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A new method to measure the semantic similarity of GO terms

机译:一种测量GO术语语义相似度的新方法

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Motivation: Although controlled biochemical or biological vocabularies, such as Gene Ontology (GO), address the need for consistent descriptions of genes in different data sources, there is still no effective method to determine the functional similarities of genes based on gene annotation information from heterogeneous data sources. Results: To address this critical need, we proposed a novel method to encode a GO term's semantics (biological meanings) into a numeric value by aggregating the semantic contributions of their ancestor terms (including this specific term) in the GO graph and, in turn, designed an algorithm to measure the semantic similarity of GO terms. Based on the semantic similarities of GO terms used for gene annotation, we designed a new algorithm to measure the functional similarity of genes. The results of using our algorithm to measure the functional similarities of genes in pathways retrieved from the saccharomyces genome database (SGD), and the outcomes of clustering these genes based on the similarity values obtained by our algorithm are shown to be consistent with human perspectives. Furthermore, we developed a set of online tools for gene similarity measurement and knowledge discovery.
机译:动机:尽管受控的生物化学或生物词汇(例如基因本体论(GO))解决了在不同数据源中对基因进行一致描述的需求,但仍然没有有效的方法基于异质性的基因注释信息来确定基因的功能相似性数据源。结果:为了满足这一关键需求,我们提出了一种新颖的方法,通过在GO图中聚集其祖先术语(包括该特定术语)的语义贡献,进而将GO术语的语义(生物学含义)编码为数值。 ,设计了一种算法来测量GO术语的语义相似性。基于用于基因注释的GO术语的语义相似性,我们设计了一种新的算法来测量基因的功能相似性。使用我们的算法测量从酿酒酵母基因组数据库(SGD)检索的途径中基因的功能相似性的结果,以及根据我们的算法获得的相似性值对这些基因进行聚类的结果均与人类的观点一致。此外,我们开发了一套用于基因相似性测量和知识发现的在线工具。

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