CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Chaperonin containing TCP1 subunit 5 as a novel pan-cancer prognostic biomarker for tumor stemness and immunotherapy response: insights from multi-omics data, integrated machine learning, and experimental validation.
Chaperonin containing TCP1 subunit 5 as a novel pan-cancer prognostic biomarker for tumor stemness and immunotherapy response: insights from multi-omics data, integrated machine learning, and experimental validation.
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本研究揭示了 CCT5 的多方面致癌作用,并强调其作为泛癌预后和免疫治疗反应生物标志物的潜力。机器学习衍生的 CCT5.Sig 模型为患者分层提供了可靠工具,并可能为个性化免疫治疗策略提供依据。
含TCP1亚基5的伴侣蛋白(CCT5)是分子伴侣蛋白复合体的重要组成部分,已被认为与肿瘤发生、癌症干性维持和治疗耐药性有关。然而,其在泛癌进展中的全面作用、潜在的生物学功能以及作为免疫治疗反应预测因子的潜力仍知之甚少。
我们对CCT5在33种癌症类型中进行了全面的多组学泛癌分析,整合了bulk RNA-seq、单细胞RNA-seq(scRNA-seq)和空间转录组学数据。评估了CCT5的表达模式、预后相关性、干性关联及免疫微环境关系。利用机器学习在涵盖八种癌症类型的23个免疫检查点阻断(ICB)队列(n = 1394)上开发了一种新型基于CCT5的特征标签(CCT5.Sig)。使用AUC指标和生存分析评估了模型性能。
CCT5在肿瘤组织中显著高表达,且主要定位于恶性细胞和增殖周期中的细胞。CCT5高表达与多种癌症的不良预后相关,并富集于致癌、细胞周期和DNA损伤修复通路。CCT5表达与mRNAsi、mDNAsi和CytoTRACE评分呈正相关,表明其在干性维持中发挥作用。此外,CCT5高表达肿瘤表现出免疫冷表型,TIL和CD8⁺ T细胞活性降低。基于与CCT5共表达基因构建的CCT5.Sig模型对ICB应答具有优越的预测准确性(验证集中AUC = 0.82,独立测试中为0.76),优于现有的泛癌特征。
Chaperonin containing TCP1 subunit 5 (CCT5), a vital component of the molecular chaperonin complex, has been implicated in tumorigenesis, cancer stemness maintenance, and therapeutic resistance. Nevertheless, its comprehensive roles in pan-cancer progression, underlying biological functions, and potential as a predictor of immunotherapy response remains poorly understood.
We performed a comprehensive multi-omics pan-cancer analysis of CCT5 across 33 cancer types, integrating bulk RNA-seq, single-cell RNA-seq (scRNA-seq), and spatial transcriptomics data. CCT5 expression patterns, prognostic relevance, stemness association, and immune microenvironment relationships were evaluated. A novel CCT5-based signature (CCT5.Sig) was developed using machine learning on 23 immune checkpoint blockade (ICB) cohorts (n = 1394) spanning eight cancer types. Model performance was assessed using AUC metrics and survival analyses.
CCT5 was significantly overexpressed in tumor tissues and primarily localized to malignant and cycling cells. High CCT5 expression correlated with poor prognosis in multiple cancers and was enriched in oncogenic, cell cycle, and DNA damage repair pathways. CCT5 expression was positively associated with mRNAsi, mDNAsi, and CytoTRACE scores, indicating a role in stemness maintenance. Furthermore, CCT5-high tumors exhibited immune-cold phenotypes, with reduced TILs and CD8⁺ T cell activity. The CCT5.Sig model, based on genes co-expressed with CCT5, achieved superior predictive accuracy for ICB response (AUC = 0.82 in validation and 0.76 in independent testing), outperforming existing pan-cancer signatures.
This study reveals the multifaceted oncogenic roles of CCT5 and highlights its potential as a pan-cancer biomarker for prognosis and immunotherapy response. The machine learning-derived CCT5.Sig model provides a robust tool for patient stratification and may inform personalized immunotherapy strategies.
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