CXC chemokine receptor 3 antagonist AMG487 shows potent anti-arthritic effects on collagen-induced arthritis by modifying B cell inflammatory profile
IMMUNOLOGY LETTERS
Authors: Bakheet, Saleh A.; Alrwashied, Bader S.; Ansari, Mushtaq A.; Nadeem, Ahmed; Attia, Sabry M.; Alanazi, Mohammed M.; Aldossari, Abdullah A.; Assiri, Mohammed A.; Mahmood, Hafiz M.; Al-Mazroua, Haneen A.; Ahmad, Sheikh F.
Abstract
Several studies have suggested that chemokine receptors are important mediators of inflammatory response in rheumatoid arthritis (RA). B cells are also known to play an important role in RA pathology. C-X-C chemokine receptor type 3 (CXCR3) is considered a potential therapeutic target in different inflammatory diseases; however, the mechanism remains unclear. Here, we evaluated the potentially protective effect of AMG487, a selective CXCR3 antagonist, in collagen-induced arthritis (CIA) mouse model. CIA mice were treated with AMG487 (5 mg/kg) every 48 h, from day 21 until day 41. We then investigated the effect of AMG487 on NF-kappa B p65-, NOS2-, MCP-1-, TNF-alpha-, IFN-gamma, IL-4-, and IL-27-producing CD19(+) B cells in the spleen through flow cytometry. We also evaluated the mRNA and protein expression levels of these molecules using RT-PCR and western blotting in the knee tissues. Our results revealed that AMG487-treated mice showed decreased NF-kappa B p65-, NOS2-, MCP-1-, and TNF-alpha-, and increased IL-4-, and IL-27-producing CD19(+) B cells compared with the control mice. Additionally, AMG487 treatment significantly down regulated NF-kappa B p65, NOS2, TNF-alpha, and IFN-gamma, and upregulated IL-4 and IL-27 mRNA and protein expression levels compared with the control. Thus, our study shows that AMG487 exerts its anti-arthritic effect by potently downregulating inflammatory B cell signaling. Based on our observations, we propose that AMG487 could serve as a potential novel therapeutic agent for inflammatory and autoimmune diseases, including RA.
The therapeutic effect of dexmedetomidine on protection from renal failure via inhibiting KDM5A in lipopolysaccharide-induced sepsis of mice
LIFE SCIENCES
Authors: Liu, Yan; Yu, Yanming; Zhang, Jicheng; Wang, Chunting
Abstract
Background: Sepsis is an inflammatory response undergoing the complicate pathophysiological changes for host defense against pathogens. Previous studies suggested that dexmedetomidine (DEX) was served to controlling the over-reactive inflammatory effects to protect from the sepsis-induced organ failure via modulating histone methylation. However, the genome-wide changes of histone methylations upon DEX for sepsis treatment were poorly explored. Materials and methods: The acute kidney injury (AKI) mouse model were induced by lipopolysaccharide (LPS). DEX and KDM5 (H3K4 demethylases) inhibitors were used to add additionally. H3K4me3 antibody was used to conduct the ChIP-seq assay in renal cortex tissues. Results: We observed that the overall H3K4me3 levels were obviously declined in AKI group compared to the normal control. We further observed that the therapeutic effect of DEX was basically equal with CPI-455 and KDM5A-IN-1 but better than PBIT. The overall H3K4me3 level was reduced in AKI group compared to DEX (p = 0.008), and KDM5A-IN-1 groups (p = 0.022). The H3K4me3 enrichment of the multiple genes associated with inflammatory cytokines such as TNF-alpha, NOS2 and CCL2 increased in AKI model, but decreased upon DEX or KDM5A-IN-1 treatment. Consistently, transcription and protein levels of genes such as TLR4, MYD88, MTA1, PTGS2, CASP3 associated with NF-kappa B signaling pathway were all compromising after treated with DEX or KDM5A-IN-1 groups compared to AKI group. Conclusion: Taken together, our data determined that DEX could attenuate AKI through KDM5A inhibition in sepsis.