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首页> 外文期刊>Journal of proteome research >Accounting for the Multiple Natures of Missing Values in Label-Free Quantitative Proteomics Data Sets to Compare Imputation Strategies
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Accounting for the Multiple Natures of Missing Values in Label-Free Quantitative Proteomics Data Sets to Compare Imputation Strategies

机译:解释无标签定量蛋白质组学数据集中缺失值的多重性质,以比较插补策略

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摘要

Missing values are a genuine issue in label-free quantitative proteomics. Recent works have surveyed the different statistical methods to conduct imputation and have compared them on real or simulated data sets and recommended a list of missing value imputation methods for proteomics application. Although insightful, these comparisons do not account for two important facts: (i) depending on the proteomics data set, the missingness mechanism may be of different natures and (ii) each imputation method is devoted to a specific type of missingness mechanism. As a result, we believe that the question at stake is not to find the most accurate imputation method in general but instead the most appropriate one. We describe a series of comparisons that support our views: For instance, we show that a supposedly "under-performing" method (i.e., giving baseline average results), if applied at the "appropriate" time in the data-processing pipeline (before or after peptide aggregation) on a data set with the "appropriate" nature of missing values, can outperform a blindly applied, supposedly "better-performing" method (i.e., the reference method from the state-of-the-art). This leads us to formulate few practical guidelines regarding the choice and the application of an imputation method in a proteomics context.
机译:缺失值是无标签定量蛋白质组学中的真正问题。最近的工作调查了进行插补的不同统计方法,并在真实或模拟数据集上进行了比较,并推荐了一组用于蛋白质组学的缺失值插补方法。尽管比较有见地,但这些比较并没有说明两个重要事实:(i)取决于蛋白质组学数据集,缺失机制可能具有不同的性质,并且(ii)每种插补方法都针对特定类型的缺失机制。结果,我们认为所要解决的问题不是一般地找到最准确的插补方法,而是找到最合适的插补方法。我们描述了一系列支持我们观点的比较:例如,我们表明,如果在数据处理管道中的“适当”时间(之前)应用所谓的“表现不佳”方法(即给出基线平均结果)在缺少值具有“适当”性质的数据集上(或在进行肽聚合之后),其性能可能优于盲目应用的,据说是“性能更好”的方法(即,来自最新技术的参考方法)。这导致我们就蛋白质组学背景下插补方法的选择和应用制定了很少的实用指南。

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