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Literature mining and database annotation of protein phosphorylation using a rule-based system

机译:使用基于规则的系统进行蛋白质磷酸化的文献挖掘和数据库注释

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Motivation: A large volume of experimental data on protein phosphorylation is buried in the fast-growing PubMed literature. While of great value, such information is limited in databases owing to the laborious process of literature-based curation. Computational literature mining holds promise to facilitate database curation.Results: A rule-based system, RLIMS-P (Rule-based LIterature Mining System for Protein Phosphorylation), was used to extract protein phosphorylation information from MEDLINE abstracts. An annotation-tagged literature corpus developed at PIR was used to evaluate the system for finding phosphorylation papers and extracting phosphorylation objects (kinases, substrates and sites) from abstracts. RLIMS-P achieved a precision and recall of 91.4 and 96.4% for paper retrieval, and of 97.9 and 88.0% for extraction of substrates and sites. Coupling the high recall for paper retrieval and high precision for information extraction, RLIMS-P facilitates literature mining and database annotation of protein phosphorylation.
机译:动机:快速增长的PubMed文献中埋藏了大量蛋白质磷酸化的实验数据。尽管具有很大的价值,但是由于基于文献的策展工作费力,此类信息在数据库中受到限制。结果:基于规则的系统RLIMS-P(用于蛋白质磷酸化的基于规则的文献挖掘系统)用于从MEDLINE摘要中提取蛋白质磷酸化信息。 PIR开发的带有注释标签的文献语料库用于评估该系统,该系统用于查找磷酸化论文并从摘要中提取磷酸化对象(激酶,底物和位点)。 RLIMS-P的纸张检索精度和召回率分别为91.4%和96.4%,提取底物和部位的准确率和召回率分别为97.9和88.0%。 RLIMS-P结合了纸张检索的高召回率和信息提取的高精度,可促进文献挖掘和蛋白质磷酸化的数据库注释。

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