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 novel [(89)Zr]-anti-PD-1-PET-CT to assess response to PD-1/PD-L1 blockade in lung cancer.
A novel [(89)Zr]-anti-PD-1-PET-CT to assess response to PD-1/PD-L1 blockade in lung cancer.
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我们的数据可能支持将免疫 PET 作为一项有前景的新型成像工具用于临床,以预测和评估 NSCLC 患者对 PD-1/PD-L1 抑制剂的反应。
通过靶向程序性细胞死亡蛋白(PD-1)和程序性细胞死亡配体蛋白(PD-L1)轴来利用抗肿瘤免疫系统反应,已成为非小细胞肺癌(NSCLC)治疗的一项重大突破。然而,传统影像学工具无法准确评估免疫治疗患者的反应。我们使用对免疫治疗有反应的肺癌同源小鼠模型,旨在证明[89Zr]-anti-PD-1 immuno-PET是一种安全且可行的影像学方法,用于评估NSCLC中对PD-1/PD-L1阻断的反应。
使用了一种对抗PD-1治疗有响应的同源小鼠模型。通过常规的2-脱氧-2-[18F]氟-D-葡萄糖([18F]-FDG) PET扫描监测肿瘤生长和对PD-1阻断的反应。此外,通过使用[89Zr]标记的抗PD-1抗体分析肿瘤淋巴细胞浸润,并以89Zr肿瘤摄取量进行测量。
传统[18F]-FDG-PET扫描未能检测到抗PD-1治疗所发挥的抗肿瘤活性。然而,在对PD-1阻断治疗有应答的小鼠中,[89Zr]-anti-PD-1的摄取显著更高。对肿瘤浸润免疫细胞群体和白细胞介素的分析表明,在PD-1应答小鼠中,效应免疫细胞的激活引发了增强的抗肿瘤效应。有趣的是,[89Zr]-anti-PD-1摄取与TIL(肿瘤浸润淋巴细胞)(TILs)比例之间呈正相关(Cor = 0.8;p = 0.001)。
Harnessing the anti-tumor immune system response by targeting the program cell death protein (PD-1) and program cell death ligand protein (PD-L1) axis has been a major breakthrough in non-small cell lung cancer (NSCLC) therapy. Nonetheless, conventional imaging tools cannot accurately assess response in immunotherapy-treated patients. Using a lung cancer syngeneic mouse model responder to immunotherapy, we aimed to demonstrate that [ 89 Zr]-anti-PD-1 immuno-PET is a safe and feasible imaging modality to assess the response to PD-1/PD-L1 blockade in NSCLC.
A syngeneic mouse model responder to anti-PD-1 therapy was used. Tumor growth and response to PD-1 blockade were monitored by conventional 2-deoxy-2-[ 18 F]fluoro-D-glucose ([ 18 F]-FDG) PET scans. Additionally, tumor lymphocyte infiltration was analyzed by the use of an [ 89 Zr]-labeled anti-PD-1 antibody and measured as 89 Zr tumor uptake.
Conventional [ 18 F]-FDG-PET scans failed to detect the antitumor activity exerted by anti-PD-1 therapy. However, [ 89 Zr]-anti-PD-1 uptake was substantially higher in mice that responded to PD-1 blockade. The analysis of tumor-infiltrating immune cell populations and interleukins demonstrated an increased anti-tumor effect elicited by activation of effector immune cells in PD-1-responder mice. Interestingly, a positive correlation between [ 89 Zr]-anti-PD-1 uptake and the proportion of tumor-infiltrating lymphocytes (TILs) was found ( Cor = 0.8; p = 0.001).
Our data may support the clinical implementation of immuno-PET as a promising novel imaging tool to predict and assess the response of PD-1/PD-L1 inhibitors in patients with NSCLC.
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