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Gentamicin-Eluting Titanium Dioxide Nanotubes Grown on the Ultrafine-Grained Titanium

机译:在超细粒化钛上生长的庆大霉素洗脱二氧化钛纳米管

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Titanium (Ti)-based materials is the most appropriate choices for the applications as orthopedic and dental implants. In this regard, ultrafine-grained (UFG) titanium with an enhanced mechanical properties and surface energy has attracted more attention. Titanium dioxide (TiO2) nanotubes grown on the titanium could enhance bone bonding, cellular response and are good reservoirs for loading drugs and antibacterial agents. This article investigates gentamicin loading into and release from the TiO2 nanotubes, grown on the UFG compared to coarse-grained (CG) titanium substrate surfaces. Equal Channel Angular Pressing (ECAP) was employed to produce the UFG structure titanium. TiO2 nanotubes were grown by the anodizing technique on both UFG and CG titanium substrate surfaces. Scanning electron microscopy (SEM) imaging confirmed TiO2 nanotube growth on the surface. The UV-vis spectroscopy analysis results show that the amount of gentamicin load-release in the anodized UFG titanium sample is higher than that of CG one which can be explained in terms of thicker TiO2 nanotube arrays layer formed on UFG sample. Moreover, the anodized UFG titanium samples released the drug in a longer time than CG (1 day for the UFG titanium vs. 3 h for the CG one). Regarding wettability analysis, anodized UFG titanium sample showed more enhanced hydrophilicity than CG counterpart. Therefore, the significantly smaller grain size of pure titanium provided by the ECAP technique coupled with appropriate subsequent anodization treatment not only offers a good combination of biocompatibility and adequate mechanical properties but also it provides a delayed release condition for gentamicin.
机译:基于钛(TI)的材料是应用作为骨科和牙科植入物的应用最合适的选择。在这方面,超细晶粒(UFG)钛具有增强的机械性能和表面能引起了更多的关注。在钛上生长的二氧化钛(TiO2)纳米管可以增强骨键,细胞反应,是用于装载药物和抗菌剂的良好储层。本文研究了与粗粒(CG)钛基材表面相比从UFG生长的TiO2纳米管中的庆大霉素加入和释放。采用等通道角压(ECAP)产生UFG结构钛。通过阳极氧化技术在UFG和CG钛基底表面上的阳极氧化技术生长TiO2纳米管。扫描电子显微镜(SEM)成像确认了表面上的TiO2纳米管生长。 UV-Vis光谱分析结果表明,阳极氧化UFG钛样品中的庆大霉素负载释放量高于CG载体的量,其可以在UFG样品上形成的较厚TiO2纳米管阵列层来解释。此外,阳极氧化UFG钛样品在比CG的较长时间(UFG钛的1天为3小时,阳极氧化UFG钛样品释放出药物的较长时间(1天。关于润湿性分析,阳极氧化UFG钛样品显示比CG对应更高的亲水性。因此,由ECAP技术提供的纯钛的晶粒尺寸与适当的随后的阳极氧化处理相结合,不仅提供了生物相容性和适当机械性能的良好组合,而且还提供了庆大霉素的延迟释放条件。

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