首页> 外文期刊>Journal of biomolecular screening: The official journal of the Society for Biomolecular Screening >Phaedra, a protocol-driven system for analysis and validation of high-content imaging and flow cytometry
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Phaedra, a protocol-driven system for analysis and validation of high-content imaging and flow cytometry

机译:Phaedra,一种协议驱动的系统,用于分析和验证高内涵成像和流式细胞仪

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摘要

High-content screening has brought new dimensions to cellular assays by generating rich data sets that characterize cell populations in great detail and detect subtle phenotypes. To derive relevant, reliable conclusions from these complex data, it is crucial to have informatics tools supporting quality control, data reduction, and data mining. These tools must reconcile the complexity of advanced analysis methods with the user-friendliness demanded by the user community. After review of existing applications, we realized the possibility of adding innovative new analysis options. Phaedra was developed to support workflows for drug screening and target discovery, interact with several laboratory information management systems, and process data generated by a range of techniques including high-content imaging, multicolor flow cytometry, and traditional high-throughput screening assays. The application is modular and flexible, with an interface that can be tuned to specific user roles. It offers user-friendly data visualization and reduction tools for HCS but also integrates Matlab for custom image analysis and the Konstanz Information Miner (KNIME) framework for data mining. Phaedra features efficient JPEG2000 compression and full drill-down functionality from dose-response curves down to individual cells, with exclusion and annotation options, cell classification, statistical quality controls, and reporting.
机译:高内涵筛选通过生成丰富的数据集为细胞分析带来了新的领域,这些数据集可以非常详细地描述细胞群并检测细微的表型。为了从这些复杂的数据中得出相关的,可靠的结论,拥有支持质量控制,数据缩减和数据挖掘的信息学工具至关重要。这些工具必须使高级分析方法的复杂性与用户社区所要求的用户友好性相协调。对现有应用程序进行审查后,我们意识到可以添加创新的新分析选项。 Phaedra的开发旨在支持药物筛选和目标发现的工作流程,与多个实验室信息管理系统进行交互以及处理由一系列技术(包括高含量成像,多色流式细胞仪和传统的高通量筛选测定法)生成的数据。该应用程序是模块化且灵活的,具有可以调整为特定用户角色的界面。它为HCS提供了用户友好的数据可视化和简化工具,还集成了用于自定义图像分析的Matlab和用于数据挖掘的Konstanz Information Miner(KNIME)框架。 Phaedra具有高效的JPEG2000压缩功能以及从剂量响应曲线到单个细胞的完整向下钻取功能,并具有排除和注释选项,细胞分类,统计质量控制和报告功能。

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