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MiRNA-TF-gene network analysis through ranking of biomolecules for multi-informative uterine leiomyoma dataset

机译:通过生物分子排名对多信息子宫平滑肌瘤数据集进行MiRNA-TF基因网络分析

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摘要

Gene ranking is an important problem in bioinformatics. Here, we propose a new framework for ranking biomolecules (viz., miRNAs, transcription-factors/TFs and genes) in a multi-informative uterine leiomyoma dataset having both gene expression and methylation data using (statistical) eigenvector centrality based approach. At first, genes that are both differentially expressed and methylated, are identified using Limma statistical test. A network, comprising these genes, corresponding TFs from TRANSFAC and ITFP databases, and targeter miRNAs from miRWalk database, is then built. The biomolecules are then ranked based on eigenvector centrality. Our proposed method provides better average accuracy in hub gene and non-hub gene classifications than other methods. Furthermore, pre-ranked Gene set enrichment analysis is applied on the pathway database as well as GO-term databases of Molecular Signatures Database with providing a pre-ranked gene-list based on different centrality values for comparing among the ranking methods. Finally, top novel potential gene-markers for the uterine leiomyoma are provided. (C) 2015 Elsevier Inc. All rights reserved.
机译:基因排名是生物信息学中的重要问题。在这里,我们提出了一个新的框架,用于使用基于(统计)特征向量中心性的方法对具有基因表达和甲基化数据的多信息子宫平滑肌瘤数据集中的生物分子(即,miRNA,转录因子/ TF和基因)进行排名。首先,使用Limma统计检验确定差异表达和甲基化的基因。然后建立一个包含这些基因,来自TRANSFAC和ITFP数据库的相应TF以及来自miRWalk数据库的靶向miRNA的网络。然后根据特征向量中心性对生物分子进行排名。我们提出的方法在中心基因和非中心基因分类中提供了比其他方法更好的平均准确性。此外,将预先排序的基因集富集分析应用于分子数据库的途径数据库以及GO术语数据库,并提供基于不同中心值的预先排序的基因列表,以便在排序方法之间进行比较。最后,提供了子宫平滑肌瘤的最新的潜在基因标记。 (C)2015 Elsevier Inc.保留所有权利。

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