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低剂量放疗预处理后的过继细胞治疗在临床前模型中增强肿瘤控制和生存

英文原题:Enhanced tumor control and survival in preclinical models with adoptive cell therapy preceded by low-dose radiotherapy.

查看英文原题

Enhanced tumor control and survival in preclinical models with adoptive cell therapy preceded by low-dose radiotherapy.

PubMed 2024/10/09(内容时间) Front Oncol Q2 · IF 3.4(JCR 2025)

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研究概要

本研究结果凸显了在实体瘤中将 LDRT 作为过继性 T 细胞治疗前置手段的变革性潜力。

中文摘要

在携带 GSU 或 CAPAN-2 实体瘤的两种 NSG 小鼠模型中检验该假设。小鼠接受靶向鸟苷酸环化酶 C(GCC)或间皮素的工程化 CAR-T 单药或联合 LDRT 治疗。此外,我们还在植入 MC38-gp100+ 细胞的 C57BL/6 小鼠模型中,评估 LDRT 前后过继转移 pmel+ T 细胞的方案。所有模型均监测肿瘤生长和生存结局。另在一个小样本队列中采用原子力显微镜(AFM)评估放疗对肿瘤硬度和可塑性的影响,探索肿瘤纳米力学作为潜在疗效生物标志物的作用。

所有模型均显示,先给予 LDRT 再进行 T 细胞治疗可增强肿瘤控制并延长生存。LDRT 联合 CAR-T 或 pmel+ T 细胞治疗较单药产生更强抑瘤作用并改善生存,凸显联合方案的协同效应。此外,AFM 分析发现 LDRT 可显著改变肿瘤硬度和可塑性,提示肿瘤纳米力学特征可能预测治疗应答。讨论:本研究凸显将 LDRT 作为实体瘤过继性 T 细胞治疗前序疗法的变革性潜力。LDRT 通过促进 CAR-T 和 pmel+ T 细胞浸润肿瘤微环境,增强肿瘤控制并改善生存结局,为克服 CAR-T 治疗实体瘤的挑战提供有前景的策略。此外,AFM 观察到的肿瘤纳米力学变化提示肿瘤硬度和可塑性可作为预测治疗结局的生物标志物。结果支持进一步研究这一联合方案用于临床,以提高实体瘤患者细胞疗法的疗效。

展开英文摘要原文

We investigated this hypothesis using two NSG mouse models bearing GSU or CAPAN-2 solid tumors. The mice were treated with engineered CAR-T cells targeting guanyl cyclase-C (GCC) or mesothelin as monotherapy or in combination with LDRT. Additionally, we extended this approach to a C57BL/6 mouse model implanted with MC38-gp100+ cells, followed by adoptive transfer of pmel+ T cells before and after LDRT. Tumor growth and survival outcomes were monitored in all models. Furthermore, we employed atomic force microscopy (AFM) in a small cohort to assess the effects of radiotherapy on tumor stiffness and plasticity, exploring the role of tumor nanomechanics as a potential biomarker for treatment efficacy.

Our results demonstrated enhanced tumor control and prolonged survival in mice treated with LDRT followed by T-cell therapy across all models. The combination of LDRT with CAR-T or pmel+ T-cell therapy led to superior tumor suppression and survival compared to monotherapy, highlighting the synergistic impact of the combined approach. Additionally, AFM analysis revealed significant changes in tumor stiffness and plasticity in response to LDRT, suggesting that the nanomechanical properties of the tumor may be predictive of therapeutic response. DISCUSSION: The findings of this study highlight the transformative potential of incorporating LDRT as a precursor to adoptive T-cell therapy in solid tumors. By promoting CAR-T and pmel+ T-cell infiltration into the tumor microenvironment, LDRT enhanced tumor control and improved survival outcomes, offering a promising strategy to overcome the challenges associated with CAR-T therapy in solid tumors. Additionally, the changes in tumor nanomechanics observed through AFM suggest that tumor stiffness and plasticity could be biomarkers for predicting treatment outcomes. These results support further investigation into the clinical application of this combined approach to improve the efficacy of cell-based therapies in patients with solid tumors.

论文信息

作者
Puebla-Osorio N、Fowlkes NW、Barsoumian HB、Xega K、Srivastava G、Kettlun-Leyton C、Nizzero S、Voss T
单位
Department of Radiation Oncology-Research, The University of Texas MD Anderson Cancer Center, Houston, TX, United States.United States
期刊
Frontiers in oncology2024
原文标识
PubMed 39445067 · DOI 10.3389/fonc.2024.1407143