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Effects of carbon doping on the microstructural, microano-mechanical, and mesenchymal stromal cells biocompatibility and osteogenic differentiation properties of alumina

机译:碳掺杂对氧化铝微结构,微/纳米机械和间质基质细胞生物相容性及成骨分化特性的影响

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It has been demonstrated that carbon (C) doped aluminium oxide (Al2O3) nanocomposite (C-0.012 wt%) had greater wear resistance and lower surface grains pull out percentage when compared with monolithic Al2O3. In the present study, we investigated the physicochemical, micro- and nano-mechanical, cell attachment, in vitro biocompatibility and osteogenic differentiation properties of Al2O3 doped carbon (0.012 wt%) nanocomposite (Al2O3/C). Data were compared to values obtained for monolithic alumina (Al2O3). The calcined Al2O3/C nanocomposite was densified using cold isostatic pressing and followed by pressureless sintering. For physicochemical and microstructural characterisation, Energy dispersive X-ray (EDX), X-ray diffraction (XRD), Raman spectroscopy, and X-ray photo-emission spectrometer (XPS) were used. EDX, XRD peaks and Raman spectroscopy demonstrated correlating to Al2O3/C. Surface profiling and contact angle investigations demonstrated highly contoured micro-surface topography. The micro and nano-hardness indicate an improved wear resistance of the Al2O3/C when compared with monolithic Al2O3. SEM, confocal images and alamar blue reduction assay suggested good cell attachment and proliferation of human bone marrow derived mesenchymal stromal cells (hBMSCs). Osteogenic protein and gene expression indicated Al2O3/C had a significant osteogenic potential (p < 0.05) when compared with Al2O3. In conclusion, our novel Al2O3/C nanocomposite had improved mechanical properties. It also supports cell attachment and proliferation which are comparable to Al2O3. However, Al2O3/C has a significant osteogenic potential than that of Al2O3. These findings suggest that Al2O3/C nanocomposite is superior to Al2O3 and thus has a greater potential for use in orthopaedic applications. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:已经证实,与整体式Al 2 O 3相比,碳(C)掺杂的氧化铝(Al 2 O 3)纳米复合材料(C-0.012wt%)具有更大的耐磨性和更低的表面晶粒拉出百分比。在本研究中,我们研究了Al2O3掺杂碳(0.012 wt%)纳米复合材料(Al2O3 / C)的物理化学,微观和纳米力学,细胞粘附,体外生物相容性和成骨分化特性。将数据与整体氧化铝(Al2O3)的值进行比较。使用冷等静压压实煅烧的Al2O3 / C纳米复合材料,然后进行无压烧结。对于物理化学和微观结构表征,使用了能量色散X射线(EDX),X射线衍射(XRD),拉曼光谱和X射线光发射光谱仪(XPS)。 EDX,XRD峰和拉曼光谱证明与Al2O3 / C相关。表面轮廓和接触角研究显示出高轮廓的微表面形貌。与整体式Al2O3相比,显微硬度和纳米硬度表明Al2O3 / C的耐磨性得到改善。扫描电镜,共聚焦图像和阿马尔玛蓝还原法表明人骨髓来源的间充质基质细胞(hBMSCs)具有良好的细胞附着和增殖能力。成骨蛋白和基因表达表明,与Al2O3相比,Al2O3 / C具有显着的成骨潜力(p <0.05)。总之,我们的新型Al2O3 / C纳米复合材料具有改善的机械性能。它还支持与Al2O3相当的细胞附着和增殖。但是,Al2O3 / C具有比Al2O3更大的成骨潜力。这些发现表明,Al2O3 / C纳米复合材料优于Al2O3,因此在骨科应用中具有更大的潜力。 (C)2016 Elsevier Ltd和Techna Group S.r.l.版权所有。

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