Kazmi Imran, Al-Abbasi Fahad A, Nadeem Muhammad Shahid, Altayb Hisham N, Alshehri Sultan, Imam Syed Sarim
Department of Biochemistry, Faculty of Science, King Abdulaziz University, Jeddah 23443, Saudi Arabia.
Department of Pharmaceutics, College of Pharmacy, King Saud University, Riyadh 11451, Saudi Arabia.
Pharmaceutics. 2021 Oct 20;13(11):1749. doi: 10.3390/pharmaceutics13111749.
In the present study, luteolin (LT)-loaded nanosized vesicles (LT-NVs) were prepared by a solvent evaporation-hydration method using phospholipid and edge activator. The formulation was optimized using three factors at a three-level Box-Behnken design. The formulated LT-NVs were prepared using the three independent variables phospholipid (A), edge activator (B) and sonication time (C). The effect of used variables was assessed on the vesicle size () and encapsulation efficiency (). The selection of optimum composition (LT-NVopt) was based on the point prediction method of the software. The prepared LT-NVopt showed the particle size of 189.92 ± 3.25 nm with an encapsulation efficiency of 92.43 ± 4.12% with PDI and zeta potential value of 0.32 and -21 mV, respectively. The formulation LT-NVopt was further converted into Carbopol 934 gel (1% /) to enhance skin retention. LT-NVoptG was further characterized for viscosity, spreadability, drug content, drug release, drug permeation and antioxidant, antimicrobial and cytotoxicity assessment. The evaluation result revealed optimum pH, viscosity, spreadability and good drug content. There was enhanced LT release (60.81 ± 2.87%), as well as LT permeation (128.21 ± 3.56 µg/cm/h), which was found in comparison to the pure LT. The antioxidant and antimicrobial study results revealed significantly ( ˂ 0.05) better antioxidant potential and antimicrobial activity against the tested organisms. Finally, the samples were evaluated for cytotoxicity assessment using skin cancer cell line and results revealed a significant difference in the viability % at the tested concentration. LT-NVoptG showed a significantly lower IC value than the pure LT. From the study, it can be concluded that the prepared LT-NVoptG was found to be an alternative to the synthetic drug as well as conventional delivery systems.
在本研究中,使用磷脂和边缘活化剂通过溶剂蒸发-水合方法制备了载有木犀草素(LT)的纳米囊泡(LT-NVs)。采用三因素三水平的Box-Behnken设计对制剂进行优化。使用三个自变量磷脂(A)、边缘活化剂(B)和超声处理时间(C)制备了配制的LT-NVs。评估了所用变量对囊泡大小()和包封率()的影响。基于软件的点预测方法选择最佳组成(LT-NVopt)。制备的LT-NVopt显示粒径为189.92±3.25 nm,包封率为92.43±4.12%,PDI和zeta电位值分别为0.32和-21 mV。将制剂LT-NVopt进一步转化为卡波姆934凝胶(1%/)以增强皮肤滞留性。对LT-NVoptG进一步进行了粘度、铺展性、药物含量、药物释放、药物渗透以及抗氧化、抗菌和细胞毒性评估。评估结果显示pH值、粘度、铺展性最佳且药物含量良好。与纯LT相比,LT释放增强(60.81±2.87%),以及LT渗透(128.21±3.56 µg/cm/h)。抗氧化和抗菌研究结果显示,对受试生物的抗氧化潜力和抗菌活性显著(˂0.05)更好。最后,使用皮肤癌细胞系对样品进行细胞毒性评估,结果显示在测试浓度下活力%存在显著差异。LT-NVoptG显示出比纯LT显著更低的IC值。从研究中可以得出结论,所制备的LT-NVoptG被发现是合成药物以及传统给药系统的替代品。