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Gas-phase and Solution-phase Peptide Conformations Studied by Ion Mobility-mass Spectrometry and Molecular Dynamics Simulations

机译:离子淌度质谱和分子动力学模拟研究气相和溶液相肽的构象

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摘要

Ion mobility spectrometry (IMS) separates ions on the basis of ion-neutral collision cross-sections (CCS, [omega]), which are determined by the geometry or conformation of the ions. The size-based IM separation can be extended to distinguish conformers that have different shapes in cases where shape differences influence the accessible surface area of the molecule. In recent years, IM has rapidly evolved as a structural characterization technique, which has applied on various structural biology problems. In this work, IMS is combined with molecular dynamics simulation (MDS), specially the integrated tempering sampling molecular dynamics simulation (ITS-MDS) to explore the gas-phase conformation space of two molecular systems (i) protonated tryptophan zipper 1 (trpzip1) ions and its six derivatives (ii) alkali metal ion (Na, K and Cs) adducts of gramicidin A (GA). The structural distributions obtained from ITS-MDS are compared well with results obtained from matrix-assisted laser desorption ionization-ion mobility-mass spectrometry (MALDI-IM-MS) for trpzip 1 series and electrospray ionization-ion mobility-mass spectrometry (ESI-IM-MS) for alkali metal ion adducts of GA. Furthermore, the solvent dependence on conformational preferences of the GA dimer is investigated using a combination of mass spectrometry techniques, viz. ESI-IM-MS and hydrogen/deuterium exchange (HDX)-MS, and MDS. The IM experiments reveal three distinct gramicidin A species, detected as the sodium ion adduct ions, [2GA + 2Na]??, and the equilibrium abundances of the dimer ions varies with solvent polarity. The solution phase conformations are assigned as the parallel and anti-parallel [beta]-helix dimer, and the anti-parallel dimer is the preferred conformation in non-polar organic solvent. The calculated CCS profiles by ITS-MDS agree very well with the experimentally measured CCS profiles, which underscore the utility of the method for determining candidate structures as well as the relative abundances of the candidate structures. The benefit of combining ion mobility measurements with solution-phase H/D exchange is allowing identifications and detail analysis of the solution-phase subgroup conformations, which cannot be uncovered by one method alone.
机译:离子迁移谱法(IMS)基于离子中性碰撞截面(CCS,ω)分离离子,该截面由离子的几何形状或构象确定。在形状差异影响分子可及表面积的情况下,基于尺寸的IM分离可以扩展以区分具有不同形状的构象异构体。近年来,IM已经迅速发展成为一种结构表征技术,已应用于各种结构生物学问题。在这项工作中,IMS结合了分子动力学模拟(MDS),特别是集成了回火采样分子动力学模拟(ITS-MDS),以探索两个分子系统的气相构象空间(i)质子化的色氨酸拉链1(trpzip1)离子及其六种衍生物(ii)短杆菌肽A(GA)的碱金属离子(Na,K和Cs)加合物。从ITS-MDS获得的结构分布与trpzip 1系列的基质辅助激光解吸电离-离子淌度质谱(MALDI-IM-MS)和电喷雾电离-离子淌度质谱(ESI- IM-MS)用于GA的碱金属离子加合物。此外,使用质谱技术的组合研究溶剂对GA二聚体构象偏好的依赖性。 ESI-IM-MS和氢/氘交换(HDX)-MS和MDS。 IM实验揭示了三种不同的短杆菌肽A种类,被检测为钠离子加合离子[2GA + 2Na] +,并且二聚体离子的平衡丰度随溶剂极性而变化。将溶液相构象指定为平行和反平行的β-螺旋二聚体,并且反平行的二聚体是在非极性有机溶剂中的优选构象。 ITS-MDS计算出的CCS轮廓与实验测量的CCS轮廓非常吻合,这突显了该方法用于确定候选结构以及候选结构的相对丰度的实用性。将离子迁移率测量与溶液相H / D交换相结合的好处是可以识别和详细分析溶液相亚组构象,而这是仅靠一种方法无法发现的。

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    Chen Liuxi;

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  • 年度 2012
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  • 正文语种 en_US
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