PO.TB10.03 · 肿瘤生物学
连续的衰老-逃逸循环驱动EGFR突变型NSCLC的基因组异质性和奥希替尼抵抗
Sequential senescence-escape cycles drive genomic heterogeneity and osimertinib resistance in EGFR-mutant NSCLC
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
对奥希替尼(osimertinib)的获得性抵抗仍然是EGFR突变型(EGFR⁺)NSCLC管理中的关键挑战。尽管大多数患者最初有反应,但复发是普遍的,即使在长期缓解后也是如此,这表明这一间期反映了一种持久的药物诱导的增殖停滞,与细胞衰老相符。我们在EGFR⁺ NSCLC细胞中证实了奥希替尼诱导的衰老(OsIS),并显示在停药数周后,衰老细胞恢复增殖。为确定反复的衰老和逃逸如何影响治疗反应和基因组演变,我们生成了同基因细胞系,在约六个月内经过四轮连续的OsIS扩增。选择出四条不同的演化轨迹,每条对EGFR抑制剂表现出不同程度的抵抗。尽管OsIS来源的细胞系保留了对顺铂(cisplatin)的敏感性,但它们对培美曲塞(pemetrexed)表现出异质性反应,而对微管蛋白相互作用药物和navitoclax的敏感性得以保留。基因组分析证实抵抗并非源于EGFR或MET的新发单核苷酸突变或拷贝数扩增。相反,所有OsIS来源的细胞系肿瘤突变负荷增加,并获得了与碱基切除修复缺陷、复制应激相关的突变特征,在抵抗性最强的细胞系中还有氧化应激相关特征。尽管存在这些特征,针对DNA修复或复制应激的治疗一律无效,表明抵抗并非由离散的基因组损伤驱动,而是由年龄相关的突变漂变驱动。这些发现支持这样一个模型:OsIS作为一个演化瓶颈,其逃逸促进基因组异质性并促进对EGFR抑制的抵抗。
查看英文原文 English 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.
利益披露 Disclosure
N. Jamil, None..
H. McDaid, None..
H. D. Hosgood, None..
N. Cornejal, None.