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Updated: Jun 18, 2025

Author Spotlight: Isolation and Culture of Primary Synovial Macrophages and Fibroblasts from Murine Arthritis Tissue
Published on: February 24, 2023
Oncostatin M-driven macrophage-fibroblast circuits as a drug target in autoimmune arthritis
Nam Cong-Nhat Huynh1,2, Rui Ling1, Masatsugu Komagamine1,3
1Department of Immunology, Graduate School of Medicine and Faculty of Medicine, The University of Tokyo, Tokyo, Japan.
Background:
Recent single-cell RNA sequencing (scRNA-seq) analysis revealed the functional heterogeneity and pathogenic cell subsets in immune cells, synovial fibroblasts and bone cells in rheumatoid arthritis (RA). JAK inhibitors which ameliorate joint inflammation and bone destruction in RA, suppress the activation of various types of cells in vitro. However, the key cellular and molecular mechanisms underlying the potent clinical effects of JAK inhibitors on RA remain to be determined. Our aim is to identify a therapeutic target for JAK inhibitors in vivo.
Methods:
We performed scRNA-seq analysis of the synovium of collagen-induced arthritis (CIA) mice treated with or without a JAK inhibitor, followed by a computational analysis to identify the drug target cells and signaling pathways. We utilized integrated human RA scRNA-seq datasets and genetically modified mice administered with the JAK inhibitor for the confirmation of our findings.
Results:
scRNA-seq analysis revealed that oncostatin M (OSM) driven macrophage-fibroblast interaction is highly activated under arthritic conditions. OSM derived from macrophages, acts on OSM receptor (OSMR)-expressing synovial fibroblasts, activating both inflammatory and tissue-destructive subsets. Inflammatory synovial fibroblasts stimulate macrophages, mainly through IL-6, to exacerbate inflammation. Tissue-destructive synovial fibroblasts promote osteoclast differentiation by producing RANKL to accelerate bone destruction. scRNA-seq analysis also revealed that OSM-signaling in synovial fibroblasts is the main signaling pathway targeted by JAK inhibitors in vivo. Mice specifically lacking OSMR in synovial fibroblasts (Osmr∆Fibro) displayed ameliorated inflammation and joint destruction in arthritis. The JAK inhibitor was effective on the arthritis of the control mice while it had no effect on the arthritis of Osmr∆Fibro mice.
Conclusions:
OSM functions as one of the key cytokines mediating pathogenic macrophage-fibroblast interaction. OSM-signaling in synovial fibroblasts is one of the main signaling pathways targeted by JAK inhibitors in vivo. The critical role of fibroblast-OSM signaling in autoimmune arthritis was shown by a combination of mice specifically deficient for OSMR in synovial fibroblasts and administration of the JAK inhibitor. Thus, the OSM-driven synovial macrophage-fibroblast circuit is proven to be a key driver of autoimmune arthritis, serving as a crucial drug target in vivo.
Insights
Targeting the oncostatin M (OSM) and its receptor (OSMR) pathway in synovial fibroblasts is a key therapeutic strategy for rheumatoid arthritis (RA). JAK inhibitors effectively treat RA by targeting this OSM-driven macrophage-fibroblast interaction.
Area of Science:
- Immunology
- Rheumatology
- Molecular Biology
Background:
- Rheumatoid arthritis (RA) involves immune cells, synovial fibroblasts, and bone cells.
- JAK inhibitors show promise in treating RA by suppressing cell activation.
- Key mechanisms of JAK inhibitor efficacy in RA require further elucidation.
Purpose of the Study:
- Identify therapeutic targets for JAK inhibitors in vivo for rheumatoid arthritis.
- Investigate the cellular and molecular mechanisms of JAK inhibitor action in RA.
Main Methods:
- Single-cell RNA sequencing (scRNA-seq) of synovium from collagen-induced arthritis (CIA) mice treated with JAK inhibitors.
- Computational analysis to identify drug target cells and pathways.
- Integration of human RA scRNA-seq data and genetically modified mice for validation.
Main Results:
- Oncostatin M (OSM) drives macrophage-fibroblast interactions in arthritis.
- OSM from macrophages activates synovial fibroblasts via OSMR, promoting inflammation and bone destruction.
- OSM-signaling in synovial fibroblasts is a primary target of JAK inhibitors in vivo.
- Mice lacking OSMR in fibroblasts showed reduced arthritis severity, and JAK inhibitor efficacy was lost.
Conclusions:
- OSM is a key cytokine mediating pathogenic macrophage-fibroblast interactions in RA.
- Targeting OSM-signaling in synovial fibroblasts is a crucial in vivo mechanism for JAK inhibitors.
- The OSM-driven synovial macrophage-fibroblast circuit is a key driver of autoimmune arthritis and a vital drug target.

