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Predicting MicroRNA-Disease Associations Based on Improved MicroRNA and Disease Similarities

机译:基于改进的MicroRNA和疾病相似性预测MicroRNA疾病关联

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MicroRNAs (miRNAs) are a type of non-coding RNAs with about ∼22nt nucleotides. Increasing evidences have shown that miRNAs play critical roles in many human diseases. The identification of human disease-related miRNAs is helpful to explore the underlying pathogenesis of diseases. More and more experimental validated associations between miRNAs and diseases have been reported in the recent studies, which provide useful information for new miRNA-disease association discovery. In this study, we propose a computational framework, KBMF-MDI, to predict the associations between miRNAs and diseases based on their similarities. The sequence and function information of miRNAs are used to measure similarity among miRNAs while the semantic and function information of disease are used to measure similarity among diseases, respectively. In addition, the kernelized Bayesian matrix factorization method is employed to infer potential miRNA-disease associations by integrating these data sources. We applied this method to 6,084 known miRNA-disease associations and utilized 5-fold cross validation to evaluate the performance. The experimental results demonstrate that our method can effectively predict unknown miRNA-disease associations.
机译:微小RNA(miRNA)是一种非编码RNA,具有约22nt核苷酸。越来越多的证据表明,miRNA在许多人类疾病中起着至关重要的作用。人类疾病相关miRNA的鉴定有助于探索疾病的潜在发病机理。在最近的研究中,已经报道了越来越多的经过实验验证的miRNA与疾病之间的关联,这些关联为新的miRNA-疾病关联发现提供了有用的信息。在这项研究中,我们提出了一个计算框架KBMF-MDI,以基于它们的相似性来预测miRNA与疾病之间的关联。 miRNA的序列和功能信息用于测量miRNA之间的相似性,而疾病的语义和功能信息分别用于测量疾病之间的相似性。另外,采用核化贝叶斯矩阵分解方法通过整合这些数据源来推断潜在的miRNA-疾病关联。我们将此方法应用于6,084个已知的miRNA疾病关联,并利用5倍交叉验证来评估性能。实验结果表明,我们的方法可以有效预测未知的miRNA-疾病关联。

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