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Random walks on mutual microRNA-target gene interaction network improve the prediction of disease-associated microRNAs

机译:随机漫步于相互的microRNA-靶标基因相互作用网络可改善疾病相关microRNA的预测

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摘要

BackgroundMicroRNAs (miRNAs) have been shown to play an important role in pathological initiation, progression and maintenance. Because identification in the laboratory of disease-related miRNAs is not straightforward, numerous network-based methods have been developed to predict novel miRNAs in silico. Homogeneous networks (in which every node is a miRNA) based on the targets shared between miRNAs have been widely used to predict their role in disease phenotypes. Although such homogeneous networks can predict potential disease-associated miRNAs, they do not consider the roles of the target genes of the miRNAs. Here, we introduce a novel method based on a heterogeneous network that not only considers miRNAs but also the corresponding target genes in the network model.
机译:背景MicroRNA(miRNA)已显示在病理起始,进展和维持中起重要作用。由于在实验室中鉴定与疾病相关的miRNA并不简单,因此已开发出许多基于网络的方法来预测计算机中的新型miRNA。基于miRNA之间共享的靶标的同质网络(其中每个节点都是miRNA)已被广泛用于预测其在疾病表型中的作用。尽管此类同质网络可以预测潜在的疾病相关miRNA,但它们并未考虑miRNA靶基因的作用。在这里,我们介绍一种基于异质网络的新颖方法,该方法不仅考虑miRNA,而且考虑网络模型中的相应目标基因。

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