Targeted immunomodulation therapy for cardiac repair by platelet membrane engineering extracellular vesicles via hitching peripheral monocytes

细胞生物学 免疫系统 微泡 巨噬细胞 间充质干细胞 内吞作用 重编程 炎症 微泡 单核细胞 吞噬作用 外体 癌症研究 生物 免疫学 细胞 小RNA 体外 生物化学 基因
作者
Qiyu Li,Zheyong Huang,Qiaozi Wang,Jinfeng Gao,Jing Chen,Haipeng Tan,Li Su,Zhengmin Wang,Xueyi Weng,Hongbo Yang,Zhiqing Pang,Yanan Song,Juying Qian,Junbo Ge
出处
期刊:Biomaterials [Elsevier BV]
卷期号:284: 121529-121529 被引量:87
标识
DOI:10.1016/j.biomaterials.2022.121529
摘要

Immune regulation therapies have been considered promising in the treatment of myocardial ischemia reperfusion (MI/R) injury. Mesenchymal stem cells derived extracellular vesicles (MSC-EVs) are of great potential for immune modulation by reprogramming macrophages but their therapeutic efficacy is hindered by insufficient targeting ability in vivo. Herein, we introduced the platelet membrane modified EVs (P-EVs) based on membrane fusion method to mimic the binding ability of platelets to monocytes. In the mouse model of MI/R injury, the intravenously injected P-EVs were mainly carried by circulating monocytes into the ischemic myocardium. In the inflammatory microenvironment, those monocytes subsequently differentiated into macrophages with enhanced phagocytosis, which probably promoted in-situ endocytosis of the superficial P-EVs by monocytes differentiated macrophages in large quantities. Then, the P-EVs successfully escaped from the macrophage lysosome and released the functional microRNAs (miRNAs) into the cytosol which facilitated the inflammatory macrophages (M1 phenotype) reprogramming to reparative macrophages (M2 phenotype). Finally, the immune microenvironment was regulated to realize cardiac repair. Thus, we supposed that the most likely delivery method was that monocytes mediated P-EVs migration into ischemic myocardium where P-EVs were mainly in-situ endocytosed by monocytes derived macrophages, which holds potential for immunoregulation on MI/R and other immune-related diseases in the future.
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