RNF43 p.G659fs 通过 PI3K/AKT/mTOR 信号通路和 HLA-E 上调导致 MSI-high 结直肠癌中 NK 细胞功能障碍
RNF43 p.G659fs leads to natural killer cell dysfunction in MSI-high colorectal cancer through PI3K/AKT/mTOR signaling and HLA-E up-regulation.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Integration of single-cell transcriptomics and genomic mutation analysis identifies an immunotherapy-resistant tumor subcluster and validates ARNTL2 as a malignant driver in lung adenocarcinoma.
Integration of single-cell transcriptomics and genomic mutation analysis identifies an immunotherapy-resistant tumor subcluster and validates ARNTL2 as a malignant driver in lung adenocarcinoma.
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本研究识别了 LUAD 中与耐药相关的恶性亚簇,构建了经过验证的 CoxBoost + survivalSVM 预后模型并具有稳健的免疫分层,并确立 ARNTL2 为核心致癌驱动因子和治疗靶点。
肺腺癌(LUAD)中的免疫治疗耐药仍是一项关键的临床挑战,而耐药相关瘤内异质性的机制尚不清楚。
我们对接受新辅助免疫治疗的LUAD患者(应答者 vs. 无应答者)进行了单细胞RNA测序,整合了inferCNV、GSVA和差异表达分析。簇特异性基因在七个独立队列(TCGA-LUAD、GSE13213、GSE26939、GSE29016、GSE30219、GSE31210、GSE42127)中进行了验证。采用多算法机器学习框架构建预后模型,并使用TCIA评分、七种浸润算法和ESTIMATE对免疫微环境进行表征。通过CCK-8和Transwell实验在A549和H1299细胞中评估ARNTL2功能。
无应答者与应答者相比,表现出上皮细胞显著富集、细胞毒性 T/NK 细胞耗竭以及拷贝数变异负荷升高(p < 0.0001)。一个耐药富集的恶性亚群(Cluster 2)表现出过度增殖和代谢重编程特征,伴有 KRT17、S100A2 和 CST6 上调,这些基因在多个队列中显示肿瘤特异性过表达、不良预后价值以及基因组扩增。CoxBoost 联合 survivalSVM 实现了最佳预测性能(C-index = 0.686),产生了稳健的风险分层(HR:2.54-10.51,所有 p < 0.05)。低风险患者表现出更强的免疫浸润和更高的 TCIA 免疫表型评分。ARNTL2 是一个独立预后因素(HR:2.07-4.64),与风险评分强相关(r = 0.69),其敲低在两种 LUAD 细胞系中均抑制了增殖和侵袭(所有 p < 0.05)。
Immunotherapy resistance in lung adenocarcinoma (LUAD) remains a critical clinical challenge, and the mechanisms underlying resistance-associated intratumoral heterogeneity are poorly characterized.
We performed single-cell RNA sequencing of LUAD patients receiving neoadjuvant immunotherapy (responders vs. non-responders), integrating inferCNV, GSVA, and differential expression analyses. Cluster-specific genes were validated across seven independent cohorts (TCGA-LUAD, GSE13213, GSE26939, GSE29016, GSE30219, GSE31210, GSE42127). A multi-algorithm machine learning framework was used to construct a prognostic model, and the immune microenvironment was characterized using TCIA scoring, seven infiltration algorithms, and ESTIMATE. ARNTL2 function was assessed by CCK-8 and Transwell assays in A549 and H1299 cells.
Non-responders showed significant enrichment of epithelial cells, depletion of cytotoxic T/NK cells, and elevated copy number variation burden versus responders (p < 0.0001). A resistance-enriched malignant subcluster (Cluster 2) exhibited hyperproliferative and metabolic reprogramming signatures with upregulated KRT17, S100A2, and CST6, which showed tumor-specific overexpression, adverse prognostic value, and genomic amplification across cohorts. CoxBoost combined with survivalSVM achieved optimal predictive performance (C-index = 0.686), yielding robust risk stratification (HR: 2.54-10.51, all p < 0.05). Low-risk patients showed greater immune infiltration and higher TCIA immunophenoscores. ARNTL2 was an independent prognostic factor (HR: 2.07-4.64) strongly correlated with risk score (r = 0.69), and its knockdown suppressed proliferation and invasion in both LUAD cell lines (all p < 0.05).
This study identifies a resistance-associated malignant subcluster in LUAD, constructs a validated CoxBoost + survivalSVM prognostic model with robust immune stratification, and establishes ARNTL2 as a core oncogenic driver and therapeutic target.
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