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首页> 外文期刊>Journal of Bioinformatics and Computational Biology >Prediction of miRNA-disease associations based on Weighted K-Nearest known neighbors and network consistency projection
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Prediction of miRNA-disease associations based on Weighted K-Nearest known neighbors and network consistency projection

机译:基于加权K最近邻居的miRNA疾病关联预测和网络一致性投影

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摘要

MicroRNAs (miRNA) are a type of non-coding RNA molecules that are effective on the formation and the progression of many different diseases. Various researches have reported that miRNAs play a major role in the prevention, diagnosis, and treatment of complex human diseases. In recent years, researchers have made a tremendous effort to find the potential relationships between miRNAs and diseases. Since the experimental techniques used to find that new miRNA-disease relationships are time-consuming and expensive, many computational techniques have been developed. In this study, Weighted K-Nearest Known Neighbors and Network Consistency Projection techniques were suggested to predict new miRNA-disease relationships using various types of knowledge such as known miRNA-disease relationships, functional similarity of miRNA, and disease semantic similarity. An average AUC of 0.9037 and 0.9168 were calculated in our method by 5-fold and leave-one-out cross validation, respectively. Case studies of breast, lung, and colon neoplasms were applied to prove the performance of our proposed technique, and the results confirmed the predictive reliability of this method. Therefore, reported experimental results have shown that our proposed method can be used as a reliable computational model to reveal potential relationships between miRNAs and diseases.
机译:microRNA(miRNA)是一种非编码RNA分子,对许多不同疾病的形成和进展有效。各种研究表明,miRNA在复杂人类疾病的预防、诊断和治疗中发挥着重要作用。近年来,研究人员做出了巨大的努力来寻找miRNA与疾病之间的潜在关系。由于用于发现新的miRNA与疾病关系的实验技术耗时且昂贵,许多计算技术已经被开发出来。在这项研究中,加权K-最近已知邻域和网络一致性投影技术被建议使用各种类型的知识来预测新的miRNA疾病关系,例如已知的miRNA疾病关系、miRNA的功能相似性和疾病语义相似性。在我们的方法中,平均AUC分别为0.9037和0.9168,通过5倍和1倍的交叉验证进行计算。对乳腺、肺和结肠肿瘤的案例研究证实了我们提出的技术的性能,结果证实了该方法的预测可靠性。因此,报道的实验结果表明,我们提出的方法可以作为一个可靠的计算模型来揭示miRNA与疾病之间的潜在关系。

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