Abosabaa Sara A, ElMeshad Aliaa N, Arafa Mona G
Faculty of Pharmacy, Department of Pharmaceutics and Pharmaceutical Technology, The British University in Egypt (BUE), El Sherouk City 11837, Egypt.
Faculty of Pharmacy, Department of Pharmaceutics and Industrial Pharmacy, Cairo University, Cairo 11562, Egypt.
Polymers (Basel). 2021 Feb 24;13(5):677. doi: 10.3390/polym13050677.
The objective of the present research is to propose chitosan as a nanocarrier for caffeine-a commonly used drug in combating cellulite. Being a hydrophilic drug, caffeine suffers from insufficient topical penetration upon application on the skin. Chitosan nanoparticles loaded with caffeine were prepared via the ionic gelation technique and optimized according to a Box-Behnken design. The effect of (A) chitosan concentration, (B) chitosan solution pH, and (C) chitosan to sodium tripolyphosphate mass ratio on (Y1) entrapment efficiency percent, (Y2) particle size, (Y3) polydispersity index, and (Y4) zeta potential were studied. Subsequently, the desired constraints on responses were applied, and validation of the optimization procedure was confirmed by the parameters exhibited by the optimal formulation. A caffeine entrapment efficiency percent of 17.25 ± 1.48%, a particle size of 173.03 ± 4.32 nm, a polydispersity index of 0.278 ± 0.01, and a surface charge of 41.7 ± 3.0 mV were attained. Microscopical evaluation using transmission electron microscope revealed a typical spherical nature of the nanoparticles arranged in a network with a further confirmation of the formation of particles in the nano range. The results proved the successful implementation of the Box-Behnken design for optimization of chitosan-based nanoparticles in the field of advanced polymeric systems for pharmaceutical and cosmeceutical applications.
本研究的目的是提出将壳聚糖作为咖啡因的纳米载体,咖啡因是一种常用于对抗橘皮组织的药物。作为一种亲水性药物,咖啡因在应用于皮肤时存在局部渗透不足的问题。通过离子凝胶技术制备了负载咖啡因的壳聚糖纳米颗粒,并根据Box-Behnken设计进行了优化。研究了(A)壳聚糖浓度、(B)壳聚糖溶液pH值和(C)壳聚糖与三聚磷酸钠质量比对(Y1)包封率百分比、(Y2)粒径、(Y3)多分散指数和(Y4)zeta电位的影响。随后,对响应施加了所需的约束条件,并通过最佳配方所表现出的参数证实了优化程序的有效性。获得了17.25±1.48%的咖啡因包封率百分比、173.03±4.32nm的粒径、0.278±0.01的多分散指数和41.7±3.0mV的表面电荷。使用透射电子显微镜进行的微观评估揭示了纳米颗粒呈典型的球形,排列成网络状,进一步证实了纳米级颗粒的形成。结果证明了Box-Behnken设计在用于药物和化妆品应用的先进聚合物系统领域中成功用于优化壳聚糖基纳米颗粒。