细胞生物学
线粒体
重编程
骨矿物
再生(生物学)
干细胞
骨组织
生物物理学
材料科学
细胞
介孔二氧化硅
化学
催化作用
骨重建
骨细胞
介孔材料
成骨细胞
骨愈合
纳米颗粒
能量代谢
功能(生物学)
作者
Yuwen Wang,Xinzhi Liang,Tiandi Xiong,Zheng Zhong,Ning Zhang,B.Z. Yang,Dong Li,Qiongjiao Zeng,Xian Chen,Yiting Lei,Shangsi Chen,Chao Zheng,Liu Yang,Wei Huang,Rocky S. Tuan,Denghui Xie,Zhong Li
标识
DOI:10.1002/adma.202522108
摘要
Normal mitochondrial function in stem cells is essential for effective bone regeneration, with mitochondrial complex IV (cytochrome c oxidase, CcO) playing a crucial role in sustaining electron transport chain activity and ATP synthesis. To address mitochondrial dysfunction associated with bone defects, we developed a dendritic mesoporous silica nanoparticle (DMSN)-based, CcO-mimetic nanozyme, named triphenylphosphonium (TPP)-DMSN-Fe/Cu. The nanozyme incorporated iron and copper single atoms to mimic the catalytic center of CcO and is modified with the mitochondria-targeting agent TPP. In vitro, TPP-DMSN-Fe/Cu nanozymes colocalized with mitochondria and enhanced mitochondrial function, effectively regulating cellular energy metabolism and promoting stem cell osteogenesis. In vivo, TPP-DMSN-Fe/Cu nanozymes resulted in significantly enhanced bone regeneration compared to the control, resulting in a 177% increase in bone volume and a 12% increase in mineral density at critical-sized bone defects in rats after 4 weeks of treatment. Taken together, these findings demonstrate that bioinspired, mitochondria-targeting TPP-DMSN-Fe/Cu nanozymes hold strong promise for accelerating bone regeneration via regulating cellular energy metabolism.
科研通智能强力驱动
Strongly Powered by AbleSci AI