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CytomicsDB: A Metadata-Based Storage and Retrieval Approach for High-Throughput Screening Experiments

机译:CytomicsDB:用于高通量筛选实验的基于元数据的存储和检索方法

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In Cytomics, the study of cellular systems at the single cell level, High-Throughput Screening (HTS) techniques have been developed to implement the testing of hundreds to thousands of conditions applied to several or up to millions of cells in a single experiment. Recent technological developments of imaging systems and robotics have lead to an exponential increase in data volumes generated in HTS-experiments. This is pushing forward the need for a semantically oriented bioinformatics approach capable of storing large volume of linked metadata, handling a diversity of data formats, and querying data in order to extract meaning from the experiments performed. This paper describes our research in developing CytomicsDB, a modern RDBMS based platform, designed to provide an architecture capable of dealing with the computational requirements involved in high-throughput content. CytomicsDB supports web services and collaborative infrastructure in order to perform further exploration of linked information generated in each experiment. The objective of this system is to build a semantic layer over the data so as to enable querying metadata and at the same time allowing scientists to integrate new tools and APIs taking care of the image and data analysis. The results will become part of the metadata of the whole HTS experiment and will be available for semantic post analysis.
机译:在Cytomics中,在单细胞水平上研究细胞系统的高通量筛选(HTS)技术已经开发出来,可以在单个实验中对数百至数千个条件进行测试,这些条件适用于数个或多达数百万个细胞。成像系统和机器人技术的最新技术发展已导致HTS实验中生成的数据量呈指数增长。这推动了对面向语义的生物信息学方法的需求,该方法能够存储大量链接的元数据,处理多种数据格式并查询数据,以便从所进行的实验中提取含义。本文介绍了我们在开发CytomicsDB(一种基于RDBMS的现代平台)方面的研究,该平台旨在提供一种能够处理涉及高通量内容的计算要求的体系结构。 CytomicsDB支持Web服务和协作基础结构,以便对每个实验中生成的链接信息进行进一步的研究。该系统的目标是在数据上构建语义层,以便能够查询元数据,同时允许科学家集成新的工具和API,以进行图像和数据分析。结果将成为整个HTS实验的元数据的一部分,并可用于语义后期分析。

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