Inhibition of LRRK2 restores parkin-mediated mitophagy and attenuates intervertebral disc degeneration

帕金 基因敲除 粒体自噬 氧化应激 品脱1 细胞凋亡 细胞生物学 转染 帕金森病 免疫印迹 自噬 LRRK2 标记法 线粒体 化学 分子生物学 医学 生物 病理 生物化学 基因 突变 疾病
作者
Jialiang Lin,Xuan-Qi Zheng,Zengjie Zhang,Jinru Zhuge,Zewei Shao,Chongan Huang,Jie Jin,Ximiao Chen,Yu Chen,Yaosen Wu,Naifeng Tian,Liaojun Sun,Weiyang Gao,Yifei Zhou,Xiangyang Wang,Xiaolei Zhang
出处
期刊:Osteoarthritis and Cartilage [Elsevier]
卷期号:29 (4): 579-591 被引量:22
标识
DOI:10.1016/j.joca.2021.01.002
摘要

To elucidate the role of LRRK2 in intervertebral disc degeneration (IDD) as well as its mitophagy regulation mechanism.The expression of LRRK2 in human degenerative nucleus pulposus tissues as well as in oxidative stress-induced rat nucleus pulposus cells (NPCs) was detected by western blot. LRRK2 was knocked down in NPCs by lentivirus (LV)-shLRRK2 transfection; apoptosis and mitophagy were assessed by western blot, TUNEL assay, immunofluorescence staining and mitophagy detection assay in LRRK2-deficient NPCs under oxidative stress. After knockdown of Parkin in NPCs with siRNA transfection, apoptosis and mitophagy were further assessed. In puncture-induced rat IDD model, X-ray, MRI, hematoxylin-eosin (HE) and Safranin O-Fast green (SO) staining were performed to evaluate the therapeutic effects of LV-shLRRK2 on IDD.We found that the expression of LRRK2 was increased in degenerative NPCs both in vivo and in vitro. LRRK2 deficiency significantly suppressed oxidative stress-induced mitochondria-dependent apoptosis in NPCs; meanwhile, mitophagy was promoted. However, these effects were abolished by the mitophagy inhibitor, suggesting the effect of LRRK2 on apoptosis in NPCs is mitophagy-dependent. Furthermore, Parkin knockdown study showed that LRRK2 deficiency activated mitophagy by recruiting Parkin. In vivo study demonstrated that LRRK2 inhibition ameliorated IDD in rats.The results revealed that LRRK2 is involved in the pathogenesis of IDD, while knockdown of LRRK2 inhibits oxidative stress-induced apoptosis through mitophagy. Thus, inhibition of LRRK2 may be a promising therapeutic strategy for IDD.
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