Antibacterial Behavior of Additively Manufactured Porous Titanium with Nanotubular Surfaces Releasing Silver Ions

材料科学 抗菌剂 多孔性 阳极氧化 纳米技术 生物膜 生物相容性 表面改性 化学工程 制作 生物医学工程 复合材料 细菌 化学 有机化学 冶金 医学 替代医学 病理 生物 工程类 遗传学
作者
Saber Amin Yavari,Loek D. Loozen,Fernanda L. Paganelli,Sadra Bakhshandeh,Karel Lietaert,Joris A. H. de Groot,Ad C. Fluit,C. H. E. Boel,Jacqueline Alblas,H. Charles Vogely,Harrie Weinans,Amir A. Zadpoor
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:8 (27): 17080-17089 被引量:146
标识
DOI:10.1021/acsami.6b03152
摘要

Additive manufacturing (3D printing) has enabled fabrication of geometrically complex and fully interconnected porous biomaterials with huge surface areas that could be used for biofunctionalization to achieve multifunctional biomaterials. Covering the huge surface area of such porous titanium with nanotubes has been already shown to result in improved bone regeneration performance and implant fixation. In this study, we loaded TiO2 nanotubes with silver antimicrobial agents to equip them with an additional biofunctionality, i.e., antimicrobial behavior. An optimized anodizing protocol was used to create nanotubes on the entire surface area of direct metal printed porous titanium scaffolds. The nanotubes were then loaded by soaking them in three different concentrations (i.e., 0.02, 0.1, and 0.5 M) of AgNO3 solution. The antimicrobial behavior and cell viability of the developed biomaterials were assessed. As far as the early time points (i.e., up to 1 day) are concerned, the biomaterials were found to be extremely effective in preventing biofilm formation and decreasing the number of planktonic bacteria particularly for the middle and high concentrations of silver ions. Interestingly, nanotubes not loaded with antimicrobial agents also showed significantly smaller numbers of adherent bacteria at day 1, which may be attributed to the bactericidal effect of high aspect ratio nanotopographies. The specimens with the highest concentrations of antimicrobial agents adversely affected cell viability at day 1, but this effect is expected to decrease or disappear in the following days as the rate of release of silver ions was observed to markedly decrease within the next few days. The antimicrobial effects of the biomaterials, particularly the ones with the middle and high concentrations of antimicrobial agents, continued until 2 weeks. The potency of the developed biomaterials in decreasing the number of planktonic bacteria and hindering the formation of biofilms make them promising candidates for combating peri-operative implant-associated infections.
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