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Workflows for automated downstream data analysis and visualization in large-scale computational mass spectrometry

机译:大规模计算质谱中自动化下游数据分析和可视化的工作流程

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摘要

MS-based proteomics and metabolomics are rapidly evolving research fields driven by the development of novel instruments, experimental approaches, and analysis methods. Monolithic analysis tools perform well on single tasks but lack the flexibility to cope with the constantly changing requirements and experimental setups. Workflow systems, which combine small processing tools into complex analysis pipelines, allow custom-tailored and flexible data-processing workflows that can be published or shared with collaborators. In this article, we present the integration of established tools for computational MS from the open-source software framework OpenMS into the workflow engine Konstanz Information Miner (KNIME) for the analysis of large datasets and production of high-quality visualizations. We provide example workflows to demonstrate combined data processing and visualization for three diverse tasks in computational MS: isobaric mass tag based quantitation in complex experimental setups, label-free quantitation and identification of metabolites, and quality control for proteomics experiments.
机译:基于MS的蛋白质组学和代谢组学在新型仪器,实验方法和分析方法的发展推动下正在迅速发展。整体分析工具在单个任务上表现良好,但缺乏灵活性来应对不断变化的需求和实验设置。工作流系统将小型处理工具组合到复杂的分析管道中,允许自定义和灵活的数据处理工作流,这些工作流可以与协作者一起发布或共享。在本文中,我们介绍了已建立的用于计算MS的工具从开源软件框架OpenMS到工作流引擎Konstanz Information Miner(KNIME)的集成,以分析大型数据集并生成高质量的可视化图像。我们提供了示例工作流,以演示计算MS中三个不同任务的组合数据处理和可视化:复杂实验设置中基于等压质量标签的定量,代谢物的无标签定量和鉴定以及蛋白质组学实验的质量控制。

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