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Macrophage-derived Fgl2 dampens antitumor immunity through regulation of FcγRIIB+CD8+ T cells in melanoma
Kelsey B. Bennion, Julia Miranda R.Bazzano, Danya Liu, Maylene Wagener, Chrystal M. Paulos, Mandy L. Ford
Kelsey B. Bennion, Julia Miranda R.Bazzano, Danya Liu, Maylene Wagener, Chrystal M. Paulos, Mandy L. Ford
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Research Article Immunology Oncology

Macrophage-derived Fgl2 dampens antitumor immunity through regulation of FcγRIIB+CD8+ T cells in melanoma

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Abstract

Cancer immunotherapy has emerged as a promising therapeutic modality but heterogeneity in patient responsiveness remains. Thus, greater understanding of the immunologic factors that dictate response to immunotherapy is critical to improve patient outcomes. Here, we show that fibrinogen-like protein 2 (Fgl2) is elevated in the setting of melanoma in humans and mice and plays a functional role in inhibiting the CD8+ T cell response. Surprisingly, the tumor itself is not the major cellular source of Fgl2. Instead, we found that macrophage-secreted Fgl2 dampens the CD8+ T cell response through binding and apoptosis of FcγRIIB+CD8+ T cells. This regulation was CD8+ T cell autonomous and not via an antigen-presenting cell intermediary, as absence of Fcgr2b from the CD8+ T cells rendered T cells insensitive to Fgl2 regulation. Fgl2 is robustly expressed by macrophages in 10 cancer types in humans and in 6 syngeneic tumor models in mice, underscoring the clinical relevance of Fgl2 as a therapeutic target to promote T cell activity and improve patient immunotherapeutic response.

Authors

Kelsey B. Bennion, Julia Miranda R.Bazzano, Danya Liu, Maylene Wagener, Chrystal M. Paulos, Mandy L. Ford

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Figure 1

Fgl2 is elevated in melanoma and is immunosuppressive to tumor-specific CD8+ T cells.

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Fgl2 is elevated in melanoma and is immunosuppressive to tumor-specific ...
(A) Diagram and summary data of Fgl2 protein concentration through ELISA from the serum of healthy donors (n = 11) and patients with melanoma (n = 6). (B) Diagram and summary data of Fgl2 protein concentration through ELISA from the serum of mice before (pre-B16) and after challenge (post-B16) with B16-F10 melanoma (n = 20, pooled data from 2 experiments). (C) Summary data showing Fgl2 protein level in the tumor lysate of WT vs. Fgl2–/– mice (n = 7–8, pooled data from 2 experiments). (D) Summary data showing tumor weight of WT vs. Fgl2–/– mice given WT OT-I 14 days after tumor challenge (n = 18–23, pooled data from 3 experiments) and (E) a tumor growth curve measuring tumor size across a 14-day period (n = 10, pooled data from 3 experiments). (F) Summary data showing frequency of OT-I (Thy1.1+) at the (G) tumor and the (H) spleen in WT vs. Fgl2–/– mice 14 days after tumor challenge (n = 9–14, pooled data from 2 experiments). Mann-Whitney nonparametric, unpaired t test was used when comparing 2 groups. Wilcoxon’s matched-pairs nonparametric test was used for normalized data. Summary data are presented as mean ± SEM. *P < 0.05; **P < 0.01; ***P < 0.001; ****P < 0.0001.

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