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首页> 外文期刊>Acta biomaterialia >Role of wettability and nanoroughness on interactions between osteoblast and modified silicon surfaces.
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Role of wettability and nanoroughness on interactions between osteoblast and modified silicon surfaces.

机译:润湿性和纳米粗糙度对成骨细胞和改性硅表面之间相互作用的作用。

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摘要

Development of new biomaterials is a constant in regenerative medicine. A biomaterial's surface properties, such as wettability, roughness, surface energy, surface charge, chemical functionalities and composition, are determinants of cell adhesion and subsequent tissue behavior. Thus, the main aim of this study was to analyze the correlation between changes in wettability without topographical variation and the response of osteoblast-like cells. For this purpose oxidized silicon surfaces were methylated to different degrees. Additionally, the influence of nanoroughness, and the subsequent effect of hysteresis on cell behavior, was also analyzed. In this case oxidized silicon pieces were etched with caustic solutions to produce different degrees of nanoroughness. Axisymmetric drop-shape analysis and atomic force microscopy confirmed that the proposed surface treatments increased the nanometer roughness and/or the water contact angles. MG-63 osteoblast-like cells were cultured on the altered surfaces to study proliferation, and for ultrastructural analysis and immunocytochemical characterization. Increasing the nanometer surface roughness or water contact angle enhanced osteoblast behavior in terms of cell morphology, proliferation and immunophenotype, the effect provoked by methylation being more significant than that caused by nanoroughness.
机译:在再生医学中,新的生物材料的开发是一个常数。生物材料的表面性质,例如润湿性,粗糙度,表面能,表面电荷,化学功能和组成,是细胞粘附和随后组织行为的决定因素。因此,本研究的主要目的是分析无地形变化的润湿性变化与成骨样细胞反应之间的相关性。为此,将氧化的硅表面甲基化至不同程度。此外,还分析了纳米粗糙度的影响以及磁滞对细胞行为的后续影响。在这种情况下,用苛性碱溶液蚀刻氧化的硅片,以产生不同程度的纳米粗糙度。轴对称液滴形状分析和原子力显微镜证实,所提出的表面处理增加了纳米粗糙度和/或水接触角。在改变后的表面上培养MG-63成骨细胞样细胞,以研究增殖,并进行超微结构分析和免疫细胞化学鉴定。纳米表面粗糙度或水接触角的增加在细胞形态,增殖和免疫表型方面增强了成骨细胞的行为,甲基化引起的作用比纳米粗糙度引起的作用更显着。

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