Huang Ching-Cheng
Department of Biomedical Engineering, Ming-Chuan University, Guishan District, Taoyuan 320-33, Taiwan.
PARSD Biomedical Material Research Center, Xitun District, Taichung 407-49, Taiwan.
Materials (Basel). 2021 Dec 30;15(1):258. doi: 10.3390/ma15010258.
This study presents a designed alginate-based polymeric composite foam material containing decellularized elastic cartilage microscaffolds from porcine elastic cartilage by using supercritical fluid and papain treatment for medical scaffold biomaterials. The microstructure and thermal property of the designed alginate-based polymeric composite foam materials with various controlled ratios of alginate molecules and decellularized elastic cartilage microscaffolds were studied and characterized by Fourier transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM), and differential thermal gravimetric analysis (TGA/DTG). The microstructure and thermal property of the composite foam materials were affected by the introduction of decellularized elastic cartilage microscaffolds. The designed alginate-based polymeric composite foam materials containing decellularized elastic cartilage microscaffolds were ionically cross-linked with calcium ions by soaking the polymeric composite foam materials in a solution of calcium chloride. Additional calcium ions further improved the microstructure and thermal stability of the resulting ionic cross-linked alginate-based polymeric composite foam materials. Furthermore, the effect of crosslinking functionality on microstructures and thermal properties of the resulting polymeric composite foam materials were studied to build up useful information for 3D substrates for cultivating and growing cartilage cells and/or cartilage tissue engineering.
本研究提出了一种基于藻酸盐的设计聚合物复合泡沫材料,该材料包含通过超临界流体和木瓜蛋白酶处理从猪弹性软骨中脱细胞的弹性软骨微支架,用于医用支架生物材料。通过傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)和差示热重分析(TGA/DTG)对具有不同藻酸盐分子与脱细胞弹性软骨微支架控制比例的设计藻酸盐基聚合物复合泡沫材料的微观结构和热性能进行了研究和表征。脱细胞弹性软骨微支架的引入影响了复合泡沫材料的微观结构和热性能。通过将聚合物复合泡沫材料浸泡在氯化钙溶液中,使含有脱细胞弹性软骨微支架的设计藻酸盐基聚合物复合泡沫材料与钙离子进行离子交联。额外的钙离子进一步改善了所得离子交联藻酸盐基聚合物复合泡沫材料的微观结构和热稳定性。此外,研究了交联功能对所得聚合物复合泡沫材料微观结构和热性能的影响,以建立用于培养和生长软骨细胞及/或软骨组织工程的三维基质的有用信息。