Hadzik Jakub, Kubasiewicz-Ross Paweł, Simka Wojciech, Gębarowski Tomasz, Barg Ewa, Cieśla-Niechwiadowicz Aneta, Trzcionka Szajna Anna, Szajna Ernest, Gedrange Tomasz, Kozakiewicz Marcin, Dominiak Marzena, Jurczyszyn Kamil
Department of Dental Surgery, Faculty of Medicine and Dentistry, Medical University of Wroclaw, ul. Krakowska 26, 50-425 Wroclaw, Poland.
Faculty of Chemistry, Silesian University of Technology, 44-100 Gliwice, Poland.
Materials (Basel). 2022 Apr 7;15(8):2713. doi: 10.3390/ma15082713.
Laser-induced periodic surface structures (LIPSS) are the sub-wavelength periodic nanostructures generated by the femtosecond laser. Implant topography and its nanostructural changes can be important for biomedical applications. In order to compare the surface topography of different implants, appropriate mathematical and physical descriptive methods should be provided. The aim of the study was to evaluate the experimental LIPSS-based-Low Spatial Frequency LIPSS (LSFL) dental implant surfaces. Novel methods of surface analysis, such as Fractal Dimension Analysis and Texture Analysis, were compared to the standard surface roughness evaluation. Secondary, cell viability, and attachment tests were applied in order to evaluate the biological properties of the new titanium surface and to compare their correlation with the physical properties of the new surfaces. A Normal Human Dermal Fibroblast (NHDF) cytotoxicity test did not show an impact on the vitality of the cells. Our study has shown that the laser LIPSS implant surface modifications significantly improved the cell adhesion to the tested surfaces. We observed a strong correlation of adhesion and the growth of cells on the tested surface, with an increase in implant surface roughness with the best results for the moderately rough (2 μm) surfaces. Texture and fractal dimension analyses are promising methods to evaluate dental implants with complex geometry.
激光诱导周期性表面结构(LIPSS)是由飞秒激光产生的亚波长周期性纳米结构。植入物的形貌及其纳米结构变化对于生物医学应用可能很重要。为了比较不同植入物的表面形貌,应提供适当的数学和物理描述方法。本研究的目的是评估基于激光诱导周期性表面结构的低频激光诱导周期性表面结构(LSFL)牙科植入物表面。将分形维数分析和纹理分析等新型表面分析方法与标准表面粗糙度评估进行了比较。其次,进行细胞活力和附着测试,以评估新型钛表面的生物学特性,并比较它们与新表面物理特性的相关性。正常人皮肤成纤维细胞(NHDF)细胞毒性测试未显示对细胞活力有影响。我们的研究表明,激光LIPSS植入物表面改性显著改善了细胞对测试表面的粘附。我们观察到测试表面上细胞的粘附和生长之间有很强的相关性,随着植入物表面粗糙度的增加,中等粗糙度(2μm)表面的效果最佳。纹理和分形维数分析是评估具有复杂几何形状的牙科植入物的有前景的方法。