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Updated: Jul 16, 2025

Author Spotlight: Advancements in Molecular Biomarker Testing for Non-Squamous Non-Small Cell Lung Cancer
Published on: September 8, 2023
ATM Mutations Associate with Distinct Co-Mutational Patterns and Therapeutic Vulnerabilities in NSCLC
Natalie I Vokes1,2, Ana Galan Cobo3, Margarita Fernandez-Chas4
1Department of Thoracic and Head and Neck Medical Oncology, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Purpose:
Ataxia-telangiectasia mutated (ATM) is the most frequently mutated DNA damage repair gene in non-small cell lung cancer (NSCLC). However, the molecular correlates of ATM mutations and their clinical implications have not been fully elucidated.
Experimental Design:
Clinicopathologic and genomic data from 26,587 patients with NSCLC from MD Anderson, public databases, and a de-identified nationwide (US-based) NSCLC clinicogenomic database (CGDB) were used to assess the co-mutation landscape, protein expression, and mutational processes in ATM-mutant tumors. We used the CGDB to evaluate ATM-associated outcomes in patients treated with immune checkpoint inhibitors (ICI) with or without chemotherapy, and assessed the effect of ATM loss on STING signaling and chemotherapy sensitivity in preclinical models.
Results:
Nonsynonymous mutations in ATM were observed in 11.2% of samples (2,980/26,587) and were significantly associated with mutations in KRAS, but mutually exclusive with EGFR (q < 0.1). KRAS mutational status constrained the ATM co-mutation landscape, with strong mutual exclusivity with TP53 and KEAP1 within KRAS-mutated samples. Those ATM mutations that co-occurred with TP53 were more likely to be missense mutations and associate with high mutational burden, suggestive of non-functional passenger mutations. In the CGDB cohort, dysfunctional ATM mutations associated with improved OS only in patients treated with ICI-chemotherapy, and not ICI alone. In vitro analyses demonstrated enhanced upregulation of STING signaling in ATM knockout cells with the addition of chemotherapy.
Conclusions:
ATM mutations define a distinct subset of NSCLC associated with KRAS mutations, increased TMB, decreased TP53 and EGFR co-occurrence, and potential increased sensitivity to ICIs in the context of DNA-damaging chemotherapy.
Insights
Ataxia-telangiectasia mutated (ATM) gene mutations in non-small cell lung cancer (NSCLC) correlate with KRAS mutations and improved outcomes with chemotherapy plus immune checkpoint inhibitors.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Ataxia-telangiectasia mutated (ATM) is a key DNA damage repair gene frequently altered in non-small cell lung cancer (NSCLC).
- The molecular landscape and clinical impact of ATM mutations in NSCLC remain incompletely understood.
Purpose of the Study:
- To elucidate the molecular correlates of ATM mutations in NSCLC.
- To investigate the clinical implications of ATM mutations, particularly in response to immune checkpoint inhibitors (ICIs).
Main Methods:
- Analysis of clinicopathologic and genomic data from over 26,000 NSCLC patients.
- Assessment of ATM mutation co-occurrence, protein expression, and mutational processes.
- Evaluation of ATM-associated outcomes in patients treated with ICIs, with or without chemotherapy.
- Preclinical studies on ATM loss, STING signaling, and chemotherapy sensitivity.
Main Results:
- ATM mutations occurred in 11.2% of NSCLC samples, significantly associated with KRAS mutations and mutually exclusive with EGFR mutations.
- ATM mutations showed distinct co-mutation patterns with KRAS, TP53, and KEAP1.
- Dysfunctional ATM mutations were linked to improved overall survival (OS) in patients receiving ICI plus chemotherapy, but not ICI alone.
- In vitro studies showed enhanced STING signaling and chemotherapy sensitivity in ATM-deficient cells.
Conclusions:
- ATM mutations identify a unique NSCLC subtype characterized by KRAS mutations, high tumor mutational burden (TMB), and altered co-mutation profiles.
- ATM-mutant NSCLC may exhibit increased sensitivity to combination therapy with ICIs and DNA-damaging chemotherapy.
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