Department of Pharmaceutics, Faculty of Pharmacy, King Abdulaziz University, Jeddah, 21589, Saudi Arabia.
Centre for Artificial Intelligence in Precision Medicine, King Abdulaziz University, Alsulaymanyah, Jeddah, 21589, Saudi Arabia.
Int J Nanomedicine. 2024 Oct 12;19:10321-10339. doi: 10.2147/IJN.S476667. eCollection 2024.
This study investigates the influence of various formulation parameters on the characteristics of hinokitiol-loaded phytosomes and evaluates their anticancer potential against breast cancer cells.
Phytosomal nanoparticles were prepared and characterized for size, zeta potential, and entrapment efficiency. Morphological analysis was conducted using optical microscopy and transmission electron microscopy (TEM). The solubility of hinokitiol at different pH levels was determined, and the in vitro release profile of the optimized phytosomes was assessed. Cytotoxicity assays were performed to evaluate the anticancer efficacy against breast cancer cell lines, and apoptosis induction was examined using Annexin V/propidium iodide staining. Cell cycle analysis was conducted to assess the impact on cell cycle progression.
The optimized phytosomes demonstrated a size range of 138.4 ± 7.7 to 763.7 ± 15.4 nm, with zeta potentials ranging from -10.2 ± 0.28 to -53.2 ± 1.06 mV and entrapment efficiencies between 29.161 ± 1.163% and 92.77 ± 7.01%. Morphological characterization confirmed uniformity and spherical morphology. Hinokitiol solubility increased with pH, and the release from the optimized phytosomes exhibited sustained patterns. The formulated phytosomes showed superior cytotoxicity, with lower IC50 values compared to pure hinokitiol. Treatment induced significant apoptosis and cell cycle arrest at the G2/M and S phases.
Hinokitiol-loaded phytosomes demonstrate promising anticancer efficacy against breast cancer cells, highlighting their potential as targeted therapeutic agents for breast cancer therapy.
本研究考察了各种制剂参数对 hinokitiol 负载的质体特性的影响,并评估了它们对乳腺癌细胞的抗癌潜力。
制备并表征质体纳米粒的粒径、Zeta 电位和包封效率。使用光学显微镜和透射电子显微镜(TEM)进行形态分析。测定 hinokitiol 在不同 pH 值下的溶解度,并评估优化质体的体外释放曲线。通过细胞毒性测定评估对乳腺癌细胞系的抗癌功效,并通过 Annexin V/碘化丙啶染色检测细胞凋亡诱导。进行细胞周期分析以评估对细胞周期进程的影响。
优化的质体显示出 138.4 ± 7.7 至 763.7 ± 15.4nm 的粒径范围,Zeta 电位范围为-10.2 ± 0.28 至-53.2 ± 1.06 mV,包封效率在 29.161 ± 1.163%和 92.77 ± 7.01%之间。形态学特征证实了均匀性和球形形态。hinokitiol 的溶解度随 pH 值增加而增加,优化质体的释放呈现出持续的模式。所制备的质体表现出优异的细胞毒性,与纯 hinokitiol 相比,IC50 值更低。处理诱导了显著的细胞凋亡和细胞周期阻滞在 G2/M 和 S 期。
hinokitiol 负载的质体对乳腺癌细胞表现出有希望的抗癌功效,突出了它们作为乳腺癌治疗的靶向治疗剂的潜力。