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Phytol-Loaded Solid Lipid Nanoparticles as a Novel Anticandidal Nanobiotechnological Approach

机译:植物加载的固体脂质纳米粒子作为一种新的预拌纳米能力工艺方法

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摘要

Phytol is a diterpene alcohol and can be found as a product of the metabolism of chlorophyll in plants. This compound has been explored as a potential antimicrobial agent, but it is insoluble in water. In this study, we describe a novel approach for an interesting anticandidal drug delivery system containing phytol. Different formulations of phytol-loaded solid lipid nanoparticles (SLN) were designed and tested using a natural lipid, 1,3-distearyl-2-oleyl-glycerol (TG1). Different compositions were considered to obtain three formulations with 1:10, 1:5, and 1:3 w/w phytol/TG1 ratios. All the formulations were prepared by emulsification solvent evaporation method and had their physicochemical properties assessed. The biocompatibility assay was performed in the HEK-293 cell line and the antifungal efficacy was demonstrated in different strains of Candida ssp., including different clinical isolates. Spherical and uniform SLN (<300 nm, PdI 65% were achieved. Phytol-loaded SLN showed a dose-dependent cytotoxic effect in the HEK-293 cell line. The three tested formulations of phytol-loaded SLN considerably enhanced the minimal inhibitory concentration of phytol against 15 strains of Candida spp. Considering the clinical isolates, the formulations containing the highest phytol/TG1 ratios showed MICs at 100%. Thus, the feasibility and potential of phytol-loaded SLN was demonstrated in vitro, being a promising nanocarrier for phytol delivery from an anticandidal approach.
机译:Phytol是二萜醇,可以作为植物中叶绿素代谢的产物。该化合物已被探索为潜在的抗微生物剂,但它不溶于水。在这项研究中,我们描述了一种含有植物植物的有趣的反数药物递送系统的新方法。使用天然脂质,1,3-二羟基-2-醇基 - 甘油(TG1)设计和测试不同配方的植物负载的固体脂质纳米粒子(SLN)。认为不同的组合物在1:10,1:5和1:3 w / w phytol / Tg1比中获得三种制剂。通过乳化溶剂蒸发方法制备所有制剂,并评估其物理化学性质。生物相容性测定在HEK-293细胞系中进行,并且在不同的念珠菌SSP的不同菌株中证明了抗真菌效力。,包括不同的临床分离株。球形和均匀的SLN(达到300nm,PDI 65%。植物加载的SLN在HEK-293细胞系中显示了剂量依赖性细胞毒性作用。三种测试的植物加载的SLN制剂显着提高了最小的抑制浓度植物对15株的念珠菌SPP。考虑到临床分离物,含有最高植物醇/ TG1比的制剂在100%下显示麦克风。因此,体外,植物载荷的SLN的可行性和潜力在体外证明了植物的有希望的纳米载体从反红花的方法交付。

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