Division of Drug Delivery and Tissue Engineering, University of Nottingham, University Park, Nottingham, UK.
J Biomed Mater Res B Appl Biomater. 2013 May;101(4):648-55. doi: 10.1002/jbm.b.32867. Epub 2013 Jan 29.
Biodegradable polymer scaffolds have great potential for regenerative medicine applications such as the repair of musculoskeletal tissues. Here, we describe the development of scaffolds that blend hydrogel components with thermoplastic materials, combining the unique properties of both components to create mouldable formulations. This study focuses on the structural and mechanical properties of the composite scaffolds, produced by combining temperature-sensitive poly(DL-lactic acid-co-glycolic acid) (PLGA)/poly(ethylene glycol) (PEG) particles with a hydrogel component [Pluronic F127, fibrin or hyaluronic acid (HyA)]. The composite formulations solidified over time at 37°C, with a significant increase (p ≤ 0.05) in compressive strength observed from 15 min to 2 h at this temperature. The maximum compressive strength was 1.2 MPa for PLGA/PEG-Pluronic F127 scaffolds, 2.4 MPa for PLGA/PEG-HyA scaffolds and 0.6 MPa for PLGA/PEG-fibrin scaffolds. Porosity for each of the PLGA/PEG-hydrogel formulations tested was between 50 and 51%. This study illustrates the ability to combine this thermoplastic PLGA/PEG system with hydrogels to fabricate composite scaffolds, and demonstrates that altering the particle to hydrogel ratio produces scaffolds with varying mechanical properties.
可生物降解聚合物支架在再生医学应用中具有巨大的潜力,例如修复肌肉骨骼组织。在这里,我们描述了一种将水凝胶成分与热塑性材料混合的支架的开发,将两种成分的独特性质结合起来,创造出可模塑的配方。本研究侧重于通过将温敏性聚(DL-丙交酯-共-乙交酯)(PLGA)/聚(乙二醇)(PEG)颗粒与水凝胶成分[泊洛沙姆 F127、纤维蛋白或透明质酸(HyA)]结合而制备的复合支架的结构和机械性能。在 37°C 下,复合配方会随时间固化,在该温度下,观察到从 15 分钟到 2 小时的压缩强度显著增加(p≤0.05)。PLGA/PEG-泊洛沙姆 F127 支架的最大压缩强度为 1.2 MPa,PLGA/PEG-HyA 支架的最大压缩强度为 2.4 MPa,PLGA/PEG-纤维蛋白支架的最大压缩强度为 0.6 MPa。测试的每种 PLGA/PEG-水凝胶配方的孔隙率在 50%到 51%之间。本研究说明了将这种热塑性 PLGA/PEG 系统与水凝胶结合制造复合支架的能力,并表明改变颗粒与水凝胶的比例可以产生具有不同机械性能的支架。