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Gene Ontology-Based Annotation Analysis and Categorization of Metabolic Pathways

机译:基于基因本体的注释和代谢途径分类

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Functional characterizations of pathways provide new opportunities in defining, understanding, and comparing existing biological pathways, and in helping discover new ones in different organisms. In this paper, we present and evaluate computational techniques for categorizing pathways, based upon the Gene Ontology (GO) annotations of enzymes within metabolic pathways. Our approach is to use the notion of functionality templates, GO-functional graphs of pathways. Pathway categorization is then achieved through learning models built on different characteristics of functionality templates. We have experimentally evaluated the accuracy of automated pathway categorization with respect to different learning models and their parameters. Using KEGG metabolic pathways, the pathway categorization tool reaches to 90% and higher accuracy.
机译:途径的功能表征为定义,理解和比较现有的生物途径以及帮助发现不同生物中的新途径提供了新的机会。在本文中,我们基于代谢途径内酶的基因本体论(GO)注释,介绍和评估对途径进行分类的计算技术。我们的方法是使用功能模板的概念,即路径的GO功能图。然后,通过基于功能模板的不同特征的学习模型来实现路径分类。我们已经通过实验评估了针对不同学习模型及其参数的自动路径分类的准确性。使用KEGG代谢途径,途径分类工具可达到90%甚至更高的准确性。

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