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酸性水溶液中β-D-葡萄糖和β-D-木糖降解机制的从头算分子动力学模拟

Ab initio molecular dynamics simulations of beta-D-glucose and beta-D-xylose degradation mechanisms in acidic aqueous solution.

作者信息

Qian Xianghong, Nimlos Mark R, Davis Mark, Johnson David K, Himmel Michael E

机构信息

Rx-Innovation, Inc., Fort Collins, CO 80525, USA.

出版信息

Carbohydr Res. 2005 Oct 17;340(14):2319-27. doi: 10.1016/j.carres.2005.07.021.

Abstract

Ab initio molecular dynamics simulations were employed to investigate, with explicit solvent water molecules, beta-D-glucose and beta-D-xylose degradation mechanisms in acidic media. The rate-limiting step in sugar degradation was found to be protonation of the hydroxyl groups on the sugar ring. We found that the structure of water molecules plays a significant role in the acidic sugar degradation pathways. Firstly, a water molecule competes with the hydroxyl group on the sugar ring for protons. Secondly, water forms hydrogen bonds with the hydroxyl groups on the sugar rings, thus weakening the C-C and C-O bonds (each to a different degree). Note that the reaction pathways could be altered due to the change of relative stability of the C-C and C-O bonds. Thirdly, water molecules that are hydrogen-bonded to sugar hydroxyls could easily extract a proton from the reaction intermediate, terminating the reaction. Indeed, the sugar degradation pathway is complex due to multiple protonation probabilities and the surrounding water structure. Our experimental data support multiple sugar acidic degradation pathways.

摘要

采用从头算分子动力学模拟方法,在含有明确溶剂水分子的情况下,研究了β-D-葡萄糖和β-D-木糖在酸性介质中的降解机制。发现糖降解的限速步骤是糖环上羟基的质子化。我们发现水分子的结构在酸性糖降解途径中起着重要作用。首先,一个水分子与糖环上的羟基竞争质子。其次,水与糖环上的羟基形成氢键,从而削弱C-C键和C-O键(程度不同)。注意,由于C-C键和C-O键相对稳定性的变化,反应途径可能会改变。第三,与糖羟基形成氢键的水分子可以很容易地从反应中间体中提取一个质子,从而终止反应。事实上,由于多种质子化概率和周围的水结构,糖降解途径很复杂。我们的实验数据支持多种糖的酸性降解途径。

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