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The schedule of ATR inhibitor AZD6738 can potentiate or abolish antitumor immune responses to radiotherapy
Frank P. Vendetti, Pinakin Pandya, David A. Clump, Sandra Schamus-Haynes, Meysam Tavakoli, Maria diMayorca, Naveed M. Islam, Jina Chang, Greg M. Delgoffe, Jan H. Beumer, Christopher J. Bakkenist
Frank P. Vendetti, Pinakin Pandya, David A. Clump, Sandra Schamus-Haynes, Meysam Tavakoli, Maria diMayorca, Naveed M. Islam, Jina Chang, Greg M. Delgoffe, Jan H. Beumer, Christopher J. Bakkenist
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Research Article Immunology Oncology

The schedule of ATR inhibitor AZD6738 can potentiate or abolish antitumor immune responses to radiotherapy

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Abstract

Inhibitors of the DNA damage signaling kinase ATR increase tumor cell killing by chemotherapies that target DNA replication forks but also kill rapidly proliferating immune cells including activated T cells. Nevertheless, ATR inhibitor (ATRi) and radiotherapy (RT) can be combined to generate CD8+ T cell–dependent antitumor responses in mouse models. To determine the optimal schedule of ATRi and RT, we determined the impact of short-course versus prolonged daily treatment with AZD6738 (ATRi) on responses to RT (days 1–2). Short-course ATRi (days 1–3) plus RT caused expansion of tumor antigen–specific, effector CD8+ T cells in the tumor-draining lymph node (DLN) at 1 week after RT. This was preceded by acute decreases in proliferating tumor-infiltrating and peripheral T cells and a rapid proliferative rebound after ATRi cessation, increased inflammatory signaling (IFN-β, chemokines, particularly CXCL10) in tumors, and an accumulation of inflammatory cells in the DLN. In contrast, prolonged ATRi (days 1–9) prevented the expansion of tumor antigen–specific, effector CD8+ T cells in the DLN, and entirely abolished the therapeutic benefit of short-course ATRi with RT and anti–PD-L1. Our data argue that ATRi cessation is essential to allow CD8+ T cell responses to both RT and immune checkpoint inhibitors.

Authors

Frank P. Vendetti, Pinakin Pandya, David A. Clump, Sandra Schamus-Haynes, Meysam Tavakoli, Maria diMayorca, Naveed M. Islam, Jina Chang, Greg M. Delgoffe, Jan H. Beumer, Christopher J. Bakkenist

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Figure 7

Prolonged daily ATRi treatment abolishes the adaptive CD8+ T cell response following RT.

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Prolonged daily ATRi treatment abolishes the adaptive CD8+ T cell respon...
(A–D) CT26 tumor–bearing mice were treated with ATRi on days 1–9 (ATRi QDx9), RT 2 Gy x 2 (days 1–2), ATRi QDx9 + RT, or vehicle, and immunoprofiled at day 9, 1 hour after the final dose of ATRi. (A) Quantitation of proliferating (Ki67+) CD8+ T cells, as percentages of CD8+ T cells, in DLN and TILs. (B) Quantitation of CD8+ T cells in DLN (per 1,000 cells) and TILs (per milligram of tumor). (C) Quantitation of CD8+ Tem and Tcm cells, as percentages of CD8+ T cells, in DLN. (A–C) Data from 2 independent experiments (1 for ATRi QDx9 TIL) with 2–5 mice per group. n = 7 Vehicle, 7 ATRi QDx9 DLN (4 TIL), 9 RT TIL (6 DLN), 7 ATRi QDx9 + RT. (D) Representative cytograms and quantitation of Pentamer+ CD8+ T cells, as percentages of CD8+CD4– cells, in DLN. Data from 5 independent experiments with 1–4 mice per group. n = 10 Vehicle, 9 ATRi QDx9, 9 RT, 12 ATRi QDx9 + RT. (E and F) B16 tumor–bearing mice were treated with RT 4 Gy x 2 (days 1–2), ATRi QDx3 + RT, ATRi QDx9 + RT, or vehicle, and immunoprofiled at day 9 (1 hour after the final dose of ATRi QDx9). (E) Quantitation of proliferating (Ki67+) CD8+ T cells, as percentages of live, CD45+ immune cells, in DLN and TILs. (F) Quantitation of CD8+ T cells, per milligram of tumor, in TILs. (E and F) Data from 2 independent experiments with 2–6 mice per group. n = 9 Vehicle DLN (5 TIL), 8 RT, 7 ATRi QDx3 + RT, 9 ATRi QDx9 + RT DLN (8 TIL). (A–F) Mean and SD bars shown. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001 by ANOVA with Tukey’s multiple-comparison test.

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