内质网
细胞生物学
高尔基体
化学
泡沫电池
化学伴侣
细胞内
巨噬细胞
未折叠蛋白反应
银纳米粒子
伴侣(临床)
清道夫受体
小泡
生物物理学
脂滴
脂质微区
胆固醇
蛋白质聚集
脂质代谢
细胞
巨噬细胞极化
体内
生物化学
转染
体外
载脂蛋白B
纳米毒理学
动脉粥样硬化
氧化应激
脂质过氧化
作者
Yi Yang,X Chen,Xinwei Liu,Yinqing Zhang,Lingyan Zhu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-07-18
卷期号:20 (30): 21039-21053
标识
DOI:10.1021/acsnano.6c00675
摘要
Cardiovascular disease continues to be a leading cause of mortality worldwide, but the mechanistic interplay between hypercholesterolemia and environmental pollutants in the progression of atherosclerosis remains poorly understood. This study investigated the role of silver nanoparticles (AgNPs), a typical particulate contaminant, in promoting atherogenic risk under dyslipidemic conditions. Elevated serum cholesterol levels significantly promoted the adsorption of low-molecular-weight hydrophobic proteins to AgNPs. The hyperlipidemia-specific PC facilitated macrophage uptake of AgNPs through lipid-raft-dependent, scavenger receptor-B1-mediated endocytosis, altered intracellular journey to target the endoplasmic reticulum and Golgi apparatus, and exploited Golgi secretory vesicles for exocytosis. Due to dynamic intracellular exchange, the recruitment of chaperones by AgNPs acted as an initiating event to activate endoplasmic reticulum stress (ERS). The in vitro macrophage model showed that AgNPs further triggered M1 polarization and lipid accumulation, ultimately driving foam cell transformation and exacerbating atherogenic risk. In addition, in vivo assays strongly corroborated that AgNPs accelerated atherosclerotic progression in hyperlipidemic mice, which could be reversed by 4-phenylbutyric acid, a chemical chaperone that inhibits ERS. These findings underscore the significant impact of the physiological microenvironment on nano-bio interactions and provide mechanistic insights into the aggravation of cardiovascular diseases by environmental nanoparticles under hypercholesterolemic conditions.
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