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首页> 外文期刊>BMC Bioinformatics >ComHub: Community predictions of hubs in gene regulatory networks
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ComHub: Community predictions of hubs in gene regulatory networks

机译:ComHub:基因监管网络中枢中心的社区预测

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Hub transcription factors, regulating many target genes in gene regulatory networks (GRNs), play important roles as disease regulators and potential drug targets. However, while numerous methods have been developed to predict individual regulator-gene interactions from gene expression data, few methods focus on inferring these hubs. We have developed ComHub, a tool to predict hubs in GRNs. ComHub makes a community prediction of hubs by averaging over predictions by a compendium of network inference methods. Benchmarking ComHub against the DREAM5 challenge data and two independent gene expression datasets showed a robust performance of ComHub over all datasets. In contrast to other evaluated methods, ComHub consistently scored among the top performing methods on data from different sources. Lastly, we implemented ComHub to work with both predefined networks and to perform stand-alone network inference, which will make the method generally applicable.
机译:集线器转录因子,调节基因监管网络(GRNS)中的许多靶基因,发挥重要作用作为疾病调节因子和潜在的药物目标。 然而,虽然已经开发了许多方法以预测来自基因表达数据的单个调节因子 - 基因相互作用,但很少有方法侧重于推断这些轮毂。 我们开发了一个用于预测GRNS中的集线器的工具。 ComHub通过通过网络推理方法的汇编对预测进行平均来进行集线器的社区预测。 基准测试ComHub对Dream5挑战数据和两个独立的基因表达数据集显示了所有数据集的ComHub的强大性能。 与其他评估方法相比,ComHub在来自不同来源的数据上的顶部执行方法中始终如一地评分。 最后,我们实现了ComHub以使用两个预定义网络,并执行独立的网络推断,这将使该方法一般适用。

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