Murarka Rajesh K, Head-Gordon Teresa
Department of Bioengineering, University of California, Berkeley, California 94720, USA.
J Chem Phys. 2007 Jun 7;126(21):215101. doi: 10.1063/1.2737050.
We have conducted extensive molecular dynamics simulations to study the single particle and collective dynamics of water in solutions of N-acetyl-glycine-methylamide, a model hydrophilic protein backbone, and N-acetyl-leucine-methylamide, a model (amphiphilic) hydrophobic peptide, as a function of peptide concentration. Various analytical models commonly used in the analysis of incoherent quasielastic neutron scattering (QENS), are tested against the translational and rotational intermediate scattering function, the mean square displacement of the water molecule center of mass, and fits to the second-order rotational correlation function of water evaluated directly from the simulation data. We find that while the agreement between the model-free analysis and analytical QENS models is quantitatively poor, the qualitative feature of dynamical heterogeneity due to caging is captured well by all approaches. The center of mass collective and single particle intermediate scattering functions of water calculated for these peptide solutions show that the crossover from collective to single particle-dominated motions occurs at a higher value of Q for high concentration solutions relative to low concentration because of the greater restriction in movement of water molecules due to confinement. Finally, we have shown that at the same level of confinement of the two peptides, the aqueous amphiphilic amino acid solution shows the strongest deviation between single particle and collective dynamics relative to the hydrophilic amino acid, indicating that chemical heterogeneity induces even greater spatial heterogeneity in the water dynamics.
我们进行了广泛的分子动力学模拟,以研究作为肽浓度函数的水在N - 乙酰甘氨酸 - 甲酰胺(一种亲水性蛋白质主链模型)和N - 乙酰亮氨酸 - 甲酰胺(一种两亲性疏水肽模型)溶液中的单粒子动力学和集体动力学。针对非相干准弹性中子散射(QENS)分析中常用的各种分析模型,我们根据平移和旋转中间散射函数、水分子质心的均方位移以及直接从模拟数据评估的水的二阶旋转相关函数的拟合情况进行了测试。我们发现,虽然无模型分析与分析性QENS模型之间的定量一致性较差,但所有方法都能很好地捕捉到由于笼效应导致的动力学异质性的定性特征。针对这些肽溶液计算得到的水的质心集体和单粒子中间散射函数表明,由于受限导致水分子运动的限制更大,相对于低浓度溶液,高浓度溶液中从集体主导运动到单粒子主导运动的转变发生在更高的Q值处。最后,我们表明,在两种肽的相同受限水平下,两亲性氨基酸水溶液相对于亲水性氨基酸在单粒子动力学和集体动力学之间表现出最强的偏差,这表明化学异质性在水动力学中诱导了更大的空间异质性。