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Biclustering analysis of transcriptome big data identifies condition-specific microRNA targets

机译:转录组大数据的聚类分析可确定条件特异性的microRNA靶标

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摘要

We present a novel approach to identify human microRNA (miRNA) regulatory modules (mRNA targets and relevant cell conditions) by biclustering a large collection of mRNA fold-change data for sequence-specific targets. Bicluster targets were assessed using validated messenger RNA (mRNA) targets and exhibited on an average 17.0% (median 19.4%) improved gain in certainty (sensitivity + specificity). The net gain was further increased up to 32.0% (median 33.4%) by incorporating functional networks of targets. We analyzed cancer-specific biclusters and found that the PI3K/Akt signaling pathway is strongly enriched with targets of a few miRNAs in breast cancer and diffuse large B-cell lymphoma. Indeed, five independent prognostic miRNAs were identified, and repression of bicluster targets and pathway activity by miR-29 was experimentally validated. In total, 29?898 biclusters for 459 human miRNAs were collected in the BiMIR database where biclusters are searchable for miRNAs, tissues, diseases, keywords and target genes.
机译:我们提出了一种新颖的方法,通过为序列特异性靶标收集大量的mRNA倍数变化数据来识别人类microRNA(miRNA)调控模块(mRNA靶标和相关的细胞状况)。使用经过验证的信使RNA(mRNA)靶标评估双链靶标,并显示出平均17.0%(中位数19.4%)的确定性提高(敏感性+特异性)。通过合并目标的功能网络,净收益进一步提高至32.0%(中位数33.4%)。我们分析了特定于癌症的双聚体,发现PI3K / Akt信号通路在乳腺癌和弥漫性大B细胞淋巴瘤中富含一些miRNA的靶标。实际上,已鉴定出五个独立的预后性miRNA,并通过实验验证了miR-29抑制二聚体靶标和通路活性。在BiMIR数据库中,总共收集到459个人类miRNA的29?898个双簇,在其中可搜索双簇的miRNA,组织,疾病,关键词和靶基因。

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