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:Systematic screening of metabolic pathways to identify two breast cancer subtypes with divergent immune characteristics.
Systematic screening of metabolic pathways to identify two breast cancer subtypes with divergent immune characteristics.
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由于乳腺癌(BRCA)患者之间存在高度异质性,大多数个体对某一种特定治疗的缓解率有限。BRCA细胞的代谢可塑性是其异质性的主要原因之一,不仅影响其自身的生长和功能,其代谢产物还对肿瘤免疫微环境(TIME)产生影响。
然而,目前缺乏对BRCA中代谢通路的系统性评估。我们通过对TCGA BRCA发现队列(n = 1094)中26条KEGG/Reactome通路进行共识聚类,识别出BRCA代谢亚型(BCMS)。使用九个独立的批量转录组队列(总n > 4000),包括METABRIC和GEO数据集,通过随机森林分类进行验证。为了表征BCMS,我们应用了一个分析框架,涵盖批量转录组数据上的功能富集(GSEA)、免疫浸润(Mcpcounter)、临床相关性、药物敏感性(oncoPredict),单细胞RNA测序(scRNA-seq)数据上的细胞间通讯分析(CellChat),以及空间RNA测序(spRNA-seq)数据上的空间共定位分析(CellTrek)。
我们识别出两种不同的BCMS。BCMS-I表现出脂质代谢相关通路上调,以免疫激活、较好的预后以及更高的免疫细胞浸润为特征,包括B细胞、T细胞、NK细胞、巨噬细胞和中性粒细胞。空间共定位分析进一步揭示BCMS-I与免疫细胞表现出空间共定位。相比之下,BCMS-II表现出氨基酸和维生素代谢相关通路上调,伴有肿瘤细胞增殖、较差的预后以及缺乏免疫细胞浸润。BCMS-I中的免疫激活以肿瘤细胞与T/NK细胞相互作用中MHC-I信号通路的显著激活,以及肿瘤细胞与树突状细胞/巨噬细胞相互作用中MHC-II信号通路的显著激活为标志。相比之下,BCMS-II的增殖特征与肿瘤微环境中髓系免疫细胞和基质细胞对GRN信号通路的共同激活相关。药物敏感性分析显示,BCMS-II对Ganitumab、Carboplatin + ABT-888和Pembrolizumab高度敏感。
本研究基于代谢通路分析建立了一种新型乳腺癌代谢分型系统(BCMSS)。我们的发现突出了BRCA在代谢特征、免疫特征、临床预后和药物敏感性方面的异质性。这一新型分类系统为临床诊断和治疗提供了有价值的见解,为BRCA的精准诊断和个性化治疗奠定了基础。
Due to the high heterogeneity among breast cancer (BRCA) patients, most individuals show a limited response rate to one specific treatment. The metabolic plasticity of BRCA cells is one of the main causes of their heterogeneity, affecting not only their own growth and function but also their metabolites have an impact on the tumor immune microenvironment (TIME).
However systematic evaluation of metabolic pathways in BRCA is lacking.
We identified BRCA metabolic subtypes (BCMS) by consensus clustering 26 KEGG/Reactome pathways in the TCGA BRCA discovery cohort (n = 1094). Nine independent bulk transcriptome cohorts (total n > 4000), including METABRIC and GEO datasets, were used for validation via random forest classification.
To characterize BCMS, we applied an analytical framework encompassing functional enrichment (GSEA), immune infiltration (Mcpcounter), clinical correlation, drug sensitivity (oncoPredict) on bulk transcriptome data, cell-cell communication analysis (CellChat) on single-cell RNA sequencing (scRNA-seq) data, and spatial co-localization analysis (CellTrek) on spatial RNA sequencing (spRNA-seq) data.
We identified two distinct BCMS. BCMS-I exhibited upregulated lipid metabolism-related pathways, characterized by immune activation, a better prognosis, and higher infiltration of immune cells, including B cells, T cells, NK cells, macrophages, and neutrophils. Spatial co-localization analysis further revealed that BCMS-I demonstrated spatial co-localization with immune cells. In contrast, BCMS-II showed upregulation of amino acid and vitamin metabolism-related pathways, with tumor cell proliferation, a poorer prognosis, and a lack of immune cell infiltration.
The immune activation in BCMS-I is marked by the significant activation of the MHC-I signaling pathway in interactions between tumor cells and T/NK cells, and of the MHC-II signaling pathway in interactions between tumor cells and dendritic cells/macrophages.
In contrast, the proliferative characteristics of BCMS-II are associated with the co-activation of the GRN signaling pathway by myeloid immune cells and stromal cells within the tumor microenvironment. Drug sensitivity analysis revealed that BCMS-II was highly sensitive to Ganitumab, Carboplatin + ABT-888, and Pembrolizumab.
This study established a novel Breast Cancer Metabolic Subtyping System (BCMSS) based on metabolic pathway analysis.
Our findings highlight the heterogeneity of BRCA in terms of metabolic features, immune characteristics, clinical prognosis, and drug sensitivity. The novel classification system provides valuable insights for clinical diagnosis and treatment, serving as a foundation for precision diagnosis and personalized therapies in BRCA.
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