Tunit Prakairat, Chittasupho Chuda, Sriyakul Kusuma, Tungsuruthai Parunkul, Chakkavittumrong Panlop, Na-Bangchang Kesara, Kietinun Somboon
Graduate Program in Integrative Medicine, Chulabhorn International College of Medicine, Thammasat University, Pathum Thani 12120, Thailand.
Department of Pharmaceutical Sciences, Faculty of Pharmacy, Chiang Mai University, Chiang Mai 50200, Thailand.
Polymers (Basel). 2022 Jun 9;14(12):2348. doi: 10.3390/polym14122348.
seed oil and seed oil consist of fatty acids and sterols that are beneficial for skin. Mixing of these oils at 1:1 ratio has shown to increase antioxidant activity of oils. This study aims to formulate emulgels containing microemulsions of seed oil, seed oil, and mixed and seed oils. The chemical constituents of seed oil, seed oil, and mixed seed oil are analyzed by gas chromatography/mass spectrometry (GC/MS). The microemulsions are formulated by a phase titration method and characterized for the droplet size, polydispersity index, and zeta potential value using a dynamic light scattering technique. The physical and chemical stability of the microemulsions are investigated using a rheometer and UV-Visible spectrophotometer, respectively. The safety of microemulsion is evaluated on PBMC and human subjects. Emulgels containing three different types of microemulsion are formulated. The results show that seed oil is mainly composed of alpha-linolenic acid, linoleic acid, and oleic acid, whereas seed oil contains a high proportion of oleic acid. Mixed seed oil contains a comparable amount of alpha-linolenic acid and oleic acid. All types of oils are composed of β-sitosterol as the major plant sterol. Microemulsions of all types of oils are successfully prepared by using Tween 80 as a surfactant due to the largest transparent region of pseudoternary phase diagram. The size, polydispersity index, and zeta potential values of all types of microemulsion are in the acceptable range upon storage at 30 °C for 1 month. Microemulsions exhibit pseudoplastic flow behavior. The percent of remaining oils in all types of microemulsion is more than 90% after storage at 30 °C for 1 month. Emulgels containing three types of microemulsions exhibit good characteristics and no change in viscosity after storage at 4, 30, and 45 °C for 1 month. The safety results reveal that three types of microemulsion do not induce cytotoxicity to PBMC nor induce skin irritation and allergic reactions. Emulgels containing microemulsions developed in this study can be used to safely deliver seed oil, seed oil, and mixed seed oil to human skin.
籽油和 籽油由对皮肤有益的脂肪酸和甾醇组成。以 1:1 的比例混合这些油已显示出能提高油的抗氧化活性。本研究旨在配制含有 籽油、 籽油以及混合 籽油和 籽油微乳液的乳胶凝体。通过气相色谱/质谱联用仪(GC/MS)分析 籽油、 籽油和混合籽油的化学成分。采用相滴定法配制微乳液,并使用动态光散射技术对液滴尺寸、多分散指数和zeta 电位值进行表征。分别使用流变仪和紫外可见分光光度计研究微乳液的物理和化学稳定性。在 PBMC 和人体受试者上评估微乳液的安全性。配制了含有三种不同类型微乳液的乳胶凝体。结果表明, 籽油主要由α-亚麻酸、亚油酸和油酸组成,而 籽油含有高比例的油酸。混合籽油含有相当数量的α-亚麻酸和油酸。所有类型的油均以β-谷甾醇作为主要植物甾醇。由于伪三元相图的透明区域最大,使用吐温 80 作为表面活性剂成功制备了所有类型油的微乳液。在 30°C 下储存 1 个月后,所有类型微乳液的尺寸、多分散指数和 zeta 电位值均在可接受范围内。微乳液表现出假塑性流动行为。在 30°C 下储存 1 个月后,所有类型微乳液中剩余油的百分比超过 90%。含有三种类型微乳液的乳胶凝体在 4°C、30°C 和 45°C 下储存 1 个月后表现出良好的特性且粘度无变化。安全性结果表明,三种类型的微乳液均不会对 PBMC 诱导细胞毒性,也不会引起皮肤刺激和过敏反应。本研究中开发的含有微乳液的乳胶凝体可用于安全地将 籽油、 籽油和混合籽油输送到人体皮肤。