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Key Properties of a Bioactive Ag-SiO2/TiO2 Coating on NiTi Shape Memory Alloy as Necessary at the Development of a New Class of Biomedical Materials

机译:在新一类生物医学的开发中必要时,生物活性Ag-SiO2 / TiO2涂层的主要特性

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摘要

Recent years have seen the dynamic development of methods for functionalizing the surface of implants using biomaterials that can mimic the physical and mechanical nature of native tissue, prevent the formation of bacterial biofilm, promote osteoconduction, and have the ability to sustain cell proliferation. One of the concepts for achieving this goal, which is presented in this work, is to functionalize the surface of NiTi shape memory alloy by an atypical glass-like nanocomposite that consists of SiO2-TiO2 with silver nanoparticles. However, determining the potential medical uses of bio(nano)coating prepared in this way requires an analysis of its surface roughness, tribology, or wettability, especially in the context of the commonly used reference coat-forming hydroxyapatite (HAp). According to our results, the surface roughness ranged between (112 ± 3) nm (Ag-SiO2)—(141 ± 5) nm (HAp), the water contact angle was in the range (74.8 ± 1.6)° (Ag-SiO2)—(70.6 ± 1.2)° (HAp), while the surface free energy was in the range of 45.4 mJ/m2 (Ag-SiO2)—46.8 mJ/m2 (HAp). The adhesive force and friction coefficient were determined to be 1.04 (Ag-SiO2)—1.14 (HAp) and 0.247 ± 0.012 (Ag-SiO2) and 0.397 ± 0.034 (HAp), respectively. The chemical data showed that the release of the metal, mainly Ni from the covered NiTi substrate or Ag from Ag-SiO2 coating had a negligible effect. It was revealed that the NiTi alloy that was coated with Ag-SiO2 did not favor the formation of E. coli or S. aureus biofilm compared to the HAp-coated alloy. Moreover, both approaches to surface functionalization indicated good viability of the normal human dermal fibroblast and osteoblast cells and confirmed the high osteoconductive features of the biomaterial. The similarities of both types of coat-forming materials indicate an excellent potential of the silver-silica composite as a new material for the functionalization of the surface of a biomaterial and the development of a new type of functionalized implants.
机译:近年来已经看到了使用能够模仿天然组织的物理和机械性质的生物材料官能化植入物表面的动态发展,防止细菌生物膜的形成,促进骨膜切除,并具有维持细胞增殖的能力。实现这项工作的实现该目的的一个概念是通过非典型玻璃状纳米复合材料通过SiO 2-TiO 2与银纳米粒子组成的非典型玻璃状纳米复合材料来挥发官方内存合金的表面。然而,确定以这种方式制备的生物(纳米)涂层的潜在医疗用途需要分析其表面粗糙度,摩擦学或润湿性,特别是在常用的参考涂层羟基磷灰石(HAP)的上下文中。根据我们的结果,表面粗糙度在(112±3)nm(Ag-SiO 2) - (141±5)nm(Hap)之间,水接触角在范围内(74.8±1.6)°(Ag-SiO2 ) - (70.6±1.2)°(HAP),而表面自由能在45.4mJ / m 2(Ag-SiO 2)-46.8mJ / m 2(Hap)的范围内。将粘合力和摩擦系数测定为1.04(Ag-SiO 2)-1.14(HAP)和0.247±0.012(Ag-SiO 2)和0.397±0.034(HAP)。化学数据显示,金属的释放主要是来自覆盖的Niti底物或来自Ag-SiO2涂层的Ag的Ni具有可忽略不计的效果。据透露,与Hap涂层合金相比,涂有Ag-SiO2的NITI合金并不赞成形成大肠杆菌或金黄色葡萄球菌的形成。此外,两种表面官能化的方法表明了正常人体皮肤成纤维细胞和成骨细胞的良好活力,并确认了生物材料的高骨导电特征。两种类型的涂层材料的相似性表明银二氧化硅复合材料的优异潜力作为生物材料表面的官能化的新材料以及新型官能化植入物的开发。

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