线粒体
氧化应激
活性氧
细胞生物学
化学
线粒体内膜
膜电位
氧化磷酸化
线粒体ROS
细胞凋亡
抗氧化剂
粒线体疾病
细胞内
体内
生物
药理学
生物化学
再生医学
细胞外
间充质干细胞
再生(生物学)
伤口愈合
作者
Junhao Xia,Lizhi Wang,Yang Song,Mengru Zhu,Yu Xu,Jiayi Liu,Xin Guan,Qingwen Zhang,Keman He,Fengya Wang,Lukuan Liu,Jiayi Liu
标识
DOI:10.1186/s12951-026-04100-2
摘要
Oxidative stress and mitochondrial dysfunction are major barriers to the healing of diabetic wounds (DW). Eliminating reactive oxygen species (ROS) and restoring mitochondrial function are considered effective strategies to accelerate DW healing. Although extracellular vesicles (EVs) derived from mesenchymal stem cells (MSCs) have shown therapeutic potential, the quality and yield of mitochondrial components in naturally secreted EVs are limited. Thus, we employed a top-down approach, using the self-assembly properties of membrane components to develop artificial nanovesicles enriched with mitochondria-associated proteins derived from human umbilical cord MSCs. These cell-derived nanovesicles (CNVs) selectively encapsulate mitochondrial proteins, effectively reducing intracellular ROS levels and specifically restoring mitochondrial membrane potential (∆Ψm) and morphology. Furthermore, the CNVs demonstrate remarkable antioxidant and mitochondrial functional restoration capacity, involving the restoration of mitochondrial complexes I, Ⅲ, V and the uncoupling process, as well as multiple mitochondrial function-associated pathways, such as the ALDH2/HADHA/HADHB axis, the IDH2/GSR/GSH axis, and the Ca2+/VDAC1 axis. In vivo experiments further validated the therapeutic potential of CNVs, which significantly promoted wound healing in diabetic mice. In conclusion, our study emphasizes the potential of artificial nanovesicles containing organelle-associated proteins in DW therapy, providing a novel and promising strategy for organelle-based disease treatment. Mitochondrial dysfunction hinders diabetic wound (DW) healing. Stem cell-derived artificial nanovesicles (CNVs) enriched with mitochondrial proteins were developed. CNVs significantly restore mitochondrial function and reduce oxidative stress. CNVs promote DW healing in vitro and in vivo through multiple mitochondrial-related mechanisms.
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