一种用于克服非小细胞肺癌治疗中抗原异质性的多靶向 CAR-T 细胞平台
A Multi-Targeting Chimeric Antigen Receptor-T Cell Platform to Overcome Antigen Heterogeneity in the Treatment of Non-Small Cell Lung Cancer.
这些发现支持采用多靶点CAR-T 策略来应对NSCLC及可能其他实体瘤中的抗原异质性。
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:A Dysfunctional T-cell Gene Signature for Predicting Nonresponse to PD-1 Blockade in Non-small Cell Lung Cancer That Is Suitable for Routine Clinical Diagnostics.
A Dysfunctional T-cell Gene Signature for Predicting Nonresponse to PD-1 Blockade in Non-small Cell Lung Cancer That Is Suitable for Routine Clinical Diagnostics.
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PD-1T mRNA 特征与 PD-1T TIL 的数字 IHC 定量表现出相似的高敏感性和高 NPV。
PD-1阻断仅对少数晚期非小细胞肺癌(NSCLC)患者有效,因此需要生物标志物指导治疗决策。肿瘤被PD-1TTIL(肿瘤浸润淋巴细胞)浸润的情况,即具有肿瘤反应能力的功能障碍TIL群体,可通过数字定量免疫组化(IHC)检测,并已成为NSCLC的新型预测性生物标志物。为推动该标志物转化至临床,我们旨在开发一种能够反映肿瘤PD-1T TIL状态的稳健RNA特征。 实验设计:采用NanoString nCounter平台对41例晚期NSCLC患者的基线肿瘤样本进行mRNA表达分析;这些患者接受了纳武利尤单抗治疗,并依据IHC检测的PD-1T TIL浸润情况选取。该队列作为训练队列(n=41)用于开发预测基因特征。随后在第二个独立队列(n=42)中验证该特征。主要结局为12个月疾病控制(DC 12 m),次要结局为无进展生存期和总生存期。
正则化回归分析得出一个由56个差异表达基因中12个基因组成的特征,可区分PD-1T IHC高表达且达到DC 12 m患者的肿瘤与PD-1T IHC低表达且疾病进展(PD)患者的肿瘤。在验证队列中,6/6(100%)达到DC 12 m的患者及23/36(64%)发生PD的患者被正确分类;阴性预测值(NPV)为100%,阳性预测值为32%。
PD-1T mRNA特征与数字IHC定量PD-1T TIL相比,表现出相似的高敏感度和高NPV。这一发现提供了简便方法,有助于在常规临床诊断环境中轻松实施。
Because PD-1 blockade is only effective in a minority of patients with advanced-stage non-small cell lung cancer (NSCLC), biomarkers are needed to guide treatment decisions. Tumor infiltration by PD-1T tumor-infiltrating lymphocytes (TIL), a dysfunctional TIL pool with tumor-reactive capacity, can be detected by digital quantitative IHC and has been established as a novel predictive biomarker in NSCLC. To facilitate translation of this biomarker to the clinic, we aimed to develop a robust RNA signature reflecting a tumor's PD-1T TIL status. EXPERIMENTAL DESIGN: mRNA expression analysis using the NanoString nCounter platform was performed in baseline tumor samples from 41 patients with advanced-stage NSCLC treated with nivolumab that were selected on the basis of PD-1T TIL infiltration by IHC. Samples were included as a training cohort (n = 41) to develop a predictive gene signature. This signature was independently validated in a second cohort (n = 42). Primary outcome was disease control at 12 months (DC 12 m), and secondary outcome was progression-free and overall survival.
Regularized regression analysis yielded a signature using 12 out of 56 differentially expressed genes between PD-1T IHC-high tumors from patients with DC 12 m and PD-1T IHC-low tumors from patients with progressive disease (PD). In the validation cohort, 6/6 (100%) patients with DC 12 m and 23/36 (64%) with PD were correctly classified with a negative predictive value (NPV) of 100% and a positive predictive value of 32%.
The PD-1T mRNA signature showed a similar high sensitivity and high NPV as the digital IHC quantification of PD-1T TIL. This finding provides a straightforward approach allowing for easy implementation in a routine diagnostic clinical setting.
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