细胞生物学
泛素连接酶
泛素
化学
DNA损伤
椎间盘
神经退行性变
程序性细胞死亡
炎症
先天免疫系统
细胞内
下调和上调
DNA修复
平衡
DNA连接酶
变性(医学)
细胞凋亡
促炎细胞因子
基因组不稳定性
聚ADP核糖聚合酶
细胞
生物
机械转化
衰老
新陈代谢
蛋白质降解
未折叠蛋白反应
机制(生物学)
基质金属蛋白酶
细胞外基质
作者
Zhangrong Cheng,Haiyang Gao,Wenbo Wu,Pengzhi Shi,Xianglong Chen,Zimu Yu,Wu Wang,Kangcheng Zhao,Cao Yang,Yukun Zhang
标识
DOI:10.1002/advs.202519248
摘要
Intervertebral disc degeneration (IVDD) is a leading global cause of low back pain, with abnormal mechanical stress being a central contributing factor. However, the molecular mechanisms through which mechanical stress signals are transduced into intracellular pathological responses to drive degeneration remain poorly understood. This study demonstrates that mechanical compression induces DNA damage and triggers parthanatos-a caspase-independent form of cell death driven by toxic accumulation of poly(ADP-ribose) (PAR) polymers. Mechanistically, mechanical compression upregulates the E3 ubiquitin ligase TRIM25, which directly binds to and promotes the ubiquitination and degradation of poly(ADP-ribose) glycohydrolase (PARG), leading to disrupted PAR metabolism and toxic PAR accumulation. Concurrently, TRIM25 targets the DNA repair protein Ku80 for degradation, exacerbating genomic instability and activating the RIG-I innate immune pathway, thereby inducing the release of inflammatory factors. Thus, under mechanical stress, TRIM25 acts as a key node coordinating DNA damage, cell death, and inflammatory responses, forming a multi-mechanistic network that promotes IVDD progression. In a rat model of compression-induced IVDD, restoring PAR homeostasis by targeting the TRIM25-PARG axis significantly attenuated disc degeneration, suggesting the therapeutic potential of targeting this pathway in IVDD.
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