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Using ion purity scores for enhancing quantitative accuracy and precision in complex proteomics samples

机译:使用离子纯度评分可增强复杂蛋白质组学样品的定量准确性和精密度

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To accurately determine the quantitative change of peptides and proteins in complex proteomics samples requires knowledge of how well each ion has been measured. The precision of each ions’ calculated area is predicated on how uniquely it occupies its own space in m/z and elution time. Given an initial assumption that prior to the addition of the “heavy” label, all other ion detections are unique, which is arguably untrue, an initial attempt at quantifying the pervasiveness of ion interference events in a representative binary SILAC experiment was made by comparing the centered m/z and retention time of the ion detections from the “light” variant to its “heavy” companion. Ion interference rates were determined for LC-MS data acquired at mass resolving powers of 20 and 40 K with and without ion mobility separation activated. An ion interference event was recorded, if present in the companion dataset was an ion within ± its Δ mass at half-height, ±15 s of its apex retention time and if utilized by ±1 drift bin. Data are presented illustrating a definitive decrease in the frequency of ion interference events with each additional increase in selectivity of the analytical workflow. Regardless of whether the quantitative experiment is a composite of labeled samples or label free, how well each ion is measured can be determined given knowledge of the instruments mass resolving power across the entire m/z scale and the ion detection algorithm reporting both the centered m/z and Δ mass at half-height for each detected ion. Given these measurements, an effective resolution can be calculated and compared with the expected instrument performance value providing a purity score for the calculated ions’ area based on mass resolution. Similarly, chromatographic and drift purity scores can be calculated. In these instances, the error associated to an ions’ calculated peak area is estimated by examining the variation in each measured width to that of their respective experimental median. Detail will be disclosed as to how a final ion purity score was established, providing a first measure of how accurately each ions’ area was determined as well as how precise the calculated quantitative change between labeled or unlabelled pairs were determined. Presented is how common ion interference events are in quantitative proteomics LC-MS experiments and how ion purity filters can be utilized to overcome and address them, providing ultimately more accurate and precise quantification results across a wider dynamic range.
机译:要准确确定复杂蛋白质组学样品中肽和蛋白质的定量变化,需要了解每个离子的测量程度。每个离子计算区域的精度取决于它在m / z和洗脱时间中占据其自身空间的独特程度。假设最初的假设是,在添加“重”标记之前,所有其他离子检测都是唯一的,这可能是不正确的,因此,通过比较具有代表性的二元SILAC实验,进行了定量量化离子干扰事件普遍性的初步尝试。从“轻”到“重”伴离子的离子检测的中心m / z和保留时间。确定了在有和没有激活离子迁移率分离的情况下,在20和40 K的质量分辨力下获得的LC-MS数据的离子干扰率。记录离子干扰事件,如果伴随数据集中存在的离子是半高处的Δ质量±,其顶点保留时间的±15 s之内的离子,以及是否被±1漂移箱利用。呈现的数据说明了随着分析工作流程选择性的每增加一次,离子干扰事件发生频率的绝对下降。无论定量实验是标记样品的合成还是不含标记物的合成,只要了解了整个m / z标度上仪器的质量分辨能力以及报告居中m值的离子检测算法,就可以确定每种离子的测量程度。每个检测到的离子的/ z和半高Δ质量。有了这些测量值,就可以计算出有效的分辨率,并将其与预期的仪器性能值进行比较,从而根据质量分辨率为计算出的离子面积提供纯度分数。同样,可以计算色谱和漂移纯度得分。在这些情况下,与离子计算出的峰面积相关的误差是通过检查每个测量宽度与其各自实验中位数的变化来估算的。将公开有关如何建立最终离子纯度评分的详细信息,从而提供确定每个离子区域的准确度以及确定标记对或未标记对之间计算的定量变化的精确度的第一标准。本文介绍了定量蛋白质组学LC-MS实验中常见的离子干扰事件如何发生,以及如何利用离子纯度过滤器克服和解决这些问题,最终在更宽的动态范围内提供了更准确,更精确的定量结果。

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