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Data-Driven Restoring of Metabolite Annotations Significantly Improves Sensitivity

机译:数据驱动恢复代谢物注释显着提高了灵敏度

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摘要

When analyzing mass spectrometry imaging data sets, assigning a molecule to each of the thousands of generated images is a very complex task. Recent efforts have taken lessons from (tandem) mass spectrometry proteomics and applied them to imaging mass spectrometry metabolomics, with good results. Our goal is to go a step further in this direction and apply a well established, data-driven method to improve the results obtained from an annotation engine. By using a data-driven rescoring strategy, we are able to consistently improve the sensitivity of the annotation engine while maintaining control of statistics like estimated rate of false discoveries. All the code necessary to run a search and extract the additional features can be found at https://github.com/anasilviacs/sm-engine and to rescore the results from a search in https://github.com/anasilviacs/rescore-metabolites.
机译:当分析质谱成像数据集时,将分子分配给数千个生成的图像中的每一个是非常复杂的任务。 最近的努力已经从(串联)质谱蛋白质组学中进行了课程,并将其应用于成像质谱代谢组,结果良好。 我们的目标是进一步朝着这个方向进一步走一步,并应用一个完整的数据驱动方法,以改善从注释引擎获得的结果。 通过使用数据驱动的救援战略,我们能够始终如一地提高注释引擎的灵敏度,同时保持对估计错误发现率的统计数据的控制。 运行搜索和提取附加功能所需的所有代码都可以在https://github.com/anasilviacs/sm-engine找到,并从https://github.com/anasilviacs/rescore中重新核断结果 -Metabolites。

著录项

  • 来源
    《Analytical chemistry》 |2018年第19期|共7页
  • 作者单位

    VIB UGent Ctr Med Biotechnol B-9000 Ghent Belgium;

    European Mol Biol Lab Struct &

    Computat Biol Unit D-69117 Heidelberg Germany;

    European Mol Biol Lab Struct &

    Computat Biol Unit D-69117 Heidelberg Germany;

    European Mol Biol Lab Struct &

    Computat Biol Unit D-69117 Heidelberg Germany;

    European Mol Biol Lab Struct &

    Computat Biol Unit D-69117 Heidelberg Germany;

    VIB UGent Ctr Med Biotechnol B-9000 Ghent Belgium;

    VIB UGent Ctr Med Biotechnol B-9000 Ghent Belgium;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分析化学;
  • 关键词

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