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质谱、离子淌度分离和分子建模:用于取代环糊精混合物结构特征分析的强大组合。

Mass Spectrometry, Ion Mobility Separation and Molecular Modelling: A Powerful Combination for the Structural Characterisation of Substituted Cyclodextrins Mixtures.

机构信息

Laboratoire de Glycochimie des Antimicrobiens et des Agroressources, UMR CNRS 7378, Institut de Chimie de Picardie, FR CNRS 3085, F-80039 Amiens, France.

Plateforme-Analytique, Institut de Chimie de Picardie, FR CNRS 3085, Université de Picardie Jules Verne, F-80039 Amiens, France.

出版信息

Int J Mol Sci. 2022 Nov 1;23(21):13352. doi: 10.3390/ijms232113352.

Abstract

When working on the synthesis of substituted cyclodextrins (CDs), the main challenge remains the analysis of the reaction media content. Our objective in this study was to fully characterise a complex isomers mixture of Lipidyl-βCDs (LipβCD) obtained with a degree of substitution 1 (DS = 1) from a one-step synthesis pathway. The benefit of tandem mass spectrometry (MS/MS) and ion mobility separation hyphenated with mass spectrometry (IM-MS) was investigated. The MS/MS fragment ion's relative intensities were analysed by principal component analysis (PCA) to discriminate isomers. The arrival time distribution (ATD) of each isomer was recorded using a travelling wave ion mobility (TWIM) cell allowing the determination of their respective experimental collision cross section (CCS). The comparison with the predicted theoretical CCS (CCS) obtained from theoretical calculations propose a regioisomer assignment according to the βCD hydroxyl position (2, 3, or 6) involved in the reaction. These results were validated by extensive NMR structural analyses of pure isomers combined with molecular dynamics simulations. This innovative approach seems to be a promising tool to elucidate complex isomer mixtures such as substituted cyclodextrin derivatives.

摘要

在合成取代的环糊精(CDs)时,主要的挑战仍然是分析反应介质的内容。我们的目标是全面描述从一步合成途径获得的取代度为 1(DS = 1)的脂基-βCD(LipβCD)的复杂异构体混合物。研究了串联质谱(MS/MS)和与质谱联用的离子淌度分离(IM-MS)的优势。通过主成分分析(PCA)分析 MS/MS 碎片离子的相对强度来区分异构体。使用行波离子淌度(TWIM)池记录每个异构体的到达时间分布(ATD),允许确定它们各自的实验碰撞截面(CCS)。与通过理论计算获得的预测理论 CCS(CCS)的比较根据反应中涉及的 βCD 羟基位置(2、3 或 6)提出了区域异构体分配。这些结果通过与分子动力学模拟相结合的纯异构体的广泛 NMR 结构分析得到了验证。这种创新方法似乎是阐明取代环糊精衍生物等复杂异构体混合物的有前途的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/806f/9656358/e09993560dba/ijms-23-13352-sch001.jpg

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