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Molecular dynamics simulations of trehalose as a 'dynamic reducer' for solvent water molecules in the hydration shell

机译:海藻糖作为“动态还原剂”用于水化壳中溶剂水分子的分子动力学模拟

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Systematic computational work for a series of 13 disaccharides was performed to provide an atomic-level insight of unique biochemical role of the alpha,alpha-(1->1)-linked glucopyranoside dimer over the other glycosidically linked sugars.Superior osmotic and cryoprotective abilities of trehalose were explained on the basis of conformational and hydration characteristics of the trehalose molecule.Analyses of the hydration number and radial distribution function of solvent water molecules showed that there was very little hydration adjacent to the glycosidic oxygen of trehalose and that the dynamic conformation of trehalose was less flexible than any of the other sugars due to this anisotropic hydration.The remarkable conformational rigidity that allowed trehalose to act as a sugar template was required for stable interactions with hydrogen-bonded water molecules.Trehalose made an average of 2.8 long-lived hydrogen bonds per each MD step,which was much larger than the average of 2.1 for the other sugars.The stable hydrogen-bond network is derived from the formation of long-lived water bridges at the expense of decreasing the dynamics of the water molecules.Evidence for this dynamic reduction of water by trehalose was also established based on each of the lowest translational diffusion coefficients and the lowest intermolecular coulombic energy of the water molecules around trehalose.Overall results indicate that trehalose functions as a 'dynamic reducer' for solvent water molecules based on its anisotropic hydration and conformational rigidity,suggesting that macroscopic solvent properties could be modulated by changes in the type of glycosidic linkages in sugar molecules.
机译:进行了一系列13种二糖的系统计算工作,以提供与其他糖苷键连接的糖相比,α,α-(1-> 1)连接的吡喃葡萄糖苷二聚体独特的生化作用的原子级洞察力。根据海藻糖分子的构象和水合特性对海藻糖的结构进行了解释。对溶剂水分子的水合数和径向分布函数的分析表明,海藻糖的糖苷氧附近几乎没有水合,而海藻糖的动态构象由于这种各向异性的水合作用,海藻糖的柔韧性不及其他任何糖。海藻糖与氢键水分子的稳定相互作用需要海藻糖作为糖模板的出色构象刚度,海藻糖的平均寿命为2.8每个MD步骤的氢键,远远大于2.1的平均值稳定的氢键网络源自长寿命水桥的形成,但以降低水分子的动力学为代价。此外,还基于每个海藻糖建立了通过海藻糖动态还原水的证据。海藻糖周围水分子的平移扩散系数最低,分子间库伦能量最低。总体结果表明,海藻糖由于其各向异性的水合和构象刚度而成为溶剂水分子的“动态还原剂”,暗示可以调节宏观的溶剂性质通过改变糖分子中糖苷键的类型。

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