Elsayed Ibrahim, Sayed Sinar
Department of Pharmaceutics and Industrial Pharmacy, Faculty of Pharmacy, Cairo University, Cairo, Egypt.
Department of Pharmaceutical Sciences, College of Pharmacy, Gulf Medical University, Ajman, United Arab Emirates.
Int J Nanomedicine. 2017 Oct 30;12:7947-7962. doi: 10.2147/IJN.S150366. eCollection 2017.
Ocular drug delivery systems suffer from rapid drainage, intractable corneal permeation and short dosing intervals. Transcorneal drug permeation could increase the drug availability and efficiency in the aqueous humor. The aim of this study was to develop and optimize nanostructured formulations to provide accurate doses, long contact time and enhanced drug permeation. Nanovesicles were designed based on Box-Behnken model and prepared using the thin film hydration technique. The formed nanodispersions were evaluated by measuring the particle size, polydispersity index, zeta potential, entrapment efficiency and gelation temperature. The obtained desirability values were utilized to develop an optimized nanostructured in situ gel and insert. The optimized formulations were imaged by transmission and scanning electron microscopes. In addition, rheological characters, in vitro drug diffusion, ex vivo and in vivo permeation and safety of the optimized formulation were investigated. The optimized insert formulation was found to have a relatively lower viscosity, higher diffusion, ex vivo and in vivo permeation, when compared to the optimized in situ gel. So, the lyophilized nanostructured insert could be considered as a promising carrier and transporter for drugs across the cornea with high biocompatibility and effectiveness.
眼部给药系统存在药物快速排出、角膜渗透困难以及给药间隔短等问题。经角膜药物渗透可提高房水中的药物可用性和效率。本研究的目的是开发和优化纳米结构制剂,以提供准确剂量、长接触时间并增强药物渗透。基于Box-Behnken模型设计纳米囊泡,并采用薄膜水化技术制备。通过测量粒径、多分散指数、zeta电位、包封率和凝胶化温度对形成的纳米分散体进行评估。利用获得的可取性值来开发优化的纳米结构原位凝胶和插入剂。通过透射电子显微镜和扫描电子显微镜对优化后的制剂进行成像。此外,还研究了优化制剂的流变学特性、体外药物扩散、离体和体内渗透以及安全性。与优化后的原位凝胶相比,优化后的插入剂制剂具有相对较低的粘度、较高的扩散、离体和体内渗透率。因此,冻干的纳米结构插入剂可被视为一种具有高生物相容性和有效性的、有前景的角膜药物载体和转运体。