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Global Similarity Method Based on a Two-tier Random Walk for the Prediction of microRNA–Disease Association

机译:基于两层随机游走的全局相似性方法预测microRNA-疾病关联

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摘要

microRNAs (miRNAs) mutation and maladjustment are related to the occurrence and development of human diseases. Studies on disease-associated miRNA have contributed to disease diagnosis and treatment. To address the problems, such as low prediction accuracy and failure to predict the relationship between new miRNAs and diseases and so on, we design a Laplacian score of graphs to calculate the global similarity of networks and propose a Global Similarity method based on a Two-tier Random Walk for the prediction of miRNA–disease association (GSTRW) to reveal the correlation between miRNAs and diseases. This method is a global approach that can simultaneously predict the correlation between all diseases and miRNAs in the absence of negative samples. Experimental results reveal that this method is better than existing approaches in terms of overall prediction accuracy and ability to predict orphan diseases and novel miRNAs. A case study on GSTRW for breast cancer and conlon cancer is also conducted, and the majority of miRNA–disease association can be verified by our experiment. This study indicates that this method is feasible and effective.
机译:microRNA(miRNA)的突变和失调与人类疾病的发生和发展有关。与疾病相关的miRNA的研究有助于疾病的诊断和治疗。为了解决诸如预测精度低和无法预测新miRNA与疾病之间的关系等问题,我们设计了一个拉普拉斯分数图来计算网络的全局相似度,并提出了一种基于“两点”的全局相似度方法。层随机游走预测miRNA-疾病关联(GSTRW),以揭示miRNA与疾病之间的相关性。该方法是一种全局方法,可以在没有阴性样品的情况下同时预测所有疾病和miRNA之间的相关性。实验结果表明,该方法在总体预测准确性和预测孤儿疾病和新型miRNA的能力方面优于现有方法。还进行了一项针对乳腺癌和结肠癌的GSTRW案例研究,我们的实验可以验证大多数miRNA与疾病的关联。研究表明,该方法是可行和有效的。

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