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采用红外分子离子动光谱学和量子化学计算研究气相中质子化甲硫氨酸和色氨酸二聚体的结构。

Structure of Proton-Bound Methionine and Tryptophan Dimers in the Gas Phase Investigated with IRMPD Spectroscopy and Quantum Chemical Calculations.

机构信息

Chalmers University of Technology, 412 96 Gothenburg, Sweden.

Department of Physics, Stockholm University, 114 19 Stockholm, Sweden.

出版信息

J Phys Chem A. 2020 Mar 26;124(12):2408-2415. doi: 10.1021/acs.jpca.9b11811. Epub 2020 Mar 11.

Abstract

The structures of three proton-bound dimers (MetH, MetTrpH, and TrpH) are investigated in the gas phase with infrared multiple photon disassociation (IRMPD) spectroscopy in combination with quantum chemical calculations. Their IRMPD spectra in the range of 600-1850 cm are obtained experimentally using an FT-ICR mass spectrometer and the CLIO free electron laser as an IR light source. The most abundant conformers are elucidated by comparing the IRMPD spectra with harmonic frequencies obtained at the B3LYP-GD3BJ/6-311++G** level of theory. Discrepancies between the experimental and theoretical data in the region of 1500-1700 cm are attributed to the anharmonicity of the amino bending modes. We confirm the result of a previous IRMPD study that the structure of gas-phase TrpH is charge-solvated but find that there are more stable structures than originally reported (Feng, R.; Yin, H.; Kong, X. , , 24-28). In addition, gas-phase MetH and MetTrpH have been revealed to have charge-solvated structures. For all three dimers, the most stable conformer is found to be of type A. The spectrum of MetH, however, cannot be explained without some abundance of type B charge-solvated conformers as well as salt-bridged structures.

摘要

采用傅里叶变换离子回旋共振质谱仪(FT-ICR MS)和 CLIO 自由电子激光作为红外光源,实验获得了 600-1850 cm 范围内的红外多光子解离(IRMPD)光谱。通过将实验的 IRMPD 光谱与在 B3LYP-GD3BJ/6-311++G**理论水平上获得的简正频率进行比较,阐明了最丰富的构象。在 1500-1700 cm 区域,实验数据与理论数据之间的差异归因于氨基酸弯曲模式的非谐性。我们证实了之前的 IRMPD 研究的结果,即气相 TrpH 的结构是电荷溶剂化的,但发现存在比以前报道的更多稳定的结构(Feng,R.;Yin,H.;Kong,X.,24-28)。此外,已经揭示了气相 MetH 和 MetTrpH 具有电荷溶剂化结构。对于所有三种二聚体,发现最稳定的构象是 A 型。然而,如果没有一些 B 型电荷溶剂化构象以及盐桥结构的丰度,MetH 的光谱就无法解释。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d7d/7307929/2935c4970c2e/jp9b11811_0001.jpg

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