下一代肿瘤不可知靶点即将出现
Next-generation tumor-agnostic targets on the horizon.
肿瘤不可知药物开发将肿瘤学重新聚焦于共享的分子依赖性而非组织来源,从而能够针对跨肿瘤的罕见可操作驱动因素进行高效开发。
英文原题:Longitudinal multi-platform profiling reveals temporal dynamics of HER2, TROP2, PD-L1 and tumor-infiltrating lymphocytes in triple-negative breast cancer.
Longitudinal multi-platform profiling reveals temporal dynamics of HER2, TROP2, PD-L1 and tumor-infiltrating lymphocytes in triple-negative breast cancer.
在这个大型独特的纵向TNBC样本队列中,多平台和多组学分析揭示了感兴趣的關鍵生物标志物的独特表达模式和动态变化,这些对于
随着多种针对三阴性乳腺癌(TNBC)的靶向疗法近期获批,包括抗体-药物偶联物和免疫疗法在生物标志物选择人群中的应用,明确细胞表面靶点表达从早期到转移性疾病的时间演变、这些标志物之间的共表达模式以及最佳量化方法至关重要。在此,我们利用一个大型匹配纵向肿瘤样本队列,报告了通过多组学和基于病理学的平台在TNBC患者中测量的生物标志物表达谱。
接受过新辅助化疗(NAC)的I-III期TNBC患者,或诊断为任何分期TNBC并发生转移性复发的患者,均从机构数据库和前瞻性研究转移活检方案中回顾性识别。收集诊断时(DX)、NAC后残留病灶(RD)(如适用)以及转移/复发(MR)的肿瘤样本。通过免疫组织化学(IHC)、全外显子组测序、转录组测序和靶向质谱(MS)对HER2、TROP2和PD-L1表达进行定量。对于HER2、TROP2和间质TIL(肿瘤浸润淋巴细胞)(sTILs),均获取了病理学家手动评估和计算病理学定量结果。HER2状态通过本地(L-IHC)和中心(C-IHC)审查分为HER2-0或HER2-low,TROP2状态定义为低(H-score <100)、中(H-score 100-200)或高(H-score >200),PD-L1定义为低(肿瘤面积阳性率,TAP <5%)或高(TAP ≥5%)。病理学家评估的sTILs分为低(<10%)、中(≥10%且<40%)或高(≥40%)。比较原发(DX/RD)与MR之间,以及NAC前与NAC后(DX-RD)样本之间的生物标志物。评估标志物、定量方法、推断的PAM50亚型与感兴趣的临床变量之间的相关性。
共纳入110例TNBC患者的359份样本,这些样本至少有一个平台的数据可用。DX、RD和MR时的HER2-low患病率分别为:51%(50/98)、40%(21/53)和27%(16/60);TROP2高/中分别为90%(47/52)、91%(42/46)和88%(28/32);PD-L1高分别为51%、50%和38%(9/24);sTILs高/中分别为88%(59/67)、80%(40/50)和49%(17/35)。虽然TROP2高/中 vs 低随时间保持稳定,但HER2 IHC和sTILs从DX/RD到MR样本显著下降,无论是在队列水平(HER2,p=0.0081;sTILs,p=4.6x10e-5)还是纵向患者水平(HER2,p=0.030;sTILs,p=0.0077),PD-L1也呈现类似的下降趋势,但未达到统计学显著性。L-IHC与C-IHC之间HER2一致性(0 vs 低)为78%(91/116)。ERBB2、TACSTD2和CD274 mRNA表达与IHC蛋白水平显著相关,但仅TACSTD2在高/中 vs 低组之间基因表达分布的重叠有限。在所有通过每种方法检测的生物标志物中,均观察到计算病理学得到的蛋白膜染色强度、MS测定的蛋白表达与病理学家评估的IHC之间存在强相关性。在生物标志物之间的比较中,病理学家评估的PD-L1 IHC与sTILs显著相关(p=0.0001);94%(51/54)的PD-L1高肿瘤被归类为sTILs高/中。PAM50亚型与时间点或生物标志物状态无显著相关性,尽管HER2-low(20%,5/25)相比HER2-0(6%,3/52)有更多HER2-enriched肿瘤的趋势(p=0.086)。在所有生物标志物和临床变量中,观察到年龄与sTILs之间存在关联(p=0.038,FDR=0.42),这是由于sTILs高/中肿瘤随年龄增加而减少,主要由治疗后(RD/MR)样本驱动,而非DX样本。
INTRODUCTION: With recent approvals of multiple targeted therapies for triple-negative breast cancer (TNBC), including antibody-drug conjugates and immunotherapy in biomarker-selected populations, it is critical to define the temporal evolution of cell-surface target expression from early-stage to metastatic disease, the co-expression patterns across these markers, and optimal quantification methodologies. Here we report biomarker expression profiles measured by multi-omics and pathology-based platforms in patients with TNBC using a large cohort of matched longitudinal tumor samples. METHODS: Patients who underwent neoadjuvant chemotherapy (NAC) for stage I-III TNBC or were diagnosed with any stage TNBC and developed metastatic recurrence were retrospectively identified from an institutional database and prospective research metastatic biopsy protocol. Tumor samples from diagnosis (DX), residual disease (RD) post-NAC (if applicable), and metastasis/recurrence (MR) were collected. Quantification of HER2, TROP2, and PD-L1 expression was performed by immunohistochemistry (IHC), whole-exome sequencing, transcriptome sequencing, and targeted mass spectrometry (MS). For HER2, TROP2, and stromal tumor-infiltrating lymphocytes (sTILs), both manual pathologist assessment and computational pathology quantification were obtained. HER2 status was categorized as HER2-0 or HER2-low by local (L-IHC) and central (C-IHC) review, TROP2 status was defined as low (H-score <100), medium (H-score 100-200) or high (H-score >200), and PD-L1 as low (tumor area positivity, TAP <5%) or high (TAP ≥5%). Pathologist-assessed sTILs were classified as low (<10%), medium (≥10% and <40%) or high (≥40%). Biomarkers were compared between primary (DX/RD) and MR, and between pre- vs post-NAC (DX-RD) samples. Correlations between markers, quantification methods, inferred PAM50 subtype, and clinical variables of interest were evaluated. RESULTS: A total of 359 samples from 110 patients with TNBC with data available from at least one platform were included in the analysis. HER2-low prevalence at DX, RD, and MR was: 51% (50/98), 40% (21/53), and 27% (16/60); TROP2 high/medium was 90% (47/52), 91% (42/46), and 88% (28/32); PD-L1-high was 51%, 50%, and 38% (9/24); and sTILs-high/medium was 88% (59/67), 80% (40/50), and 49% (17/35), respectively. While TROP2-high/medium vs low remained stable over time, HER2 IHC and sTILs significantly decreased from DX/RD to MR samples, both at the cohort-level (HER2, p=0.0081; sTILs, p=4.6x10e-5) and longitudinal patient-level (HER2, p=0.030; sTILs, p=0.0077), with a similar decreasing trend for PD-L1 that did not reach statistical significance. HER2 concordance (0 vs low) between L-IHC and C-IHC was 78% (91/116). ERBB2 , TACSTD2 and CD274 mRNA expression were significantly correlated with IHC protein levels, though only TACSTD2 had limited overlap in distribution of gene expression between high/medium vs low groups. Strong correlation between protein membrane staining intensity from computational pathology, protein expression measured by MS, and pathologist-assed IHC was observed across all biomarkers tested by each method. In comparisons between biomarkers, pathologist-assessed PD-L1 IHC and sTILs were significantly correlated (p=0.0001); 94% (51/54) of PD-L1-high tumors were classified as sTILs high/medium. PAM50 subtype was not significantly correlated with time point or biomarker status, although there was a trend toward more HER2-enriched tumors in HER2-low (20%, 5/25) vs HER2-0 (6%, 3/52) (p=0.086). Across biomarkers and clinical variables, an association between age and sTILs was observed (p=0.038, FDR=0.42) due to a decrease in sTILs high/medium tumors with age, primarily driven by post-treatment (RD/MR) but not DX samples. CONCLUSIONS: Multi-platform and multi-omics profiling in this large unique cohort of longitudinal TNBC samples revealed distinct patterns of expression and dynamic changes of key biomarkers of interest for
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