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Mesenchymal TNFR2 promotes the development of polyarthritis and comorbid heart valve stenosis
Maria Sakkou, Panagiotis Chouvardas, Lydia Ntari, Alejandro Prados, Kristin Moreth, Helmut Fuchs, Valerie Gailus-Durner, Martin Hrabe de Angelis, Maria C. Denis, Niki Karagianni, George Kollias
Maria Sakkou, Panagiotis Chouvardas, Lydia Ntari, Alejandro Prados, Kristin Moreth, Helmut Fuchs, Valerie Gailus-Durner, Martin Hrabe de Angelis, Maria C. Denis, Niki Karagianni, George Kollias
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Research Article

Mesenchymal TNFR2 promotes the development of polyarthritis and comorbid heart valve stenosis

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Abstract

Mesenchymal TNF signaling is etiopathogenic for inflammatory diseases such as rheumatoid arthritis and spondyloarthritis (SpA). The role of Tnfr1 in arthritis has been documented; however, Tnfr2 functions are unknown. Here, we investigate the mesenchymal-specific role of Tnfr2 in the TnfΔARE mouse model of SpA in arthritis and heart valve stenosis comorbidity by cell-specific, Col6a1-cre–driven gene targeting. We find that TNF/Tnfr2 signaling in resident synovial fibroblasts (SFs) and valvular interstitial cells (VICs) is detrimental for both pathologies, pointing to common cellular mechanisms. In contrast, systemic Tnfr2 provides protective signaling, since its complete deletion leads to severe deterioration of both pathologies. SFs and VICs lacking Tnfr2 fail to acquire pathogenic activated phenotypes and display increased expression of antiinflammatory cytokines associated with decreased Akt signaling. Comparative RNA sequencing experiments showed that the majority of the deregulated pathways in TnfΔARE mesenchymal-origin SFs and VICs, including proliferation, inflammation, migration, and disease-specific genes, are regulated by Tnfr2; thus, in its absence, they are maintained in a quiescent nonpathogenic state. Our data indicate a pleiotropy of Tnfr2 functions, with mesenchymal Tnfr2 driving cell activation and arthritis/valve stenosis pathogenesis only in the presence of systemic Tnfr2, whereas nonmesenchymal Tnfr2 overcomes this function, providing protective signals and, thus, containing both pathologies.

Authors

Maria Sakkou, Panagiotis Chouvardas, Lydia Ntari, Alejandro Prados, Kristin Moreth, Helmut Fuchs, Valerie Gailus-Durner, Martin Hrabe de Angelis, Maria C. Denis, Niki Karagianni, George Kollias

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Figure 5

Pathogenic mesenchymal Tnfr2 signaling regulates the expression of molecular components in the PPAR-γ, NF-κB, cell proliferation and disease-specific signaling pathways.

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Pathogenic mesenchymal Tnfr2 signaling regulates the expression of molec...
Validation of selected deregulated genes as depicted by qPCR in SFs (A) and VICs (B) isolated from 8-week-old Tnfrsf1bf/f, TnfΔARE/+, and TnfΔARE/+;Tnfrsf1bMCKO mice. Values represent means ± SEM; relative gene expression calculated to Tnfrsf1bf/f as ΔΔCt values and normalized for each sample with Gapdh expression (n = 5 mice/genotype SFs, 4 mice/genotype for VICs). (C) ELISA measurements of secreted cytokines and chemokines from isolated SFs. Values represent means ± SEM (n = 5 mice/ genotype). All data sets were analyzed with 1-way ANOVA, and Bonferroni’s multiple comparison tests were used to analyze groups for statistical significance (*P < 0.05, **P < 0.001, ***P < 0.0001). Common transcriptional network in SFs (D) and VICs (E) of TnfΔARE/+ and TnfΔARE/+;Tnfrsf1bMCKO compared with WT, as identified with the regulatory network enrichment analysis tool. Circle size indicates node centrality, and color coding is identical to the one used in the volcano plots (Figure 4), indicating significant upregulation, no change, and significant downregulation.

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ISSN 2379-3708

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