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Prediction of Associations between OMIM Diseases and MicroRNAs by Random Walk on OMIM Disease Similarity Network

机译:OMIM疾病相似性随机步行预测OMIM疾病与微大RNA的关联

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Increasing evidence has revealed that microRNAs (miRNAs) play important roles in the development and progression of human diseases. However, efforts made to uncover OMIM disease-miRNA associations are lacking and the majority of diseases in the OMIM database are not associated with any miRNA. Therefore, there is a strong incentive to develop computational methods to detect potential OMIM disease-miRNA associations. In this paper, random walk on OMIM disease similarity network is applied to predict potential OMIM disease-miRNA associations under the assumption that functionally related miRNAs are often associated with phenotypically similar diseases. Our method makes full use of global disease similarity values. We tested our method on 1226 known OMIM disease-miRNA associations in the framework of leave-one-out cross-validation and achieved an area under the ROC curve of 71.42%. Excellent performance enables us to predict a number of new potential OMIM disease-miRNA associations and the newly predicted associations are publicly released to facilitate future studies. Some predicted associations with high ranks were manually checked and were confirmed from the publicly available databases, which was a strong evidence for the practical relevance of our method.
机译:越来越多的证据表明,MicroRNA(miRNA)在人类疾病的发展和进展中起着重要作用。然而,缺乏针对揭露OMIM疾病 - miRNA关联的努力,并且OMIM数据库中的大多数疾病与任何miRNA无关。因此,有强烈的动力来开发计算方法以检测潜在的OMIM疾病 - miRNA关联。在本文中,应用随机步行在OMIM疾病相似性网络中,以预测潜在的OMIM疾病 - miRNA关联,在功能相关的miRNA通常与表型类似疾病相关。我们的方法充分利用了全球疾病相似性值。我们在休假交叉验证框架框架中测试了1226名已知OMIM疾病-MiRNA关联的方法,并在71.42%的ROC曲线下实现了一个区域。优异的性能使我们能够预测许多新的潜在OMIM疾病 - miRNA协会,新预测的协会公开发布,以促进未来的研究。手动检查具有高级的一些预测关联,并从公开的数据库中确认,这是我们方法实际相关性的强有力证据。

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