PO.IM02.01 · 免疫学
时空分析揭示tsMHC-I下调诱导的中性粒细胞胞外诱捕网是肺腺癌肿瘤演化的驱动因素
Spatiotemporal analysis reveals tsMHC-I downregulation-induced neutrophil extracellular traps as a driver of lung adenocarcinoma neoplastic evolution
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摘要 Abstract
中文摘要
背景:肿瘤特异性MHC I类分子(tsMHC-I)的丢失是肺腺癌(LUAD)进展中反复出现的特征,并与免疫逃逸和不良结局相关。然而,tsMHC-I下调如何塑造肿瘤演化并重塑免疫微环境仍不清楚。
方法:我们整合了来自人类LUAD样本(涵盖癌前病变至晚期肿瘤)的单细胞RNA测序、空间转录组学和多重成像数据,同时结合纵向基因工程小鼠模型(GEMMs)。开展了功能实验——包括中性粒细胞共培养、中性粒细胞胞外诱捕网(NETs)评估和体内肿瘤研究——以明确tsMHC-I丢失的机制性后果。
结果:在整个LUAD演化过程中观察到tsMHC-I的进行性下调,并在GEMMs中得到验证。单细胞轨迹分析表明,tsMHC-I降低与II型肺泡上皮身份的丧失、染色体不稳定性增加、肿瘤可塑性增强以及上皮-间质转化(EMT)程序的获得相关。在功能上,tsMHC-I低表达的恶性细胞表现出侵袭性和转移能力增强。空间和免疫表型分析显示,tsMHC-I下调将肿瘤微环境重塑为中性粒细胞富集、细胞毒性细胞排斥的生态位。tsMHC-I低表达区域表现出致密的肿瘤相关中性粒细胞聚集,以及CD8+ T细胞、NK细胞和其他效应细胞群的耗竭。机制研究表明,tsMHC-I低表达的恶性细胞诱导强烈的NET形成。体外实验鉴定出肿瘤分泌蛋白Annexin A2是NET诱导的关键驱动因素。在人和小鼠模型中,tsMHC-I低表达细胞的Annexin A2表达和分泌均持续升高,而Anxa2敲低显著减少了NET形成。体内使用DNase I靶向NETs可选择性地抑制tsMHC-I低表达肿瘤的生长和转移扩散,恢复细胞毒性免疫浸润,并逆转免疫排斥表型。在tsMHC-I异质性肿瘤中,将NET抑制与抗PD-1联合应用可增强肿瘤控制和生存。
结论:我们的整合分析揭示,tsMHC-I下调通过Annexin A2分泌驱动中性粒细胞募集和NET形成,构建了一道促进LUAD进展并限制免疫治疗应答的免疫抑制屏障。这些发现将一条此前未被认识的tsMHC-I-NET轴确立为LUAD中的治疗靶点脆弱性。
查看英文原文 English abstract
Background: Loss of tumor-specific MHC class I (tsMHC-I) is a recurrent feature of lung adenocarcinoma (LUAD) progression and is associated with immune escape and poor outcomes. However, how tsMHC-I downregulation shapes tumor evolution and remodels the immune microenvironment remains unclear.
Methods: We integrated single-cell RNA sequencing, spatial transcriptomics, and multiplex imaging from human LUAD samples spanning precancerous lesions to advanced tumors, together with longitudinal genetically engineered mouse models (GEMMs). Functional assays-including neutrophil co-culture, assessment of neutrophil extracellular traps (NETs), and in vivo tumor studies-were performed to define mechanistic consequences of tsMHC-I loss.
Results: Progressive tsMHC-I downregulation was observed across LUAD evolution and validated in GEMMs. Single-cell trajectory analysis showed that reduced tsMHC-I is linked to loss of alveolar type II identity, increased chromosomal instability, heightened tumor plasticity, and acquisition of epithelial-mesenchymal transition (EMT) programs. Functionally, tsMHC-I Low malignant cells displayed increased invasiveness and metastatic capacity. Spatial and immunophenotypic profiling revealed that tsMHC-I downregulation reshapes the tumor microenvironment toward a neutrophil-enriched, cytotoxic cell-excluded niche. tsMHC-I Low regions exhibited dense tumor-associated neutrophil aggregates and depletion of CD8⁺ T cells, NK cells, and other effector populations. Mechanistic studies showed that tsMHC-I Low malignant cells induce robust NET formation. In vitro assays identified Annexin A2, a tumor-secreted protein, as a key driver of NET induction. Annexin A2 expression and secretion were consistently elevated in tsMHC-I Low cells across human and mouse models, and Anxa2 knockdown markedly reduced NET formation. Targeting NETs in vivo with DNase I selectively suppressed growth and metastatic spread of tsMHC-I Low tumors, restored cytotoxic immune infiltration, and reversed the immune-excluded phenotype. In tsMHC-I heterogeneous tumors, combining NET inhibition with anti-PD-1 enhanced tumor control and survival.
Conclusions: Our integrated analyses reveal that tsMHC-I downregulation drives neutrophil recruitment and NET formation through Annexin A2 secretion, creating an immunosuppressive barrier that promotes LUAD progression and limits immunotherapy response. These findings identify a previously unrecognized tsMHC-I-NET axis as a therapeutic vulnerability in LUAD.
利益披露 Disclosure
Y. Tian, None..
J. Fradette, None..
Z. Wei, None..
J. Ye, None..
S. Lu, None..
A. Liu, None..
S. Kundu, None..
H. Wu, None..
S. Miao, None..
A. Reuben, None.
D. L. Gibbons,
Menarini Ricerche g., Board of Directors, non-salaried role).
Onconova g., Board of Directors, non-salaried role).
Aktis Oncology g., Board of Directors, non-salaried role).
Eli Lilly g., Board of Directors, non-salaried role).
Ideology Health Gift.
NGM Biopharmaceuticals ).
Boehringer Ingelheim ).
Mirati / Bristol-Myers Squibb ).