类风湿性关节炎
医学
糖酵解
调节器
增生
下调和上调
癌症研究
关节炎
滑膜
滑液
乳酸脱氢酶
内科学
细胞生长
细胞周期
免疫学
蛋白激酶A
乳酸脱氢酶A
细胞
激酶
外周血单个核细胞
信号转导
作者
Meican Ma,Yi Zhou,Qianlin Li,Zhao Wang,Shangqi Guan,X H Wang,Han Zhao,Zhenke Wen,Ting Liu,Fenghong Yuan
出处
期刊:JCI insight
[American Society for Clinical Investigation]
日期:2026-06-08
卷期号:11 (11)
标识
DOI:10.1172/jci.insight.200928
摘要
Synovial hyperplasia is a hallmark of rheumatoid arthritis (RA), yet its mechanism remains unclear. RA synovium exhibits metabolic shift, characterized by upregulated glycolysis and enhanced lactate production. In this study, we elucidated the mechanism underlying the roles of lactate metabolism and protein lactylation in RA pathology. In patients with RA, both lactate production and protein lactylation were elevated and showed a positive correlation with clinical disease activity. These changes were further implicated in driving synovial proliferation. Among the lactylated proteins, Cysteine-rich intestinal protein 1 (CRIP1) exhibited a marked increase in modification and played a central role in promoting synovial proliferation. Mechanistically, CRIP1 underwent MOF-mediated lactylation in RA synovial fibroblasts. Lactylated CRIP1 hijacked the cell-cycle regulator p21, disrupting its interaction with cyclin-dependent kinase 2 (CDK2), thereby facilitating the G1/S phase transition. Functionally, AAV-mediated delivery of a lactylation-deficient CRIP1 K49R significantly reduced synovial proliferation compared with WT CRIP1. Peptide-based interventions targeting CRIP1 K49 lactylation effectively inhibited synovial hyperplasia and disease severity in both Collagen II-induced arthritis (CIA) and humanized NSG chimeric models. Collectively, CRIP1 protein lactylation drives synovial proliferation in RA by hijacking p21 from CDK2, thereby facilitating cell cycle progression. Targeting this pathway may serve as a promising strategy for RA.
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