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首页> 外文期刊>Molecular informatics >Mining Molecular Pharmacological Effects from Biomedical Text: a Case Study for Eliciting Anti-Obesity/Diabetes Effects of Chemical Compounds
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Mining Molecular Pharmacological Effects from Biomedical Text: a Case Study for Eliciting Anti-Obesity/Diabetes Effects of Chemical Compounds

机译:从生物医学文本中挖掘分子药理作用:以减轻化合物的抗肥胖/糖尿病作用为例

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摘要

In the pharmaceutical industry, efficiently mining pharmacological data from the rapidly increasing scientific literature is very crucial for many aspects of the drug discovery process such as target validation, tool compound selection etc. A quick and reliable way is needed to collect literature assertions of selected compounds' biological and pharmacological effects in order to assist the hypothesis generation and decision-making of drug developers. INFUSIS, the text mining system presented here, extracts data on chemical compounds from PubMed abstracts. It involves an extensive use of customized natural language processing besides a co-occurrence analysis. As a proof-of-concept study, INFUSIS was used to search in abstract texts for several obesity/diabetes related pharmacological effects of the compounds included in a compound dictionary. The system extracts assertions regarding the pharmacological effects of each given compound and scores them by the relevance. For each selected pharmacological effect, the highest scoring assertions in 100 abstracts were manually evaluated, i.e. 800 abstracts in total. The overall accuracy for the inferred assertions was over 90 percent.
机译:在制药工业中,从快速增长的科学文献中有效地挖掘药理数据对于药物发现过程的许多方面(例如靶标验证,工具化合物选择等)非常关键。需要一种快速可靠的方法来收集所选化合物的文献断言的生物学和药理作用,以协助药物开发者的假设产生和决策。这里介绍的文本挖掘系统INFUSIS从PubMed摘要中提取有关化合物的数据。除了共现分析外,它还广泛使用定制的自然语言处理。作为概念验证研究,INFUSIS用于在抽象文本中搜索复合词典中所含化合物的几种与肥胖/糖尿病相关的药理作用。系统提取与每种给定化合物的药理作用有关的主张,并通过相关性对它们进行评分。对于每种选定的药理作用,手动评估了100个摘要中得分最高的断言,即总计800个摘要。推断断言的总体准确性超过90%。

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