Lin Ya-ling, Zhang An-qiang, Guan Fu-yi, Chen Yao-dong, Tan Wei-an, Wang Lian-shi
Department of Pharmaceutical Engineering, College of Resources and Environment, South China Agriculture University, Guangzhou 510642, China.
Yao Xue Xue Bao. 2010 Dec;45(12):1570-5.
Biodegradable four-arm star-shaped poly(ethylene glycol)-block-poly(L-lactic acid) copolymer (sPEG-b-PLLA), four-arm star-shaped poly(L-lactic acid) (sPLLA), linearly poly(ethylene glycol)-block-poly(L-lactic acid) copolymer (PEG-b-PLLA) and linearly poly(L-lactic acid) (PLLA) were synthesized from L-lactice acid, pentaerythritol, poly(ethylene glycol) and star-shaped poly(ethylene glycol), using the method of melt polycondensation, and the products were characterized and confirmed by 1H NMR spectroscopy, FT-IR and GPC. Four types of ibuprofen loaded microspheres based on the above four types of polymers, i.e., IBU/PLLA, IBU/sPLLA, IBU/PEG-b-PLLA, and IBU/sPEG-b-PLLA microspheres were prepared using the method of solvent evaporation, and the optimized preparation technology was obtained via orthogonal experiments, and the drug-encapsulating properties and in vitro drug-releasing properties were studied. The results showed that compared with IBU/PLLA and IBU/PEG-b-PLLA microspheres, the drug encapsulate efficiency of IBU/sPLLA and IBU/sPEG-b-PLLA microspheres were higher and the in vitro drug releasing rate slowed down, which mainly due to the faster degradation of sPLLA and sPEG-b-PLLA for the star-shaped structure and the block copolymerization of sPEG. The drug releasing curves of these three types of microspheres could be fit by first-order equation, and the releasing mechanism was non-Fickian diffusing, i.e., the synergetic effect of polymer degradation and drug diffusion.
采用熔融缩聚法,以L-乳酸、季戊四醇、聚乙二醇和星形聚乙二醇为原料,合成了可生物降解的四臂星形聚(乙二醇)-嵌段-聚(L-乳酸)共聚物(sPEG-b-PLLA)、四臂星形聚(L-乳酸)(sPLLA)、线性聚(乙二醇)-嵌段-聚(L-乳酸)共聚物(PEG-b-PLLA)和线性聚(L-乳酸)(PLLA),并通过1H NMR光谱、FT-IR和GPC对产物进行了表征和确认。采用溶剂蒸发法制备了基于上述四种聚合物的四种布洛芬负载微球,即IBU/PLLA、IBU/sPLLA、IBU/PEG-b-PLLA和IBU/sPEG-b-PLLA微球,通过正交实验获得了优化的制备工艺,并研究了其载药性能和体外释药性能。结果表明,与IBU/PLLA和IBU/PEG-b-PLLA微球相比,IBU/sPLLA和IBU/sPEG-b-PLLA微球的载药效率更高,体外释药速率减慢,这主要是由于sPLLA和sPEG-b-PLLA的星形结构降解较快以及sPEG的嵌段共聚作用。这三种微球的释药曲线可用一级方程拟合,释药机制为非Fickian扩散,即聚合物降解和药物扩散的协同作用。