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FBXW7对抗椎间盘退变的新机制:通过调控线粒体自噬减轻髓核细胞的铁死亡

A novel mechanism of FBXW7 in combating intervertebral disc degeneration: Mitigating ferroptosis in nucleus pulposus cells through the regulation of mitophagy.

作者信息

Lu Xiao, Lin Zhidi, Li Dachuan, Gong Zhaoyang, Ma Tiancong, Wu Jiongdong, Xiao Wenbiao, Xu Chenpei, Guan Yunzhi, Yang Shuo, Zhang Yuxuan, Sun Chi, Xia Xinlei, Lu Feizhou, Song Jian, Jiang Jianyuan, Zhu Wei, Xu Guangyu, Ma Xiaosheng, Zou Fei

机构信息

Department of Orthopedics, Huashan Hospital, No. 12, middle Wulumuqi Road, Jing'an District, Fudan University, Shanghai 200040, China.

Department of Hand Surgery, Huashan Hospital, No. 12, middle Wulumuqi Road, Jing'an District, Fudan University, Shanghai 200040, China.

出版信息

Int Immunopharmacol. 2025 May 16;155:114668. doi: 10.1016/j.intimp.2025.114668. Epub 2025 Apr 15.

Abstract

With the aging of the global population, the prevalence of intervertebral disc degeneration (IVDD) disease is gradually increasing. This disease not only leads to a substantial reduction in the quality of life of patients but also imposes a considerable burden on the health care system. At present, the understanding of its pathogenesis is relatively limited, and in-depth research is urgently needed to identify effective treatment methods. One of the main causes of IVDD is the compression of the spine caused by body weight. The objective of this study was to investigate the potential regulatory mechanism underlying IVDD induced by excessive compression. Moreover, to investigate whether FBXW7 is involved in the regulation of mitophagy and ferroptosis, we used 1 MPa pressure to induce nucleus pulposus cell (NPC) degeneration and then constructed plasmids or small interfering RNAs to overexpress or knock down FBXW7. In addition, in vivo animal experiments were performed to verify the function of FBXW7. We found that FBXW7 expression was decreased in degenerative NP tissues. Compression promoted the initiation of mitophagy, but blocked autophagic flux and ultimately caused ferroptosis in NPCs. However, overexpression of FBXW7 can activate mitophagy, improve autophagic flux, and alleviate ferroptosis. Moreover, FBXW7 can bind to mTOR and promote its ubiquitination and degradation, thus increasing the expression of PINK1 and Parkin. Taken together, the results of both in vitro and in vivo experiments suggested that FBXW7 induced mitophagy, alleviated ferroptosis, and delayed IVDD via the mTOR signaling pathway.

摘要

随着全球人口老龄化,椎间盘退变(IVDD)疾病的患病率正在逐渐上升。这种疾病不仅导致患者生活质量大幅下降,还给医疗保健系统带来了相当大的负担。目前,对其发病机制的了解相对有限,迫切需要深入研究以确定有效的治疗方法。IVDD的主要原因之一是体重对脊柱造成的压迫。本研究的目的是探讨过度压迫诱导IVDD的潜在调控机制。此外,为了研究FBXW7是否参与线粒体自噬和铁死亡的调控,我们用1兆帕的压力诱导髓核细胞(NPC)退变,然后构建质粒或小干扰RNA来过表达或敲低FBXW7。另外,进行了体内动物实验以验证FBXW7的功能。我们发现FBXW7在退变的髓核组织中表达降低。压迫促进了线粒体自噬的启动,但阻断了自噬流并最终导致NPC发生铁死亡。然而,FBXW7的过表达可以激活线粒体自噬,改善自噬流,并减轻铁死亡。此外,FBXW7可以与mTOR结合并促进其泛素化和降解,从而增加PINK1和Parkin的表达。综上所述,体外和体内实验结果均表明,FBXW7通过mTOR信号通路诱导线粒体自噬、减轻铁死亡并延缓IVDD。

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