Structures and unimolecular chemistry of alkali metal cation complexes with glutathione in the gas phase

IF 1.6 3区 化学 Q3 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL International Journal of Mass Spectrometry Pub Date : 2024-08-13 DOI:10.1016/j.ijms.2024.117309
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Abstract

This study investigates the unimolecular reactions of glutathione complexes with alkali metal cations in the gas phase through sustained off-resonance irradiation collision-induced dissociation and examines their structures using a combination of infrared multiphoton dissociation spectroscopy and computational techniques. Under soft CID conditions, glutathione complexes with charge-dense cations such as Li⁺, Na⁺, and K⁺ show significant fragmentation of glutathione, while complexes with heavier cations, Rb⁺ and Cs⁺, primarily undergo loss of glutathione. This behavior is attributed to the stronger non-covalent binding between smaller metal cations and glutathione, which competes with the dissociation thresholds of covalent interactions within the peptide complex. Using CREST, a tool for determining trial structures which were submitted to density functional theory calculations, a thorough investigation of the conformational space revealed many possible structures, including pentacoordinated structures for the Na⁺ and K⁺ complexes, as well as tetra-tri-, bi-, and monocoordinated structures along with zwitterionic structures for all metal cation/GSH complexes. For all alkali metal cation complexes, the thermodynamically most stable structures were found to be tetracoordinated A-type structures where the metal cation is bound to the amine nitrogen and three of the carbonyl oxygens—all except O2, the amide between glycine and cysteine. These computed infrared spectra for these lowest energy complexes were also consistent with the experimental vibrational spectra in the fingerprint region. Based on relative energies and the comparison of computed and experimental infrared spectra in the fingerprint region, the tetracoordinate A-type structures are concluded to be the dominant forms of the [M(GSH)]+ complexes in the gas phase.

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碱金属阳离子与谷胱甘肽气相络合物的结构和单分子化学性质
本研究通过持续非共振辐照碰撞诱导解离,研究了谷胱甘肽络合物与碱金属阳离子在气相中的单分子反应,并结合红外多光子解离光谱和计算技术研究了它们的结构。在软 CID 条件下,谷胱甘肽与电荷密集阳离子(如 Li⁺、Na⁺ 和 K⁺)的配合物显示出谷胱甘肽的显著碎片化,而与较重阳离子(如 Rb⁺和 Cs⁺)的配合物则主要发生谷胱甘肽的损失。这种行为归因于较小的金属阳离子与谷胱甘肽之间较强的非共价结合,这与肽复合物内共价相互作用的解离阈值相竞争。利用 CREST(一种用于确定试验结构并将其提交密度泛函理论计算的工具)对构象空间进行了深入研究,发现了许多可能的结构,包括 Na⁺ 和 K⁺ 复合物的五配位结构,以及所有金属阳离子/GSH 复合物的四-三配位、双配位和单配位结构以及齐聚物结构。对于所有碱金属阳离子络合物,热力学上最稳定的结构是四配位 A 型结构,其中金属阳离子与胺氮和三个羰基氧结合--除了甘氨酸和半胱氨酸之间的酰胺 O2。这些能量最低的复合物的红外光谱计算结果也与指纹区的实验振动光谱一致。根据相对能量以及指纹区计算红外光谱与实验红外光谱的比较,可以断定四配位 A 型结构是气相中 [M(GSH)]+ 复合物的主要形式。
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来源期刊
CiteScore
3.60
自引率
5.60%
发文量
145
审稿时长
71 days
期刊介绍: The journal invites papers that advance the field of mass spectrometry by exploring fundamental aspects of ion processes using both the experimental and theoretical approaches, developing new instrumentation and experimental strategies for chemical analysis using mass spectrometry, developing new computational strategies for data interpretation and integration, reporting new applications of mass spectrometry and hyphenated techniques in biology, chemistry, geology, and physics. Papers, in which standard mass spectrometry techniques are used for analysis will not be considered. IJMS publishes full-length articles, short communications, reviews, and feature articles including young scientist features.
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