevent host cell attachment on the implants, and interfere osseointegration, resulting in implant failure or other complications. Fabricating nanostructured magnesium oxide (MgO) on magnesium (Mg) substrates is promising in addressing both problems because it could slow down the degradation process and improve the antimicrobial activity. In this study, nanostructured MgO layers were created on Mg substrates using two different surface treatment techniques, i.e., anodization and electrophoretic deposition (EPD), and cultured with Staphylococcus aureus in vitro to determine their antimicrobial properties. At the end of the 24-h bacterial culture, the nanostructured MgO layers on Mg prepared by anodization or EPD both showed significant bactericidal effect against S. aureus . Thus, nanostructured MgO layers on Mg are promising for reducing implant-related infections and complications and should be further explored for clinical translation toward antimicrobial biodegradable implants.
机译:近年来,镁(Mg)及其合金在近年来由于其有前途的机械和生物学特性而需要修复肌肉骨骼损伤的医疗植入物。然而,生理流体中的Mg及其合金的快速降解限制了它们的临床翻译,因为氢气(H_(2))气体的积累和OH〜( - )离子的快速释放可能对愈合过程产生不利影响。此外,感染是内部植入装置的主要问题,因为它可能导致生物膜形成,防止植入物上的宿主细胞附着,并干扰骨整合,导致植入失败或其他并发症。在镁(Mg)底物上制造纳米结构氧化镁(MgO)在解决这两种问题方面是有希望的,因为它可以减缓降解过程并改善抗微生物活性。在该研究中,使用两种不同的表面处理技术,即阳极氧化和电泳沉积(EPD)在Mg基质上产生纳米结构MgO层,并用在体外培养的葡萄球菌培养以确定其抗微生物性质。在24-H细菌培养的结束时,通过阳极氧化或EPD制备的Mg上的纳米结构MgO层两者都对表示显着的杀菌效应。金黄色葡萄球菌。因此,MG上的纳米结构MgO层是有希望减少植入物相关的感染和并发症,并应进一步探索临床翻译,以朝抗微生物可生物降解的植入物进行临床翻译。

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