重编程
IRF5公司
巨噬细胞
干扰素调节因子
小干扰RNA
癌症研究
基因沉默
下调和上调
干扰素
炎症
细胞生物学
医学
生物
细胞因子
泡沫电池
促炎细胞因子
表型
遗传增强
免疫学
分泌物
内部收益率1
阳离子脂质体
巨噬细胞极化
免疫系统
化学
RNA干扰
基因表达调控
基因
转分化
转录因子
转染
作者
Zhongshan He,Yaoyao Luo,Shuping Yang,Haixing Shi,Ya‐Chih Huang,Zhuoming Zhou,Shengbin Liu,W. Zeng,Wei-Chieh Liu,Yongjiang Li,Yuting Chen,Duotian Qin,Xing Duan,Xi He,Wei Chen,Xiangrong Song
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-03-04
卷期号:20 (10): 8350-8371
被引量:2
标识
DOI:10.1021/acsnano.5c18044
摘要
High Resolution Image Download MS PowerPoint Slide Atherosclerotic macrophages predominantly exhibit a pro-inflammatory phenotype, driving chronic inflammatory and accelerating atherosclerotic progression. Interferon regulatory factor 5 (IRF5) is highly expressed in lesional macrophages within advanced atherosclerotic plaques, where it promotes the secretion of pro-inflammatory cytokines. However, current approaches lack an effective therapeutic strategy to specifically silence this gene in lesional macrophages for atherosclerosis treatment. This study aims to develop and evaluate a dual-targeted, siRNA-based nanotherapeutic platform that selectively acts on atherosclerosis-promoting genes in plaque macrophages, offering a potential strategy for treating atherosclerosis by reprogramming lesional macrophages. Here we designed and developed dual-targeted liposome-based nano-immunotherapeutics encapsulating small interfering RNA (siRNA) against IRF5 (siIRF5) to reprogram macrophage phenotypes within advanced plaques. In high-fat diet-fed ApoE –/– mice with advanced atherosclerotic plaques, dual-targeted siIRF5-loaded liposomes effectively accumulate within lesional macrophages, downregulate IRF5 expression, and promote anti-inflammatory macrophage polarization. Moreover, this siIRF5-based nanoimmunotherapy significantly reduces plaque burden and enhances plaque stability in two independent murine models of atherosclerosis. Furthermore, this siIRF5 nanoimmunotherapy exhibits biocompatibility even after long-term administration, underscoring its translational potential for clinical application in atherosclerosis treatment. This study introduces an innovative dual-targeted siRNA-based nanotherapeutic strategy that acts on atherosclerosis-promoting genes in plaque macrophages, offering a promising therapeutic avenue for atherosclerosis and other macrophage-driven inflammatory diseases.
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