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Long-Timescale Molecular-Dynamics Simulations of the Major Urinary Protein Provide Atomistic Interpretations of the Unusual Thermodynamics of Ligand Binding

机译:主要尿蛋白的长期分子动力学模拟提供了配体结合异常热力学的原子学解释

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摘要

The mouse major urinary protein (MUP) has proved to be an intriguing test bed for detailed studies on protein-ligand recognition. NMR, calorimetric, and modeling investigations have revealed that the thermodynamics of ligand binding involve a complex interplay between competing enthalpic and entropic terms. We performed six independent, 1.2 μs molecular-dynamics simulations on MUP—three replicates on the apo-protein, and three on the complex with the pheromone isobutylmethoxypyrazine. Our findings provide the most comprehensive picture to date of the structure and dynamics of MUP, and how they are modulated by ligand binding. The mechanical pathways by which amino acid side chains can transmit information regarding ligand binding to surface loops and either increase or decrease their flexibility (entropy-entropy compensation) are identified. Dewetting of the highly hydrophobic binding cavity is confirmed, and the results reveal an aspect of ligand binding that was not observed in earlier, shorter simulations: bound ligand retains extensive rotational freedom. Both of these features have significant implications for interpretations of the entropic component of binding. More generally, these simulations test the ability of current molecular simulation methods to produce a reliable and reproducible picture of protein dynamics on the microsecond timescale.
机译:小鼠主要尿蛋白(MUP)已被证明是进行蛋白-配体识别详细研究的有趣试验床。 NMR,量热法和模型研究表明,配体结合的热力学涉及竞争的焓和熵项之间的复杂相互作用。我们在MUP上进行了六个独立的1.2μs分子动力学模拟-在载脂蛋白上重复了三个,在与信息素异丁基甲氧基吡嗪的复合物上重复了三个。我们的发现提供了迄今为止最全面的MUP结构和动力学图,以及它们如何通过配体结合进行调节。确定了氨基酸侧链可以传递有关配体与表面环结合的信息并增加或减少其柔韧性(熵-熵补偿)的机械途径。证实高度疏水性结合腔的去湿作用,结果揭示了配体结合的一个方面,这在更早的,更短的模拟中没有观察到:结合的配体保留了广泛的旋转自由度。这两个特征都对结合的熵成分的解释具有重要意义。更一般而言,这些模拟测试了当前分子模拟方法在微秒级时间尺度上产生可靠且可重现的蛋白质动力学图像的能力。

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