Lee Jun Bae, Chun Ki Woo, Yoon Jun Jin, Park Tae Gwan
Department of Biological Sciences, Korea Advanced Institute of Science and Technology, Daejeon 305-701, South Korea.
Macromol Biosci. 2004 Oct 20;4(10):957-62. doi: 10.1002/mabi.200400073.
Chemically crosslinked biodegradable hydrogels based on di-acrylated Pluronic F-127 tri-block copolymer were prepared by a photopolymerization method. Poly(lactic acid-co-glycolic acid) (PLGA) microspheres were physically entrapped within the Pluronic hydrogel in order to modulate the local pH environment by acidic degradation by-products of PLGA microspheres. The PLGA microspheres were slowly degraded to create an acidic microenvironment, which facilitated the cleavage of an acid-labile ester-linkage in the biodegradable Pluronic hydrogel network. The presence of PLGA microspheres accelerated the degradation of the Pluronic hydrogel and enhanced the protein release rate when protein was loaded in the hydrogel.SEM image of photo-crosslinked Pluronic hydrogel entrapping PLGA microspheres.
采用光聚合方法制备了基于二丙烯酸化泊洛沙姆F-127三嵌段共聚物的化学交联可生物降解水凝胶。聚乳酸-乙醇酸共聚物(PLGA)微球被物理包裹在泊洛沙姆水凝胶中,以便通过PLGA微球的酸性降解副产物调节局部pH环境。PLGA微球缓慢降解以形成酸性微环境,这促进了可生物降解泊洛沙姆水凝胶网络中酸不稳定酯键的断裂。当蛋白质负载在水凝胶中时,PLGA微球的存在加速了泊洛沙姆水凝胶的降解并提高了蛋白质释放速率。包裹PLGA微球的光交联泊洛沙姆水凝胶的扫描电子显微镜图像。