Lin Zhidi, Xu Guangyu, Lu Xiao, Wang Hongli, Lu Feizhou, Xia Xinlei, Song Jian, Jiang Jianyuan, Ma Xiaosheng, Zou Fei
Department of Orthopedics, Huashan Hospital, Fudan University, Shanghai, China.
Aging Cell. 2025 Apr;24(4):e14440. doi: 10.1111/acel.14440. Epub 2024 Nov 28.
Mitochondrial homeostasis plays a crucial role in degenerative joint diseases, including cartilaginous endplate (CEP) degeneration. To date, research into mitochondrial dynamics in IVDD is at an early stage. Since Piezo1 is a novel Ca-permeable channel, we asked whether Piezo1 could modulate mitochondrial fission through Ca signalling during CEP degeneration. In vitro and in vivo models of inflammation-induced CEP degeneration were established with lipopolysaccharide (LPS). We found increased expression of Piezo1 in degenerated CEP tissues and LPS-treated CEP cells. The Piezo1 activator Yoda1 exacerbated CEP cell senescence and apoptosis by triggering Ca influx. Yoda1 also induced mitochondrial fragmentation and dysfunction. In contrast, the Piezo1 inhibitor GsMTx4 exerted cytoprotective effects in LPS-treated CEP cells. Additionally, the CaMKII inhibitor KN-93 reversed Yoda1-induced mitochondrial fission and restored mitochondrial function. Mechanistically, the phosphorylation and mitochondrial translocation of Drp1 were regulated by the Ca/CaMKII signalling. The Drp1 inhibitor Mdivi-1 suppressed mitochondrial fission, then reduced mitochondrial dysfunction and CEP cell death. Moreover, knockdown of Piezo1 by siRNA hindered CaMKII and Drp1 activation, facilitating the redistribution of mitochondrial Drp1 to the cytosol in LPS-treated CEP cells. Piezo1 silencing improved mitochondrial morphology and function, thereby rescuing CEP cell senescence and apoptosis under inflammatory conditions. Finally, subendplate injection of GsMTx4 or AAV-shPiezo1 alleviated CEP degeneration in a rat model. Thus, Piezo1 may exacerbate inflammation-induced CEP degeneration by triggering mitochondrial fission and dysfunction via the Ca/CaMKII/Drp1 axis.
线粒体稳态在包括软骨终板(CEP)退变在内的退行性关节疾病中起着至关重要的作用。迄今为止,关于椎间盘退变(IVDD)中线粒体动力学的研究尚处于早期阶段。由于Piezo1是一种新型的钙通透通道,我们探讨了Piezo1是否能在CEP退变过程中通过钙信号传导调节线粒体分裂。我们用脂多糖(LPS)建立了炎症诱导的CEP退变的体外和体内模型。我们发现Piezo1在退变的CEP组织和LPS处理的CEP细胞中表达增加。Piezo1激活剂Yoda1通过触发钙内流加剧了CEP细胞衰老和凋亡。Yoda1还诱导了线粒体碎片化和功能障碍。相反,Piezo1抑制剂GsMTx4在LPS处理的CEP细胞中发挥了细胞保护作用。此外,钙/钙调蛋白依赖性蛋白激酶II(CaMKII)抑制剂KN-93逆转了Yoda1诱导的线粒体分裂并恢复了线粒体功能。机制上,动力相关蛋白1(Drp1)的磷酸化和线粒体易位受钙/CaMKII信号传导调节。Drp1抑制剂Mdivi-1抑制线粒体分裂,进而减少线粒体功能障碍和CEP细胞死亡。此外,小干扰RNA(siRNA)敲低Piezo1可阻碍CaMKII和Drp1的激活,促进LPS处理后的CEP细胞中线粒体Drp1向细胞质的重新分布。Piezo1沉默改善了线粒体形态和功能,从而挽救了炎症条件下的CEP细胞衰老和凋亡。最后,在大鼠模型中,椎板下注射GsMTx4或腺相关病毒-shPiezo1可减轻CEP退变。因此,Piezo1可能通过钙/CaMKII/Drp1轴触发线粒体分裂和功能障碍,从而加剧炎症诱导的CEP退变。