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SILVER: an efficient tool for stable isotope labeling LC-MS data quantitative analysis with quality control methods

机译:SILVER:使用质量控制方法进行稳定同位素标记LC-MS数据定量分析的有效工具

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摘要

With the advance of experimental technologies, different stable isotope labeling methods have been widely applied to quantitative proteomics. Here, we present an efficient tool named SILVER for processing the stable isotope labeling mass spectrometry data. SILVER implements novel methods for quality control of quantification at spectrum, peptide and protein levels, respectively. Several new quantification confidence filters and indices are used to improve the accuracy of quantification results. The performance of SILVER was verified and compared with MaxQuant and Proteome Discoverer using a large-scale dataset and two standard datasets. The results suggest that SILVER shows high accuracy and robustness while consuming much less processing time. Additionally, SILVER provides user-friendly interfaces for parameter setting, result visualization, manual validation and some useful statistics analyses.
机译:随着实验技术的进步,不同的稳定同位素标记方法已广泛应用于定量蛋白质组学。在这里,我们介绍了一个名为SILVER的有效工具,用于处理稳定的同位素标记质谱数据。 SILVER实施了新颖的方法,分别在光谱,肽和蛋白质水平上进行定量质量控制。几个新的量化置信度过滤器和索引用于提高量化结果的准确性。使用大型数据集和两个标准数据集,对SILVER的性能进行了验证,并与MaxQuant和Proteome Discoverer进行了比较。结果表明,SILVER具有很高的准确性和鲁棒性,同时消耗更少的处理时间。此外,SILVER还提供用户友好的界面,用于参数设置,结果可视化,手动验证和一些有用的统计分析。

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