Badr-Eldin Shaimaa M, Aldawsari Hibah Mubarak, Kotta Sabna, Elfaky Mahmoud Abdelkhalek
Department of Pharmaceutics, Faculty of Pharmacy, King Abdulaziz University, Jeddah, 21589 Saudi Arabia.
Department of Pharmaceutics and Industrial Pharmacy, Faculty of Pharmacy, Cairo University, Giza, 11562 Egypt.
3 Biotech. 2024 Nov;14(11):270. doi: 10.1007/s13205-024-04116-1. Epub 2024 Oct 18.
In the present study, fluconazole (FLU) showed the highest solubility in clove oil and was selected as the oil phase for the FLU-loaded nanoemulsion (FLU-NE). Among the studied cosurfactants, Labrafac was better than ethanol at providing globules with acceptable sizes and a lower polydispersity index (PDI) when Tween 80 was the surfactant. This optimized FLU-NE was thermodynamically stable. Furthermore, FLU-NE stored at 40 ± 2 °C and 75 ± 5% relative humidity for 6 months demonstrated good stability. The FLU-NE was converted to a FLU-loaded nanoemulsion gel (FLU-NEG) using 2% w/v sodium carboxymethyl cellulose. The FLU-NEG was acceptable in terms of visual appearance and spreadability. Rheological studies revealed pseudoplastic behavior for FLU-NEG. The viscosity of FLU-NEG decreased when the applied rpm was increased. FLU-NEG showed greater drug release than that from a FLU-GEL formulation. Furthermore, the FLU release from FLU-NEG followed the Higuchi model. The results from the in vitro antifungal evaluation of FLU-NEG on ATCC 76615 strain confirmed the increase in the antifungal activity of FLU by clove oil. Significant differences were observed in the zones of inhibition produced by FLU-NEG compared to those produced by the blank nanoemulsion gel (B-NEG), fluconazole suspension (FLU-SUS), and nystatin samples. Thus, the increase in the antifungal activity of FLU using clove oil as the oil phase in its nanoemulsion formulation was quite evident from our results. Therefore, the developed FLU-NEG could be considered a potential candidate for further preclinical and clinical studies.
在本研究中,氟康唑(FLU)在丁香油中表现出最高的溶解度,并被选为负载氟康唑的纳米乳剂(FLU-NE)的油相。在所研究的助表面活性剂中,当吐温80作为表面活性剂时,Labrafac在提供具有可接受尺寸和较低多分散指数(PDI)的小球方面比乙醇更好。这种优化的FLU-NE在热力学上是稳定的。此外,在40±2°C和75±5%相对湿度下储存6个月的FLU-NE表现出良好的稳定性。使用2%w/v的羧甲基纤维素钠将FLU-NE转化为负载氟康唑的纳米乳剂凝胶(FLU-NEG)。FLU-NEG在外观和铺展性方面是可接受的。流变学研究表明FLU-NEG具有假塑性行为。当施加的转速增加时,FLU-NEG的粘度降低。FLU-NEG比氟康唑凝胶制剂表现出更大的药物释放。此外,FLU-NEG的氟康唑释放遵循Higuchi模型。FLU-NEG对ATCC 76615菌株的体外抗真菌评估结果证实了丁香油可提高氟康唑的抗真菌活性。与空白纳米乳剂凝胶(B-NEG)、氟康唑混悬液(FLU-SUS)和制霉菌素样品相比,FLU-NEG产生的抑菌圈存在显著差异。因此,从我们的结果可以明显看出,在纳米乳剂制剂中使用丁香油作为油相可提高氟康唑的抗真菌活性。因此,所开发的FLU-NEG可被视为进一步临床前和临床研究的潜在候选物。