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首页> 外文期刊>Journal of proteome research >ICan: An Optimized Ion-Current-Based Quantification Procedure with Enhanced Quantitative Accuracy and Sensitivity in Biomarker Discovery
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ICan: An Optimized Ion-Current-Based Quantification Procedure with Enhanced Quantitative Accuracy and Sensitivity in Biomarker Discovery

机译:ICan:一种优化的基于离子电流的定量程序,在生物标记物发现中具有增强的定量精度和灵敏度

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摘要

The rapidly expanding availability of high-resolution mass spectrometry has substantially enhanced the ion-current-based relative quantification techniques. Despite the increasing interest in ion-current-based methods, quantitative sensitivity, accuracy, and false discovery rate remain the major concerns; consequently, comprehensive evaluation and development in these regards are urgently needed. Here we describe an integrated, new procedure for data normalization and protein ratio estimation, termed ICan, for improved ion-current-based analysis of data generated by high-resolution mass spectrometry (MS). ICan achieved significantly better accuracy and precision, and lower false-positive rate for discovering altered proteins, over current popular pipelines. A spiked-in experiment was used to evaluate the performance of ICan to detect small changes. In this study E. coli extracts were spiked with moderate-abundance proteins from human plasma (MAP, enriched by IgY14-SuperMix procedure) at two different levels to set a small change of 1.5-fold. Forty-five (92%, with an average ratio of 1.71 +/- 0.13) of 49 identified MAP protein (i.e., the true positives) and none of the reference proteins (1.0-fold) were determined as significantly altered proteins, with cutoff thresholds of >= 1.3-fold change and p <= 0.05. This is the first study to evaluate and prove competitive performance of the ion-current-based approach for assigning significance to proteins with small changes. By comparison, other methods showed remarkably inferior performance. ICan can be broadly applicable to reliable and sensitive proteomic survey of multiple biological samples with the use of high-resolution MS. Moreover, many key features evaluated and optimized here such as normalization, protein ratio determination, and statistical analyses are also valuable for data analysis by isotope-labeling methods.
机译:高分辨率质谱的迅速扩展的可用性已大大增强了基于离子电流的相对定量技术。尽管人们对基于离子电流的方法越来越感兴趣,但定量灵敏度,准确性和错误发现率仍然是主要问题。因此,迫切需要在这些方面进行综合评估和发展。在这里,我们描述了一种用于数据归一化和蛋白质比率估计的集成新程序,称为ICan,用于改进基于离子流的高分辨率质谱(MS)生成数据的分析。在当前流行的开发流程中,ICan可以显着提高准确度和精确度,并降低错误发现蛋白的假阳性率。使用加标实验评估ICan检测小变化的性能。在这项研究中,在大肠杆菌提取物中掺入了来自人血浆(MAP,通过IgY14-SuperMix程序富集)的中等丰度蛋白质,其浓度为两个不同的水平,以设定1.5倍的小变化。 45种(92%,平均比率为1.71 +/- 0.13)已鉴定的49种MAP蛋白(即真正的阳性蛋白),没有一种参考蛋白(1.0倍)被确定为显着改变的蛋白,但有临界值阈值> = 1.3倍变化且p <= 0.05。这是第一项评估和证明基于离子电流的方法的竞争性能的方法,该方法可为微小变化的蛋白质赋予重要意义。相比之下,其他方法表现出明显较差的性能。 ICan可广泛应用于使用高分辨率质谱仪对多种生物样品进行可靠而敏感的蛋白质组学研究。此外,此处评估和优化的许多关键特征(例如归一化,蛋白质比率确定和统计分析)对于通过同位素标记方法进行的数据分析也很有价值。

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