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CELL INTELLIGENCE · 肿瘤细胞治疗研究
肿瘤细胞治疗研究
英文原题:Bulk and single-cell transcriptome reveal the immuno-prognostic subtypes and tumour microenvironment heterogeneity in HCC.
Bulk and single-cell transcriptome reveal the immuno-prognostic subtypes and tumour microenvironment heterogeneity in HCC.
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基于 REO 的免疫预后亚型有助于 HCC 的个体化预后预测和治疗选择。本研究为理解 HCC 免疫预后亚型之间的 TME 异质性铺平了道路。
越来越多的证据表明,肿瘤微环境(TME)深刻影响肝细胞癌(HCC)的临床结局。现有的免疫亚型易受批次效应影响,而整合分析bulk和单细胞转录组有助于识别HCC中的免疫亚型和TME。
基于1259个免疫相关基因的相对表达排序(REO),在来自五个批量转录组队列的907例HCC样本中开发并验证了一个免疫预后特征,其中包括72例内部样本。构建了基于具有稳定REO的亚型特异性基因对的机器学习模型,以在单细胞RNA-seq数据中联合预测免疫预后亚型,并在另一份单细胞数据中进行了验证。随后,分析了亚型之间的癌症特征、免疫景观、潜在机制和治疗获益。
一个包含29个基因对的免疫相关特征将HCC样本个体化分为两个风险亚组(C1和C2),该特征是总生存期的独立预后因素。机器学习模型从五个bulk队列验证了免疫亚型至两个单细胞转录组数据。整合分析显示,C1预后较差,CNV负荷和恶性评分较高,对索拉非尼敏感性较高,并表现出免疫抑制表型,具有更多调节因子,例如髓源性抑制细胞(MDSCs)、Mø_SPP1,而C2则以预后较好、代谢较高、从免疫治疗中获益更多为特征,并表现出活跃免疫,具有更多效应因子,例如TIL(肿瘤浸润淋巴细胞)和树突状细胞。此外,两个单细胞数据均揭示了SPP1相关L-R对在癌细胞与免疫细胞之间的串扰,尤其是SPP1-CD44,可能导致C1中的免疫抑制。
Based on the relative expression ordering (REO) of 1259 immune-related genes, an immuno-prognostic signature was developed and validated in 907 HCC samples from five bulk transcriptomic cohorts, including 72 in-house samples. The machine learning models based on subtype-specific gene pairs with stable REOs were constructed to jointly predict immuno-prognostic subtypes in single-cell RNA-seq data and validated in another single-cell data. Then, cancer characteristics, immune landscape, underlying mechanism and therapeutic benefits between subtypes were analysed.
An immune-related signature with 29 gene pairs stratified HCC samples individually into two risk subgroups (C1 and C2), which was an independent prognostic factor for overall survival. The machine learning models verified the immune subtypes from five bulk cohorts to two single-cell transcriptomic data. Integrative analysis revealed that C1 had poorer outcomes, higher CNV burden and malignant scores, higher sensitivity to sorafenib, and exhibited an immunosuppressive phenotype with more regulators, e.g., myeloid-derived suppressor cells (MDSCs), Mø_SPP1, while C2 was characterized with better outcomes, higher metabolism, more benefit from immunotherapy, and displayed active immune with more effectors, e.g., tumour infiltrating lymphocyte and dendritic cell. Moreover, both two single-cell data revealed the crosstalk of SPP1-related L-R pairs between cancer and immune cells, especially SPP1-CD44, might lead to immunosuppression in C1.
The REO-based immuno-prognostic subtypes were conducive to individualized prognosis prediction and treatment options for HCC. This study paved the way for understanding TME heterogeneity between immuno-prognostic subtypes of HCC.
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