PO.CL01.02 · 临床研究

整合基因组学和真实世界数据以预测转移性乳腺癌不同 HER2 亚型对 fam-trastuzumab deruxtecan 的应答

Integrating genomics and real-world data to predict fam-trastuzumab deruxtecan response in metastatic breast cancer across HER2 subtypes

海报缩略图:整合基因组学和真实世界数据以预测转移性乳腺癌不同 HER2 亚型对 fam-trastuzumab deruxtecan 的应答
编号 1038 展板 6 时间 4/19 02:00–05:00 区域 Section 41 主讲 Abraham Apfel, PhD
分会场 Biomarkers Predictive of Therapeutic Benefit 2
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作者与单位 Authors & Affiliations

Abraham Apfel1, Alka A. Potdar1, Yuanqing Ye1, Viswanath Devanarayan1, Evvie Jagoda2, Shelley MacNeil2, Yan Zhang1, Pallavi Sachdev1

1Eisai Inc., Nutley, NJ,2Tempus, Chicago, IL

摘要 Abstract

中文摘要
背景:转移性乳腺癌(MBC)是一项重大临床挑战。Fam-trastuzumab deruxtecan-nxki(T-DXd)是一种靶向 HER2 的抗体-药物偶联物,已在 HER2+ 和 HER2-low 亚型中显示疗效。然而,在真实世界环境中,除 HER2 状态之外的预测性生物标志物尚未充分探索。我们利用来自 Tempus 数据库¹ 的真实世界数据,评估在一个临床注释良好的接受 T-DXd 治疗的 MBC 患者队列中体细胞突变与临床结局之间的关联,旨在识别应答和生存的基因组相关因素,以指导患者选择和治疗策略。 方法:我们分析了 124 例具有基线肿瘤-正常配对测序数据(Tempus xT²)的 MBC 患者。终点包括真实世界最佳总体应答(rwBOR)、无进展生存(rwPFS)、至下一次治疗时间(rwTTNT)和总生存(rwOS)。根据精选的 rwBOR,将患者分类为应答者(CR/PR)或非应答者(SD/PD)。Oncoplot 按 rwBOR 和 HER2 状态识别频繁突变的基因。逻辑回归评估 rwBOR(以非应答者为参照);Cox 比例风险模型评估 rwPFS、rwTTNT 和 rwOS,并校正 T-DXd 起始时年龄、ER/PR 状态、治疗计划、采样时间和组织部位。模型针对所有变异和仅致病性子集运行,并按 HER2 状态分层。纳入突变频率 >4% 的基因(全变异模型 50-60 个基因;仅致病性模型 11-13 个基因)。 结果:最常突变的基因为 TP53(48%)、PIK3CA(31%)和 GATA3(17%)。在全变异模型中,DYNC2H1 与更差的 rwBOR(HER2+:P = 0.006;HER2-low:P = 0.049)、rwOS(HER2-low:P = 0.014)和 rwTTNT(HER2-low:P = 0.004)相关。PIK3CA 突变与改善的 rwBOR(HER2+:P = 0.016)、rwPFS(全部:P = 0.01;HER2-low:P = 0.007)和 rwOS(HER2-low:P = 0.002)相关。其他具有一致关联的基因包括 SPEN、POLQ、MED12、MAP2K4、ARID1B、SYNE1、KMT2C 和 RB1。仅致病性分析确认 PIK3CA 是跨多个终点的关键预测因子。虽然大多数模型的 FDR 校正 P 值 >0.2,但我们优先考虑名义 P < 0.1 且跨终点具有一致预后方向的基因,作为潜在信号的指示。 结论:诸如 PIK3CA 之类的突变在不同 HER2 亚型中一致地与改善的结局相关,提示其作为预测性/预后性生物标志物的潜力。相反,DYNC2H1 突变与更差的结局相关,尤其在 HER2-low 患者中,提示潜在的耐药机制。这些发现支持将基因组数据整合到真实世界证据框架中,以增强患者分层、个体化治疗,并指导 MBC 中生物标志物驱动的临床试验。 参考文献:1. www.tempus.com 2. Tempus-xT.v4_Validation
查看英文原文 English abstract
Background: Metastatic breast cancer (MBC) is a major clinical challenge. Fam-trastuzumab deruxtecan-nxki (T-DXd), an antibody-drug conjugate targeting HER2, has shown efficacy across HER2+ and HER2-low subtypes. However, predictive biomarkers beyond HER2 status are underexplored in real-world settings. We leveraged real-world data from the Tempus database 1 to evaluate associations between somatic mutations and clinical outcomes in a clinically annotated cohort of patients with MBC treated with T-DXd, aiming to identify genomic correlates of response and survival to inform patient selection and therapeutic strategies. Methods: We analyzed 124 patients with MBC with baseline tumor-normal matched sequencing data (Tempus xT 2 ). Endpoints included real-world best overall response (rwBOR), progression-free survival (rwPFS), time to next treatment (rwTTNT), and overall survival (rwOS). Patients were classified as responders (CR/PR) or nonresponders (SD/PD) based on curated rwBOR. Oncoplots identified frequently mutated genes by rwBOR and HER2 status. Logistic regression assessed rwBOR (nonresponder as reference); Cox proportional hazard models evaluated rwPFS, rwTTNT, and rwOS, adjusting for age at T-DXd initiation, ER/PR status, care plan, sampling time, and tissue location. Models were run for all variants and for pathogenic-only subsets, stratified by HER2 status. Genes with >4% mutation frequency were included (50-60 genes for all-variant models; 11-13 genes for pathogenic-only models). Results: The most frequently mutated genes were TP53 (48%), PIK3CA (31%), and GATA3 (17%). In all-variant models, DYNC2H1 was associated with worse rwBOR (HER2+: P = 0.006; HER2-low: P =0.049), rwOS (HER2-low: P =0.014), and rwTTNT (HER2-low: P =0.004). PIK3CA mutations correlated with improved rwBOR (HER2+: P =0.016), rwPFS (all: P =0.01; HER2-low: P =0.007), and rwOS (HER2-low: P =0.002). Additional genes with consistent associations included SPEN , POLQ , MED12 , MAP2K4 , ARID1B , SYNE1 , KMT2C , and RB1 . Pathogenic-only analyses confirmed PIK3CA as a key predictor across multiple endpoints. While most models yielded FDR-adjusted P values >0.2, we prioritized genes with nominal P <0.1 and consistent prognostic direction across endpoints as indicative of potential signal. Conclusions: Mutations such as PIK3CA were consistently correlated with improved outcome across HER2 subtypes, suggesting potential as predictive/prognostic biomarkers. Conversely, DYNC2H1 mutations correlated with poorer outcomes, particularly in HER2-low patients, implicating potential resistance mechanisms. These findings support integrating genomic data into real-world evidence frameworks to enhance patient stratification, personalize treatment, and guide biomarker-driven clinical trials in MBC. References: 1. www.tempus.com 2. Tempus-xT.v4_Validation
利益披露 Disclosure
A. Apfel, Eisai Employment. A. A. Potdar, Eisai Employment. Y. Ye, Eisai Employment. V. Devanarayan, Eisai Employment. E. Jagoda, Tempus Employment. S. MacNeil, Tempus Employment. Y. Zhang, Eisai Employment. P. Sachdev, Eisai Employment.

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