Stabilization of HIF-1α alleviates osteoarthritis via enhancing mitophagy

Sunli Hu(Wenzhou Medical University), Chunwu Zhang(Wenzhou Medical University), Libin Ni(Wenzhou Medical University), Chongan Huang(Wenzhou Medical University), Dingwen Chen(Wenzhou Medical University), Keqing Shi(Wenzhou Medical University), Haiming Jin(Wenzhou Medical University), Kairui Zhang(Wenzhou Medical University), Yao Li(Wenzhou Medical University), Ling Xie(Wenzhou Medical University), Mingqiao Fang(Wenzhou Medical University), Guangheng Xiang(Wenzhou Medical University), Xiangyang Wang(Wenzhou Medical University), Jian Xiao(Wenzhou Medical University)
Cell Death and Disease
June 25, 2020
Cited by 218Open Access
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Abstract

Mitochondrial dysfunction leads to osteoarthritis (OA) and disc degeneration. Hypoxia inducible factor-1α (HIF-1α) mediated mitophagy has a protective role in several diseases. However, the underlying mechanism of HIF-1α mediated mitophagy in OA remains largely unknown. This current study was performed to determine the effect of HIF-1α mediated mitophagy on OA. Therefore, X-ray and tissue staining including HE staining, safranin O-fast green (S-O) and Alcian Blue were used to assess imageology and histomorphology differences of mouse knee joint. Transcriptional analysis was used to find the possible targets in osteoarthritis. Western blot analysis, RT-qPCR and immunofluorescence staining were used to detect the changes in gene and protein levels in the vitro experiment. The expression of HIF-1α was increased in human and mouse OA cartilage. HIF-1α knockdown by siRNA further impair the hypoxia-induced mitochondrial dysfunction; In contrast, HIF-1α mediated protective role was reinforced by prolylhydroxylase (PHD) inhibitor dimethyloxalylglycine (DMOG). In addition, HIF-1α stabilization could alleviate apoptosis and senescence via mitophagy in chondrocytes under hypoxia condition, which could also ameliorate surgery-induced cartilage degradation in mice OA model. In conclusion, HIF-1α mediated mitophagy could alleviate OA, which may serve as a promising strategy for OA treatment.


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