Piszczek Piotr, Radtke Aleksandra, Ehlert Michalina, Jędrzejewski Tomasz, Sznarkowska Alicja, Sadowska Beata, Bartmański Michał, Erdoğan Yaşar Kemal, Ercan Batur, Jedrzejczyk Waldemar
Faculty of Chemistry, Nicolaus Copernicus University in Toruń, Gagarina 7, Toruń87-100, Poland.
Nano-implant Ltd. Gagarina 5/102, Toruń 87-100, Poland.
J Clin Med. 2020 Jan 25;9(2):342. doi: 10.3390/jcm9020342.
An increasing interest in the fabrication of implants made of titanium and its alloys results from their capacity to be integrated into the bone system. This integration is facilitated by different modifications of the implant surface. Here, we assessed the bioactivity of amorphous titania nanoporous and nanotubular coatings (TNTs), produced by electrochemical oxidation of Ti6Al4V orthopedic implants' surface. The chemical composition and microstructure of TNT layers was analyzed by X-ray photoelectron spectroscopy (XPS) and X-ray diffraction (XRD). To increase their antimicrobial activity, TNT coatings were enriched with silver nanoparticles (AgNPs) with the chemical vapor deposition (CVD) method and tested against various bacterial and fungal strains for their ability to form a biofilm. The biointegrity and anti-inflammatory properties of these layers were assessed with the use of fibroblast, osteoblast, and macrophage cell lines. To assess and exclude potential genotoxicity issues of the fabricated systems, a mutation reversal test was performed (Ames Assay MPF, OECD TG 471), showing that none of the TNT coatings released mutagenic substances in long-term incubation experiments. The thorough analysis performed in this study indicates that the TNT5 and TNT5/AgNPs coatings (TNT5-the layer obtained upon applying a 5 V potential) present the most suitable physicochemical and biological properties for their potential use in the fabrication of implants for orthopedics. For this reason, their mechanical properties were measured to obtain full system characteristics.
对由钛及其合金制成的植入物制造的兴趣日益增加,这源于它们能够整合到骨骼系统中的能力。植入物表面的不同改性促进了这种整合。在这里,我们评估了通过对Ti6Al4V骨科植入物表面进行电化学氧化制备的非晶态二氧化钛纳米多孔和纳米管涂层(TNTs)的生物活性。通过X射线光电子能谱(XPS)和X射线衍射(XRD)分析了TNT层的化学成分和微观结构。为了提高它们的抗菌活性,采用化学气相沉积(CVD)方法用银纳米颗粒(AgNPs)对TNT涂层进行了富集,并针对各种细菌和真菌菌株测试了它们形成生物膜的能力。使用成纤维细胞、成骨细胞和巨噬细胞系评估了这些层的生物完整性和抗炎特性。为了评估和排除所制造系统的潜在遗传毒性问题,进行了突变回复试验(Ames试验MPF,经合组织TG 471),结果表明在长期孵育实验中,没有一种TNT涂层释放出诱变物质。本研究进行的全面分析表明,TNT5和TNT5/AgNPs涂层(TNT5-施加5V电位时获得的层)具有最适合的物理化学和生物学特性,有可能用于制造骨科植入物。因此,测量了它们的机械性能以获得完整的系统特性。