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Querying of Disparate Association and Interaction Data in Biomedical Applications

机译:在生物医学应用中查询不同的关联和交互数据

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摘要

In biomedical applications, network models are commonly used to represent interactions and higher-level associations among biological entities. Integrated analyses of these interaction and association data has proven useful in extracting knowledge, and generating novel hypotheses for biomedical research. However, since most datasets provide their own schema and query interface, opportunities for exploratory and integrative querying of disparate data are currently limited. In this study, we utilize RDF-based representations of biomedical interaction and association data to develop a querying framework that enables flexible specification and efficient processing of graph template matching queries. The proposed framework enables integrative querying of biomedical databases to discover complex patterns of associations among a diverse range of biological entities, including biomolecules, biological processes, organisms, and phenotypes. Our experimental results on the UniProt dataset show that the proposed framework can be used to efficiently process complex queries, and identify biologically relevant patterns of associations that cannot be readily obtained by querying each dataset independently.
机译:在生物医学应用中,网络模型通常用于表示生物实体之间的相互作用和更高级别的关联。事实证明,对这些相互作用和关联数据的综合分析有助于提取知识,并为生物医学研究提供新颖的假设。但是,由于大多数数据集提供了自己的模式和查询接口,因此探索性和综合性查询不同数据的机会目前受到限制。在这项研究中,我们利用基于RDF的生物医学交互作用和关联数据表示法来开发查询框架,该框架可实现灵活的规范和图形模板匹配查询的有效处理。所提出的框架能够对生物医学数据库进行综合查询,以发现各种生物实体之间的复杂关联模式,包括生物分子,生物过程,生物和表型。我们在UniProt数据集上的实验结果表明,所提出的框架可用于有效处理复杂的查询,并识别无法通过独立查询每个数据集而轻易获得的生物学相关的关联模式。

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