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:Comparative N-Glycoproteomics Reveals Subtype-Specific N-Glycosylation Signatures and Immune Associations in Cholangiocarcinoma.
Comparative N-Glycoproteomics Reveals Subtype-Specific N-Glycosylation Signatures and Immune Associations in Cholangiocarcinoma.
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胆管癌(CCA)包括肝内(iCCA)和肝外(eCCA)亚型,每种亚型均表现出不同的分子特征。理解这些差异对于识别亚型特异性治疗靶点和推进精准医学至关重要。蛋白质糖基化是一种关键的翻译后修饰,可调控免疫逃逸和转移,然而iCCA与eCCA之间的糖蛋白质组学差异尚未被探索。
在此,我们呈现了首个eCCA的综合N-糖蛋白质组学图谱,并利用公开数据集将其与iCCA进行比较。我们对配对的eCCA肿瘤与正常邻近组织(NATs)进行的N-糖蛋白质组学分析鉴定出8372个N-糖肽、3467个N-糖基化位点和2627个N-糖蛋白。比较分析揭示了不同的N-糖基化特征,eCCA表现出更高的岩藻糖基化聚糖,而iCCA表现出唾液酸化增加。N-糖蛋白的通路富集分析显示,eCCA中溶酶体相关富集更为突出,而与免疫调节、细胞骨架成分和细胞外基质相关的通路在两个亚型中均显著富集。免疫谱分析显示eCCA和iCCA均存在免疫抑制性微环境,其特征为NK 细胞浸润减少以及亚型特异性的成纤维细胞和内皮细胞重塑。DPM1是一种在eCCA中高表达的糖基化酶,与肿瘤特异性N-糖肽及免疫细胞浸润减少相关。其敲低损害了细胞迁移,糖蛋白质组学分析表明DPM1参与调控黏附、蛋白质稳态和免疫通路,突显了其作为eCCA治疗靶点的潜力。
我们的发现为CCA亚型中N-糖基化改变提供了见解,强调N-糖基化相关机制可作为潜在的生物标志物和治疗靶点,尤其是在eCCA中。
Cholangiocarcinoma (CCA) comprises intrahepatic (iCCA) and extrahepatic (eCCA) subtypes, each exhibiting distinct molecular characteristics. Understanding these differences is critical for identifying subtype-specific therapeutic targets and advancing precision medicine. Protein glycosylation, a key post-translational modification, regulates immune evasion and metastasis, yet the glycoproteomic difference between iCCA and eCCA remains unexplored.
Here we presented the first comprehensive N-glycoproteomic profile of eCCA and compared it with iCCA using a publicly available dataset.
Our N-glycoproteomic analysis of paired eCCA tumors and normal adjacent tissues (NATs) identified 8372 N-glycopeptides, 3467 N-glycosites, and 2627 N-glycoproteins. Comparative analysis revealed distinct N-glycosylation signature, with eCCA exhibiting higher fucosylated glycans and iCCA showing increased sialylation. Pathway enrichment analysis of N-glycoproteins revealed a more prominent lysosome-related enrichment in eCCA, whereas pathways related to immune modulation, cytoskeletal components, and the extracellular matrix were significantly enriched in both subtypes.
Immune profiling revealed an immunosuppressive microenvironment in both eCCA and iCCA, characterized by reduced natural killer cell infiltration and subtype-specific fibroblast and endothelial cell remodeling. DPM1, a glycosylation enzyme highly expressed in eCCA, was associated with tumor-specific N-glycopeptides and reduced immune cell infiltration. Its knockdown impaired cell migration, and glycoproteomic analysis implicated DPM1 in regulating adhesion, proteostasis, and immune pathways, highlighting its potential as a therapeutic target in eCCA.
Our findings provide insights into N-glycosylation alterations in CCA subtypes, underscoring N-glycosylation-related mechanisms as potential biomarkers and therapeutic targets, particularly in eCCA.
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