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GoFuzzKegg: Mapping Genes to KEGG Pathways Using an Ontological Fuzzy Rule System

机译:GoFuzzKegg:使用本体模糊规则系统将基因映射到KEGG途径

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In this paper we present a method for finding the main pathways represented in a set of genes (say obtained from a microarray experiment). The method is based on a fuzzy mapping between genes represented as sets of gene ontology terms and KEGG pathways using a new type of fuzzy rule system called ontological fuzzy rule system (OFRS). As opposed to a crisp mapping, the fuzzy mapping produces a nonzero value even if the gene name is not explicitly listed in a given KEGG pathway. An OFRS is a fuzzy rule system in which the rule memberships are obtained using similarity measures between objects computed based on the gene ontology (GO) annotations. To test our approach, we randomly selected without replacement 10 sets of Arabidopsis thaliana genes from KEGG (each set had 15 genes from 3 different pathways) and tried to predict the pathways they were selected from. Our method was able to find, 90% of the right pathways with a 65% false alarm rate at a p-value of 0.01. The high false alarm rate is due in part to the experimental setting. In a pilot dataset of 526 Arabidopsis thaliana genes we identified 8 clusters which proved to be linked to important pathways such as ATP synthesis and transcription factor
机译:在本文中,我们提出了一种用于寻找一组基因中代表的主要途径的方法(例如从微阵列实验中获得)。该方法基于使用一种称为本体模糊规则系统(OFRS)的新型模糊规则系统,在以基因本体术语集和KEGG路径表示的基因之间进行模糊映射。与清晰映射相反,即使基因名称未在给定的KEGG途径中明确列出,模糊映射也会产生非零值。 OFRS是一种模糊规则系统,其中使用基于基因本体(GO)注释计算的对象之间的相似性度量来获取规则成员资格。为了测试我们的方法,我们随机选择了10个来自KEGG的拟南芥基因集(每个集合具有来自3个不同途径的15个基因),并试图预测它们的选择途径。我们的方法能够找到90%的正确路径,错误率为65%(p值为0.01)。较高的误报率部分归因于实验设置。在526个拟南芥基因的试验数据集中,我们确定了8个簇,这些簇被证明与重要的途径如ATP合成和转录因子有关

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