纳米机器人学
生物膜
材料科学
钛
生物医学工程
植入
可见光谱
纳米技术
医学
外科
细菌
生物
光电子学
遗传学
冶金
作者
Martina Ussia,Mario Urso,Štěpán Kment,Tatiana Fialová,Karel Klíma,Kristyna Dolezelikova,Martin Pumera
出处
期刊:Small
[Wiley]
日期:2022-05-10
卷期号:18 (22)
被引量:50
标识
DOI:10.1002/smll.202200708
摘要
Titanium miniplates are biocompatible materials used in modern oral and maxillofacial surgery to treat facial bone fractures. However, plate removal is often required due to implant complications. Among them, a biofilm formation on an infected miniplate is associated with severe inflammation, which frequently results in implant failure. In light of this, new strategies to control or treat oral bacterial biofilm are of high interest. Herein, the authors exploit the ability of nanorobots against multispecies bacterial biofilm grown onto facial commercial titanium miniplate implants to simulate pathogenic conditions of the oral microenvironment. The strategy is based on the use of light-driven self-propelled tubular black-TiO2 /Ag nanorobots, that unlike traditional ones, exhibit an extended absorption and motion actuation from UV to the visible-light range. The motion analysis is performed separately over UV, blue, and green light irradiation and shows different motion behaviors, including a fast rotational motion that decreases with increasing wavelengths. The biomass reduction is monitored by evaluating LIVE/DEAD fluorescent and digital microscope images of bacterial biofilm treated with the nanorobots under motion/no-motion conditions. The current study and the obtained results can bring significant improvements for effective therapy of infected metallic miniplates by biofilm.
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