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阳极化纳米管钛加载庆大霉素抑制细菌生长及促进成骨细胞的活性研究
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作者 刘登辉 何崇儒 +2 位作者 张瑜 战策 刘忠堂 《转化医学电子杂志》 2017年第11期22-26,共5页
目的:研究阳极化纳米管钛加载庆大霉素能否抑制细菌生长,促进成骨细胞的活性.方法:阳极氧化法获得阳极化纳米管钛(ANTTi).共沉淀法在ANTTi表面加载庆大霉素(ANTTi-G),测定庆大霉素的释放曲线.琼脂平板抑菌实验检测ANTTi-G的抑菌能力.通... 目的:研究阳极化纳米管钛加载庆大霉素能否抑制细菌生长,促进成骨细胞的活性.方法:阳极氧化法获得阳极化纳米管钛(ANTTi).共沉淀法在ANTTi表面加载庆大霉素(ANTTi-G),测定庆大霉素的释放曲线.琼脂平板抑菌实验检测ANTTi-G的抑菌能力.通过检测成骨细胞在材料表面的黏附、总蛋白含量、增殖、ALP活性及钙结节来监测ANTTi-G对成骨细胞活性的影响.结果:共沉淀法加载的抗生素随着时间的延长逐渐释放.ANTTi-G及Ti-G抑菌效果明显强于ANTTi及Ti组.第7天时,ANTTi-G及ANTTi组成骨细胞的黏附、增殖、总蛋白含量、ALP活性明显高于Ti及Ti-G组(P<0.05).第14天时,ANTTi-G及ANTTi组成骨细胞的黏附、总蛋白含量、ALP活性明显高于Ti及Ti-G组(P<0.05).结论:与传统的Ti或者ANTTi相比,ANTTi-G有更好的抑菌效果.同样,与Ti或Ti-G相比,ANTTi-G与成骨细胞的的生物相容性更好.关节置换中,ANTTi-G可以作为一种潜在的预防局部感染的新材料应用于临床. 展开更多
关键词 阳极化纳米管钛 庆大霉素 感染 无菌性松动 关节置换
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Fabrication and photodegradation properties of TiO_2 nanotubes on porous Ti by anodization 被引量:8
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作者 曹国剑 崔博 +3 位作者 王文奇 唐光泽 冯义成 王丽萍 《Transactions of Nonferrous Metals Society of China》 SCIE EI CAS CSCD 2014年第8期2581-2587,共7页
Both Ti foil and porous Ti were anodized in 0.5%HF and in ethylene glycol electrolyte containing 0.5%NH4F(mass fraction) separately. The results show that TiO2 nanotubes can be formed on Ti foil by both processes, whe... Both Ti foil and porous Ti were anodized in 0.5%HF and in ethylene glycol electrolyte containing 0.5%NH4F(mass fraction) separately. The results show that TiO2 nanotubes can be formed on Ti foil by both processes, whereas TiO2 nanotubes can be formed on porous Ti only in the second process. The overhigh current density led to the failure of the formation nanotubes on porous Ti in 0.5%HF electrolyte. TiO2 nanotubes were characterized by SEM and XRD. TiO2 nanotubes on porous Ti were thinner than those on Ti foil. Anatase was formed when TiO2 nanotubes were annealed at 400 °C and fully turned into rutile at 700 °C. To obtain good photodegradation, the optimal heat treatment temperature of TiO2 nanotubes was 450 °C. The porosity of the substrates influenced photodegradation properties. TiO2 nanotubes on porous Ti with 60% porosity had the best photodegradation. 展开更多
关键词 TiO_2 nanotubes anodization PHOTODEGRADATION porous Ti
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