School of Pharmaceutical Sciences, Rajive Gandhi Technical University, Airport Bypass Road, Gandhi Nagar, Bhopal, Madhya Pradesh, 462036, India.
AAPS PharmSciTech. 2010 Sep;11(3):1368-75. doi: 10.1208/s12249-010-9505-x. Epub 2010 Sep 4.
Poorly water-soluble drugs such as cefpodoxime proxetil (400 μg/ml) offer a challenging problem in drug formulation as poor solubility is generally associated with poor dissolution characteristics and thus poor oral bioavailability. According to these characteristics, preparation of cefpodoxime proxetil microparticle has been achieved using high-speed homogenization. Polymers (methylcellulose, sodium alginate, and chitosan) were precipitated on the surface of cefpodoxime proxetil using sodium citrate and calcium chloride as salting-out agents. The pure drug and the prepared microparticles with different concentrations of polymer (0.05-1.0%) were characterized in terms of solubility, drug content, particle size, thermal behavior (differential scanning calorimeter), surface morphology (scanning electron microscopy), in vitro drug release, and stability studies. The in vivo performance was assessed by pharmacokinetic study. The dissolution studies demonstrate a marked increase in the dissolution rate in comparison with pure drug. The considerable improvement in the dissolution rate of cefpodoxime proxetil from optimized microparticle was attributed to the wetting effect of polymers, altered surface morphology, and micronization of drug particles. The optimized microparticles exhibited excellent stability on storage at accelerated condition. The in vivo studies revealed that the optimized formulations provided improved pharmacokinetic parameter in rats as compared with pure drug. The particle size of drug was drastically reduced during formulation process of microparticles.
水溶性差的药物,如头孢泊肟酯(400μg/ml),在药物制剂方面提出了一个具有挑战性的问题,因为一般来说,溶解度差与溶解特性差有关,因此口服生物利用度也差。根据这些特性,采用高速匀浆法制备了头孢泊肟酯微球。聚合物(甲基纤维素、海藻酸钠和壳聚糖)在柠檬酸钠和氯化钙作为盐析剂的作用下沉淀在头孢泊肟酯的表面。用差示扫描量热法(差示扫描量热法)、表面形貌(扫描电子显微镜)、体外药物释放和稳定性研究对纯药物和不同浓度聚合物(0.05-1.0%)制备的微球进行了特性研究。体内性能通过药代动力学研究进行评估。溶解研究表明,与纯药物相比,溶解速率有明显提高。头孢泊肟酯从优化的微球中释放的显著改善溶解速率归因于聚合物的润湿作用、改变的表面形态和药物颗粒的微米化。优化的微球在加速条件下储存时表现出良好的稳定性。体内研究表明,与纯药物相比,优化的配方在大鼠体内提供了更好的药代动力学参数。在微球的制剂过程中,药物的粒径大大减小。