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InteractionNetworks in Protein Folding via Atomic-ResolutionExperiments and Long-Time-Scale Molecular Dynamics Simulations

机译:相互作用通过原子分辨的蛋白质折叠网络实验和长期尺度的分子动力学模拟

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摘要

The integration of atomic-resolution experimental and computational methods offers the potential for elucidating key aspects of protein folding that are not revealed by either approach alone. Here, we combine equilibrium NMR measurements of thermal unfolding and long molecular dynamics simulations to investigate the folding of gpW, a protein with two-state-like, fast folding dynamics and cooperative equilibrium unfolding behavior. Experiments and simulations expose a remarkably complex pattern of structural changes that occur at the atomic level and from which the detailed network of residue–residue couplings associated with cooperative folding emerges. Such thermodynamic residue–residue couplings appear to be linked to the order of mechanistically significant events that take place during the folding process. Our results on gpW indicate that the methods employed in this study are likely to prove broadly applicable to the fine analysis of folding mechanisms in fast folding proteins.
机译:原子分辨率实验和计算方法的集成为阐明蛋白质折叠的关键方面提供了潜力,而这两种方法都无法单独揭示。在这里,我们结合热展开的平衡NMR测量和长分子动力学模拟来研究gpW的折叠,gpW是一种具有两种状态的蛋白质,具有快速折叠动力学和协同平衡展开行为。实验和模拟揭示了原子级发生的结构变化的非常复杂的模式,并由此形成了与协同折叠相关的残基-残基偶联的详细网络。这种热力学上的残基-残基耦合似乎与折叠过程中发生的机械上重要事件的顺序有关。我们在gpW上的结果表明,本研究中使用的方法可能被证明广泛适用于快速折叠蛋白中折叠机制的精细分析。

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