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The CHI3L1-neutrophil axis drives immune suppression and breast cancer metastatic dissemination
Tarek Taifour, Adéline Massé, Yu Gu, Virginie Sanguin-Gendreau, Dongmei Zuo, Bin Xiao, Emilie Solymoss, Yunyun Shen, Hailey Proud, Sherif Samer Attalla, Vasilios Papavasiliou, Nancy U. Lin, Melissa E. Hughes, Kalie Smith, Chun Geun Lee, Suchitra Kamle, Josie Ursini-Siegel, Jack A. Elias, Peter M. Siegel, Rinath Jeselsohn, William J. Muller
Tarek Taifour, Adéline Massé, Yu Gu, Virginie Sanguin-Gendreau, Dongmei Zuo, Bin Xiao, Emilie Solymoss, Yunyun Shen, Hailey Proud, Sherif Samer Attalla, Vasilios Papavasiliou, Nancy U. Lin, Melissa E. Hughes, Kalie Smith, Chun Geun Lee, Suchitra Kamle, Josie Ursini-Siegel, Jack A. Elias, Peter M. Siegel, Rinath Jeselsohn, William J. Muller
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Research Article Immunology Oncology

The CHI3L1-neutrophil axis drives immune suppression and breast cancer metastatic dissemination

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Abstract

Immunosuppression and metastasis are critical hallmarks of breast cancer, often linked to poor patient outcomes. The secreted cytokine chitinase-3–like 1 (CHI3L1) is frequently overexpressed in breast cancer samples and promotes an immunosuppressed tumor microenvironment. Notably, CHI3L1 expression is elevated in metastatic patient samples when compared with the matched primary breast tumor. To investigate its role in breast cancer metastasis, we generated an inducible genetically engineered mouse model that overexpresses CHI3L1 in the mammary epithelium. Ectopic expression of CHI3L1 in the polyomavirus middle T (PyMT) mouse model of breast cancer suppressed antitumor immune responses, accelerated mammary tumor onset, and enhanced lung metastasis. Mechanistically, elevated CHI3L1 expression in the mammary epithelium enhanced neutrophil recruitment, which subsequently degraded the extracellular matrix and increased the number of circulating tumor cells. These findings reveal a key mechanism driving metastatic dissemination and argue that therapeutically targeting Chi3l1 could enhance antitumor immunity and suppress metastasis.

Authors

Tarek Taifour, Adéline Massé, Yu Gu, Virginie Sanguin-Gendreau, Dongmei Zuo, Bin Xiao, Emilie Solymoss, Yunyun Shen, Hailey Proud, Sherif Samer Attalla, Vasilios Papavasiliou, Nancy U. Lin, Melissa E. Hughes, Kalie Smith, Chun Geun Lee, Suchitra Kamle, Josie Ursini-Siegel, Jack A. Elias, Peter M. Siegel, Rinath Jeselsohn, William J. Muller

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Figure 2

Chi3l1 OE suppresses antitumor immune responses.

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Chi3l1 OE suppresses antitumor immune responses.
(A) Staining of WT, Chi...
(A) Staining of WT, Chi3l1 OE, Stat3–/–, and Stat3–/– Chi3l1 OE MIC mammary glands at 2 weeks after induction for CD8, granzyme B (GZMB), CD3, Pan-CK, and DAPI. (B) RNA FISH against IFN-γ with staining for CD3, Pan-CK, and DAPI on mammary tissue from WT, Chi3l1 OE, Stat3–/–, and Stat3–/– Chi3l1 OE MIC mammary glands at 2 weeks after induction. (C–G) Quantification of total CD3+CD8+, CD3+CD8+GZMB+, and tumor-infiltrating CD3+CD8+ T cells, CD3+IFN-γ+ cells, and Ly6G+ cells in WT (n = 5), Chi3l1 OE (n = 8), Stat3–/– (n = 6), and Stat3–/– Chi3l1 OE (n = 9) MIC mammary glands at 2 weeks after induction. (H) Staining of WT, Chi3l1 OE, Stat3–/–, and Stat3–/– Chi3l1 OE MIC mammary glands at 2 weeks after induction using antibodies against Ly6G, MPO, NE, pan-CK, and DAPI. (I and J) Quantification of total Ly6G+MPO+ cells and Ly6G+MPO+NE+ cells in WT (n = 5), Chi3l1 OE (n = 8), Stat3–/– (n = 6), and Stat3–/– Chi3l1 OE (n = 9) MIC mammary glands at 2 weeks after induction. (K) Quantification of CitH3 immunoblots normalized to α-tubulin. (L) Immunoblots for CitH3 and α-tubulin on WT (n = 3), Chi3l1 OE (n = 3), Stat3–/– (n = 3), and Stat3–/– Chi3l1 OE (n = 3) MIC mammary glands at 2 weeks after induction. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001 by 1-way ANOVA with Tukey’s post hoc test. Scale bars: 100 μm.

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