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April 5, 2026Cancer Research0 citations

Abstract 3448: Sequential senescence-escape cycles drive genomic heterogeneity and osimertinib resistance in EGFR-mutant NSCLC

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NJNazia JamilHMHayley M. McDaidHHH. Dean Hosgood

Key Points

  • The study aims to understand how sequential senescence-escape cycles contribute to drug resistance in EGFR-mutant non-small cell lung cancer (NSCLC).
  • Generated isogenic cell lines subjected to four sequential rounds of osimertinib-induced senescence.
  • Performed genomic analyses to assess mutational burden and signatures related to DNA repair and replication stress.
  • Evaluated therapeutic responses to various drugs, including cisplatin and pemetrexed.
  • Osimertinib-induced senescence leads to heterogeneous resistance to EGFR inhibitors after drug withdrawal.
  • OsIS-derived lines showed increased tumor mutational burden and specific mutational signatures.
  • Therapies targeting DNA repair or replication stress were ineffective against the acquired resistance.

Abstract

Abstract Acquired resistance to osimertinib remains a critical challenge in the management of EGFR-mutant (EGFR+) NSCLC. Although most patients initially respond, relapse is universal, even after prolonged remissions, suggesting that this interval reflects a durable drug-induced proliferative arrest consistent with cellular senescence. We demonstrate Osimertinib-Induced Senescence (OsIS) in EGFR+ NSCLC cells and show that, several weeks after drug withdrawal, senescent cells resume proliferation. To determine how repeated senescence and escape influence therapeutic response and genomic evolution, we generated isogenic cell lines expanded through four sequential rounds of OsIS over approximately six months. Four distinct evolutionary trajectories were selected, each exhibiting varying degrees of resistance to EGFR inhibitors. Although OsIS-derived lines retained sensitivity to cisplatin, they displayed heterogeneous responses to pemetrexed, while sensitivity to tubulin-interacting drugs and navitoclax was preserved. Genomic analyses confirmed that resistance did not arise from de novo single nucleotide mutations or copy number amplification in EGFR or MET. Instead, all OsIS-derived lines had increased tumor mutational burden and acquired mutational signatures associated with base-excision repair defects, replication stress, and, in the most resistant line, oxidative stress. Despite these signatures, therapies directed at DNA repair or replication stress were uniformly ineffective, indicating that resistance was not driven by discrete genomic lesions but rather by age-associated mutational drift. These findings support a model in which OsIS functions as an evolutionary bottleneck whose escape promotes genomic heterogeneity and promotes resistance to EGFR inhibition. Citation Format: Nazia Jamil, Hayley McDaid, Howard D. Hosgood, Qualia Hooker, Nadjet Cornejal. Sequential senescence-escape cycles drive genomic heterogeneity and osimertinib resistance in EGFR-mutant NSCLC abstract. In: Proceedings of the American Association for Cancer Research Annual Meeting 2026; Part 1 (Regular Abstracts); 2026 Apr 17-22; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2026;86(7 Suppl):Abstract nr 3448.

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Cite This Study

Jamil et al. (2026) studied this question.

synapsesocial.com/papers/69d1fca7a79560c99a0a23c4https://doi.org/10.1158/1538-7445.am2026-3448
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