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Restoration of the type I IFN–IL-1 balance through targeted blockade of PTGER4 inhibits autoimmunity in NOD mice
M. Jubayer Rahman, Kameron B. Rodrigues, Juan A. Quiel, Yi Liu, Vipul Bhargava, Yongge Zhao, Chie Hotta-Iwamura, Han-Yu Shih, Annie W. Lau-Kilby, Allison M.W. Malloy, Timothy W. Thoner, Kristin V. Tarbell
M. Jubayer Rahman, Kameron B. Rodrigues, Juan A. Quiel, Yi Liu, Vipul Bhargava, Yongge Zhao, Chie Hotta-Iwamura, Han-Yu Shih, Annie W. Lau-Kilby, Allison M.W. Malloy, Timothy W. Thoner, Kristin V. Tarbell
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Research Article Inflammation

Restoration of the type I IFN–IL-1 balance through targeted blockade of PTGER4 inhibits autoimmunity in NOD mice

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Abstract

Type I IFN (IFN-I) dysregulation contributes to type 1 diabetes (T1D) development, and although increased IFN-I signals are pathogenic at the initiation of autoimmune diabetes, IFN-I dysregulation at later pathogenic stages more relevant for therapeutic intervention is not well understood. We discovered that 5 key antigen-presenting cell subsets from adult prediabetic NOD mice have reduced responsiveness to IFN-I that is dominated by a decrease in the tonic-sensitive subset of IFN-I response genes. Blockade of IFNAR1 in prediabetic NOD mice accelerated diabetes and increased Th1 responses. Therefore, IFN-I responses shift from pathogenic to protective as autoimmunity progresses, consistent with chronic IFN-I exposure. In contrast, IL-1–associated inflammatory pathways were elevated in prediabetic mice. These changes correlated with human T1D onset-associated gene expression. Prostaglandin E2 (PGE2) and prostaglandin receptor 4 (PTGER4), a receptor for PGE2 that mediates both inflammatory and regulatory eicosanoid signaling, were higher in NOD mice and drive innate immune dysregulation. Treating prediabetic NOD mice with a PTGER4 antagonist restored IFNAR signaling, decreased IL-1 signaling, and decreased infiltration of leukocytes into the islets. Therefore, innate cytokine alterations contribute to both T1D-associated inflammation and autoimmune pathogenesis. Modulating innate immune balance via signals such as PTGER4 may contribute to treatments for autoimmunity.

Authors

M. Jubayer Rahman, Kameron B. Rodrigues, Juan A. Quiel, Yi Liu, Vipul Bhargava, Yongge Zhao, Chie Hotta-Iwamura, Han-Yu Shih, Annie W. Lau-Kilby, Allison M.W. Malloy, Timothy W. Thoner, Kristin V. Tarbell

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Figure 1

Tonic-sensitive IFN-I response genes are lower in 5 key APC subsets in adult prediabetic NOD mice.

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Tonic-sensitive IFN-I response genes are lower in 5 key APC subsets in a...
(A) Venn diagram of upregulated (red) and downregulated (blue) DE genes in APC subsets. Numbers are shown for DE genes unique to one subset, shared by all subsets, or shared by at least 2 subsets but not all. (B) IPA heat map for inflammatory gene pathways for moDCs and pDCs in NOD mice compared with B6.g7 mice. Each box was sized by the log(P value) and colored by the Z score. (C) Hierarchical clustering of significant IPA upstream regulators with lower expression in NOD mice, as ranked by the Z score. Z score indicates the predicted activity of the upstream regulator in NOD mice compared with B6.g7 mice. (D) Fold enrichment and –log(P value) are plotted for promoters motifs enriched in transcripts expressed lower in NOD mice compared with B6.g7 mice. Motifs shown are enriched (P < 0.1) in at least 4 of the DC subsets. Motifs are color coded, and DC subsets are represented by shape. Aligned logos represent the enriched motifs. (E) NOD ISG expression as a percentage of B6.g7 ISG expression for all ISGs (gray), tonic-sensitive ISGs (red), and ISGs that are not tonic-sensitive (blue). (F) Heat map of average fold change (NOD-B6.g7) for tonic-sensitive ISGs that are significant in at least 1 subset. Experiments were performed twice with 3 mice/group for each time. All replicates were averaged for each gene to obtain the average log2 expression value. Paired t test was performed for each DC subset on the ISG groups by comparing B6.g7 with NOD mice. Data are plotted as mean with 95% confidence intervals. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

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