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Dicationic Imidazolium-Based Ionic Liquid Coatings on Zirconia Surfaces: Physico-Chemical and Biological Characterization

机译:氧化锆表面上基于阳离子咪唑鎓的离子液体涂料:物理化学和生物表征

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摘要

In the present work, dicationic imidazolium-based ionic liquids (ILs) were investigated as multi-functional coatings on a zirconia (ZrO2) surface to prevent biofilm formation and enhance the wear performance of zirconia while maintaining the material’s compatibility with host cells. ILs containing phenylalanine and methionine were synthesized and deposited on zirconia. Intermolecular interactions driving IL deposition on zirconia were studied using X-ray photoelectron spectroscopy (XPS). Anti-biofilm activity and cell compatibility were evaluated in vitro after one and seven days, and wear performance was tested using a pin-on-disk apparatus. ILs were observed to form strong hydrogen bonds with zirconia. IL containing phenylalanine formed a stable film on the surface after one and seven days in phosphate-buffered saline (PBS) and artificial saliva and showed excellent anti-biofilm properties against Streptococcus salivarius and Streptococcus sanguinis. Compatibility with gingival fibroblasts and pre-osteoblasts was maintained, and conditions for growth and differentiation were preserved. A significantly lower coefficient of friction and wear volume loss were observed for IL-coated surfaces as compared to non-coated substrates. Overall, zirconia is an emerging alternative to titanium in dental implants systems, and this study provides additional evidence of the materials’ behavior and IL coatings as a potential surface treatment technology for improvement of its properties.
机译:在目前的工作中,对基于咪唑鎓的离子型离子液体(ILs)作为氧化锆(ZrO2)表面上的多功能涂层进行了研究,以防止生物膜形成并增强氧化锆的耐磨性能,同时保持该材料与宿主细胞的相容性。合成包含苯丙氨酸和蛋氨酸的IL,并将其沉积在氧化锆上。使用X射线光电子能谱(XPS)研究了驱动IL在氧化锆上沉积的分子间相互作用。在第一天和第七天后,在体外评估抗生物膜活性和细胞相容性,并使用针式磁盘设备测试磨损性能。观察到IL与氧化锆形成强氢键。含苯丙氨酸的IL在磷酸盐缓冲液(PBS)和人造唾液中放置1天和7天后,在表面形成了稳定的膜,并且对唾液链球菌和血链球菌显示出优异的抗生物膜特性。维持与牙龈成纤维细胞和成骨前细胞的相容性,并保留了生长和分化的条件。与未涂层的基材相比,IL涂层的表面观察到明显更低的摩擦系数和磨损量损失。总体而言,氧化锆在牙科植入物系统中是钛的新兴替代品,这项研究为该材料的行为和IL涂层作为改善其性能的潜在表面处理技术提供了更多证据。

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