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基于RNA二级结构三维图形表示的微小RNA预测

MicroRNA prediction based on 3D graphical representation of RNA secondary structures.

作者信息

Saçar Demirci Müşerref Duygu

出版信息

Turk J Biol. 2019 Aug 5;43(4):274-280. doi: 10.3906/biy-1904-59. eCollection 2019.

Abstract

MicroRNAs (miRNAs) are posttranscriptional regulators of gene expression. While a miRNA can target hundreds of messenger RNA (mRNAs), an mRNA can be targeted by different miRNAs, not to mention that a single miRNA might have various binding sites in an mRNA sequence. Therefore, it is quite involved to investigate miRNAs experimentally. Thus, machine learning (ML) is frequently used to overcome such challenges. The key parts of a ML analysis largely depend on the quality of input data and the capacity of the features describing the data. Previously, more than 1000 features were suggested for miRNAs. Here, it is shown that using 36 features representing the RNA secondary structure and its dynamic 3D graphical representation provides up to 98% accuracy values. In this study, a new approach for ML-based miRNA prediction is proposed. Thousands of models are generated through classification of known human miRNAs and pseudohairpins with 3 classifiers: decision tree, naïve Bayes, and random forest. Although the method is based on human data, the best model was able to correctly assign 96% of nonhuman hairpins from MirGeneDB, suggesting that this approach might be useful for the analysis of miRNAs from other species.

摘要

微小RNA(miRNA)是基因表达的转录后调节因子。虽然一个miRNA可以靶向数百种信使核糖核酸(mRNA),但一种mRNA可以被不同的miRNA靶向,更不用说单个miRNA可能在mRNA序列中有多个结合位点。因此,通过实验研究miRNA相当复杂。因此,机器学习(ML)经常被用于克服此类挑战。ML分析的关键部分很大程度上取决于输入数据的质量和描述数据的特征的能力。此前,针对miRNA提出了1000多种特征。在此表明,使用代表RNA二级结构及其动态三维图形表示的36种特征可提供高达98%的准确率。在本研究中,提出了一种基于ML的miRNA预测新方法。通过使用决策树、朴素贝叶斯和随机森林这3种分类器对已知的人类miRNA和假发夹进行分类,生成了数千个模型。尽管该方法基于人类数据,但最佳模型能够正确分配来自MirGeneDB的96%的非人类发夹,这表明该方法可能有助于分析其他物种的miRNA。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3f32/6713912/769c6731bf33/turkjbio-43-274-fig001.jpg

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