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离子淌度质谱和碰撞诱导解折叠研究蛋白质中的结构稳定元件。

Investigation of Structure-Stabilizing Elements in Proteins by Ion Mobility Mass Spectrometry and Collision-Induced Unfolding.

机构信息

Mass Spectrometry Laboratory, MolSys Research Unit, Quartier Agora, University of Liège, Allée du Six Août 11, B-4000 Liège, Belgium.

Laboratory of Enzymology and Protein Folding, Center for Protein Engineering, InBioS Research Unit, University of Liège, B-4000 Liège, Belgium.

出版信息

J Am Soc Mass Spectrom. 2024 Jun 5;35(6):1076-1088. doi: 10.1021/jasms.3c00398. Epub 2024 Apr 25.

Abstract

A recently developed proteolytic reactor, designed for protein structural investigation, was coupled to ion mobility mass spectrometry to monitor collisional cross section (CCS) evolution of model proteins undergoing trypsin-mediated mono enzymatic digestion. As peptides are released during digestion, the CCS of the remaining protein structure may deviate from the classical 2/3 power of the CCS-mass relationship for spherical structures. The classical relationship between CCS and mass (CCS = × ) for spherical structures, assuming a globular shape in the gas phase, may deviate as stabilizing elements are lost during digestion. In addition, collision-induced unfolding (CIU) experiments on partially digested proteins provided insights into the CCS resilience in the gas phase to ion activation, potentially due to the presence of stabilizing elements. The study initially investigated a model peptide ModBea (3 kDa), assessing the impact of disulfide bridges on CCS resilience in both reduced and oxidized forms. Subsequently, β-lactoglobulin (2 disulfide bridges), calmodulin (Ca coordination cation), and cytochrome (heme) were selected to investigate the influence of common structuring elements on CCS resilience. CIU experiments probed the unfolding process, evaluating the effect of losing specific peptides on the energy landscapes of partially digested proteins. Comparisons of the CCS to trend curves describing the CCS/mass relationship revealed that proteins with structure-stabilizing elements consistently exhibit CCS and greater resilience toward CIU compared to proteins lacking these elements. The integration of online digestion, ion mobility, and CIU provides a valuable tool for identifying structuring elements in biopolymers in the gas phase.

摘要

最近开发的一种用于蛋白质结构研究的蛋白水解反应器与离子淌度质谱联用,以监测模型蛋白质在胰蛋白酶介导的单酶消化过程中碰撞截面(CCS)的演变。随着消化过程中肽的释放,剩余蛋白质结构的 CCS 可能偏离球形结构的 CCS-质量关系的经典 2/3 幂次关系。在气相中假设为球形结构的经典 CCS-质量关系(CCS = × )可能会偏离,因为在消化过程中会失去稳定元素。此外,对部分消化的蛋白质进行碰撞诱导解折叠(CIU)实验,深入了解了在气相中离子活化时 CCS 的抗性,这可能是由于存在稳定元素。该研究最初研究了模型肽 ModBea(3 kDa),评估了二硫键对还原和氧化形式下 CCS 抗性的影响。随后,选择β-乳球蛋白(2 个二硫键)、钙调蛋白(Ca 配位阳离子)和细胞色素 c(血红素)来研究常见结构元素对 CCS 抗性的影响。CIU 实验探测了展开过程,评估了失去特定肽对部分消化蛋白质能量景观的影响。将 CCS 与描述 CCS-质量关系的趋势曲线进行比较表明,与缺乏这些元素的蛋白质相比,具有结构稳定元素的蛋白质的 CCS 更高,对 CIU 的抗性更强。在线消化、离子淌度和 CIU 的集成提供了一种识别气相中生物聚合物中结构元素的有价值工具。

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