Awad Hoda, Rawas-Qalaji Mutasem, El Hosary Rania, Jagal Jayalakshmi, Ahmed Iman Saad
Department of Pharmaceutics & Pharmaceutical Technology, College of Pharmacy, University of Sharjah, Sharjah 27272, United Arab Emirates.
Research Institute for Medical and Health Sciences, University of Sharjah, Sharjah 27272, United Arab Emirates.
Int J Pharm X. 2023 Sep 7;6:100210. doi: 10.1016/j.ijpx.2023.100210. eCollection 2023 Dec 15.
The increasing resistance to antiparasitic drugs and limited availability of new agents highlight the need to improve the efficacy of existing treatments. Ivermectin (IVM) is commonly used for parasite treatment in humans and animals, however its efficacy is not optimal and the emergence of IVM-resistant parasites presents a challenge. In this context, the physico-chemical characteristics of IVM were modified by nanocrystallization to improve its equilibrium water-solubility and skin penetration, potentially improving its therapeutic effectiveness when applied topically. IVM-nanocrystals (IVM-NC) were prepared using microfluidization technique. The impact of several process/formulation variables on IVM-NC characteristics were studied using D-optimal statistical design. The optimized formulation was further lyophilized and evaluated using several in vitro and ex vivo tests. The optimal IVM-NC produced monodisperse particles with average diameter of 186 nm and polydispersity index of 0.4. In vitro results showed an impressive 730-fold increase in the equilibrium solubility and substantial 24-fold increase in dissolution rate. Ex vivo permeation study using pig's ear skin demonstrated 3-fold increase in dermal deposition of IVM-NC. Additionally, lyophilized IVM-NC was integrated into topical cream, and the resulting drug release profile was superior compared to that of the marketed product. Overall, IVM-NC presents a promising approach to improving the effectiveness of topically applied IVM in treating local parasitic infections.
对抗寄生虫药物的耐药性不断增加以及新药物供应有限,凸显了提高现有治疗方法疗效的必要性。伊维菌素(IVM)常用于人类和动物的寄生虫治疗,但其疗效并不理想,而且对IVM耐药的寄生虫的出现带来了挑战。在此背景下,通过纳米结晶对IVM的物理化学特性进行了修饰,以提高其平衡水溶性和皮肤渗透性,有望在局部应用时提高其治疗效果。采用微流控技术制备了IVM纳米晶体(IVM-NC)。使用D-最优统计设计研究了几个工艺/配方变量对IVM-NC特性的影响。对优化后的配方进一步进行冻干,并使用多种体外和离体试验进行评估。最优的IVM-NC产生了平均直径为186nm、多分散指数为0.4的单分散颗粒。体外结果显示平衡溶解度令人印象深刻地增加了730倍,溶解速率大幅增加了24倍。使用猪耳皮肤进行的离体渗透研究表明,IVM-NC的皮肤沉积增加了3倍。此外,将冻干的IVM-NC整合到外用乳膏中,所得药物释放曲线优于市售产品。总体而言,IVM-NC为提高局部应用IVM治疗局部寄生虫感染的有效性提供了一种有前景的方法。