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Prediction of lncRNA-Disease Associations from Heterogeneous Information Network Based on DeepWalk Embedding Model

机译:基于深途化嵌入模型的异构信息网络中LNCRNA疾病关联的预测

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Long non-coding RNA is a class of non-coding RNAs, with a length of more than 200 nucleotides. A large number of studies have shown that lncRNAs are involved in various life processes of the Human body and play an important role in the occurrence, development, and treatment of Human diseases. However, it is time-consuming and laborious to identify the associations between lncRNAs and diseases by traditional methods. In this paper, we propose a novel computational method to predict lncRNA-disease associations based on a heterogeneous information network. Specifically, the heterogeneous information network is constructed by integrating known associations among drugs, proteins, lncRNA, miRNA and diseases. After that, the network embedding method Online Learning of Social Representations (DeepWalk) is employed to learn vector representation of nodes in heterogeneous information network. Finally, we trained the random forest classifier to classify and predict the relationship between lncRNA and disease. As a result, the proposed method achieves average AUC of 0.8171 using five-fold cross-validation. The experimental results show that our method performs better than existing approaches, so it can be a useful tool for predicting disease-related lncRNA.
机译:长期非编码RNA是一类非编码RNA,长度超过200个核苷酸。大量研究表明,LNCRNA参与人体的各种生命过程,并在人类疾病的发生,发育和治疗中发挥重要作用。然而,通过传统方法确定LNCRNA和疾病之间的关联是耗时和费力的。在本文中,我们提出了一种基于异构信息网络预测LNCRNA疾病关联的新型计算方法。具体地,通过将​​药物,蛋白质,LNCRNA,miRNA和疾病之间的已知关联整合来构建异质信息网络。此后,使用网络嵌入方法在线学习社会表示(深度Deplwalk)来学习异构信息网络中节点的矢量表示。最后,我们培训了随机林分类器进行分类和预测LNCRNA和疾病之间的关系。结果,所提出的方法使用五倍交叉验证实现0.8171的平均AUC。实验结果表明,我们的方法比现有方法更好,因此可以是预测与疾病相关的LNCRNA的有用工具。

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