Formulation and evaluation of mucoadhesive microspheres of metronidazole

D. Chechare, M. Siddaiah
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Abstract

Objective: Develop and evaluate mucoadhesive microspheres using Chitosan, Sodium alginate, and Sodium carboxymethyl cellulose (NaCMC) for sustained oral delivery of Metronidazole, aiming to improve bioavailability. Methods: Metronidazole-loaded microspheres were prepared via ionotropic gelation method with varying polymer ratios. Particle size, entrapment efficiency, swelling index, mucoadhesion (sheep mucosae), morphology (SEM), in-vitro wash-off test, drug release profile, and stability (6 months) were evaluated. Results: Chitosan content positively correlated with microsphere size. Entrapment efficiency ranged from 51.43% to 94.15%. Chitosan-based formulations, especially MTZ-7 (Chitosan:NaCMC, 3:1), displayed the highest mucoadhesion. SEM analysis revealed rough, spherical microspheres with a continuous polymeric coat. In-vitro wash-off test demonstrated prolonged residence time for Chitosan formulations. Sustained drug release was observed throughout the study, with MTZ-7 exhibiting the most desirable release profile. Stability studies showed no significant changes in drug release for selected formulations after 6 months. Conclusions: Chitosan-based microspheres, particularly MTZ-7, demonstrated superior mucoadhesive properties, sustained and controlled drug release, and desirable stability. These findings suggest the potential of Chitosan-based microspheres as a promising oral drug delivery system for Metronidazole, potentially addressing bioavailability concerns and improving therapeutic efficacy.
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甲硝唑粘液微球的制备与评估
目的使用壳聚糖、海藻酸钠和羧甲基纤维素钠 (NaCMC) 开发并评估用于持续口服给药的甲硝唑粘液微球,以提高生物利用度。方法通过离子凝胶法制备不同聚合物比例的甲硝唑负载微球。对微球的粒度、包埋效率、膨胀指数、粘附性(绵羊粘膜)、形态(扫描电镜)、体外冲洗试验、药物释放曲线和稳定性(6 个月)进行了评估。结果显示壳聚糖含量与微球大小呈正相关。包埋效率在 51.43% 到 94.15% 之间。基于壳聚糖的配方,尤其是 MTZ-7(壳聚糖:NaCMC,3:1),显示出最高的粘附性。扫描电子显微镜分析显示,微球为粗糙的球形,表面有一层连续的聚合物涂层。体外冲洗测试表明壳聚糖制剂的停留时间较长。在整个研究过程中都观察到了药物的持续释放,其中 MTZ-7 的释放曲线最为理想。稳定性研究表明,所选制剂在 6 个月后药物释放量无明显变化。结论壳聚糖微球,尤其是 MTZ-7,表现出卓越的粘附性、持续和可控的药物释放以及理想的稳定性。这些研究结果表明,壳聚糖微球有望成为甲硝唑的口服给药系统,从而解决生物利用度问题并提高疗效。
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