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Updated: May 15, 2025

Tailoring In Vivo Cytotoxicity Assays to Study Immunodominance in Tumor-specific CD8+ T Cell Responses
Published on: May 6, 2019
The cold immunological landscape of ATM-deficient cancers
Sonali Sinha1, Victor Ng1, Ardijana Novaj1
1Department of Radiation Oncology, Memorial Sloan Kettering Cancer Center, New York, New York, USA.
Background:
Mutations in genes encoding DNA repair factors, which facilitate mismatch repair, homologous recombination, or DNA polymerase functions, are known to enhance tumor immunogenicity. Ataxia telangiectasia mutated (ATM) is a central regulator of DNA double-strand break repair and is frequently affected by somatic or germline mutations in various cancer types, including breast, prostate, pancreatic, and lung cancer. However, the consequences of ATM loss on tumor immunogenicity are poorly understood.
Methods:
We generated isogenic ATM-null models using CRISPR in murine triple-negative breast (4T1) and colorectal (CT26) cancer cell lines. ATM inactivation was confirmed by PCR and western blot. Immune cell infiltrates were assessed by flow cytometry and immunohistochemistry in both murine tumors and human samples from breast and lung cancers (via The Cancer Genome Atlas and institutional cohorts). In vivo, the impact of ATM loss on tumor growth and response to immune checkpoint blockade (anti-programmed cell death protein-1 (PD-1)) was evaluated. Furthermore, we compared the effects of different DNA-damaging agents-including an ATR inhibitor (RP-3500), a PARP inhibitor (olaparib), and the topoisomerase II inhibitor etoposide-on interferon-stimulated gene (ISG) expression and immune modulation.
Results:
We find that-in contrast to other DNA repair defects-ATM deficiency (1) fails to encourage immune effector cell infiltration into tumors, and (2) does not enable immune cell recruitment via synthetic lethality strategies in clinical trials, such as with ATR inhibition. Assessing various DNA-damaging agents in Atm null tumors revealed a differential activation of type I interferon (IFN) signaling, with etoposide, a topoisomerase II inhibitor, emerging as the strongest activator of ISG under these conditions. Yet, PD-1-targeted immune checkpoint blockade does not bolster the therapeutic activity of etoposide in Atm-null syngeneic tumor models, nor does it modify the tumor microenvironment, suggesting that type I IFN signaling alone is insufficient to overcome immunosuppression in immunologically cold ATM null neoplasms.
Conclusions:
ATM deficiency, while compromising DNA repair and enhancing sensitivity to radiation and ATR inhibition, does not increase tumor antigenicity or immunogenicity. Altogether, our results have important implications for the design of novel combination therapies for ATM null tumors and highlight the importance of antigenicity in the immunological consequences of defective DNA repair.
Insights
Ataxia telangiectasia mutated (ATM) loss does not enhance tumor immunogenicity, even with DNA-damaging agents. ATM deficiency compromises DNA repair but fails to increase immune cell infiltration or antigenicity in tumors.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Mutations in DNA repair genes can increase tumor immunogenicity.
- Ataxia telangiectasia mutated (ATM) is crucial for DNA double-strand break repair and frequently mutated in cancers.
- The impact of ATM loss on tumor immunity remains unclear.
Purpose of the Study:
- To investigate the consequences of ATM loss on tumor immunogenicity and response to therapies.
- To explore ATM deficiency's effect on immune cell infiltration and tumor microenvironment.
- To evaluate DNA-damaging agents' impact on ATM-null tumors and immune signaling.
Main Methods:
- Generated ATM-null murine cancer models (4T1, CT26) using CRISPR.
- Assessed immune cell infiltrates via flow cytometry and immunohistochemistry in murine and human samples.
- Evaluated in vivo tumor growth, response to anti-PD-1 blockade, and effects of ATR inhibitors, PARP inhibitors, and etoposide on ISG expression.
Main Results:
- ATM deficiency did not increase immune cell infiltration or enable recruitment via synthetic lethality (e.g., ATR inhibition).
- Etoposide, a topoisomerase II inhibitor, strongly activated type I interferon (IFN) signaling in ATM-null tumors.
- Anti-PD-1 therapy did not improve etoposide's efficacy or alter the tumor microenvironment in ATM-null models, indicating insufficient immune activation.
Conclusions:
- ATM deficiency compromises DNA repair and increases sensitivity to radiation and ATR inhibition but does not enhance tumor antigenicity or immunogenicity.
- ATM loss results in immunologically "cold" tumors, unresponsive to current immune checkpoint blockade strategies.
- Findings emphasize the critical role of antigenicity in the immunological outcomes of DNA repair defects and inform novel combination therapy design for ATM-null cancers.
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