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通过一种基于新扩散的方法识别人类微小RNA与疾病的关联。

Identifying human microRNA-disease associations by a new diffusion-based method.

作者信息

Liao Bo, Ding Sumei, Chen Haowen, Li Zejun, Cai Lijun

机构信息

College of Computer Science and Electronic Engineering, Hunan University, Changsha, Hunan, China.

出版信息

J Bioinform Comput Biol. 2015 Aug;13(4):1550014. doi: 10.1142/S0219720015500146. Epub 2015 Apr 6.

Abstract

Identifying the microRNA-disease relationship is vital for investigating the pathogenesis of various diseases. However, experimental verification of disease-related microRNAs remains considerable challenge to many researchers, particularly for the fact that numerous new microRNAs are discovered every year. As such, development of computational methods for disease-related microRNA prediction has recently gained eminent attention. In this paper, first, we construct a miRNA functional network and a disease similarity network by integrating different information sources. Then, we further introduce a new diffusion-based method (NDBM) to explore global network similarity for miRNA-disease association inference. Even though known miRNA-disease associations in the database are rare, NDBM still achieves an area under the ROC curve (AUC) of 85.62% in the leave-one-out cross-validation in improving the prediction accuracy of previous methods significantly. Moreover, our method is applicable to diseases with no known related miRNAs as well as new miRNAs with unknown target diseases. Some associations who strongly predicted by our method are confirmed by public databases. These superior performances suggest that NDBM could be an effective and important tool for biomedical research.

摘要

识别 microRNA 与疾病之间的关系对于研究各种疾病的发病机制至关重要。然而,对与疾病相关的 microRNA 进行实验验证对许多研究人员来说仍然是一项巨大的挑战,尤其是考虑到每年都会发现大量新的 microRNA。因此,用于预测与疾病相关的 microRNA 的计算方法的开发最近受到了广泛关注。在本文中,首先,我们通过整合不同的信息源构建了一个 miRNA 功能网络和一个疾病相似性网络。然后,我们进一步引入了一种基于扩散的新方法(NDBM)来探索用于 miRNA 与疾病关联推断的全局网络相似性。尽管数据库中已知的 miRNA 与疾病的关联很少,但 NDBM 在留一法交叉验证中仍实现了 85.62% 的 ROC 曲线下面积(AUC),显著提高了先前方法的预测准确性。此外,我们的方法适用于没有已知相关 miRNA 的疾病以及具有未知靶疾病的新 miRNA。我们的方法强烈预测的一些关联已被公共数据库证实。这些优异的性能表明,NDBM 可能是生物医学研究的一种有效且重要的工具。

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