更正:B7-H3 CAR-T 细胞清除肝内胆管癌并诱导持久应答
Correction: B7-H3 CAR T cells eradicate intrahepatic cholangiocarcinoma and induce durable response.
CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Construction of hot tumor classification models in gastrointestinal cancers.
Construction of hot tumor classification models in gastrointestinal cancers.
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我们建立的少基因模型易于整合到临床实践中,能够区分热肿瘤和冷肿瘤亚组,并可能作为预测 ICI 反应的潜在生物标志物。
胃肠道(GI)肿瘤占肿瘤相关死亡的三分之一以上,晚期患者的预后仍然很差。免疫治疗已被证明可以延长晚期患者的生存期;然而,在患者选择和克服耐药性方面仍然存在挑战。肿瘤微环境(TME)中的TIL(肿瘤浸润淋巴细胞)和三级淋巴结构(TLS)已被发现与抗肿瘤免疫反应相关。高浸润水平的“热肿瘤”往往对免疫检查点抑制剂(ICI)治疗反应更好,使其成为ICI治疗的潜在生物标志物。
为探索预测GI癌症免疫治疗反应和预后的潜在生物标志物,我们从癌症基因组图谱(TCGA)数据库下载了七种GI癌症的基因表达谱,并对其TME进行了表征,将样本分为热/冷肿瘤亚组。此外,我们开发了一个计算框架,仅用少数基因构建癌症特异性热肿瘤分类模型。外部独立数据集和qPCR实验用于验证我们少基因模型的性能。
我们构建了癌症特异性少基因模型,仅用2至9个基因即可识别GI癌症中的热肿瘤。结果表明,B细胞对热肿瘤判定具有重要作用,且所识别的热肿瘤与TLS显著相关。它们不仅过表达TLS标志基因,还与全切片图像中TLS的存在相关。此外,我们开发了一个双基因qPCR模型,可有效区分胆管癌中的热肿瘤与冷肿瘤亚组,为临床环境中对热肿瘤患者进行分层提供了机会。
Gastrointestinal (GI) cancers account for more than one-third of cancer-related mortality, and the prognosis for late-stage patients remains poor. Immunotherapy has been proven to extend the survival of patients at advanced stages; however, challenges persist in patient selection and overcoming drug resistance. Tumor-infiltrating lymphocytes (TILs) and tertiary lymphoid structures (TLS) in the tumor microenvironment (TME) have been found to be associated with anti-tumor immune responses. 'Hot tumors' with high levels of infiltration tend to respond better to immune checkpoint inhibitor (ICI) therapy, making them potential biomarkers for ICI treatment.
To explore potential biomarkers for predicting immunotherapy response and prognosis in GI cancers, we downloaded the gene expression profiles of seven GI cancers from The Cancer Genome Atlas (TCGA) database and characterized their TME, classifying the samples into hot/cold tumor subgroups. Furthermore, we developed a computational framework to construct cancer-specific hot tumor classification models with only a few genes. External independent datasets and qPCR experiments were used to verify the performance of our few-gene models.
We constructed cancer-specific few-gene models to identify hot tumors for GI cancers with only two to nine genes. The results showed that B cells are important for hot tumor determination, and the identified hot tumors are significantly associated with TLS. They not only overexpress TLS marker genes but are also associated with the presence of TLS in whole-slide images. Further, a two-gene qPCR model was developed to effectively distinguish between hot and cold tumor subgroups in cholangiocarcinoma, providing an opportunity for stratifying patients with hot tumors in clinical settings.
In conclusion, our established few-gene models, which can be easily integrated into clinical practice, can distinguish hot and cold tumor subgroups, and may serve as potential biomarkers for predicting ICI response.
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