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Oxidation of gas-phase hydrated protonated/ deprotonated cysteine: how many water ligands are sufficient to approach solution-phase photooxidation chemistry?

机译:气相水合质子化/去质子化半胱氨酸的氧化:多少水配体足以进行溶液相光氧化化学反应?

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We present a study on the reactions of singlet oxygen 02[a~1Δ_g] with hydrated protonated and deprotonated cysteine (Cys) in the gas phase, including measurements of the effects of collision energy (E_(col)) and hydration number on reaction cross sections over a center-of-mass E_(col) range from 0.05 to 1.0 eV. The aim is to probe how successive addition of water molecules changes the oxidation chemistry of Cys in the gas phase. Hydrated clusters, generated by electrospray ionization, have structures of HSCH2CH(NH3~+)CO2H(H2O)_(1,2) and HSCH2CH(NH2)CO2~-(H2O)_(1,2) for protonated and deprotonated forms, respectively. In contrast to ~1O2 reactions with dehydrated protonated/deprotonated Cys of which hydroperoxide products all decomposed, reactions with hydrated protonated/deprotonated Cys yielded stable hydroperoxide products, analogous to photooxidation reaction of Cys in solution. We investigated the number of water ligands necessary to produce a stable hydroperoxide, and found that a single water molecule suffices—that is, to relax nascent, energized hydroperoxide in the hydrated cluster by elimination of water. Hydrated protonated Cys shows higher reaction efficiency than the hydrated deprotonated one, particularly with the addition of the second water ligand. Reactions of hydrated protonated/deprotonated Cys are suppressed by E_(col), becoming negligible at E_(col) s 0.5 eV. Density functional theory calculations were used to locate reaction coordinates for these systems. Quasi-classical, direct dynamics trajectory simulations were performed for HSCH2CH(NH3~+)CO2H(H2O) + ~1O2 at the B3LYP/4-31G(d) level of theory. Analysis of trajectories highlights the importance of complex mediation in the early stages of the reaction, and illustrates that water can catalyze proton transfer within the hydrated complex.
机译:我们对单重态氧02 [a〜1Δ_g]与水合质子化和去质子化半胱氨酸(Cys)在气相中的反应进行了研究,包括测量碰撞能量(E_(col))和水合数对反应交叉的影响质心E_(col)上的截面范围为0.05到1.0 eV。目的是探究连续添加水分子如何改变气相中Cys的氧化化学。电喷雾电离产生的水合簇具有质子化和去质子化形式的HSCH2CH(NH3〜+)CO2H(H2O)_(1,2)和HSCH2CH(NH2)CO2〜-(H2O)_(1,2)结构,分别。与氢质过氧化物的脱水质子化/去质子化的Cys发生〜1O2反应相反,与水合质子化/去质子化的Cys的反应产生稳定的氢过氧化物产物,类似于溶液中Cys的光氧化反应。我们研究了产生稳定的氢过氧化物所必需的水配体的数量,发现单个水分子就足够了,即通过消除水来放松水合簇中新生的,通电的氢过氧化物。水合的质子化Cys显示出比水合的去质子化Cys更高的反应效率,特别是在添加第二种水配体的情况下。水合的质子化/去质子化的Cys的反应被E_(col)抑制,在E_(col)s 0.5 eV时可忽略不计。密度泛函理论计算用于定位这些系统的反应坐标。在B3LYP / 4-31G(d)的理论水平上对HSCH2CH(NH3〜+)CO2H(H2O)+〜1O2进行了准经典的直接动力学轨迹模拟。轨迹分析突出了在反应早期阶段复合物介导的重要性,并说明了水可以催化水合复合物中的质子转移。

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