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:Association of Machine Learning-Based Assessment of Tumor-Infiltrating Lymphocytes on Standard Histologic Images With Outcomes of Immunotherapy in Patients With NSCLC.
Association of Machine Learning-Based Assessment of Tumor-Infiltrating Lymphocytes on Standard Histologic Images With Outcomes of Immunotherapy in Patients With NSCLC.
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在这些队列中,TIL 水平与 ICI 治疗反应稳健且独立相关。患者 TIL 评估相对容易纳入病理实验室的工作流程,且额外成本极低,并可能提升精准治疗。
目前,肺癌中免疫检查点抑制剂(ICI)治疗反应的预测性生物标志物有限。识别此类生物标志物将有助于优化患者选择并指导精准治疗。
开发一种基于机器学习(ML)的TIL(肿瘤浸润淋巴细胞)(TILs)评分方法,并评估TIL与晚期非小细胞肺癌(NSCLC)患者临床结局的关联。设计、设置、
这项多中心回顾性发现-验证队列研究纳入了685例接受ICI治疗的NSCLC患者,发现队列(n = 446)和验证队列(n = 239)的中位随访时间分别为38.1个月和43.3个月。患者于2014年2月至2021年9月期间接受治疗。我们开发了一种ML自动化方法,用于在全切片苏木精-伊红染色的NSCLC肿瘤图像中计数肿瘤细胞、基质细胞和TIL细胞。肿瘤突变负荷(TMB)和程序性死亡配体-1(PD-L1)表达分别进行评估,ICI治疗的临床反应通过病历审查确定。数据分析于2021年6月至2022年4月进行。暴露:所有患者均接受抗PD-(L)1单药治疗。客观缓解率(ORR)、无进展生存期(PFS)和总生存期(OS)通过盲法病历审查确定。TIL水平、TMB和PD-L1预测ICI反应的曲线下面积(AUC)使用ORR计算。
总体而言,发现队列中有248名(56%)女性,验证队列中有97名(41%)女性。在多变量分析中,高TIL水平(250 cells/mm2)在发现队列(PFS:HR,0.71;P = .006;OS:HR,0.74;P = .03)和验证队列(PFS:HR = 0.80;P = .01;OS:HR = 0.75;P = .001)中均与ICI反应独立相关。在NSCLC患者中,一线和后续线ICI治疗均可见生存获益。在发现队列中,与单独PD-L1相比,TILs/PD-L1或TMB/PD-L1联合模型在区分ICI反应者方面具有额外的特异性。在PD-L1阴性(<1%)亚组中,TIL水平对ICI反应的分类准确性(AUC = 0.77)优于TMB(AUC = 0.65)。
Currently, predictive biomarkers for response to immune checkpoint inhibitor (ICI) therapy in lung cancer are limited. Identifying such biomarkers would be useful to refine patient selection and guide precision therapy.
To develop a machine-learning (ML)-based tumor-infiltrating lymphocytes (TILs) scoring approach, and to evaluate TIL association with clinical outcomes in patients with advanced non-small cell lung cancer (NSCLC). DESIGN, SETTING, AND PARTICIPANTS: This multicenter retrospective discovery-validation cohort study included 685 ICI-treated patients with NSCLC with median follow-up of 38.1 and 43.3 months for the discovery (n = 446) and validation (n = 239) cohorts, respectively. Patients were treated between February 2014 and September 2021. We developed an ML automated method to count tumor, stroma, and TIL cells in whole-slide hematoxylin-eosin-stained images of NSCLC tumors. Tumor mutational burden (TMB) and programmed death ligand-1 (PD-L1) expression were assessed separately, and clinical response to ICI therapy was determined by medical record review. Data analysis was performed from June 2021 to April 2022. EXPOSURES: All patients received anti-PD-(L)1 monotherapy. MAIN OUTCOMES AND MEASURES: Objective response rate (ORR), progression-free survival (PFS), and overall survival (OS) were determined by blinded medical record review. The area under curve (AUC) of TIL levels, TMB, and PD-L1 in predicting ICI response were calculated using ORR.
Overall, there were 248 (56%) women in the discovery cohort and 97 (41%) in the validation cohort. In a multivariable analysis, high TIL level ( 250 cells/mm2) was independently associated with ICI response in both the discovery (PFS: HR, 0.71; P = .006; OS: HR, 0.74; P = .03) and validation (PFS: HR = 0.80; P = .01; OS: HR = 0.75; P = .001) cohorts. Survival benefit was seen in both first- and subsequent-line ICI treatments in patients with NSCLC. In the discovery cohort, the combined models of TILs/PD-L1 or TMB/PD-L1 had additional specificity in differentiating ICI responders compared with PD-L1 alone. In the PD-L1 negative (<1%) subgroup, TIL levels had superior classification accuracy for ICI response (AUC = 0.77) compared with TMB (AUC = 0.65).
In these cohorts, TIL levels were robustly and independently associated with response to ICI treatment. Patient TIL assessment is relatively easily incorporated into the workflow of pathology laboratories at minimal additional cost, and may enhance precision therapy.
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