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A semantic web approach applied to integrative bioinformatics experimentation: a biological use case with genomics data

机译:语义网络方法应用于综合生物信息学实验:具有基因组学数据的生物用例

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Motivation: The numerous public data resources make integrative bioinformatics experimentation increasingly important in life sciences research. However, it is severely hampered by the way the data and information are made available. The semantic web approach enhances data exchange and integration by providing standardized formats such as RDF, RDF Schema (RDFS) and OWL, to achieve a formalized computational environment. Our semantic web-enabled data integration (SWEDI) approach aims to formalize biological domains by capturing the knowledge in semantic models using ontologies as controlled vocabularies. The strategy is to build a collection of relatively small but specific knowledge and data models, which together form a personal semantic framework. This can be linked to external large, general knowledge and data models. In this way, the involved scientists are familiar with the concepts and associated relationships in their models and can create semantic queries using their own terms. We studied the applicability of our SWEDI approach in the context of a biological use case by integrating genomics data sets for histone modification and transcription factor binding sites. Results: We constructed four OWL knowledge models, two RDFS data models, transformed and mapped relevant data to the data models, linked the data models to knowledge models using linkage statements, and ran semantic queries. Our biological use case demonstrates the relevance of these kinds of integrative bioinformatics experiments. Our findings show high startup costs for the SWEDI approach, but straightforward extension with similar data. Availability: Software, models and data sets, http://www.integrativebioinformatics.nl/swedi/index.html Contact: breit@science.uva.nl Supplementary information: Supplementary data are available at Bioinformatics online.
机译:动机:大量的公共数据资源使整合的生物信息学实验在生命科学研究中变得越来越重要。但是,它严重阻碍了数据和信息的提供方式。语义Web方法通过提供诸如RDF,RDF Schema(RDFS)和OWL之类的标准化格式来增强数据交换和集成,以实现形式化的计算环境。我们的语义网络支持的数据集成(SWEDI)方法旨在通过使用本体作为受控词汇来捕获语义模型中的知识,从而对生物领域进行形式化。该策略是建立相对较小但特定的知识和数据模型的集合,它们一起形成个人语义框架。可以将其链接到外部大型,一般知识和数据模型。这样,参与研究的科学家就可以熟悉其模型中的概念和关联关系,并且可以使用自己的术语创建语义查询。我们通过整合用于组蛋白修饰和转录因子结合位点的基因组数据集,研究了SWEDI方法在生物学用例中的适用性。结果:我们构建了四个OWL知识模型,两个RDFS数据模型,将相关数据转换并映射到数据模型,使用链接语句将数据模型链接到知识模型,并运行了语义查询。我们的生物学用例证明了这类综合性生物信息学实验的重要性。我们的发现表明,SWEDI方法的启动成本很高,但是可以使用相似的数据进行直接扩展。可用性:软件,模型和数据集,http://www.integrativebioinformatics.nl/swedi/index.html联系人:breit@science.uva.nl补充信息:补充数据可从在线生物信息学获得。

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