Nasr Ali M, Aboelenin Salama M, Alfaifi Mohammad Y, Shati Ali A, Elbehairi Serag Eldin I, Elshaarawy Reda F M, Elwahab Nashwa H Abd
Department of Pharmaceutics, Faculty of Pharmacy, Port Said University, Port Said 42526, Egypt.
Biology Department, Turabah University College, Taif University, Taif 21995, Saudi Arabia.
Pharmaceutics. 2022 Jun 22;14(7):1319. doi: 10.3390/pharmaceutics14071319.
(1) Background: Virgin olive oil (VOO) has attracted the attention of many researchers due to its nutritional and medicinal values. However, VOO's biological applications have been limited due to a lack of precise chemical profiling and approach to increase the physicochemical characteristics, bioactivity, and delivery of its bioactive components; (2) Methods: The current study intended to evaluate the chemical composition of VOO using the GC-MS technique and determine its major components. Furthermore, the effect of incorporating VOO into Tween 80-lecithin nanoemulsion (OONE) and a quaternized trimethyl chitosan-thiol (TMCT) hydrogel-thickened nanoemulsion system (OOHTN) on its physicochemical characteristics and biological potentials will be investigated; (3) Results: The VOO-based NEs' physicochemical properties (particle size and zeta potential) were steady during storage for four weeks owing to the inclusion of the protective TMCT hydrogel network to OONE. Excessive fine-tuning of olive oil nanoemulsion (OONE) and the TMCT protective network's persistent positive charge have contributed to the oil's improved antimicrobial, anti-biofilm, and antioxidant potentials; (4) Conclusions: The Tween 80-lecithin-TMCT nanosystem might provide a unique and multifunctional nanoplatform for efficient topical therapy as well as the transdermal delivery of lipophilic bioactive compounds.
(1) 背景:初榨橄榄油(VOO)因其营养和药用价值吸引了众多研究者的关注。然而,由于缺乏精确的化学剖析以及提高其物理化学特性、生物活性和生物活性成分递送的方法,VOO的生物应用受到了限制;(2) 方法:本研究旨在使用气相色谱 - 质谱(GC - MS)技术评估VOO的化学成分并确定其主要成分。此外,还将研究将VOO纳入吐温80 - 卵磷脂纳米乳液(OONE)和季铵化三甲基壳聚糖 - 硫醇(TMCT)水凝胶增稠纳米乳液系统(OOHTN)对其物理化学特性和生物潜力的影响;(3) 结果:由于在OONE中加入了保护性的TMCT水凝胶网络,基于VOO的纳米乳液(NEs)的物理化学性质(粒径和zeta电位)在四周储存期间保持稳定。橄榄油纳米乳液(OONE)的过度微调以及TMCT保护网络的持续正电荷有助于提高油的抗菌、抗生物膜和抗氧化潜力;(4) 结论:吐温80 - 卵磷脂 - TMCT纳米系统可能为高效局部治疗以及亲脂性生物活性化合物的透皮递送提供一个独特的多功能纳米平台。