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寡糖-Mg²⁺络合物电子捕获解离的机理研究。

Mechanistic study on electron capture dissociation of the oligosaccharide-Mg²⁺ complex.

作者信息

Huang Yiqun, Pu Yi, Yu Xiang, Costello Catherine E, Lin Cheng

机构信息

Mass Spectrometry Resource, Boston University School of Medicine, Boston, MA, 02118, USA.

出版信息

J Am Soc Mass Spectrom. 2014 Aug;25(8):1451-60. doi: 10.1007/s13361-014-0921-0. Epub 2014 May 21.

Abstract

Electron capture dissociation (ECD) has shown great potential in structural characterization of glycans. However, our current understanding of the glycan ECD process is inadequate for accurate interpretation of the complex glycan ECD spectra. Here, we present the first comprehensive theoretical investigation on the ECD fragmentation behavior of metal-adducted glycans, using the cellobiose-Mg²⁺ complex as the model system. Molecular dynamics simulation was carried out to determine the typical glycan-Mg²⁺ binding patterns and the lowest-energy conformer identified was used as the initial geometry for density functional theory-based theoretical modeling. It was found that the electron is preferentially captured by Mg²⁺ and the resultant Mg⁺• can abstract a hydroxyl group from the glycan moiety to form a carbon radical. Subsequent radical migration and α-cleavage(s) result in the formation of a variety of product ions. The proposed hydroxyl abstraction mechanism correlates well with the major features in the ECD spectrum of the Mg²⁺-adducted cellohexaose. The mechanism presented here also predicts the presence of secondary, radical-induced fragmentation pathways. These secondary fragment ions could be misinterpreted, leading to erroneous structural determination. The present study highlights an urgent need for continuing investigation of the glycan ECD mechanism, which is imperative for successful development of bioinformatics tools that can take advantage of the rich structural information provided by ECD of metal-adducted glycans.

摘要

电子捕获解离(ECD)在聚糖的结构表征方面已显示出巨大潜力。然而,我们目前对聚糖ECD过程的理解尚不足以准确解释复杂的聚糖ECD谱图。在此,我们以纤维二糖 - Mg²⁺络合物为模型体系,首次对金属加合聚糖的ECD碎片化行为进行了全面的理论研究。进行了分子动力学模拟以确定典型的聚糖 - Mg²⁺结合模式,并将鉴定出的最低能量构象用作基于密度泛函理论的理论建模的初始几何结构。研究发现,电子优先被Mg²⁺捕获,生成的Mg⁺•可从聚糖部分夺取一个羟基形成碳自由基。随后的自由基迁移和α - 裂解导致形成各种产物离子。所提出的羟基夺取机制与Mg²⁺加合纤维六糖的ECD谱图中的主要特征高度相关。此处提出的机制还预测了由自由基引发的二级碎片化途径的存在。这些二级碎片离子可能会被错误解读,从而导致错误的结构测定。本研究强调迫切需要继续研究聚糖ECD机制,这对于成功开发能够利用金属加合聚糖ECD提供的丰富结构信息的生物信息学工具至关重要。

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