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Antibacterial inorganic coatings on metallic surfaces for temporary fixation devices

机译:用于临时固定装置的金属表面上的抗菌无机涂层

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Bacterial contamination and bone tissue overgrowth are currently the main issues for temporary fixation devices. The aim of this research is the development of innovative inorganic coatings able to reduce bacterial adhesion and bone tissue overgrowth without hampering cytocompatibility. 316L stainless-steel, Titanium grade4 and Titanium grade5 were selected as substrates, as currently used in temporary fixation devices. Starting from previous results on silica, alumina and zirconia were selected as coating matrices, according to their higher chemical stability, reduced bacterial adhesion and possible reduction of tissue overgrowth. Coatings were produced by co-sputtering. Coating adhesion was evaluated by tape test. Samples were immersed in ultrapure water up to 28 days to investigate silver release and chemical stability in fluids. Surface roughness was measured by contact profilometry. Surface wettability was determined by contact angle measurements and antibacterial activity was studied against antibiotic resistant S aureus. The research demonstrates the possibility to obtain coatings with roughness lower than the critical threshold for the increase of bacterial adhesion (0.2 mu m) and optimal mechanical adhesion to metallic substrates. Coating chemical stability in water is strongly affected by the coating matrix composition. Silver release can be tailored to obtain antibacterial and biocompatible surfaces.
机译:细菌污染和骨组织过度生长目前是临时固定装置的主要问题。这项研究的目的是开发能够减少细菌粘附和骨骼组织过度生长而又不影响细胞相容性的新型无机涂层。如目前在临时固定装置中使用的那样,选择了316L不锈钢,4级钛和5级钛作为基材。从先前在二氧化硅,氧化铝和氧化锆上的结果开始,根据其较高的化学稳定性,降低的细菌粘附力和可能减少的组织过度生长,选择了它们作为涂层基质。通过共溅射产生涂层。通过胶带试验评估涂层的粘附性。将样品浸入超纯水中长达28天,以研究液体中银的释放和化学稳定性。通过接触轮廓仪测量表面粗糙度。通过接触角测量确定表面润湿性,并研究其对抗生素抗性金黄色葡萄球菌的抗菌活性。研究表明,可获得的涂层的粗糙度低于细菌附着力增加(0.2μm)和对金属基材的最佳机械附着力的临界阈值以下。涂料在水中的化学稳定性受涂料基质组成的强烈影响。可以定制银的释放以获得抗菌和生物相容的表面。

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