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用于氮卓斯汀眼部给药的壳聚糖-海藻酸盐微球的设计与表征

Design and characterization of chitosan-alginate microspheres for ocular delivery of azelastine.

作者信息

Shinde Ujwala A, Shete Jaykumar N, Nair Hema A, Singh Kavita H

机构信息

Department of Pharmaceutics, Bombay College of Pharmacy, Kalina, Mumbai , Maharashtra , India.

出版信息

Pharm Dev Technol. 2014 Nov;19(7):813-23. doi: 10.3109/10837450.2013.836217. Epub 2013 Sep 13.

Abstract

The use of mucoadhesive biopolymers is one of the best approaches to prolong the drug residence inside the cul-de-sac, consequently increasing the bioavailability. Thus, the focus of this work was to develop mucoadhesive microspheres to overcome the limitations of ocular drug delivery. The chitosan-sodium alginate microspheres of azelastine hydrochloride were fabricated using modified ionotropic gelation technique. The particle size, zeta potential, entrapment efficiency and drug release kinetics were evaluated and characterized by SEM, FT-IR, DSC, in vitro mucoadhesion and in vivo study. The microspheres had average particle size in the range of 3.55 to 6.70 µm and zeta potential +24.55 to +49.56 mV. The fabricated microspheres possess maximum drug entrapment of 73.05% with 65% mucin binding efficiency and revealed a controlled release over the 8-h period following a non-Fickian diffusion. SEM showed that microspheres were distinct solid with irregular shape. FT-IR and DSC results concluded the drug entrapment into microspheres. In vivo studies on ocular rat model revealed that azelastine microspheres had better efficacy. Chitosan sodium alginate microspheres prepared were in particle size range suitable for ocular purpose. In vitro release and in vivo efficacy studies revealed that the microspheres were effective in prolonging the drug's presence in cul de sac with improved therapeutic efficacy.

摘要

使用粘膜粘附性生物聚合物是延长药物在盲管内停留时间从而提高生物利用度的最佳方法之一。因此,本研究的重点是开发粘膜粘附性微球以克服眼部药物递送的局限性。采用改良的离子凝胶化技术制备了盐酸氮卓斯汀壳聚糖-海藻酸钠微球。通过扫描电子显微镜(SEM)、傅里叶变换红外光谱(FT-IR)、差示扫描量热法(DSC)、体外粘膜粘附性和体内研究对粒径、ζ电位、包封率和药物释放动力学进行了评估和表征。微球的平均粒径在3.55至6.70 µm范围内,ζ电位在+24.55至+49.56 mV之间。制备的微球最大药物包封率为73.05%,粘蛋白结合效率为65%,并在8小时内呈现非菲克扩散的控释特性。扫描电子显微镜显示微球为形状不规则的明显固体。傅里叶变换红外光谱和差示扫描量热法结果表明药物已包封于微球中。对大鼠眼部模型的体内研究表明,氮卓斯汀微球具有更好的疗效。制备的壳聚糖海藻酸钠微球粒径范围适合眼部应用。体外释放和体内疗效研究表明,微球可有效延长药物在眼穹窿部的停留时间并提高治疗效果。

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