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首页> 外文期刊>RSC Advances >Enhanced corrosion protection and biocompatibility of a PLGA-silane coating on AZ31 Mg alloy for orthopaedic applications
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Enhanced corrosion protection and biocompatibility of a PLGA-silane coating on AZ31 Mg alloy for orthopaedic applications

机译:增强AZ31mg合金的PLGA-硅烷涂层的腐蚀保护和生物相容性,用于整形外科应用

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摘要

This paper reports a multi-step procedure to fabricate a novel corrosion resistant and biocompatible PLGA-silane coating on the magnesium (Mg) alloy AZ31. The first step involves alkaline passivation followed by dip coating in a methyltriethoxysilane (MTES) and tetraethoxysilane (TEOS) mixture to produce a cross-linked siloxane coating. The second step is to impart an amine functionalization to the silane modified surface by using 3-aminopropyl-triethoxy silane (APTES) for promoting adhesion of the acid terminated poly-(lactic-co-glycolic) acid (PLGA) as a final coating step. Static contact angle measurements, Fourier transform infrared spectroscopy and scanning electron microscopy analysis confirmed the successful assembly of coatings on the AZ31 Mg alloy. Potentiodynamic polarization and impedance spectroscopy studies showed the improved initial corrosion resistance of the coated AZ31 substrate. Measurements of magnesium ion release, pH changes and hydrogen evolution showed enhanced corrosion protection of coated substrate over uncoated AZ31 alloy for 21 and 14 days respectively. The MTT assay, live-dead cells staining, DNA quantification and alkaline phosphatase activity assay were used to measure the biocompatibility, proliferation and differentiation of MC3T3-E1 osteoblast cells. Scanning electron microscopy was used to observe cell morphology and integration with the coated surface. The coated substrate showed improved cytocompatibility as compared to the uncoated AZ31 alloy surface. The application of such coatings on biodegradable Mg alloys enhanced their corrosion resistance and biocompatibility. An additional advantage is that the coating also served as a potential delivery vehicle for specific drugs and bio-active molecules releasing from an implant surface as the coatings, such as PLGA, adapt during the corrosion process, thereby enhancing bone regeneration.
机译:本文报道了一种多步骤,用于制造镁(Mg)合金AZ31上的新型腐蚀和生物相容性PLGA-硅烷涂层。第一步涉及碱性钝化,然后在甲基三乙氧基硅烷(MTE)和四乙氧基硅烷(TEOS)混合物中浸涂,以产生交联硅氧烷涂层。第二步骤是通过使用3-氨基丙基 - 三乙氧基硅烷(Aptes)赋予硅烷改性表面的胺官能化,以促进酸封端的聚(乳酸 - 共乙醇酸)酸(PLGA)作为最终涂覆步骤的粘附性。静电接触角测量,傅里叶变换红外光谱和扫描电子显微镜分析证实了AZ31 Mg合金上的涂层成功组装。电位动力学偏振和阻抗光谱研究表明,涂覆的AZ31底物的初始耐腐蚀性。镁离子释放,pH变化和氢气进化的测量表明,分别为未涂覆的AZ31合金涂覆的基材的增强腐蚀保护分别为21和14天。 MTT测定,活死细胞染色,DNA定量和碱性磷酸酶活性测定法测量MC3T3-E1成骨细胞的生物相容性,增殖和分化。扫描电子显微镜用于观察细胞形态和与涂层表面的整合。与未涂覆的AZ31合金表面相比,涂覆的基材显示出改善的细胞膜相容性。这种涂层对可生物降解的Mg合金的应用增强了它们的耐腐蚀性和生物相容性。额外的优点是,涂层还用作特定药物的潜在输送载体和从植入表面释放的生物活性分子,例如PLGA,在腐蚀过程中适应,从而提高骨再生。

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  • 来源
    《RSC Advances》 |2016年第115期|共13页
  • 作者单位

    Dublin Inst Technol FOCAS Inst Ctr Res Engn &

    Surface Technol Kevin St Dublin 8 Ireland;

    Dublin Inst Technol FOCAS Inst Ctr Res Engn &

    Surface Technol Kevin St Dublin 8 Ireland;

    Trinity Coll Dublin Trinity Biomed Sci Inst Trinity Ctr Bioengn Dublin 2 Ireland;

    Trinity Coll Dublin Trinity Biomed Sci Inst Trinity Ctr Bioengn Dublin 2 Ireland;

    Dublin Inst Technol FOCAS Inst Ctr Res Engn &

    Surface Technol Kevin St Dublin 8 Ireland;

    Dublin Inst Technol Sch Food Sci &

    Environm Hlth Cathal Brugha St Dublin 1 Ireland;

    Dublin Inst Technol FOCAS Inst Ctr Res Engn &

    Surface Technol Kevin St Dublin 8 Ireland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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