PO.TB10.07 · 肿瘤生物学

空间转录组图谱揭示内皮细胞无能和CD4⁺ T细胞应激是结直肠癌肝转移免疫逃逸的关键驱动因素

Spatial transcriptome mapping identifies endothelial anergy and CD4⁺ T cell stress as key drivers of immune escape in colorectal cancer liver metastasis

编号 6203 展板 17 时间 4/21 02:00–05:00 区域 Section 31 主讲 Kok Ting Wan, D Phil
分会场 Spatial Niches and Functional Boundaries within the Tumor Microenvironment 2
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作者与单位 Authors & Affiliations

Peter Kok-Ting Wan1, Ranchu Cheng1, Len Seymour1, Kerry Fisher1, Alex Gordon-Weeks2

1Department of Oncology, University of Oxford, Oxford, United Kingdom,2Nuffield Department of Surgical Sciences, University of Oxford, Oxford, United Kingdom

摘要 Abstract

中文摘要
背景 结直肠癌肝转移(CRLM)对免疫治疗的反应仍然较差,而其免疫抵抗性微环境的潜在机制尚未完全阐明。为解决这一问题,我们从4例经新辅助FOLFOX化疗、仅呈替代型生长、微卫星稳定的CRLM样本中构建了单细胞空间转录组图谱,这代表了最常见的临床情形。我们的数据集涵盖肿瘤内、肿瘤周围及邻近正常肝组织,共包含1,930,656个细胞。同时,我们进行了13张全切片多重免疫组织化学分析,以剖析塑造CRLM免疫图景的空间细胞与分子相互作用。 结果 我们发现内皮细胞表型在各区域间呈现渐进性转变:从正常肝脏中的非炎症状态,到以TNFalpha、NFκB、STING和炎症小体特征富集为特点的高度炎症性肿瘤周围内皮,最终转变为CRLM内一种无能的、促血管生成的内皮细胞群。这种无能内皮状态的特征是T细胞外渗所需的黏附分子表达降低,包括SELE、SELP、ICAM1和VCAM1,与更具免疫通透性的肿瘤周围内皮形成对比。与这些内皮差异相一致,肿瘤周围区域含有高密度的T细胞,其中大多数具有TCR反应性但呈现耗竭特征。肿瘤内区域所含的T细胞则少得多(p<0.01),且存在的细胞主要为呈应激反应表型的CD4⁺细胞,其特征是整合应激反应、未折叠蛋白反应和热休克蛋白通路相关基因的上调。这些肿瘤内CD4⁺ T细胞缺乏细胞因子表达,TCR活性极低,并定位于缺氧微环境。它们的转录谱反映了一种由缺氧和PGE2驱动的应激程序,而非经典的耗竭状态,提示CRLM中CD4⁺ T细胞功能障碍由应激诱导通路驱动。成纤维细胞也表现出显著的区域差异。在CRLM中,成纤维细胞分泌中性粒细胞趋化因子CXCL1和CXCL8,并产生LOXL2和TNC等ECM重塑因子。这一癌症相关成纤维细胞群与几乎仅存在于CRLM内的'胶质样'细胞呈现强烈的空间相关性(p<0.0001)。这些胶质样细胞表达神经配体,包括NGF和NPY,支持存在一条胶质-成纤维细胞信号轴,可能强化成纤维细胞活化和基质沉积。 结论 综上,这些发现揭示了驱动CRLM免疫排斥的关键机制,强调内皮细胞无能、处于应激反应状态的肿瘤内CD4⁺ T细胞以及胶质-成纤维细胞轴是其免疫抑制性图景的核心特征。
查看英文原文 English abstract
Background Colorectal liver metastasis (CRLM) remains poorly responsive to immunotherapy, yet the mechanisms underlying its immune-resistant microenvironment are not fully understood. To address this, we generated a single-cell spatial transcriptomic atlas from four replacement-only, microsatellite-stable CRLM treated with neoadjuvant FOLFOX chemotherapy, representing the most common clinical scenario. Our dataset spans intratumoral, peritumoral, and adjacent normal liver, comprising 1,930,656 cells. In parallel, we performed thirteen whole-slide multiplexed immunohistochemistry to dissect the spatial cellular and molecular interactions shaping the immune landscape in CRLM. Results We identified a progressive shift in endothelial phenotypes across regions: from a non-inflamed state in the normal liver, to a highly inflamed peritumoral endothelium characterized by TNFalpha, NFκB, STING and inflammasome signature enrichment, and finally to an anergic, angiogenic endothelial population within CRLM. This anergic endothelial state was defined by reduced expression of adhesion molecules required for T cell extravasation, including SELE, SELP, ICAM1 and VCAM1, in contrast to the more immune-permissive peritumoral endothelium. In line with these endothelial differences, the peritumoral region contained a high density of T cells, most of which were TCR-reactive yet displayed features of exhaustion. The intratumoral region contained far fewer T cells ( p <0.01), and those present were predominantly CD4⁺ cells adopting a stress-response phenotype, characterized by an upregulation of genes related to integrated stress response, unfolded protein response, and heat-shock protein pathways. These intratumoral CD4⁺ T cells lacked cytokine expression, showed minimal TCR activity, and localized to hypoxic niches. Their transcriptional profile reflected a hypoxia- and PGE2-driven stress programme rather than classical exhaustion, suggesting that CD4⁺ T cell dysfunction in CRLM is driven by stress-induced pathways. Fibroblasts also demonstrated marked regional variation. In CRLM, fibroblasts secreted neutrophil-attracting chemokines CXCL1 and CXCL8, and produced ECM-remodeling factors such as LOXL2 and TNC. This cancer-associated fibroblast population showed strong spatial correlation with ‘glial-like' cells, which were found almost exclusively within CRLM ( p <0.0001). These glial-like cells expressed neural ligands, including NGF and NPY, supporting a glial-fibroblast signaling axis that may reinforce fibroblast activation and matrix deposition. Conclusions Together, these findings reveal key mechanisms driving immune exclusion in CRLM, highlighting endothelial anergy, intratumoral CD4⁺ T cells in a stress-response state, and a glial-fibroblast axis as central features of its immunosuppressive landscape.
利益披露 Disclosure
P. Wan, None.. R. Cheng, None.. L. Seymour, None.. K. Fisher, None.. A. Gordon-Weeks, None.

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