氧化应激
线粒体
化学
抗氧化剂
调解人
细胞生物学
活性氧
生物相容性
药理学
自噬
脂质体
氧化磷酸化
细胞器
氧化损伤
钙信号传导
纳米医学
心肌保护
信号转导
细胞保护
药物输送
生物相容性材料
细胞凋亡
作者
Guoyong Jiang,Jiahe Guo,Chengqi Yan,Chun Li,Zhichao Ruan,Xiangrui Li,Yingjie He,Siju Liu,Chi Zhang,Yufeng Wang,Xinyu Zeng,Xiang Xu,Sijia Duan,Chunlei Yuan,Zhenbing Chen,Xiaofan Yang
标识
DOI:10.1016/j.mtbio.2026.102934
摘要
The therapeutic failure in diabetic wounds often stems from a pathological disconnect between antioxidant signaling and mitochondrial repair, a core limitation that conventional antioxidative approaches fail to address. Although targeting mitochondrial dysfunction presents a promising therapeutic avenue, conventional strategies often fail to reconcile efficient targeting of impaired organelles with high biocompatibility. To address this limitation, a biohybrid nanovesicle (designated DHM@mtABV) was engineered by fusing ADSC-derived nanovesicles (ANVs) with synthetic liposomes that co-encapsulate the antioxidant dihydromyricetin (DHM) and the mitochondria-targeting ligand TPP (DHM@mtLipo). The resulting DHM@mtABV nanovesicles demonstrated exceptional biocompatibility and pronounced mitochondrial accumulation. Functionally, DHM@mtABV effectively broke the vicious cycle of oxidative stress by simultaneously scavenging mitochondrial ROS and activating the cytoprotective NRF2 signaling pathway. Consequently, DHM@mtABV treatment significantly restored mitochondrial membrane potential and calcium homeostasis, enhanced cellular proliferation and migration under oxidative stress, and markedly accelerated wound closure in a diabetic mouse model. This work not only presents a potent therapeutic but also validates a generalizable biohybrid strategy that reconstitutes the critical link between subcellular targeting and systemic tissue repair, offering a transformative paradigm for treating refractory diabetic wounds. • NRF2 signaling is decoupled with oxidative damage in diabetic wounds. • Biohybrid DHM@mtABV merges ADSC vesicles with mitochondria-targeted liposomes. • DHM@mtABV clears mitochondrial ROS and activates NRF2 to heal diabetic wounds. • DHM@mtABV accelerates wound closure as a general mitochondria-targeting platform.
科研通智能强力驱动
Strongly Powered by AbleSci AI