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CD4+ T helper 2 cell–macrophage crosstalk induces IL-24–mediated breast cancer suppression
Bo Wang, Yun Xia, Can Zhou, Yuhan Zeng, Heehwa G. Son, Shadmehr Demehri
Bo Wang, Yun Xia, Can Zhou, Yuhan Zeng, Heehwa G. Son, Shadmehr Demehri
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Research Article Immunology Oncology

CD4+ T helper 2 cell–macrophage crosstalk induces IL-24–mediated breast cancer suppression

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Abstract

CD4+ T cells contribute to antitumor immunity and are implicated in the efficacy of cancer immunotherapies. In particular, CD4+ T helper 2 (Th2) cells were recently found to block spontaneous breast carcinogenesis. However, the antitumor potential of Th2 cells in targeting established breast cancer remains uncertain. Herein, we demonstrate that Th2 cells induced by the topical calcipotriol/thymic stromal lymphopoietin cytokine axis suppressed the growth of established mammary tumors in mice. Interleukin-24 (IL-24), an anticancer cytokine, was highly upregulated in macrophages infiltrating calcipotriol-treated mammary tumors. Macrophages expressed IL-24 in response to IL-4 signaling in combination with Toll-like receptor 4 (TLR4) agonists (e.g., HMGB1) in vitro. Calcipotriol treatment significantly increased HMGB1 release by tumor cells in vivo. CD4+ T cell depletion reduced HMGB1 and IL-24 expression, reversing calcipotriol’s therapeutic efficacy. Macrophage depletion and TLR4 inhibition also reduced the therapeutic efficacy of calcipotriol. Importantly, calcipotriol treatment failed to control mammary tumors lacking the IL-24 receptor on tumor cells. Collectively, our findings reveal that Th2 cell–macrophage crosstalk leads to IL-24–mediated tumor cell death, highlighting a promising therapeutic strategy to tackle breast cancer.

Authors

Bo Wang, Yun Xia, Can Zhou, Yuhan Zeng, Heehwa G. Son, Shadmehr Demehri

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Figure 3

Calcipotriol-mediated mammary tumor suppression and IL-24 induction rely on TSLP and CD4+ T cells.

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Calcipotriol-mediated mammary tumor suppression and IL-24 induction rely...
(A) Schematic diagram outlining the experimental approach to assess the mechanism of topical calcipotriol treatment in inhibiting mammary tumor growth. WT and TslprKO mice served as tumor recipients, which were treated with anti-CD4 Ab (αCD4 Ab) or IgG control every 5 days starting 1 day before tumor cell implantation. Two days after orthotopic PyMt mammary tumor cell implantation, mice were topically treated with 20 nmol calcipotriol or EtOH every 2 days. (B and C) PyMt mammary tumor growth in WT and TslprKO mice subjected to calcipotriol versus EtOH treatments, with or without CD4+ T cell depletion, shown as (B) mean tumor volumes + SD and (C) spider plot. WT + EtOH + IgG (n = 6), WT + calcipotriol + IgG (n = 7), WT + calcipotriol + αCD4 Ab (n = 7), and TslprKO + calcipotriol + IgG (n = 7). (D) Representative IF images of mammary tumors stained for CD4 and IL-24. (E and F) Quantification of (E) CD4+ T cells and (F) IL-24+ cells in WT mammary tumors treated with EtOH + IgG, calcipotriol + IgG, or calcipotriol + αCD4 Ab. Each dot represents a high-power field (HPF) image. Three HPF images from 5 tumors are included in each group. (G) Correlation between the presence of CD4+ T cells and IL-24+ cells in WT mammary tumors. Bar graphs show mean + SD, 1-way ANOVA (E and F), 2-way ANOVA (B and C), and Spearman’s rank correlation analysis (G). Scale bar: 100 μm (D).

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