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用于生成天然产物构象以对离子淌度-质谱碰撞截面进行结构解释的距离几何协议。

Distance geometry protocol to generate conformations of natural products to structurally interpret ion mobility-mass spectrometry collision cross sections.

作者信息

Stow Sarah M, Goodwin Cody R, Kliman Michal, Bachmann Brian O, McLean John A, Lybrand Terry P

机构信息

Department of Chemistry, ‡Department of Pharmacology, §Vanderbilt Institute of Chemical Biology, ∥Vanderbilt Institute of Integrative Biosystems Research and Education, ⊥Center for Structural Biology, Vanderbilt University , Nashville, Tennessee 37235, United States.

出版信息

J Phys Chem B. 2014 Dec 4;118(48):13812-20. doi: 10.1021/jp509398e. Epub 2014 Nov 21.

Abstract

Ion mobility-mass spectrometry (IM-MS) allows the separation of ionized molecules based on their charge-to-surface area (IM) and mass-to-charge ratio (MS), respectively. The IM drift time data that is obtained is used to calculate the ion-neutral collision cross section (CCS) of the ionized molecule with the neutral drift gas, which is directly related to the ion conformation and hence molecular size and shape. Studying the conformational landscape of these ionized molecules computationally provides interpretation to delineate the potential structures that these CCS values could represent, or conversely, structural motifs not consistent with the IM data. A challenge in the IM-MS community is the ability to rapidly compute conformations to interpret natural product data, a class of molecules exhibiting a broad range of biological activity. The diversity of biological activity is, in part, related to the unique structural characteristics often observed for natural products. Contemporary approaches to structurally interpret IM-MS data for peptides and proteins typically utilize molecular dynamics (MD) simulations to sample conformational space. However, MD calculations are computationally expensive, they require a force field that accurately describes the molecule of interest, and there is no simple metric that indicates when sufficient conformational sampling has been achieved. Distance geometry is a computationally inexpensive approach that creates conformations based on sampling different pairwise distances between the atoms within the molecule and therefore does not require a force field. Progressively larger distance bounds can be used in distance geometry calculations, providing in principle a strategy to assess when all plausible conformations have been sampled. Our results suggest that distance geometry is a computationally efficient and potentially superior strategy for conformational analysis of natural products to interpret gas-phase CCS data.

摘要

离子淌度质谱(IM-MS)能够分别基于离子的电荷与表面积之比(IM)和质荷比(MS)对离子化分子进行分离。所获得的IM漂移时间数据用于计算离子化分子与中性漂移气体的离子-中性碰撞截面(CCS),该截面与离子构象直接相关,进而与分子大小和形状相关。通过计算研究这些离子化分子的构象态势,可为描绘这些CCS值可能代表的潜在结构提供解释,反之,也可为与IM数据不一致的结构基序提供解释。IM-MS领域面临的一个挑战是能否快速计算构象以解读天然产物数据,天然产物是一类具有广泛生物活性的分子。生物活性的多样性部分与天然产物常观察到的独特结构特征有关。目前用于从结构上解读肽和蛋白质的IM-MS数据的方法通常利用分子动力学(MD)模拟来对构象空间进行采样。然而,MD计算在计算上成本高昂,需要一个能准确描述目标分子的力场,而且没有一个简单的指标能表明何时已实现足够的构象采样。距离几何是一种计算成本较低的方法,它基于对分子内原子间不同成对距离的采样来创建构象,因此不需要力场。在距离几何计算中可以使用逐渐增大的距离界限,原则上提供了一种评估何时已采样所有合理构象的策略。我们的结果表明,距离几何是一种计算高效且可能更优的策略,用于天然产物的构象分析以解读气相CCS数据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/69ec/4259499/0d3f7da7499d/jp-2014-09398e_0005.jpg

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