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Extraction of Conditional Probabilities of the Relationships Between Drugs Diseases and Genes from PubMed Guided by Relationships in PharmGKB

机译:以PharmGKB中的关系为指导从PubMed中提取药物疾病和基因之间的关系的条件概率

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摘要

Guided by curated associations between genes, treatments (i.e., drugs), and diseases in pharmGKB, we constructed n-way Bayesian networks based on conditional probability tables (cpt’s) extracted from co-occurrence statistics over the entire Pubmed corpus, producing a broad-coverage analysis of the relationships between these biological entities. The networks suggest hypotheses regarding drug mechanisms, treatment biomarkers, and/or potential markers of genetic disease. The cpt’s enable Trio, an inferential database, to query indirect (inferred) relationships via an SQL-like query language.
机译:在pharmGKB中基因,​​治疗(即药物)和疾病之间经过精心设计的关联关系的指导下,我们基于从整个Pubmed语料库的共现统计中提取的条件概率表(cpt)构建了n路贝叶斯网络,这些生物实体之间关系的覆盖分析。该网络提出有关药物机制,治疗生物标志物和/或遗传疾病潜在标志物的假设。 cpt使Trio(推论数据库)能够通过类似SQL的查询语言来查询间接(推论)关系。

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