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Knowledge Modeling and its Application in Life Sciences: A Tale of two Ontologies

机译:知识建模及其在生命科学中的应用:两个本体论的故事

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摘要

High throughput glycoproteomics, similar to genomics and proteomics, involves extremely large volumes of distributed, heterogeneous data as a basis for identification and quantification of a structurally diverse collection of biomolecules. The ability to share, compare, query for and most critically correlate datasets using the native biological relationships are some of the challenges being faced by glycobiology researchers. As a solution for these challenges, we are building a semantic structure, using a suite of ontologies, which supports management of data and information at each step of the experimental lifecycle. This framework will enable researchers to leverage the large scale of glycoproteomics data to their benefit. In this paper, we focus on the design of these biological ontology schemas with an emphasis on relationships between biological concepts, on the use of novel approaches to populate these complex ontologies including integrating extremely large datasets (~500MB) as part of the instance base and on the evaluation of ontologies using OntoQA [38] metrics. The application of these ontologies in providing informatics solutions, for high throughput glycoproteomics experimental domain, is also discussed. We present our experience as a use case of developing two ontologies in one domain, to be part of a set of use cases, which are used in the development of an emergent framework for building and deploying biological ontologies.
机译:与基因组学和蛋白质组学相似,高通量糖蛋白质组学涉及大量的分布式异质数据,作为鉴定和量化结构多样的生物分子集合的基础。使用天然生物学关系来共享,比较,查询数据集以及最关键地关联数据集的能力是糖生物学研究人员面临的一些挑战。为了应对这些挑战,我们正在使用一套本体构建一个语义结构,该本体在实验生命周期的每个步骤都支持数据和信息的管理。该框架将使研究人员能够利用大规模的糖蛋白组学数据来受益。在本文中,我们着重于这些生物学本体模式的设计,着重于生物学概念之间的关系,着重于使用新颖的方法来填充这些复杂本体,包括将超大型数据集(约500MB)集成为实例库的一部分,以及关于使用OntoQA [38]指标进行的本体评估。还讨论了这些本体在为高通量糖蛋白组学实验领域提供信息学解决方案中的应用。我们将我们的经验作为在一个域中开发两个本体的用例进行介绍,作为一组用例的一部分,这些用例用于开发用于构建和部署生物本体的新兴框架。

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