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Quantitative Protein Topography Analysis and High-Resolution Structure Prediction Using Hydroxyl Radical Labeling and Tandem-Ion Mass Spectrometry (MS)

机译:使用羟基自由基标记和串联离子质谱(MS)的定量蛋白质形貌分析和高分辨率结构预测

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摘要

Hydroxyl radical footprinting based MS for protein structure assessment has the goal of understanding ligand induced conformational changes and macromolecular interactions, for example, protein tertiary and quaternary structure, but the structural resolution provided by typical peptide-level quantification is limiting. In this work, we present experimental strategies using tandem-MS fragmentation to increase the spatial resolution of the technique to the single residue level to provide a high precision tool for molecular biophysics research. Overall, in this study we demonstrated an eightfold increase in structural resolution compared with peptide level assessments. In addition, to provide a quantitative analysis of residue based solvent accessibility and protein topography as a basis for high-resolution structure prediction; we illustrate strategies of data transformation using the relative reactivity of side chains as a normalization strategy and predict side-chain surface area from the footprinting data. We tested the methods by examination of Ca+2-calmodulin showing highly significant correlations between surface area and side-chain contact predictions for individual side chains and the crystal structure. Tandem ion based hydroxyl radical footprinting-MS provides quantitative high-resolution protein topology information in solution that can fill existing gaps in structure determination for large proteins and macromolecular complexes.
机译:用于蛋白质结构评估的基于羟基自由基足迹的质谱仪的目标是了解配体诱导的构象变化和大分子相互作用,例如蛋白质的三级和四级结构,但是典型的肽水平定量分析提供的结构分辨率有限。在这项工作中,我们提出了使用串联质谱碎片化的实验策略,以将技术的空间分辨率提高到单个残基水平,从而为分子生物物理学研究提供高精度的工具。总体而言,在这项研究中,我们证明了与肽水平评估相比,结构分辨率提高了八倍。此外,提供基于残基的溶剂可及性和蛋白质形貌的定量分析,作为高分辨率结构预测的基础;我们举例说明了使用侧链的相对反应性作为归一化策略的数据转换策略,并根据足迹数据预测了侧链表面积。我们通过检查Ca +2 -钙调蛋白对方法进行了测试,结果显示表面积和单个链的侧链接触预测与晶体结构之间的高度相关性。基于串联离子的羟基自由基足迹质谱仪可在溶液中提供定量的高分辨率蛋白质拓扑信息,可填补大型蛋白质和大分子复合物结构确定中的空白。

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