Author:
Luo Xianghong,Zhang Mengjiao,Dai Waicong,Xiao Xianghao,Li Xinyi,Zhu Yingjian,Shi Xiangyang,Li Zhaojun
Abstract
AbstractInflammatory factors and reactive oxygen species (ROS) are risk factors for atherosclerosis. Many existing therapies use ROS-sensitive delivery systems to alleviate atherosclerosis, which achieved certain efficacy, but cannot eliminate excessive ROS. Moreover, the potential biological safety concerns of carrier materials through chemical synthesis cannot be ignored. Herein, an amphiphilic low molecular weight heparin- lipoic acid conjugate (LMWH-LA) was used as a ROS-sensitive carrier material, which consisted of injectable drug molecules used clinically, avoiding unknown side effects. LMWH-LA and curcumin (Cur) self-assembled to form LLC nanoparticles (LLC NPs) with LMWH as shell and LA/Cur as core, in which LMWH could target P-selectin on plaque endothelial cells and competitively block the migration of monocytes to endothelial cells to inhibit the origin of ROS and inflammatory factors, and LA could be oxidized to trigger hydrophilic-hydrophobic transformation and accelerate the release of Cur. Cur released within plaques further exerted anti-inflammatory and antioxidant effects, thereby suppressing ROS and inflammatory factors. We used ultrasound imaging, pathology and serum analysis to evaluate the therapeutic effect of nanoparticles on atherosclerotic plaques in apoe−/− mice, and the results showed that LLC showed significant anti-atherosclerotic effects. Our finding provided a promising therapeutic nanomedicine for the treatment of atherosclerosis.
Funder
Key Medical Specialty in Jiading District, Shanghai
National Natural Science Foundation of China
Science and Technology Commission of Shanghai Municipality
Shanghai Education Commission through the leading talent program, and the 111 Project
Natural Science Foundation of Shanghai
Shanghai Health and Family Planning Commission Fund
Shanghai Jiading District Health and Family Planning Commission Fund
Publisher
Springer Science and Business Media LLC