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Weighted Network-Based Inference of Human MicroRNA-Disease Associations

机译:基于加权网络的人类MicroRNA-疾病关联推断

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The identification of disease microRNAs is vital for understanding the pathogenesis of diseases at the molecular level, and is critical for designing specific molecular tools for diagnosis, treatment and prevention. However, one major issue in microRNA studies is the lack of bioinformatics methods to accurately predict microRNA-disease associations. Herein, we proposed an approach to infer microRNA-disease associations based on a weighted network. We tested our method on benchmark dataset documented in the miR2Disease, a database system we developed previously for collecting experimentally verified microRNA-disease associations, and achieved an area under the ROC up to 0.80. The method described here presents a promising approach to infer new potential microRNA-disease associations, which will provide testable hypotheses to guide future biological experiments and contribute to the identification of true disease microRNAs.
机译:疾病微RNA的鉴定对于从分子水平了解疾病的发病机制至关重要,对于设计用于诊断,治疗和预防的特定分子工具也至关重要。然而,microRNA研究中的一个主要问题是缺乏准确预测microRNA疾病关联的生物信息学方法。在本文中,我们提出了一种基于加权网络推断microRNA疾病关联的方法。我们在miR2Disease中记录的基准数据集上测试了我们的方法,miR2Disease是我们先前开发的用于收集经过实验验证的microRNA-疾病关联的数据库系统,在ROC下的面积达到0.80。这里描述的方法提供了一种有前途的方法来推断新的潜在的microRNA-疾病关联,这将提供可验证的假设,以指导未来的生物学实验,并有助于鉴定真正的疾病microRNA。

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