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Classifying Multigraph Models of Secondary RNA Structure Using Graph-Theoretic Descriptors

机译:使用图论描述符对二级RNA结构的多图模型进行分类

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The prediction of secondary RNA folds from primary sequences continues to be an important area of research given the significance of RNA molecules in biological processes such as gene regulation. To facilitate this effort, graph models of secondary structure have been developed to quantify and thereby characterize the topological properties of the secondary folds. In this work we utilize a multigraph representation of a secondary RNA structure to examine the ability of the existing graph-theoretic descriptors to classify all possible topologies as either RNA-like or not RNA-like. We use more than one hundred descriptors and several different machine learning approaches, including nearest neighbor algorithms, one-class classifiers, and several clustering techniques. We predict that many more topologies will be identified as those representing RNA secondary structures than currently predicted in the RAG (RNA-As-Graphs) database. The results also suggest which descriptors and which algorithms are more informative in classifying and exploring secondary RNA structures.
机译:鉴于RNA分子在诸如基因调控等生物过程中的重要性,从一级序列预测二级RNA折叠仍然是重要的研究领域。为了促进这项工作,已经开发了二级结构的图形模型以量化并表征二级折叠的拓扑特性。在这项工作中,我们利用二级RNA结构的多图表示法来研究现有图论描述符将所有可能拓扑分类为类RNA或非类RNA的能力。我们使用一百多个描述符和几种不同的机器学习方法,包括最近邻居算法,一类分类器和几种聚类技术。我们预测,与当前在RAG(RNA-As-Graphs)数据库中预测的相比,代表RNA二级结构的拓扑将被识别出更多。结果还暗示了哪些描述符和哪些算法在分类和探索二级RNA结构方面更具参考价值。

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