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Integrin αvβ8–expressing tumor cells evade host immunity by regulating TGF-β activation in immune cells
Naoki Takasaka, Robert I. Seed, Anthony Cormier, Andrew J. Bondesson, Jianlong Lou, Ahmed Elattma, Saburo Ito, Haruhiko Yanagisawa, Mitsuo Hashimoto, Royce Ma, Michelle D. Levine, Jean Publicover, Rashaun Potts, Jillian M. Jespersen, Melody G. Campbell, Fraser Conrad, James D. Marks, Yifan Cheng, Jody L. Baron, Stephen L. Nishimura
Naoki Takasaka, Robert I. Seed, Anthony Cormier, Andrew J. Bondesson, Jianlong Lou, Ahmed Elattma, Saburo Ito, Haruhiko Yanagisawa, Mitsuo Hashimoto, Royce Ma, Michelle D. Levine, Jean Publicover, Rashaun Potts, Jillian M. Jespersen, Melody G. Campbell, Fraser Conrad, James D. Marks, Yifan Cheng, Jody L. Baron, Stephen L. Nishimura
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Research Article Immunology

Integrin αvβ8–expressing tumor cells evade host immunity by regulating TGF-β activation in immune cells

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Abstract

TGF-β is a promising immunotherapeutic target. It is expressed ubiquitously in a latent form that must be activated to function. Determination of where and how latent TGF-β (L-TGF-β) is activated in the tumor microenvironment could facilitate cell- and mechanism-specific approaches to immunotherapeutically target TGF-β. Binding of L-TGF-β to integrin αvβ8 results in activation of TGF-β. We engineered and used αvβ8 antibodies optimized for blocking or detection, which — respectively — inhibit tumor growth in syngeneic tumor models or sensitively and specifically detect β8 in human tumors. Inhibition of αvβ8 potentiates cytotoxic T cell responses and recruitment of immune cells to tumor centers — effects that are independent of PD-1/PD-L1. β8 is expressed on the cell surface at high levels by tumor cells, not immune cells, while the reverse is true of L-TGF-β, suggesting that tumor cell αvβ8 serves as a platform for activating cell-surface L-TGF-β presented by immune cells. Transcriptome analysis of tumor-associated lymphoid cells reveals macrophages as a key cell type responsive to β8 inhibition with major increases in chemokine and tumor-eliminating genes. High β8 expression in tumor cells is seen in 20%–80% of various cancers, which rarely coincides with high PD-L1 expression. These data suggest tumor cell αvβ8 is a PD-1/PD-L1–independent immunotherapeutic target.

Authors

Naoki Takasaka, Robert I. Seed, Anthony Cormier, Andrew J. Bondesson, Jianlong Lou, Ahmed Elattma, Saburo Ito, Haruhiko Yanagisawa, Mitsuo Hashimoto, Royce Ma, Michelle D. Levine, Jean Publicover, Rashaun Potts, Jillian M. Jespersen, Melody G. Campbell, Fraser Conrad, James D. Marks, Yifan Cheng, Jody L. Baron, Stephen L. Nishimura

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Figure 5

Differential gene expression by tumor cells, CD4+ T cells, CD8+ T cells, and CD11b+ cells reveals a role for β8 in suppression of a tumor-eliminating macrophage signature.

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Differential gene expression by tumor cells, CD4+ T cells, CD8+ T cells,...
(A) Heatmap of hierarchical clustering of differentially expressed (DE) genes determined by RNAseq across pooled CD11b+, CD4+, CD8+ T cells, and β8 LLC tumor cell samples isolated from mice (n = 10 in each group) treated with isotype or C6D4 (7 mg/kg i.p.) on days 5 or 12 after β8 LLC tumor cell injection. Tumors were harvested on day 15 after tumor cell injection. Hierarchical clustering analysis was carried out with the log10 (FPKM+1) of union of DE genes. DE was defined by q < 0.005 and |log2 (fold change)| > 1. Red represents highly expressed genes. Blue represents genes with low expression. Color gradient from red to blue reflects log10 (FPKM+1) values from large to small. ENSEMBL IDs are shown, and select gene names are indicated. The majority (60%) of DE genes were found in macrophages (18 up; 12 down), which drives the clustering of T cells to be defined by antibody treatment rather than CD4+ or CD8+ lineage. (B) Validation of key macrophage DE genes from RNA isolated from pooled macrophage samples (n = 4 pools) that had sorted for purity (CD45+, F4/80, CD11b+) and assessed by qPCR for ifng, cxcl9, ccl6, gzmg, gzmd, and postn. Shown is expression (2-Δct) relative to hprt. *P < 0.05 by unpaired Mann-Whitney U test.

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