钛
氧化应激
骨整合
微观结构
抗氧化剂
纤维连接蛋白
材料科学
活性氧
蛋白质吸附
生物物理学
化学
化学工程
纳米技术
植入
复合材料
冶金
生物化学
生物
细胞
医学
外科
工程类
聚合物
作者
Pingping Ma,Yonglin Yu,Kendrick Hii Ru Yie,Kai Fang,Zixin Zhou,Xiaoyi Pan,Zhennan Deng,Xinkun Shen,Jinsong Liu
标识
DOI:10.1016/j.msec.2021.111969
摘要
Excessive accumulation of oxidative intermediates in the elderly significantly aggravates bone degradation and hinders the osseointegration of topological titanium (Ti) implants. Thus, it is of great significance to evaluate the antioxidant and osteoinduction capabilities of various nano, micro or micro/nano-composite structures under oxidative stress (OS) microenvironment. In this study, we discovered that 110 nm titania nanotubes (TNTs) enhanced the adsorption of fibronectin (FN) proteins onto smooth and rough titanium surfaces to varying degrees. Compared with Ti and 30 nm TNTs (T30) groups, cells on 110 nm TNTs (T110), microstructure/30 nm TNTs (M30) and microstructure/110 nm TNTs (M110) had smaller area, lower reactive oxygen species (ROS), and better proliferation/osteogenic differentiation abilities under OS condition, but there was no significant difference among the three groups. In addition, combined with our previous study, we suggested that T110, M30 and M110 resistance to OS was also strongly associated with the high expression of FN-receptor integrin α5 or β1. All the findings indicated that the micro/nano-composed structures (M30 & M110) had similar anti-oxidation and osteogenesis abilities to T110, which provided guidance for the application of different titanium implants with different topologies in the elderly.
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