Suppr超能文献

用于骨组织工程的磷酸钛玻璃微球。

Titanium phosphate glass microspheres for bone tissue engineering.

机构信息

Division of Biomaterials and Tissue Engineering, UCL Eastman Dental Institute, University College London, 256 Gray's Inn Road, London WC1X 8LD, UK.

出版信息

Acta Biomater. 2012 Nov;8(11):4181-90. doi: 10.1016/j.actbio.2012.07.023. Epub 2012 Jul 24.

Abstract

We have demonstrated the successful production of titanium phosphate glass microspheres in the size range of ∼10-200 μm using an inexpensive, efficient, easily scalable process and assessed their use in bone tissue engineering applications. Glasses of the following compositions were prepared by melt-quench techniques: 0.5P₂O₅-0.4CaO-(0.1-x)Na₂O-xTiO₂, where x=0.03, 0.05 and 0.07 mol fraction (denoted as Ti3, Ti5 and Ti7 respectively). Several characterization studies such as differential thermal analysis, degradation (performed using a novel time lapse imaging technique) and pH and ion release measurements revealed significant densification of the glass structure with increased incorporation of TiO₂ in the glass from 3 to 5 mol.%, although further TiO₂ incorporation up to 7 mol.% did not affect the glass structure to the same extent. Cell culture studies performed using MG63 cells over a 7-day period clearly showed the ability of the microspheres to provide a stable surface for cell attachment, growth and proliferation. Taken together, the results confirm that 5 mol.% TiO₂ glass microspheres, on account of their relative ease of preparation and favourable biocompatibility, are worthy candidates for use as substrate materials in bone tissue engineering applications.

摘要

我们已经成功地使用一种廉价、高效、易于扩展的工艺生产出了 10-200μm 范围内的磷酸钛玻璃微球,并评估了它们在骨组织工程应用中的用途。采用熔融淬火技术制备了以下组成的玻璃:0.5P₂O₅-0.4CaO-(0.1-x)Na₂O-xTiO₂,其中 x=0.03、0.05 和 0.07 摩尔分数(分别表示为 Ti3、Ti5 和 Ti7)。多项特性研究,如差热分析、降解(采用新型延时成像技术进行)以及 pH 值和离子释放测量,表明随着 TiO₂在玻璃中掺入量从 3 增加到 5 mol.%,玻璃结构的致密化程度显著提高,尽管进一步掺入高达 7 mol.%的 TiO₂对玻璃结构的影响并没有达到同样程度。使用 MG63 细胞进行的为期 7 天的细胞培养研究清楚地表明,微球能够为细胞附着、生长和增殖提供稳定的表面。综上所述,研究结果证实,5 mol.% TiO₂玻璃微球由于其相对易于制备和良好的生物相容性,是作为骨组织工程应用中基底材料的有前途的候选材料。

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