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Bayesian Deconvolution of Mass and Ion Mobility Spectra: From Binary Interactions to Polydisperse Ensembles

机译:质量和离子迁移谱的贝叶斯反卷积:从二元相互作用到多分散团簇

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摘要

Interpretation of mass spectra is challenging because they report a ratio of two physical quantities, mass and charge, which may each have multiple components that overlap in m/z. Previous approaches to disentangling the two have focused on peak assignment or fitting. However, the former struggle with complex spectra, and the latter are generally computationally intensive and may require substantial manual intervention. We propose a new data analysis approach that employs a Bayesian framework to separate the mass and charge dimensions. Based on this approach, we developed UniDec (Universal Deconvolution), software that provides a rapid, robust, and flexible deconvolution of mass spectra and ion mobility-mass spectra with minimal user intervention. Incorporation of the charge-state distribution in the Bayesian prior probabilities provides separation of the m/z spectrum into its physical mass and charge components. We have evaluated our approach using systems of increasing complexity, enabling us to deduce lipid binding to membrane proteins, to probe the dynamics of subunit exchange reactions, and to characterize polydispersity in both protein assemblies and lipoprotein Nanodiscs. The general utility of our approach will greatly facilitate analysis of ion mobility and mass spectra.
机译:质谱的解释具有挑战性,因为它们报告的是两个物理量(质量和电荷)的比率,这两个物理量可能具有以m / z重叠的多个分量。解开两者的先前方法集中在峰分配或拟合上。但是,前者要处理复杂的光谱,而后者通常需要大量的计算,可能需要大量的人工干预。我们提出了一种新的数据分析方法,该方法采用贝叶斯框架将质量维数和电荷维数分开。基于这种方法,我们开发了UniDec(通用解卷积)软件,该软件可在最少用户干预的情况下对质谱图和离子淌度质谱进行快速,鲁棒和灵活的解卷积。在贝叶斯先验概率中合并电荷状态分布可将m / z频谱分离为其物理质量和电荷分量。我们已经使用越来越复杂的系统评估了我们的方法,使我们能够推断脂质与膜蛋白的结合,探测亚基交换反应的动力学,并表征蛋白质装配体和脂蛋白纳米圆盘中的多分散性。我们方法的一般用途将极大地促进离子迁移率和质谱的分析。

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