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高强度硼和氧化铁磷酸盐玻璃纤维增强生物可吸收复合材料的细胞相容性、力学性能及溶解性能

Cytocompatibility, mechanical and dissolution properties of high strength boron and iron oxide phosphate glass fibre reinforced bioresorbable composites.

作者信息

Sharmin Nusrat, Hasan Muhammad S, Parsons Andrew J, Rudd Chris D, Ahmed Ifty

机构信息

Division of Materials, Mechanics and Structures, Faculty of Engineering, University of Nottingham, Nottingham NG7 2RD, UK.

Purac Biomaterials, 5150 N Royal Atlanta DR. Tucker, GA 30084, USA.

出版信息

J Mech Behav Biomed Mater. 2016 Jun;59:41-56. doi: 10.1016/j.jmbbm.2015.12.011. Epub 2015 Dec 21.

Abstract

In this study, Polylactic acid (PLA)/phosphate glass fibres (PGF) composites were prepared by compression moulding. Fibres produced from phosphate based glasses P2O5-CaO-MgO-Na2O (P45B0), P2O5-CaO-MgO-Na2O-B2O3 (P45B5), P2O5-CaO-MgO-Na2O-Fe2O3 (P45Fe3) and P2O5-CaO-MgO-Na2O-B2O3-Fe2O3 (P45B5Fe3) were used to reinforce the bioresorbable polymer PLA. Fibre mechanical properties and degradation rate were investigated, along with the mechanical properties, degradation and cytocompatibility of the composites. Retention of the mechanical properties of the composites was evaluated during degradation in PBS at 37°C for four weeks. The fibre volume fraction in the composite varied from 19 to 23%. The flexural strength values (ranging from 131 to 184MPa) and modulus values (ranging from 9.95 to 12.29GPa) obtained for the composites matched those of cortical bone. The highest flexural strength (184MPa) and modulus (12.29GPa) were observed for the P45B5Fe3 composite. After 28 days of immersion in PBS at 37°C, ~35% of the strength profile was maintained for P45B0 and P45B5 composites, while for P45Fe3 and P45B5Fe3 composites ~40% of the initial strength was maintained. However, the overall wet mass change of P45Fe3 and P45B5Fe3 remained significantly lower than that of the P45B0 and P45B5 composites. The pH profile also revealed that the P45B0 and P45B5 composites degraded quicker, correlating well with the degradation profile. From SEM analysis, it could be seen that after 28 days of degradation, the fibres in the fractured surface of P45B5Fe3 composites remain fairly intact as compared to the other formulations. The in vitro cell culture studies using MG63 cell lines revealed both P45Fe3 and P45B5Fe3 composites maintained and showed higher cell viability as compared to the P45B0 and P45B5 composites. This was attributed to the slower degradation rate of the fibres in P45Fe3 and P45B5Fe3 composites as compared with the fibres in P45B0 and P45B5 composites.

摘要

在本研究中,通过模压成型制备了聚乳酸(PLA)/磷酸盐玻璃纤维(PGF)复合材料。使用由基于磷酸盐的玻璃P2O5-CaO-MgO-Na2O(P45B0)、P2O5-CaO-MgO-Na2O-B2O3(P45B5)、P2O5-CaO-MgO-Na2O-Fe2O3(P45Fe3)和P2O5-CaO-MgO-Na2O-B2O3-Fe2O3(P45B5Fe3)制成的纤维来增强生物可吸收聚合物PLA。研究了纤维的机械性能和降解速率,以及复合材料的机械性能、降解和细胞相容性。在37°C的PBS中降解四周期间评估了复合材料机械性能的保留情况。复合材料中的纤维体积分数在19%至23%之间变化。复合材料获得的弯曲强度值(范围为131至184MPa)和模量值(范围为9.95至12.29GPa)与皮质骨的相匹配。观察到P45B5Fe3复合材料具有最高的弯曲强度(184MPa)和模量(12.29GPa)。在37°C的PBS中浸泡28天后,P45B0和P45B5复合材料保持了约35%的强度,而P45Fe3和P45B5Fe3复合材料保持了约40%的初始强度。然而,P45Fe3和P45B5Fe3的总体湿质量变化仍明显低于P45B0和P45B5复合材料。pH曲线还表明,P45B0和P45B5复合材料降解更快,与降解曲线相关性良好。从扫描电子显微镜分析可以看出,降解28天后,与其他配方相比,P45B5Fe3复合材料断裂表面的纤维保持相当完整。使用MG63细胞系进行的体外细胞培养研究表明,与P45B0和P45B5复合材料相比,P45Fe3和P45B5Fe3复合材料均保持并显示出更高的细胞活力。这归因于与P45B0和P45B5复合材料中的纤维相比,P45Fe3和P45B5Fe3复合材料中的纤维降解速率较慢。

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