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Comprehensive transcriptome analysis identifies novel molecular subtypes and subtype-specific RNAs of triple-negative breast cancer

机译:综合转录组分析鉴定了三重阴性乳腺癌的新型分子亚型和亚型特异性RNA

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Triple-negative breast cancer (TNBC) is a highly heterogeneous group of cancers, and molecular subtyping is necessary to better identify molecular-based therapies. While some classifiers have been established, no one has integrated the expression profiles of long?noncoding RNAs (lncRNAs) into such subtyping criterions. Considering the emerging important role of lncRNAs in cellular processes, a novel classification integrating transcriptome profiles of both messenger RNA (mRNA) and lncRNA would help us better understand the heterogeneity of TNBC. Using human transcriptome microarrays, we analyzed the transcriptome profiles of 165 TNBC samples. We used k-means clustering and empirical cumulative distribution function to determine optimal number of TNBC subtypes. Gene Ontology (GO) and pathway analyses were applied to determine the main function of the subtype-specific genes and pathways. We conducted co-expression network analyses to identify interactions between mRNAs and lncRNAs. All of the 165 TNBC tumors were classified into four distinct clusters, including an immunomodulatory subtype (IM), a luminal androgen receptor subtype (LAR), a mesenchymal-like subtype (MES) and a basal-like and immune suppressed (BLIS) subtype. The IM subtype had high expressions of immune cell signaling and cytokine signaling genes. The LAR subtype was characterized by androgen receptor signaling. The MES subtype was enriched with growth factor signaling pathways. The BLIS subtype was characterized by down-regulation of immune response genes, activation of cell cycle, and DNA repair. Patients in this subtype experienced worse recurrence-free survival than others (log rank test, P?=?0.045). Subtype-specific lncRNAs were identified, and their possible biological functions were predicted using co-expression network analyses. We developed a novel TNBC classification system integrating the expression profiles of both mRNAs and lncRNAs and determined subtype-specific lncRNAs that are potential biomarkers and targets. If further validated in a larger population, our novel classification system could facilitate patient counseling and individualize treatment of TNBC.
机译:三阴性乳腺癌(TNBC)是一种高度异质的癌症,并且需要分子亚型以更好地识别基于分子的疗法。虽然已经建立了一些分类器,但没有人集成了长的Long?NONCODING RNA(LNCRNA)的表达配置文件。考虑到LNCRNA在细胞过程中的新出现的重要作用,一种新的分类,整合了信使RNA(mRNA)和LNCRNA的转录组谱将有助于我们更好地了解TNBC的异质性。使用人体转录组微阵列,我们分析了165个TNBC样品的转录组谱。我们使用K-Means集群和经验累积分布函数来确定最佳TNBC亚型数。基因本体(GO)和途径分析施用以确定亚型特异性基因和途径的主要功能。我们进行了共表达网络分析以识别MRNA和LNCRNA之间的相互作用。将165个TNBC肿瘤的所有簇分为四个不同的簇,包括免疫调节亚型(IM),腔雄激素受体亚型(LAR),一种间充质的亚型(MES)和基础样和免疫压制(BLIS)亚型。 IM亚型具有高表达免疫细胞信号和细胞因子信号基因。大亚型以雄激素受体信号传导为特征。 MES亚型富含生长因子信号传导途径。 BLIS亚型的特征在于免疫应答基因的下调,激活细胞周期和DNA修复。这种亚型的患者经历了比其他患者更差的复发存活率(日志等级测试,P?= 0.045)。鉴定了亚型特异性LNCRNA,并且使用共表达网络分析预测了它们可能的生物学功能。我们开发了一种新的TNBC分类系统,整合MRNA和LNCRNA的表达谱和确定的亚型特异性LNCRNA,即潜在的生物标志物和目标。如果进一步验证较大的人口,我们的新型分类系统可以促进患者咨询和互解TNBC的治疗。

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