Mid1 Promotes Synovitis in Rheumatoid Arthritis via Ubiquitin-dependent Post-translational Modification

滑膜炎 翻译后修饰 类风湿性关节炎 泛素 医学 转化研究 免疫学 病理 化学 基因 生物化学
作者
Liman Lin,Zhiwen Huang,Wenjuan Li,Xinxin Liu,Xinlu Li,Shupei Gao,Jun Chen,Chenxi Yang,Xinwen Min,Handong Yang,Quan Gong,Yingying Wei,Shenghao Tu,Xiaoquan Rao,Ziyang Zhang,Lingli Dong,Jixin Zhong
出处
期刊:Pharmacological Research [Elsevier BV]
卷期号:205: 107224-107224 被引量:2
标识
DOI:10.1016/j.phrs.2024.107224
摘要

Current anti-rheumatic drugs are primarily modulating immune cell activation, yet their effectiveness remained suboptimal. Therefore, novel therapeutics targeting alternative mechanisms, such as synovial activation, is urgently needed. To explore the role of Midline-1 (Mid1) in synovial activation. NOD.Cg-Prkdcscid Il2rgtm1Wjl/SzJ (NSG) mice were used to establish a subcutaneous xenograft model. Wild-type C57BL/6, Mid1-/-, Dpp4-/-, and Mid1-/- Dpp4-/- mice were used to establish a collagen-induced arthritis model. Cell viability, cell cycle, qPCR and western blotting analysis were used to detect MH7A proliferation, dipeptidyl peptidase-4 (DPP4) and Mid1 levels. Co-immunoprecipitation and proteomic analysis identified the candidate protein of Mid1 substrates. Ubiquitination assays were used to determine DPP4 ubiquitination status. A notable increase in Mid1, an E3 ubiquitin ligase, in human RA synovial tissue by GEO dataset analysis, and this elevation was confirmed in a collagen-induced mouse arthritis model. Notably, deletion of Mid1 in a collagen-induced arthritis model completely protected mice from developing arthritis. Subsequent overexpression and knockdown experiments on MH7A, a human synoviocyte cell line, unveiled a previously unrecognized role of Mid1 in synoviocyte proliferation and migration, the key aspects of synovial activation. Co-immunoprecipitation and proteomic analysis identified DPP4 as the most significant candidate of Mid1 substrates. Mechanistically, Mid1 promoted synoviocyte proliferation and migration by inducing ubiquitin-mediated proteasomal degradation of DPP4. DPP4 deficiency led to increased proliferation, migration, and inflammatory cytokine production in MH7A, while reconstitution of DPP4 significantly abolished Mid1-induced augmentation of cell proliferation and activation. Additionally, double knockout model showed that DPP4 deficiency abolished the protective effect of Mid1 on arthritis. Overall, our findings suggest that the ubiquitination of DPP4 by Mid1 promotes synovial cell proliferation and invasion, exacerbating synovitis in RA. These results reveal a novel mechanism that controls synovial activation, positioning Mid1 as a promising target for therapeutic intervention in RA.
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