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A linked data graph approach to integration of immunological data

机译:一种链接的数据图探免性数据集成方法

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Systems biology involves the integration of multiple data types (across different data sources) to offer a more complete picture of the biological system being studied. While many existing biological databases are implemented using the traditional SQL (Structured Query Language) database technology, NoSQL database technologies have been explored as a more relationship-based, flexible and scalable method of data integration. In this paper, we describe how to use the Neo4J graph database to integrate a variety of types of data sets in the context of systems vaccinology. Specifically, we have converted into a common graph model diverse types of vaccine response measurement data from the NIH/NIAID ImmPort data repository, pathway data from Reactome, influenza virus strains from WHO, and taxonomic data from NCBI Taxon. While Neo4J provides a graph-based query language (Cypher) for data retrieval, we develop a web-based dashboard for users to easily browse and visualize data without the need to learn Cypher. In addition, we have prototyped a natural language query interface for users to interact with our system. In conclusion, we demonstrate the feasibility of using a graph-based database for storing and querying immunological data with complex biological relationships. Querying a graph database through such relationships has the potential to reveal novel relationships among heterogeneous biological data.
机译:系统生物学涉及多个数据类型(跨不同数据源)的集成,以提供所研究的生物系统的更完整的图像。虽然使用传统的SQL(结构化查询语言)数据库技术实现了许多现有的生物数据库,但是NoSQL数据库技术已被探索为基于关系的,灵活和可扩展的数据集成方法。在本文中,我们描述了如何使用Neo4J图表数据库在系统疫苗学上下文中集成各种类型的数据集。具体而言,我们已经转换成了来自NIH / NIAID IMMPROD数据储存库,来自反应组的NIAID IMMPROD数据储存库,来自WHO和NCBI分类的分类数据的途径数据的分类类型的疫苗响应测量数据。虽然neo4j提供了一种基于图形的查询语言(Cypeher),用于数据检索,我们开发基于Web的仪表板,供用户轻松浏览和可视化数据,而无需学习Cypher。此外,我们已将自然语言查询界面设计为用户与我们的系统进行交互。总之,我们展示了使用基于图形的数据库的可行性来存储和查询具有复杂生物关系的免疫数据。通过这种关系查询图形数据库有可能揭示异构生物数据之间的新颖关系。

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