PO.IM02.05 · 免疫学
转移性结直肠癌的空间免疫图谱
Spatial immune landscape in metastatic colorectal cancer
作者与单位 Authors & Affiliations
摘要 Abstract
中文摘要
微卫星稳定(MSS)型转移性结直肠癌(mCRC)对免疫治疗反应不佳,但临床试验显示免疫治疗对无肝转移的MSS mCRC具有前景,尤其是仅肺转移的疾病。为了解这种部位特异性反应差异的潜在原因,我们采用空间转录组学(Xenium)和单核RNA测序(snRNA seq)研究了肝转移和肺转移中的空间免疫图谱,样本为未接受过免疫治疗的MSS肿瘤(Xenium:9例原发、9例肝、6例肺样本;snRNA seq:17例原发、21例肝、5例肺样本)。我们在Xenium样本中定义了三个空间区域——肿瘤区(含肿瘤细胞巢)、瘤周区(将肿瘤区与邻近实质分隔的基质和免疫细胞)以及邻近实质(同一切片中邻近的形态正常组织)。以占全部免疫细胞的比例表示,肝肿瘤区的巨噬细胞浸润更高(p<0.01),而肺肿瘤区的CD8 T细胞浸润更高(p=0.03)。在瘤周区或邻近实质,以及在snRNA seq数据中,肝转移和肺转移之间的CD8 T细胞比例没有差异,这凸显了CD8 T细胞在不同器官部位的空间梯度。肝肿瘤区(但非瘤周区或邻近实质)的CD8 T细胞密度(每mm2)低于配对的原发结肠(p=0.03)和肺转移(无统计学意义)。在所有三个器官中,肿瘤区的耗竭型CD8 T细胞(表达至少一种耗竭标志物——PDCD1、HAVCR2、TIGIT、CTLA4、LAG3)比例均高于瘤周区或邻近实质。在浸润肿瘤区的T细胞中,肝的Treg比例高于肺(p=0.02),此现象在瘤周区和邻近实质中不成立。肝与肺肿瘤区Treg之间的差异基因表达揭示,肝Treg中ENTPD1(编码CD39,可抑制CD8 T细胞)上调;这一发现在我们的snRNA seq数据中也存在。为探究mCRC免疫图谱器官特异性变异的原因,我们比较了肝转移和肺转移非肿瘤细胞中趋化因子基因的表达。肝样本的CXCL12水平(以邻近实质中最高)显著高于肺转移。肝中的Treg和CD8 T细胞的CXCR4(CXCL12受体)水平高于肺。CXCL12的空间梯度(以邻近实质中最高)可能损害CD8 T细胞向肿瘤的浸润。总之,我们发现肝mCRC相比肺mCRC具有免疫抑制性的免疫微环境,具有独特的CD8 T细胞和Treg浸润以及趋化因子表达的空间模式。这可能解释了免疫治疗在这两个部位之间的差异反应。抑制CXCL12-CXCR4轴和CD39可能是增强肝mCRC患者免疫治疗的潜在策略。
查看英文原文 English abstract
Microsatellite stable (MSS) metastatic colorectal cancer (mCRC) does not respond well to immunotherapy, but clinical trials have shown promise with immunotherapy in MSS mCRC without liver metastases, especially lung only metastatic disease. To understand the underlying reasons for this site-specific difference in response, we investigated the spatial immune landscape in liver and lung metastases using spatial transcriptomics (Xenium) and single nuclear RNA-sequencing (snRNA seq) on immunotherapy naive, MSS tumors (9 primary, 9 liver and 6 lung samples for Xenium and 17 primary, 21 liver and 5 lung samples for snRNA seq). We defined three spatial regions in Xenium samples- tumor region (contains tumor cell nests), peritumor region (stromal and immune cells that separate tumor region from adjacent parenchyma) and adjacent parenchyma (adjacent normal-appearing tissue in the same section). Expressed as a proportion of all immune cells, liver tumor regions had higher macrophage infiltration (p<0.01), while lung tumor regions had higher CD8 T cell infiltration (p=0.03). CD8 T cell proportion was not different between liver and lung metastases in peritumor regions or adjacent parenchyma, or in the sn-RNA seq data, highlighting the spatial gradient of CD8 T cells in different organ sites. CD8 T cell density (per mm2) in liver tumor regions (but not peritumor region or adjacent parenchyma) was lower than paired primary colon (p=0.03) and lung metastasis (not significant). Tumor regions had a higher proportion of exhausted CD8 T cells (expressing at least one exhaustion marker- PDCD1, HAVCR2, TIGIT, CTLA4, LAG3 ) than the peritumor region or adjacent parenchyma in all three organs. Among T cells that infiltrated tumor regions, liver had a higher Treg proportion than lung (p=0.02), this did not hold true in peritumor region and adjacent parenchyma. Differential gene expression between Tregs of liver and lung tumor regions revealed upregulation of ENTPD1 (codes for CD39, which suppresses CD8 T cells) in liver Tregs; this finding was also present in our sn-RNA seq data. To investigate the reasons for organ-specific variability in the immune landscape of mCRC, we compared the expression of chemokine genes in non-tumor cells of liver and lung metastases. Liver samples had markedly higher levels of CXCL12 (highest in the adjacent parenchyma) than lung metastases. Tregs and CD8 T cells in the liver had higher levels of CXCR4 (CXCL12 receptor) than the lung. Spatial gradients in CXCL12 (highest in adjacent parenchyma), may impair CD8 T cell infiltration in the tumor. In summary, we identified an immunosuppressive immune microenvironment in liver than lung mCRC with unique spatial patterns of CD8 T cell and Treg infiltration, and chemokine expression. This may explain the differential response of immunotherapy between these two sites. Inhibition of the CXCL12-CXCR4 axis and CD39 may be potential strategies to augment immunotherapy in patients with liver mCRC.
利益披露 Disclosure
S. Puthanmadhom Narayanan, None..
C. Peng, None..
X. Fang, None.