SMOC2 knockdown significantly reduced the migration and invasion of rheumatoid arthritis fibroblast-like synoviocytes and attenuated synovial inflammation and bone erosion in a rat model of collagen-induced arthritis.
SMOC2 promotes aggressive behavior of RA FLSs and its knockdown attenuates arthritis in a rat model, suggesting it as a potential therapeutic target for rheumatoid arthritis.
Abstract Fibroblast-like synoviocytes (FLSs), play a key role in perpetuating synovial inflammation and bone erosion in rheumatoid arthritis (RA), however, the underlying mechanism(s) of RA FLSs activation and aggression remain unclear. Identifying endogenous proteins that selectively target FLSs is urgently needed. Here, we systematically identified that secreted modular calcium-binding protein 2 (SMOC2), was significantly increased in RA FLSs and synovial tissues. SMOC2 knockdown specifically regulated cytoskeleton remodeling and decreased the migration and invasion of RA FLSs. Mechanistically, cytoskeleton-related genes were significantly downregulated in RA FLSs with reduced SMOC2 expression, especially the motor protein myosin1c (MYO1C). SMOC2 controlled MYO1C expression by SRY-related high-mobility group box 4 (SOX4) and AlkB homolog 5 (ALKHB5) mediated-m 6 A modification through transcriptional and post-transcriptional regulation. Furthermore, intra-articular Ad-shRNA-SMOC2 treatment attenuated synovial inflammation as well as bone and cartilage erosion in rats with collagen-induced arthritis (CIA). Our findings suggest that increased SMOC2 expression in FLSs may contribute to synovial aggression and joint destruction in RA. SMOC2 may serve as a potential target against RA.
Liu et al. (Tue,) conducted a other in Rheumatoid arthritis (n=50). SMOC2 knockdown vs. Control siRNA / control shRNA vector was evaluated on Cell migration, invasion, and arthritis severity. SMOC2 knockdown significantly reduced the migration and invasion of rheumatoid arthritis fibroblast-like synoviocytes and attenuated synovial inflammation and bone erosion in a rat model of collagen-induced arthritis.
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