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改变高孔隙率磷酸盐基玻璃微球中镁与钙含量的影响。

Effect of varying the Mg with Ca content in highly porous phosphate-based glass microspheres.

作者信息

Islam Md Towhidul, Macri-Pellizzeri Laura, Hossain Kazi M Zakir, Sottile Virginie, Ahmed Ifty

机构信息

Advanced Materials Research Group, Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, UK; Department of Applied Chemistry and Chemical Engineering, Faculty of Engineering, Noakhali Science and Technology University, Noakhali 3814, Bangladesh.

Wolfson STEM Centre, Division of Cancer and Stem Cells, School of Medicine, University of Nottingham, Nottingham NG7 2UH, UK.

出版信息

Mater Sci Eng C Mater Biol Appl. 2021 Jan;120:111668. doi: 10.1016/j.msec.2020.111668. Epub 2020 Oct 22.

Abstract

This paper reports on the role of phosphate-based glass (PBG) microspheres and their physicochemical properties including in vitro biological response to human mesenchymal stem cells (hMSCs). Solid and porous microspheres were prepared via a flame spheroidisation process. The Mg content in the PBG formulations explored was reduced from 24 to 2 mol% with a subsequent increase in Ca content. A small quantity of TiO (1 mol%) was added to the lower Mg-content glass (2 mol%) to avoid crystallisation. Morphological and physical characterisation of porous microspheres revealed interconnected porosity (up to 76 ± 5 %), average external pore sizes of 55 ± 5 μm with surface areas ranging from 0.38 to 0.43 m g. Degradation and ion release studies conducted compared the solid (non-porous) and porous microspheres and revealed 1.5 to 2.5 times higher degradation rate for porous microspheres. Also, in vitro bioactivity studies using simulated body fluid (SBF) revealed Ca/P ratios for porous microspheres of all three glass formulations were between 0.75 and 0.92 which were within the range suggested for precipitated amorphous calcium phosphate. Direct cell seeding and indirect cell culture studies (via incubation with microsphere degradation products) revealed hMSCs were able to grow and undergo osteogenic differentiation in vitro, confirming cytocompatibility of the formulations tested. However, the higher Mg content (24 mol%) porous microsphere showed the most potent osteogenic response and is therefore considered as a promising candidate for bone repair applications.

摘要

本文报道了磷酸基玻璃(PBG)微球的作用及其物理化学性质,包括对人间充质干细胞(hMSCs)的体外生物学反应。通过火焰球化工艺制备了实心和多孔微球。所研究的PBG配方中的镁含量从24摩尔%降至2摩尔%,随后钙含量增加。向低镁含量玻璃(2摩尔%)中添加少量TiO(1摩尔%)以避免结晶。多孔微球的形态和物理表征显示出相互连通的孔隙率(高达76±5%),平均外部孔径为55±5μm,表面积在0.38至0.43 m²/g之间。进行的降解和离子释放研究比较了实心(无孔)和多孔微球,结果表明多孔微球的降解速率高1.5至2.5倍。此外,使用模拟体液(SBF)的体外生物活性研究表明,所有三种玻璃配方的多孔微球的钙/磷比在0.75至0.92之间,处于沉淀无定形磷酸钙建议的范围内。直接细胞接种和间接细胞培养研究(通过与微球降解产物孵育)表明,hMSCs能够在体外生长并进行成骨分化,证实了所测试配方的细胞相容性。然而,高镁含量(24摩尔%)的多孔微球显示出最有效的成骨反应,因此被认为是骨修复应用的有前途的候选材料。

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