为肝细胞癌武装 GPC3 CAR-T 细胞:多少才足够,下一步是什么?
Armouring GPC3 CAR T cells for hepatocellular carcinoma: how much is enough and what comes next?
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Combination immunotherapy targeting LAG-3, PD-1 and STING suppresses hepatocellular carcinoma as monitored by LAG-3 targeted PET imaging.
Combination immunotherapy targeting LAG-3, PD-1 and STING suppresses hepatocellular carcinoma as monitored by LAG-3 targeted PET imaging.
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抗 PD-1 单克隆抗体与 STING 激动剂在肝细胞癌中上调 TILs 上 LAG-3 表达方面显示出显著协同作用,这一协同作用可通过 [ 68 Ga]Ga-NOTA-C25 PET 显像成功追踪。
肝细胞癌(HCC)中抗 PD-1 单克隆抗体(mAb)缓解率较低,因此需要开发联合免疫治疗以提高疗效。本研究旨在利用 LAG-3 靶向 PET 成像监测抗 PD-1 mAb、干扰素基因刺激因子(STING)激动剂和抗 LAG-3 mAb 单药及联合治疗的效果,并评估三联免疫方案(抗 PD-1 mAb、STING 激动剂和抗 LAG-3 mAb)改善 HCC 治疗的潜力。
将环肽类 LAG-3 抑制剂 C25 与 NOTA 螯合,并用 [⁶⁸Ga]GaCl₃ 放射性标记。所得 [⁶⁸Ga]Ga-NOTA-C25 在 Hepa1-6 荷瘤小鼠中进行体内 PET 成像和离体生物分布检测。使用该 PET 成像监测抗 PD-1 mAb 和 STING 激动剂单药及双联免疫治疗的疗效,并测量不同治疗后的肿瘤摄取、肿瘤应答和生存率;通过组织病理学分析和流式细胞术验证三联免疫治疗的疗效、分子机制和安全性。
[⁶⁸Ga]Ga-NOTA-C25 PET 可有效、无创检测 Hepa1-6 荷瘤小鼠中的 LAG-3⁺ TIL(肿瘤浸润淋巴细胞)。接受抗 PD-1 mAb、STING 激动剂或联合免疫治疗的小鼠中,该 PET 成像显示 LAG-3⁺ TIL 水平显著升高。治疗终点时,STING 激动剂联合抗 PD-1 mAb 组的摄取显著高于对照组(1.35 ± 0.191%ID/g 对 0.402 ± 0.017%ID/g)、抗 PD-1 mAb 组(0.647 ± 0.037%ID/g)及 STING 激动剂组(0.874 ± 0.089%ID/g)。[⁶⁸Ga]Ga-NOTA-C25 摄取与肿瘤治疗效果及生存率呈正相关。抗 PD-1 mAb、STING 激动剂和抗 LAG-3 mAb 三联治疗的疗效进一步优于任一双联方案,且治疗效果与肿瘤摄取量呈线性相关。
抗 PD-1 mAb 和 STING 激动剂在上调 HCC TIL 的 LAG-3 表达方面具有显著协同作用,可通过 [⁶⁸Ga]Ga-NOTA-C25 PET 成功追踪。整合抗 PD-1 mAb、STING 激动剂和抗 LAG-3 mAb 的三联方案较双联免疫治疗显著提高了疗效。
The low response rate of anti-PD-1 monoclonal antibodies (mAbs) in hepatocellular carcinoma (HCC) requires the development of combination immunotherapy strategies to improve their efficacy. This study aimed to use LAG-3-targeted PET imaging to monitor the efficacy of anti-PD-1 mAb, a stimulator of interferon genes (STING) agonist, and anti-LAG-3 mAb, both individually and in combination. Furthermore, we evaluated the potential of a triple immunotherapy regimen (anti-PD-1 mAb, STING agonist, and anti-LAG-3 mAb) to improve HCC treatment.
The LAG-3 inhibitor C25 based on a cyclic peptide was chelated with NOTA, radiolabeled with [ 68 Ga]GaCl 3 . The resulting [ 68 Ga]Ga-NOTA-C25 underwent in vivo PET imaging and ex vivo biodistribution examination in Hepa1-6 tumor-bearing mice. [ 68 Ga]Ga-NOTA-C25 PET was used to monitor the efficacy of monotherapy and dual immunotherapy with anti-PD-1 monoclonal antibody (mAb) and STING agonists. The tumor uptake of [ 68 Ga]Ga-NOTA-C25, tumor response, and survival rates were measured following different treatments. The therapeutic efficacy, molecular mechanisms, and safety of triple immunotherapy were validated using histopathological analysis and flow cytometry.
[ 68 Ga]Ga-NOTA-C25 PET imaging effectively and noninvasively detected LAG-3 + tumor-infiltrating lymphocytes (TILs) in Hepa1-6 tumor-bearing mice. In mice treated with anti-PD-1 mAb, STING agonist, or a combination immunotherapy, [ 68 Ga]Ga-NOTA-C25 PET revealed significantly increased LAG-3 + TIL levels. At the treatment endpoint, the combination of the STING agonist with the anti-PD-1 mAb resulted in a significantly higher uptake (1.35 0.191%ID/g) compared to the control group (0.402 0.017%ID/g), the anti-PD-1 mAb group (0.647 0.037%ID/g), and the STING agonist group (0.874 0.089%ID/g). Uptake of [ 68 Ga]Ga-NOTA-C25 was positively correlated with tumor therapeutic effects and survival rates. Triple immunotherapy with anti-PD-1 mAb, a STING agonist, and anti-LAG-3 mAb further enhanced efficacy compared to any dual immunotherapy regimen, and treatment efficacy was linearly associated with [ 68 Ga]Ga-NOTA-C25 tumor uptake.
Anti-PD-1 mAb and STING agonists have shown notable synergy in upregulating LAG-3 expression on TILs in HCC, which can be successfully tracked by [ 68 Ga]Ga-NOTA-C25 PET imaging. Furthermore, integration of a triple immunotherapy regimen comprising an anti-PD-1 mAb, STING agonist, and anti-LAG-3 mAb demonstrated a significant improvement in therapeutic efficacy over dual immunotherapy approaches.
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