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Transcriptional Networks Inferred from Molecular Signatures of Breast Cancer

机译:从乳腺癌的分子特征推断转录网络。

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Global genomic approaches in cancer research have provided new and innovative strategies for the identification of signatures that differentiate various types of human cancers. Computational analysis of the promoter composition of the genes within these signatures may provide a powerful method for deducing the regulatory transcriptional networks that mediate their collective function. In this study we have systematically analyzed the promoter composition of gene classes derived from previously established genetic signatures that recently have been shown to reliably and reproducibly distinguish five molecular subtypes of breast cancer associated with distinct clinical outcomes. Inferences made from the trends of transcription factor binding site enrichment in the promoters of these gene groups led to the identification of regulatory pathways that implicate discrete transcriptional networks associated with specific molecular subtypes of breast cancer. One of these inferred pathways predicted a role for nuclear factor-B in a novel feed-forward, self-amplifying, autoregulatory module regulated by the ERBB family of growth factor receptors. The existence of this pathway was verified in vivo by chromatin immunoprecipitation and shown to be deregulated in breast cancer cells overexpressing ERBB2. This analysis indicates that approaches of this type can provide unique insights into the differential regulatory molecular programs associated with breast cancer and will aid in identifying specific transcriptional networks and pathways as potential targets for tumor subtype-specific therapeutic intervention.
机译:癌症研究中的全球基因组学方法为识别区分各种人类癌症的特征提供了新的创新策略。这些签名内的基因的启动子组成的计算分析可提供一个强大的方法,以推导介导其集体功能的调控转录网络。在这项研究中,我们已经系统地分析了由先前建立的遗传特征衍生的基因类别的启动子组成,最近发现这些遗传特征能可靠,可重复地区分与明显临床结果相关的乳腺癌的五种分子亚型。从这些基因组的启动子中转录因子结合位点富集趋势的推断得出了调控途径的鉴定,该调控途径暗示了与乳腺癌的特定分子亚型相关的离散转录网络。这些推测的途径之一预测了核因子B在由生长因子受体ERBB家族调控的新型前馈,自我扩增,自动调节模块中的作用。该途径的存在已通过染色质免疫沉淀在体内得到证实,并在过度表达ERBB2的乳腺癌细胞中被证实是失控的。该分析表明,这种类型的方法可以为与乳腺癌相关的差异调节分子程序提供独特的见解,并将有助于确定特定的转录网络和途径,作为肿瘤亚型特异性治疗干预的潜在靶标。

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