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A simple method of prediction of visibility of peptides in mass spectrometry with electrospray ionization

机译:一种在电喷雾电离质谱中预测肽可见性的简单方法

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摘要

A new method for selection of essential peptides applicable for protein detection and quantification analysis in the targeted positive electrospray mass spectrometry has been proposed. It is based on the prediction of the normalized abundance of the mass spectrometric peaks by using a linear regression model. This method has the following a priori restrictions: first selection of peptides must be arranged so that at pH 2.5 the tested peptides must be presented mainly as the 2+ and 3+ ions. Only peptides containing C-terminal lysine or arginine residues should be considered. The amino acid composition of the peptide, the peptide concentration, the ratio of the polar surface of peptide to common surface and ratio of the polar volume to the common volume are used as independent variables. Among several considered combinations of variables the best linear regression model had a determination coefficient in leave-one-out cross-validation procedure of 0.54. This model confidently discriminated peptides with high response ability and peptides with low response ability, and therefore it is applicable for selection of the most favorable peptides among peptides selected by means of simple criteria. This simple and fast screening method can be successfully applied to reduce the list of observed peptides.
机译:提出了一种新的选择必需肽的方法,该方法可用于靶向正电喷雾质谱中的蛋白质检测和定量分析。它基于使用线性回归模型对质谱峰归一化丰度的预测。该方法具有以下先验限制:首先必须对肽进行选择,以便在pH 2.5时,所测试的肽必须主要以2+和3+离子形式存在。仅应考虑含有C端赖氨酸或精氨酸残基的肽。肽的氨基酸组成,肽浓度,肽的极性表面与公共表面的比率以及极性体积与公共体积的比率用作自变量。在几种考虑的变量组合中,最佳线性回归模型在留一法交叉验证程序中的确定系数为0.54。该模型可以可靠地区分具有高响应能力的肽和具有低响应能力的肽,因此,它适用于在通过简单标准选择的肽中选择最有利的肽。这种简单而快速的筛选方法可以成功地用于减少观察到的肽的列表。

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