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Similar genes discovery system (SGDS): Application for predicting possible pathways by using GO semantic similarity measure

机译:相似基因发现系统(SGDS):通过使用GO语义相似性度量来预测可能的途径的应用

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This research analyzes the gene relationship according to their annotations. We present here a similar genes discovery system (SGDS), based upon semantic similarity measure of gene ontology (GO) and Entrez gene, to identify groups of similar genes. In order to validate the proposed measure, we analyze the relationships between similarity and expression correlation of pairs of genes. We explore a number of semantic similarity measures and compute the Pearson correlation coefficient. Highly correlated genes exhibit strong similarity in the ontology taxonomies. The results show that our proposed semantic similarity measure outperforms the others and seems better suited for use in GO. We use MAPK homogenous genes group and MAP kinase pathway as benchmarks to tune the parameters in our system for achieving higher accuracy. We applied the SGDS to RON and Lutheran pathways, the results show that it is able to identify a group of similar genes and to predict novel pathways based on a group of candidate genes.
机译:本研究根据其注释分析了基因关系。我们在这里提出一个相似的基因发现系统(SGDS),基于基因本体(GO)和Entrez基因的语义相似性度量,以识别相似基因的组。为了验证所提出的措施,我们分析了基因对的相似性和表达相关性之间的关系。我们探索了许多语义相似性度量并计算了Pearson相关系数。高度相关的基因在本体分类法中表现出强烈的相似性。结果表明,我们提出的语义相似性度量优于其他度量,并且似乎更适合在GO中使用。我们使用MAPK同源基因组和MAP激酶途径作为基准来调整系统中的参数以获得更高的准确性。我们将SGDS应用于RON和Lutheran途径,结果表明它能够识别出一组相似的基因,并基于一组候选基因预测新的途径。

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