Targeted knockdown of PGAM5 in synovial macrophages efficiently alleviates osteoarthritis

基因敲除 巨噬细胞极化 炎症 细胞生物学 癌症研究 化学 巨噬细胞 免疫学 体外 生物 生物化学 细胞凋亡
作者
Xiaoling Zhang,Yuhang Liu,Ruixia Hao,Jia Lv,Jie Yuan,Xuelei Wang,Xu Cheng,Ding Ma,Zhongping Duan,Bingjun Zhang,Liming Dai,Yiyun Cheng,Wei Lu
出处
期刊:Research Square - Research Square
标识
DOI:10.21203/rs.3.rs-3566658/v1
摘要

Abstract Osteoarthritis (OA) is a common degenerative disease worldwide and new therapeutics that target inflammation and the crosstalk between immunocytes and chondrocytes are being developed to prevent and treat OA. These attempts involve repolarizing pro-inflammatory M1 macrophages into the anti-inflammatory M2 phenotype in synovium. In this study, we found that phosphoglycerate mutase 5 (PGAM5) significantly increased in macrophages in OA synovium compared to controls based on histology of human samples and single-cell RNA sequencing results of mice models. To address the role of PGAM5 in macrophages in OA, we found conditional knockout of PGAM5 in macrophages greatly alleviated OA symptoms in vivo and promoted anabolic metabolism of chondrocytes in vitro. Mechanistically, we found that PGAM5 enhanced M1 polarization via AKT-mTOR/p38/ERK pathways, whereas inhibited M2 polarization via STAT6-PPARγ pathway in murine bone marrow-derived macrophages. Furthermore, we found that PGAM5 directly dephosphorylated Dishevelled Segment Polarity Protein 2 (DVL2) which resulted in the inhibition of β-catenin and repolarization of M2 macrophages into M1 macrophages. Conditional knockout of both PGAM5 and β-catenin in macrophages significantly exacerbated osteoarthritis compared to PGAM5-deficient mice. Motivated by these findings, we successfully designed mannose modified fluoropolymers combined with siPGAM5 to inhibit PGAM5 specifically in synovial macrophages via intra-articular injection, which possessed desired targeting abilities of synovial macrophages and greatly attenuated murine osteoarthritis. Collectively, these findings defined a key role for PGAM5 in orchestrating macrophage polarization and provides insights into novel macrophage-targeted strategy for treating OA.
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