蛋白质- dna复合物的经验Zn2+模型比较

S. Volkenandt, P. Imhof
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引用次数: 0

摘要

锌离子是人类体内第二丰富的离子。由于它们的过渡金属特性,它们在蛋白质中的作用不仅是结构性的,而且是催化性的。因此,通过经验力场来建模它们的几何协调通用性是一项具有挑战性的任务。在这项工作中,我们评估了三个流行的模型,这些模型专门用于表示锌离子保持结构完整性的能力。为此,我们对两种含锌蛋白质-DNA复合物进行了分子动力学模拟,这两种复合物的锌配位不同,即四个半胱氨酸或两个半胱氨酸和两个组氨酸。最灵活的非键合12-6-4 Lennard–Jones型模型显示出与晶体结构相矛盾的Zn2+离子的六重配位偏好。阳离子假原子模型有利于四面体几何结构,而键合扩展锌AMBER力场模型通过构造,最好地保持了规则或轻微扭曲四面体的初始几何结构。我们的数据使扩展的锌琥珀色力场成为给定几何结构中结构锌离子的最佳模型。然而,在更复杂的情况下,更灵活的模型可能是有利的。
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Comparison of Empirical Zn2+ Models in Protein–DNA Complexes
Zinc ions are the second most abundant ions found in humans. Their role in proteins can be merely structural but also catalytic, owing to their transition metal character. Modelling their geometric–coordination versatility by empirical force fields is, thus, a challenging task. In this work, we evaluated three popular models, specifically designed to represent zinc ions with regard to their capability of preserving structural integrity. To this end, we performed molecular dynamics simulations of two zinc-containing protein–DNA complexes, which differed in their zinc coordination, i.e., four cysteines or two cysteines and two histidines. The most flexible non-bonded 12-6-4 Lennard–Jones-type model shows a preference for six-fold coordination of the Zn2+-ions in contradiction to the crystal structure. The cationic dummy atom model favours tetrahedral geometry, whereas the bonded extended zinc AMBER force field model, by construction, best preserves the initial geometry of a regular or slightly distorted tetrahedron. Our data renders the extended zinc AMBER force field the best model for structural zinc ions in a given geometry. In more complicated cases, though, more flexible models may be advantageous.
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