FOXO3公司
粒体自噬
骨关节炎
体内
基因
计算生物学
细胞生物学
计算机科学
生物信息学
医学
生物
自噬
遗传学
下调和上调
病理
替代医学
细胞凋亡
作者
Manyu Chen,Yuan Liu,Quanying Liu,Siyan Deng,Yuhan Liu,Jiehao Chen,Yaojia Zhou,Xiaolin Cui,Jie Liang,Xingdong Zhang,Yujiang Fan,Qiguang Wang,Bin Shen
标识
DOI:10.1016/j.apsb.2024.12.008
摘要
Mitochondrial dysfunction in chondrocytes is a key pathogenic factor in osteoarthritis (OA), but directly modulating mitochondria in vivo remains a significant challenge. This study is the first to verify a correlation between mitochondrial dysfunction and the downregulation of the FOXO3 gene in the cartilage of OA patients, highlighting the potential for regulating mitophagy via FOXO3 gene modulation to alleviate OA. Consequently, we developed a chondrocyte-targeting CRISPR/Cas9-based FOXO3 gene-editing tool (FoxO3) and integrated it within a nanoengineered ‘truck’ (NETT, FoxO3-NETT). This was further encapsulated in injectable hydrogel microspheres (FoxO3-NETT@SMs) to harness the antioxidant properties of sodium alginate and the enhanced lubrication of hybrid exosomes. Collectively, these FoxO3-NETT@SMs successfully activate mitophagy and rebalance mitochondrial function in OA chondrocytes through the Foxo3 gene-modulated PINK1/Parkin pathway. As a result, FoxO3-NETT@SMs stimulate chondrocytes proliferation, migration, and ECM production in vitro , and effectively alleviate OA progression in vivo , demonstrating significant potential for clinical applications. FoxO3-NETT@SMs targeting-regulated Foxo3 gene in vivo to modulate mitophagy for osteoarthritis therapy.
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