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

机译:具有纳米管表面释放银离子的增材制造的多孔钛的抗菌行为

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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.
机译:增材制造(3D打印)使得能够制造具有大表面积的几何形状复杂且完全互连的多孔生物材料,可用于生物功能化以实现多功能生物材料。已经显示出用纳米管覆盖这种多孔钛的巨大表面积导致改善的骨再生性能和植入物固定。在这项研究中,我们在TiO2纳米管中负载了银抗菌剂,以使其具有额外的生物功能,即抗菌性能。使用优化的阳极氧化方案在直接金属印刷的多孔钛支架的整个表面积上创建纳米管。然后通过将纳米管浸泡在三种不同浓度(即0.02、0.1和0.5 M)的AgNO3溶液中进行装载。评估了开发的生物材料的抗菌性能和细胞活力。就早期时间点(即长达1天)而言,发现生物材料在防止生物膜形成和减少浮游细菌数量方面特别有效,特别是对于中高浓度的银离子而言。有趣的是,未加载抗菌剂的纳米管在第1天也显示出明显更少的附着细菌,这可能归因于高长径比纳米形貌的杀菌作用。抗菌素浓度最高的标本在第1天会对细胞活力产生不利影响,但由于在接下来的几天内观察到的银离子释放速率显着下降,因此预计在接下来的几天这种作用会降低或消失。生物材料的抗微生物作用,特别是中,高浓度抗微生物剂的抗微生物作用持续到2周。发达的生物材料在减少浮游细菌数量和阻碍生物膜形成方面的潜力使其成为有希望的候选者,以抗击围手术期植入物相关感染。

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