归巢(生物学)
医学
胞外囊泡
骨髓
趋化因子
单核细胞
微泡
心肌梗塞
炎症
癌症研究
细胞外小泡
细胞生物学
血管生成
细胞外
细胞内
药理学
细胞疗法
免疫学
趋化因子受体
趋化性
动脉发生
外周血单个核细胞
巨噬细胞
病理
细胞凋亡
细胞外基质
免疫系统
内皮干细胞
间充质干细胞
旁分泌信号
新生血管
作者
Jiaxin Song,Hao Yang,Qiqi Zhang,Wenqin Zhou,Rui Wang,Yuxing Xie,Emeli Chatterjee,Guoping Li,Jizong Jiang,Qiulian Zhou,Cuimei Zhao
摘要
Myocardial infarction (MI) represents a major public health challenge. Extracellular vesicles (EVs) hold considerable promise as therapeutics for cardiovascular disorders. However, the targeted delivery of them to the heart has received relatively limited research. Acute MI is often accompanied by severe inflammation. After MI, numbers of monocytes/macrophages are rapidly mobilized from the circulation and accumulate within the ischemic myocardial tissue. This recruitment is driven by the inflammatory homing signals emanating from the injured cardiac region. In this work, we develop a biomimetic nanovesicle by fusing membranes isolated from bone marrow mononuclear cells (Mon) with extracellular vesicles derived from healthy human plasma (M-hEV). This biomimetic delivery platform achieves site-specific accumulation at damaged vascular endothelial cells and cardiomyocytes by leveraging two key molecular recognition mechanisms: the monocyte chemoattractant protein-1 (MCP-1)/C-C chemokine receptor 2 (CCR2) and intercellular adhesion molecule-1 (ICAM-1)/CD11b axes. The results indicate that M-hEV can inhibit apoptosis of vascular endothelial cells and cardiomyocytes, promote angiogenesis and regulate macrophage polarization at the cellular and animal levels. Furthermore, M-hEV can home to the MI heart, reduce the infarct size, reduce the inflammation level, and improve cardiac function. This biomimetic system provides a novel approach to explore new targeted drugs for MI treatment.
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