转录组
细胞生物学
T细胞
生物
细胞
免疫系统
细胞因子
炎症
效应器
癌症研究
细胞凋亡
调节器
化学
基因敲除
信号转导
细胞生长
细胞培养
内皮干细胞
基因表达谱
肿瘤坏死因子α
电池类型
钻机-I
内皮
先天免疫系统
小干扰RNA
免疫疗法
下调和上调
细胞毒性T细胞
Jurkat细胞
肿瘤微环境
作者
L Wang,Honglin He,Ke Su,Yu Gao,Ying Luo,Huanhuan Tan,Ziyang Liu,Ke Xu,Yi Li,Xiaosong Li
标识
DOI:10.1016/j.tranon.2026.102809
摘要
• Multi-omics profiling identifies NNMT as a high-confidence therapeutic target overexpressed in tumor-associated endothelial cells in ccRCC. • NNMT+ endothelial cells form an immunosuppressive niche in direct contact with exhausted CD8+ T cells via active TGF-β signaling. • NNMT knockdown restores CD8+ T cell effector function, reduces pro-inflammatory cytokines, and shifts the BAX/Bcl-2 ratio toward apoptosis. • Multi-omics screening identifies I-BET-762, I-BET-151, PFI-1, and BMS-387032 as potent inhibitors of NNMT to reverse T cell exhaustion. • NNMT serves as a central metabolic-immune hub orchestrating TGF-β-mediated immune dysfunction and endothelial reprogramming in ccRCC. CD8⁺ T cell exhaustion is a defining feature of the immunosuppressive TME in ccRCC. We employed a multi-omics driven pipeline to nominate Nicotinamide N-methyltransferase (NNMT) as a high-confidence therapeutic target in ccRCC. This computational prediction was validated through bulk RNA-seq, single-cell RNA sequencing, and spatial transcriptomics to delineate NNMT-associated molecular and cellular programs. While the discovery phase highlighted endothelial-specific NNMT overexpression, we further validated the functional consequences of NNMT modulation using Caki-1 and A498 cell lines to model the downstream signaling cascades. Functional assays assessed impacts on proliferation, apoptosis, cytokine secretion (IL-6, IL-1β, TNF-α), and TGF-β pathway activity. Immune infiltration and T cell exhaustion signatures were evaluated across TCGA cohorts. Multi-omics profiling revealed that NNMT is specifically overexpressed in tumor-associated endothelial cells enriched for active TGF-β signaling and inflammatory cues. High NNMT expression strongly correlated with CD8⁺ T cell exhaustion, elevated apoptotic signaling, and immunosuppressive cytokine production. In functional validation, NNMT knockdown suppressed TGF-β activity, reduced pro-inflammatory cytokines, and restored CD8⁺ T cell infiltration and effector function. Mechanistically, NNMT loss shifted the BAX/Bcl-2 ratio toward apoptosis and increased cleaved caspase-3. Spatial transcriptomics confirmed that NNMT⁺ endothelial cells form an immunosuppressive niche in direct contact with exhausted T cells. We also found that I-BET-762, I-BET-151, PFI-1, and BMS-387032 can target and inhibit NNMT to reduce CD8⁺ T cell exhaustion. We establish NNMT as a central metabolic-immune hub that orchestrates TGF-β-mediated CD8⁺ T cell dysfunction and endothelial reprogramming in ccRCC.
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