n -乙酰蛋氨酸硫自由基阳离子的命运:去质子化与脱羧化

Photochem Pub Date : 2023-02-05 DOI:10.3390/photochem3010007
K. Grzyb, Vidhi Sehrawat, T. Pędziński
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引用次数: 0

摘要

在本研究中,我们研究了3-羧基二苯甲酮(3CB)激发的三重态在中性和碱性水溶液中敏化的C-末端甲硫氨酸,N-乙酰基-甲硫氨酸(N-Ac-Met)的仿生模型的光氧化。通过激光闪光光解鉴定和定量反应中形成的短命瞬态物种,并使用液相色谱法结合高分辨率质谱法(LC-MS)和串联质谱法(MSMS)分析最终稳定产物。基于这些互补的方法,可以计算两种竞争反应的量子产率,并且发现脱质子化比脱羧更有利(对于中性pH:ξ-H=0.23 vs.ξ-CO2=0.09,对于碱性pH:Γ-H=0.23vs.Γ-CO2=0.05),对于理解复杂的生物系统很重要,例如,所研究的化合物N-Ac-Met可以在一定程度上模拟β-淀粉样蛋白C端结构域中的甲硫氨酸,这被认为与阿尔茨海默病的发病机制有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The Fate of Sulfur Radical Cation of N-Acetyl-Methionine: Deprotonation vs. Decarboxylation
In the present study, we investigated the photooxidation of the biomimetic model of C-terminal methionine, N-Acetyl-Methionine (N-Ac-Met), sensitized by a 3-Carboxybenzophenone (3CB) excited triplet in neutral and basic aqueous solutions. The short-lived transient species that formed in the reaction were identified and quantified by laser flash photolysis and the final stable products were analyzed using liquid chromatography coupled with high-resolution mass spectrometry (LC-MS) and tandem mass spectrometry (MSMS). Based on these complementary methods, it was possible to calculate the quantum yields of both competing reactions, and the deprotonation was found to be favored over decarboxylation (for neutral pH: ϕ-H = 0.23 vs. ϕ-CO2 = 0.09, for basic pH: ϕ-H = 0.23 vs. ϕ-CO2 = 0.05). Findings on such a model system, which can possibly mimic the complex protein environment, are important in understanding complicated biological systems, for example, the studied compound, N-Ac-Met, can, to some extent, mimic the methionine in the C-terminal domain of β-amyloid, which is thought to be connected with the pathogenesis of Alzheimer’s disease.
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CiteScore
3.60
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