γδ T 细胞调节小细胞肺癌中的抗肿瘤免疫
γδ T cells modulate anti-tumor immunity in small cell lung cancer.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Development of a metabolism-related signature for predicting prognosis, immune infiltration and immunotherapy response in breast cancer.
Development of a metabolism-related signature for predicting prognosis, immune infiltration and immunotherapy response in breast cancer.
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乳腺癌(BRCA)是全球最常诊断的癌症,也是癌症死亡的主要原因之一。代谢过程异常是癌细胞区别于正常细胞的重要特征。目前,评估BRCA患者预后和治疗应答的代谢分子模型较少。
本研究通过生物信息学分析公共数据库中的BRCA样本RNA测序数据,开发了基于7个代谢基因(PLA2G2D、GNPNAT1、QPRT、SHMT2、PAICS、NT5E和PLPP2)的预后特征。所有5个队列(TCGA队列、2个外部验证队列和2个内部验证队列)中,低危患者总生存期均较好。低危组肿瘤浸润CD8⁺ T细胞、静息记忆CD4⁺ T细胞、γδ T细胞和静息树突状细胞比例更高,M0和M2巨噬细胞比例更低。低危患者还显示更高ESTIMATE评分、免疫功能评分、免疫表型评分(IPS)和检查点表达,以及更低干性评分、肿瘤免疫功能障碍与排斥(TIDE)评分和多种化疗药物IC50值,提示其可能对免疫治疗和化疗应答更佳。研究还使用两个真实世界抗PD-1治疗患者队列验证预测结果。基于7个基因识别的分子亚型也显示不同免疫特征。来自人类蛋白质图谱的免疫组化数据证实了特征基因的蛋白表达。
本研究可能有助于鉴定BRCA代谢靶点,并优化患者风险分层和个体化治疗。
Breast cancer (BRCA) is the most commonly diagnosed cancer and among the top causes of cancer deaths globally. The abnormality of the metabolic process is an important characteristic that distinguishes cancer cells from normal cells. Currently, there are few metabolic molecular models to evaluate the prognosis and treatment response of BRCA patients. By analyzing RNA-seq data of BRCA samples from public databases via bioinformatic approaches, we developed a prognostic signature based on seven metabolic genes (PLA2G2D, GNPNAT1, QPRT, SHMT2, PAICS, NT5E and PLPP2). Low-risk patients showed better overall survival in all five cohorts (TCGA cohort, two external validation cohorts and two internal validation cohorts). There was a higher proportion of tumor-infiltrating CD8 + T cells, CD4 + memory resting T cells, gamma delta T cells and resting dendritic cells and a lower proportion of M0 and M2 macrophages in the low-risk group.
Low-risk patients also showed higher ESTIMATE scores, higher immune function scores, higher Immunophenoscores (IPS) and checkpoint expression, lower stemness scores, lower TIDE (Tumor Immune Dysfunction and Exclusion) scores and IC50 values for several chemotherapeutic agents, suggesting that low-risk patients could respond more favorably to immunotherapy and chemotherapy. Two real-world patient cohorts receiving anti-PD-1 therapy were applied for validating the predictive results.
Molecular subtypes identified based on these seven genes also showed different immune characteristics. Immunohistochemical data obtained from the human protein atlas database demonstrated the protein expression of signature genes. This research may contribute to the identification of metabolic targets for BRCA and the optimization of risk stratification and personalized treatment for BRCA patients.
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