凝集素
神经保护
脊髓损伤
下调和上调
中枢神经系统
脊髓
自噬
细胞生物学
内生
神经科学
程序性细胞死亡
细胞凋亡
运动前神经元活动
神经退行性变
GPX4
生物
脂质代谢
化学
小RNA
神经元
神经系统
线粒体
皮质脊髓束
白藜芦醇
医学
运动神经元
机制(生物学)
作者
Senyu Yao,Ziming Wang,Xiaokang Wang,Yangfan Yu,Xu Huang,Liqi Chen,Zhenming Tian,Bin Liu,Yang Yang,Mao Pang,Limin Rong
摘要
Neuronal ferroptosis is considered as a key mechanism contributing to neurological deficits during the secondary injury phase following spinal cord injury (SCI). Clusterin (CLU), a stress-responsive protein, has been reported to exert neuroprotective effects and promote neuronal survival in central nervous system injuries. However, its specific role in neuronal ferroptosis remains unclear. Here, we demonstrate that both exogenous recombinant CLU protein and endogenous CLU overexpression significantly inhibit neuronal ferroptosis, as evidenced by reduced lipid peroxidation, decreased iron accumulation, preserved mitochondrial integrity, and modulation of ferroptosis-related genes (upregulation of GPX4/xCT and downregulation of ACSL4). Mechanistically, CLU activates the PI3K-AKT-mTOR pathway, subsequently regulating the SREBP1-SCD1 lipid metabolism axis to suppress ACSL4-mediated lipid peroxidation. Furthermore, AAV-mediated CLU overexpression effectively mitigates pathological damage and significantly enhances motor function recovery in SCI mice. In conclusion, this study reveals a novel mechanism whereby CLU promotes SCI repair by inhibiting neuronal ferroptosis via the PI3K-AKT-mTOR-SREBP1 axis, indicating its therapeutic potential for ferroptosis-targeted neuroprotective strategies.
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