Effect of Biodegradable Mifepristone Drug Delivery System on the Ultrastructure and Angiogenesis Related Factors of Adenomyosis Cells

IF 0.9 4区 材料科学 Science of Advanced Materials Pub Date : 2024-02-01 DOI:10.1166/sam.2024.4613
Jianhua Wang
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Abstract

The aim of this research aimed to analyze the effects of degradable mifepristone nano-drug delivery system (DDS) on the ultrastructure, proliferation, apoptosis, and angiogenesis of adenomyosis cells. Drug-loaded nanoparticles (DNPs) of poly lactic-co-glycolic acid (PLGA) were prepared. The particle size distribution and surface Zeta potential (SZP) of nanoparticles (NPs) were detected. The morphology of NPS was subjected to observation by transmission electron microscope (TEM). Adenomyosis lesion cells were cultured by tissue digestion method, and the cell morphology was observed and identified. The cells were divided into blank control (NC), mifepristone, and mifepristone/PLGA groups. The cell proliferation, ultrastructure, apoptosis, and the expression of Survivin, VEGFR1, and VEGFR2 were detected by MTT, TEM, flow cytometry (FC), and immuno-histochemistry, respectively. The results suggested that the average particle size of mifepristone/PLGA NPs was (185.6±12.9) nm, and the SZP was (−9.5±0.9) mV. It presented the characteristics of circularity, uniform distribution, and smooth surface under TEM. As against the raw drug mifepristone, the release time of mifepristone/PLGA NPs was prolonged, and the drug release rate reached 87.4% at 72 h. As against NC, the cell proliferation rate (CPR) was clearly decreased, the apoptosis rate (AR) was increased, and Survivin, VEGFR1, and VEGFR2 had a decrease in mifepristone and mifepristone/PLGA groups (P <0.05). As against mifepristone group, the CPR was clearly decreased, the AR was increased, and Survivin, VEGFR1, and VEGFR2 had a decrease in mifepristone/PLGA group (P <0.05). In conclusion, mifepristone PLGA DNPs were able to delay drug release. Mifepristone can inhibit angiogenesis and promote apoptosis of adenomyosis by affecting the expression of Survivin, VEGFR1, and VEGFR2, thus playing a role in the treatment of adenomyosis.
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生物可降解米非司酮给药系统对子宫腺肌病细胞超微结构和血管生成相关因子的影响
本研究旨在分析可降解米非司酮纳米给药系统(DDS)对子宫腺肌症细胞超微结构、增殖、凋亡和血管生成的影响。研究人员制备了聚乳酸-共聚乙醇酸(PLGA)载药纳米颗粒(DNPs)。检测了纳米颗粒(NPs)的粒度分布和表面 Zeta 电位(SZP)。透射电子显微镜(TEM)观察了 NPS 的形态。用组织消化法培养腺肌病病变细胞,观察并鉴定细胞形态。细胞分为空白对照组(NC)、米非司酮组和米非司酮/PLGA 组。分别采用 MTT、TEM、流式细胞术(FC)和免疫组织化学方法检测细胞增殖、超微结构、凋亡以及 Survivin、VEGFR1 和 VEGFR2 的表达。结果表明,米非司酮/PLGA NPs的平均粒径为(185.6±12.9)nm,SZP为(-9.5±0.9)mV。在 TEM 下呈现出圆形、分布均匀、表面光滑的特点。与生药米非司酮相比,米非司酮/PLGA NPs的释放时间延长,72 h时药物释放率达到87.4%;与NC相比,米非司酮组和米非司酮/PLGA组的细胞增殖率(CPR)明显下降,细胞凋亡率(AR)上升,Survivin、VEGFR1和VEGFR2下降(P<0.05)。与米非司酮组相比,米非司酮/PLGA 组 CPR 明显下降,AR 上升,Survivin、VEGFR1 和 VEGFR2 下降(P<0.05)。总之,米非司酮 PLGA DNPs 具有延缓药物释放的作用。米非司酮可通过影响 Survivin、VEGFR1 和 VEGFR2 的表达,抑制血管生成并促进子宫腺肌病的细胞凋亡,从而在子宫腺肌病的治疗中发挥作用。
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来源期刊
Science of Advanced Materials
Science of Advanced Materials NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
自引率
11.10%
发文量
98
审稿时长
4.4 months
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