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ACTH treatment promotes murine cardiac allograft acceptance
Jing Zhao, Liwei Jiang, Mayuko Uehara, Naima Banouni, Basmah S. Al Dulaijan, Jamil Azzi, Takaharu Ichimura, Xiaofei Li, Petr Jarolim, Paolo Fiorina, Stefan G. Tullius, Joren C. Madsen, Vivek Kasinath, Reza Abdi
Jing Zhao, Liwei Jiang, Mayuko Uehara, Naima Banouni, Basmah S. Al Dulaijan, Jamil Azzi, Takaharu Ichimura, Xiaofei Li, Petr Jarolim, Paolo Fiorina, Stefan G. Tullius, Joren C. Madsen, Vivek Kasinath, Reza Abdi
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Research Article Immunology Transplantation

ACTH treatment promotes murine cardiac allograft acceptance

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Abstract

Heart transplantation is the optimal therapy for patients with end-stage heart disease, but its long-term outcome remains inadequate. Recent studies have highlighted the importance of the melanocortin receptors (MCRs) in inflammation, but how MCRs regulate the balance between alloreactive T cells and Tregs, and whether they impact chronic heart transplant rejection, is unknown. Here, we found that Tregs express MC2R, and MC2R expression was highest among all MCRs by Tregs. Our data indicate that adrenocorticotropic hormone (ACTH), the sole ligand for MC2R, promoted the formation of Tregs by increasing the expression of IL-2Rα (CD25) in CD4+ T cells and activation of STAT5 in CD4+CD25+ T cells. ACTH treatment also improved the survival of heart allografts and increased the formation of Tregs in CD28KO mice. ACTH treatment synergized with the tolerogenic effect of CTLA-4–Ig, resulting in long-term survival of heart allografts and an increase in intragraft Tregs. ACTH administration also demonstrated higher prolongation of heart allograft survival in transgenic mouse recipients with both complete KO and conditional KO of PI3Kγ in T cells. Finally, ACTH treatment reduced chronic rejection markedly. These data demonstrate that ACTH treatment improved heart transplant outcomes, and this effect correlated with an increase in Tregs.

Authors

Jing Zhao, Liwei Jiang, Mayuko Uehara, Naima Banouni, Basmah S. Al Dulaijan, Jamil Azzi, Takaharu Ichimura, Xiaofei Li, Petr Jarolim, Paolo Fiorina, Stefan G. Tullius, Joren C. Madsen, Vivek Kasinath, Reza Abdi

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Figure 1

ACTH induces formation of Tregs through MC2R.

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ACTH induces formation of Tregs through MC2R.
(A) Comparison of MC1R, MC...
(A) Comparison of MC1R, MC2R, MC4R, and MC5R gene expression by human CD4+CD25+ cells by qPCR (n = 3–5/group). (B) Comparison of MC2R gene expression by human CD3–CD19– cells, CD19+ B cells, CD3+ T cells, and CD4+CD25+ T cells by qPCR (n = 3–5/group). (C) Comparison of MC2R gene expression by human Tregs versus naive T cells by qPCR (n = 3/group). (D) Immunofluorescence staining of MC2R expression in mouse Tregs and non-Tregs from WT and CD28KO mice. Scale bar: 50 μm. (E) Flow cytometric analysis of percentage of CD4+CD25+Foxp3+ cells (Tregs) in Treg induction assay of splenocytes from WT and CD28KO mice, following either treatment with ACTH or no treatment (Control). (F) Comparison of gene expression of Il2ra and Il2 by Tregs of WT and CD28KO mice, following either ACTH treatment or no treatment (Control), by qPCR. (G) Comparison of MRAP2 protein expression by Tregs from CD28KO mice following ACTH treatment or no treatment (Control) by Western blot (P = 0.07). (H) Comparison of p-STAT5 gene expression by Tregs from CD28KO mice following ACTH treatment or no treatment (Control) by Western blot. (I) Representative flow cytometric plots of CD25 expression by CD4+ cells in Treg induction assay following treatment with ACTH and MC2R blocker. (J) Flow cytometric analysis of percentage of CD25+CD4+ cells following treatment with ACTH, ACTH, and MC2R blocker, or no treatment (Control) (n = 3/group). Data presented as mean ± SEM; *P < 0.05, **P < 0.01, ***P < 0.001 by 2-way ANOVA with Turkey’s multiple comparisons (A, B, and J) and Student’s t test (C, E–H).

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