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通过放射治疗调节肿瘤免疫表型:在结直肠癌中制定并验证放射、PD-L1 与 TIM-3 阻断联合治疗的方案

英文原题:Modulating the tumor immune phenotypes by radiotherapy: formulating and validating the combination therapy of radiation, PD-L1, and TIM-3 blockade in colorectal cancer.

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Modulating the tumor immune phenotypes by radiotherapy: formulating and validating the combination therapy of radiation, PD-L1, and TIM-3 blockade in colorectal cancer.

PubMed 2026/02/24(内容时间) J Immunother Cancer Q1 · IF 11.7(JCR 2025)

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研究概要

这些发现表明,TIM-3/PD-L1 是 RT 后一种情境依赖性的适应性耐药轴。TIM-3 阻断的最大增量价值见于 MSS/pMMR 情境,在该情境中,RT 更一致地增加了瘤内 CD8 + T 细胞和 NK 细胞上 PD-1 和 TIM-3 的共表达。将 RT 与 TIM-3/PD-L1 双重阻断联合使用值得在免疫治疗难治性 CRC 中进一步开展临床评估。

研究思路结论见上方概要

大多数结直肠癌(CRC)为错配修复功能完整(pMMR)和微卫星稳定(MSS),对免疫检查点抑制剂(ICI)反应不佳。放疗(RT)可促进抗肿瘤免疫,但也可能通过上调检查点触发适应性免疫抑制,这为联合治疗提供了依据。

我们整合了癌症基因组图谱和基因表达综合数据库中标注了微卫星不稳定性(MSI)/MMR状态的队列的转录组分析,以及来自人类结直肠癌图谱的单细胞RNA测序数据。机制和转化实验使用CT26(MSS/pMMR)和MC38(微卫星不稳定性(MSI)高/错配修复缺陷(dMMR))小鼠模型、患者来源类器官(PDO)-免疫共培养物以及临床CRC标本进行。评估包括多色流式细胞术、免疫组织化学/免疫荧光、bulk RNA测序和免疫分析。

HAVCR2(T细胞免疫球蛋白和黏蛋白结构域包含蛋白3(TIM-3))和LGALS9(半乳糖凝集素-9)在CRC中广泛表达,与大多数其他检查点相比,在MSS/pMMR肿瘤中保持相对较高水平。在CT26肿瘤中,RT优先增加肿瘤内CD8+ T细胞和自然杀伤(NK)细胞上程序性死亡受体 1(PD-1)和TIM-3的共表达,而这些变化在MC38肿瘤中较弱且不太一致。在RT加程序性死亡配体 1(PD-L1)阻断的基础上加入TIM-3阻断,在CT26肿瘤中产生了最持久的抗肿瘤活性,改善了原发肿瘤控制、远隔效应和抗肿瘤再攻击保护。在PDO-免疫共培养中,pMMR PDO在RT+PD-L1阻断基础上加入TIM-3阻断后表现出一致的增量获益,而这种额外获益在dMMR PDO中不太一致。在临床数据集和标本中,含RT的治疗与T细胞浸润增加和更高的TIM-3/PD-1信号相关;立体定向体部放疗伴有全身免疫改变,包括循环免疫亚群上TIM-3的诱导。在接受ICIs治疗的泛癌队列中,HAVCR2和PDCD1的伴随高表达与免疫激活的转录谱和改善的临床结局相关。

展开英文摘要原文

Most colorectal cancers (CRCs) are mismatch repair-proficient (pMMR) and microsatellite stable (MSS), and they respond poorly to immune checkpoint inhibitors (ICIs). Radiotherapy (RT) can promote antitumor immunity but may also trigger adaptive immune suppression through checkpoint upregulation, providing a rationale for combination therapies.

We integrated transcriptomic analyses from The Cancer Genome Atlas and Gene Expression Omnibus cohorts-annotated for microsatellite instability (MSI)/MMR status-with single-cell RNA-sequencing data from the Human Colorectal Cancer Atlas. Mechanistic and translational experiments were conducted using CT26 (MSS/pMMR) and MC38 (microsatellite instability (MSI)-high/mismatch repair-deficient (dMMR)) mouse models, patient-derived organoid (PDO)-immune co-cultures, and clinical CRC specimens. Assessments included multicolor flow cytometry, immunohistochemistry/immunofluorescence, bulk RNA-sequencing, and immune profiling.

HAVCR2 (T cell immunoglobulin and mucin-domain containing-3 (TIM-3)) and LGALS9 (galectin-9) were broadly expressed in CRC, remaining relatively high in MSS/pMMR tumors compared with most other checkpoints. In CT26 tumors, RT preferentially increased programmed cell death protein 1 (PD-1) and TIM-3 co-expression on intratumoral CD8 + T cells and natural killer (NK) cells, whereas these changes were weaker and less consistent in MC38 tumors. The addition of TIM-3 blockade to RT plus programmed death-ligand 1 (PD-L1) blockade produced the most durable antitumor activity in CT26 tumors, improving primary tumor control, abscopal effects, and protection against tumor rechallenge. In PDO-immune co-cultures, pMMR PDOs showed a consistent incremental benefit when TIM-3 blockade was added to RT+PD-L1 blockade, whereas this added benefit was less consistent in dMMR PDOs. In clinical datasets and specimens, RT-containing treatment was associated with increased T-cell infiltration and higher TIM-3/PD-1 signals; stereotactic body radiotherapy was accompanied by systemic immune alterations, including TIM-3 induction on circulating immune subsets. Across pan-cancer cohorts treated with ICIs, concomitantly high expression of HAVCR2 and PDCD1 correlated with an immune-activated transcriptional profile and improved clinical outcomes.

These findings identify TIM-3/PD-L1 as a context-dependent adaptive resistance axis following RT. The greatest incremental value of TIM-3 blockade was observed in MSS/pMMR settings, where RT more consistently increased PD-1 and TIM-3 co-expression on intratumoral CD8 + T cells and NK cells. Combining RT with dual TIM-3/PD-L1 blockade warrants further clinical evaluation for immunotherapy-refractory CRC.

论文信息

作者
Wang XX、Zhu C、Sun Y、Xie X、Wang M、Jin Y、Gu Y、Qian L
第一作者单位
Department of Radiation Oncology, Zhejiang University School of Medicine Sir Run Run Shaw Hospital, Hangzhou, Zhejiang, China.China
通讯作者单位
Department of Radiation Oncology, Zhejiang University School of Medicine Sir Run Run Shaw Hospital, Hangzhou, Zhejiang, China sunxiaonan@zju.edu.cn daimd@zju.edu.cn.China
期刊
Journal for immunotherapy of cancer2026 Feb 24
原文标识
PubMed 41734998 · DOI 10.1136/jitc-2025-013656