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首页> 外文期刊>Biophysical Chemistry: An International Journal Devoted to the Physical Chemistry of Biological Phenomena >What determines water-bridge lifetimes at the surface of DNA? Insight from systematic molecular dynamics analysis of water kinetics for various DNA sequences
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What determines water-bridge lifetimes at the surface of DNA? Insight from systematic molecular dynamics analysis of water kinetics for various DNA sequences

机译:是什么决定了DNA表面的水桥寿命?通过对各种DNA序列的水动力学进行系统的分子动力学分析获得的见解

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The lifetime during which a water molecule resides at the surface of a biomolecule varies according to the hydration site. What determines this variety of lifetimes? Despite many previous studies, there is still no uniform picture quantitatively explaining this phenomenon. Here we calculate the lifetime for a particular hydration pattern in the DNA minor groove, the water bridge, for various DNA sequences to show that the water-bridge lifetime varies from 1 to ~ 300 ps in a sequence-dependent manner. We find that it follows 1/k(V step)P m, where P m and V step are two crucial factors, namely the probability of forming a specific hydrogen bond in which more than one donor atom participates, and the structural fluctuation of DNA, respectively. This relationship provides a picture of the water kinetics with atomistic detail and shows that water dissociation occurs when a particular hydrogen-bonding pattern appears. The rate constant of water dissociation k can be described as a function of the structural fluctuations of DNA. This picture is consistent with the model of Laage and Hynes proposing that hydrogen-bond switching occurs when an unusual number of hydrogen bonds are formed. The two new factors suggested here are discussed in the context of the surface's geometry and electrostatic nature, which were previously proposed as the determinants of water lifetimes.
机译:水分子停留在生物分子表面的寿命因水合部位而异。是什么决定了这种寿命的多样性?尽管有许多先前的研究,但仍没有统一的图片来定量地解释这种现象。在这里,我们计算了DNA小沟(水桥)中特定水合作用模式对各种DNA序列的寿命,以显示水桥寿命以序列依赖性的方式从1 ps〜300 ps变化。我们发现它遵循1 / k(V step)P m,其中P m和V step是两个关键因素,即形成一个特定氢键的可能性,其中多个供体原子参与其中,DNA的结构波动, 分别。这种关系提供了具有原子细节的水动力学图,并表明当出现特定的氢键模式时发生水离解。水解离的速率常数k可描述为DNA结构波动的函数。此图与Laage和Hynes的模型一致,后者提出当形成异常数量的氢键时发生氢键转换。这里提出的两个新因素是在表面的几何形状和静电性质的背景下进行讨论的,这些因素先前曾被提出作为水寿命的决定因素。

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