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首页> 外文期刊>ACS Omega >Biological Effects of Titanium Surface Charge with a Focus on Protein Adsorption
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Biological Effects of Titanium Surface Charge with a Focus on Protein Adsorption

机译:钛表面电荷的生物学效应,重点是蛋白质吸附

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The effect of changes in surface charge on the biological properties of implants is not clear. The objective of this study was to evaluate the biological properties of the surface of titanium sheets with different charges due to different treatment methods. Titanium sheets were sandblasted with large grit and underwent acid etching before being subsequently divided into the following groups: SLA, no further treatment; SLA-Ca~(2+), immersed in 1% CaCl_(2) solution; SLA-NaCl, immersed in saline; and SLA-Ca~(2+)-NaCl, immersed in 1% CaCl_(2) solution followed by saline. Surface characteristics were evaluated using field-emission scanning electron microscopy with energy-dispersive spectrometry, surface profilometry, and contact angle assays. Additionally, we used a ζ-potential analyzer to directly measure the electrostatic charge on the different group surfaces. The effect of changes in the Ti surface on biological processes after different treatments was determined by analyzing fibronectin adsorption, osteoblast-like MG63 cell adhesion and proliferation, and the expression of osteogenesis-related genes. Compared to the SLA surface, the other three groups contained corresponding trace elements because they were soaked in different liquids; the contact angles of the three groups were not significantly different, but they were significantly smaller than that of the SLA group; and there was no change in the surface topography or roughness. Furthermore, the SLA-Ca~(2+) group had a significantly reduced negative charge compared to that of the other three groups. There were no differences between the SLA-NaCl and SLA-Ca~(2+)-NaCl groups in terms of negative charge, and the SLA group surface carried the most negative charge. Fibronectin adsorption capacity and cytological performance testing further showed that the SLA-Ca~(2+) group had the most significant change, followed by the SLA-NaCl and SLA-Ca~(2+)-NaCl groups; the SLA group had significantly lower capacity and performance than the other three groups. These results suggest that the surface charge of the titanium sheet changed when immersed in different liquids and that this treatment enhanced biocompatibility by reducing the electrostatic repulsion between biomaterials and biomolecules.
机译:表面电荷变化对植入物生物学性质的影响尚不清楚。本研究的目的是评估由于不同的处理方法具有不同电荷的钛板表面的生物学特性。钛板用大型砂砾和接受的酸蚀刻,然后随后分为以下基团:SLA,无需进一步处理; SLA-CA〜(2+),浸入1%CaCl_(2)溶液中; Sla-NaCl,浸入盐水中;和SLA-Ca〜(2 +) - NaCl,浸入1%CaCl_(2)溶液中,然后盐水。使用具有能量分散光谱,表面轮廓测定法和接触角测定的现场发射扫描电子显微镜评估表面特性。另外,我们使用了ζ潜在的分析仪直接测量不同组表面上的静电电荷。通过分析纤连蛋白吸附,成骨细胞样Mg63细胞粘附和增殖,测定Ti表面对不同处理后的生物方法的影响。与SLA表面相比,其他三组含有相应的微量元素,因为它们浸泡在不同的液体中;三组的接触角度没有显着差异,但它们显着小于SLA组;并且表面地形或粗糙度没有变化。此外,与其他三组相比,SLA-CA〜(2+)组的负电荷显着降低。在负电荷方面,SLA-NaCl和SLA-CA〜(2 +) - NaCl基团没有差异,并且SLA组表面具有最负电荷。纤连蛋白吸附能力和细胞学性能测试进一步表明SLA-CA〜(2+)组具有最显着的变化,其次是SLA-NaCl和SLA-Ca〜(2 +) - NaCl组; SLA组的容量和性能明显降低,而不是其他三组。这些结果表明,当浸入不同的液体时,钛板的表面电荷变化,并且这种处理通过降低生物材料和生物分子之间的静电排斥来增强生物相容性。

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