School of Materials Science and Engineering, South China University of Technology, Guangzhou, China.
Biomaterials. 2010 May;31(15):4278-85. doi: 10.1016/j.biomaterials.2010.01.059. Epub 2010 Mar 2.
Polymer scaffolds, particularly in the form of microspheres, have been employed to support cells growth and deliver drugs or growth factors in tissue engineering. In this study, we have established a scaffold by embedding poly (beta-hydroxybutyrate-co-beta-hydroxyvalerate) (PHBV) microspheres into poly (L-lactic-co-glycolic acid) (PLGA) matrix, according to their different solubility in acetone, with the aim of repairing bone defects. PLGA/PHBV scaffolds had good pore parameters, for example, the porosity of PLGA/30% PHBV scaffold can reach to 81.273 +/- 2.192%. Besides, the pore size distribution of the model was evaluated and the results revealed that the pore size mainly distributed between 50 mum and 200 mum. With increasing the amount of PHBV microspheres, the compressive strength of the PLGA/PHBV scaffold enhanced. The morphology of the hybrid scaffold was rougher than that of pure PLGA scaffold, which had no significant effect on the cell behavior. The in vitro evaluation suggested that the model is suitable as a scaffold for engineering bone tissue, and has the potential for further applications in drug delivery system.
聚合物支架,特别是微球形式的聚合物支架,已被用于支持细胞生长并在组织工程中输送药物或生长因子。在这项研究中,我们根据聚(β-羟基丁酸酯-co-β-羟基戊酸酯)(PHBV)微球在丙酮中的不同溶解度,将其嵌入聚(L-乳酸-co-乙醇酸)(PLGA)基质中,建立了一种支架,目的是修复骨缺损。PLGA/PHBV 支架具有良好的孔隙参数,例如,PLGA/30% PHBV 支架的孔隙率可达到 81.273 +/- 2.192%。此外,还对模型的孔径分布进行了评价,结果表明孔径主要分布在 50 微米至 200 微米之间。随着 PHBV 微球数量的增加,PLGA/PHBV 支架的压缩强度增强。与纯 PLGA 支架相比,复合支架的形态更粗糙,但对细胞行为没有显著影响。体外评价表明,该模型适合作为工程骨组织的支架,并有潜力进一步应用于药物传递系统。
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