Abulateefeh Samer R, Alkilany Alaaldin M
Department of Pharmaceutics and Pharmaceutical Technology, Faculty of Pharmacy, The University of Jordan, Amman, 11942, Jordan.
AAPS PharmSciTech. 2016 Aug;17(4):891-7. doi: 10.1208/s12249-015-0413-y. Epub 2015 Sep 28.
The preparation of microcapsules consisting of poly(D,L-lactide-co-glycolide) (PLGA) polymer shell and aqueous core is a clear challenge and hence has been rarely addressed in literature. Herein, aqueous core-PLGA shell microcapsules have been prepared by internal phase separation from acetone-water in oil emulsion. The resulting microcapsules exhibited mean particle size of 1.1 ± 0.39 μm (PDI = 0.35) with spherical surface morphology and internal poly-nuclear core morphology as indicated by scanning electron microscopy (SEM). The incorporation of water molecules into PLGA microcapsules was confirmed by differential scanning calorimetry (DSC). Aqueous core-PLGA shell microcapsules and the corresponding conventional PLGA microspheres were prepared and loaded with risedronate sodium as a model drug. Interestingly, aqueous core-PLGA shell microcapsules illustrated 2.5-fold increase in drug encapsulation in comparison to the classical PLGA microspheres (i.e., 31.6 vs. 12.7%), while exhibiting sustained release behavior following diffusion-controlled Higuchi model. The reported method could be extrapolated to encapsulate other water soluble drugs and hydrophilic macromolecules into PLGA microcapsules, which should overcome various drawbacks correlated with conventional PLGA microspheres in terms of drug loading and release.
制备由聚(D,L-丙交酯-共-乙交酯)(PLGA)聚合物外壳和水性内核组成的微胶囊是一项明显的挑战,因此在文献中很少被提及。在此,通过油包水乳液中的内相分离法制备了水性内核-PLGA外壳微胶囊。扫描电子显微镜(SEM)显示,所得微胶囊的平均粒径为1.1±0.39μm(PDI = 0.35),具有球形表面形态和内部多核核心形态。差示扫描量热法(DSC)证实了水分子掺入PLGA微胶囊中。制备了水性内核-PLGA外壳微胶囊和相应的传统PLGA微球,并负载了阿仑膦酸钠作为模型药物。有趣的是,与经典PLGA微球相比,水性内核-PLGA外壳微胶囊的药物包封率提高了2.5倍(即31.6%对12.7%),同时在扩散控制的Higuchi模型下表现出缓释行为。所报道的方法可以推广到将其他水溶性药物和亲水性大分子包封到PLGA微胶囊中,这应该可以克服传统PLGA微球在药物负载和释放方面的各种缺点。