PO.TB06.01 · 肿瘤生物学
高清空间和单细胞多组学揭示结直肠癌中的免疫重塑与放射抵抗机制
High-definition spatial and single-cell multiomics reveal immunological remodeling and radiation resistance mechanisms in colorectal cancer
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摘要 Abstract
中文摘要
放射治疗仍是结直肠癌治疗的核心,然而许多患者出现不完全反应或复发。理解肿瘤为何适应而非消退,需要绘制放射如何重塑局部和全身免疫的图谱。ImmunoRad ROBIN 计划通过整合高清空间和单细胞分析来识别维持放射抵抗的生物学过程,以应对这一需求。我们的队列纳入六名患者,在治疗前、放射后和手术时,跨肿瘤、邻近黏膜和淋巴结进行取样。采用 2×2 μm 分辨率的 VisiumHD,我们生成了超过一百五十万个空间位点,提供了接近细胞水平的治疗诱导重塑视图。在肿瘤-基质边界处出现了一种主导模式,放射在此触发了细胞外基质激活、成纤维细胞信号传导和创伤修复程序。这些区域富集了表达促纤维化和促血管生成基因的 M2 样巨噬细胞。它们的扩增提示在侵袭前沿形成了依赖巨噬细胞的修复微环境,并创造了支持肿瘤持续存在的条件。这些基质变化与局部上皮应激反应相一致,表明适应是通过协调的组织水平重塑发生的。上皮区室表现出 DNA 损伤修复、干扰素信号传导和部分可塑性,尤其在富含 M2 的区域附近。邻近黏膜在抗原呈递和屏障通路上表现出较弱的转变。这些模式表明放射损伤延伸至肿瘤和非肿瘤组织,产生可能影响治疗结局的新梯度。为评估全身适应,我们对配对血液进行了单细胞 RNA 测序。放射后早期,循环淋巴细胞和树突状细胞表现出短暂的干扰素特征。至手术时,这些激活的群体收缩,并被抑制性髓系亚群取代,细胞毒性 T 细胞减少,提示初始免疫激活转变为抑制状态。淋巴结表现出滤泡结构破坏、生发中心极性降低以及套区扩张。整合分析显示调节性 T 细胞和耗竭 CD8 T 细胞富集,与抗原驱动免疫受损一致。综上,这些发现支持这样一个模型:放射触发急性损伤和免疫激活,并迅速转变为巨噬细胞驱动的修复和全身免疫抑制。这种耦合的重塑使肿瘤细胞得以在治疗中存活并重获生长潜能。ImmunoRad ROBIN 框架为解码治疗诱导的生态系统变化提供了一种可扩展策略,并凸显基质重塑和淋巴结功能障碍是结直肠癌放射抵抗的核心贡献因素。
查看英文原文 English abstract
Radiation therapy remains central to colorectal cancer care, yet many patients experience incomplete response or recurrence. Understanding why tumors adapt instead of regress requires mapping how radiation reshapes both local and systemic immunity. The ImmunoRad ROBIN initiative addresses this need by integrating high definition spatial and single cell profiling to identify biological processes that sustain radiation resistance.Our cohort included six patients sampled before treatment, after radiation, and at surgery across tumor, adjacent mucosa, and lymph nodes. Using VisiumHD at 2 × 2 μm resolution, we generated more than one and a half million spatial spots, providing a near cellular view of therapy induced remodeling. A dominant pattern emerged at the tumor stroma boundary, where radiation triggered extracellular matrix activation, fibroblast signaling, and wound repair programs. These regions were enriched for M2 like macrophages expressing profibrotic and angiogenic genes. Their expansion suggests that a macrophage dependent repair niche forms at the invasive front and creates conditions that support tumor persistence.These stromal changes aligned with localized epithelial stress responses, showing that adaptation occurs through coordinated tissue level remodeling. Epithelial compartments displayed DNA damage repair, interferon signaling, and partial plasticity, especially near M2 rich zones. Adjacent mucosa showed weaker shifts in antigen presentation and barrier pathways. These patterns indicate that radiation injury extends across tumor and non-tumor tissue, generating new gradients that may influence treatment outcome.To assess systemic adaptation, we performed single cell RNA sequencing on matched blood. Early after radiation, circulating lymphocytes and dendritic cells showed transient interferon signatures. By surgery, these activated populations contracted and were replaced by suppressive myeloid subsets with reduced cytotoxic T cells, suggesting that initial immune activation shifts into a suppressive state. Lymph nodes exhibited disrupted follicular structure, reduced germinal center polarity, and expansion of mantle zones. Integrated analysis showed enrichment of regulatory T cells and exhausted CD8 T cells, consistent with impaired antigen driven immunity.Together, these findings support a model in which radiation triggers acute injury and immune activation that rapidly transitions into macrophage driven repair and systemic immune suppression. This coupled remodeling allows tumor cells to survive therapy and regain growth potential. The ImmunoRad ROBIN framework offers a scalable strategy for decoding treatment induced ecosystem changes and highlights stromal remodeling and lymph node dysfunction as central contributors to radiation resistance in colorectal cancer.
利益披露 Disclosure
J. Kim, None..
C. Montagna, None..
N. B. Chetrit, None..
L. Yoffe, None.