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A simple two-state protein unfolds mechanically via multiple heterogeneous pathways at single-molecule resolution

机译:一个简单的二态蛋白通过多个异质途径以单分子分辨率机械展开

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A major drive in protein folding has been to develop experimental technologies to resolve the myriads of microscopic pathways and complex mechanisms that purportedly underlie simple two-state folding behaviour. This is key for cross-validating predictions from theory and modern computer simulations. Detecting such complexity experimentally has remained elusive even using methods with improved time, structural or single-molecule resolution. Here, we investigate the mechanical unfolding of cold shock protein B (Csp), a showcase two-state folder, using single-molecule force-spectroscopy. Under controlled-moderate pulling forces, the unfolding of Csp emerges as highly heterogeneous with trajectories ranging from single sweeps to different combinations of multiple long-lived mechanical intermediates that also vary in order of appearance. Steered molecular dynamics simulations closely reproduce the experimental observations, thus matching unfolding patterns with structural events. Our results provide a direct glimpse at the nanoscale complexity underlying two-state folding, and postulate these combined methods as unique tools for dissecting the mechanical unfolding mechanisms of such proteins.
机译:蛋白质折叠的主要动力是开发实验技术,以解决据称构成简单的两态折叠行为基础的众多微观途径和复杂机制。这是对理论和现代计算机仿真中的预测进行交叉验证的关键。即使使用具有改进的时间,结构或单分子分辨率的方法,通过实验检测这种复杂性仍然难以实现。在这里,我们使用单分子力谱研究冷激蛋白B(Csp),展示状态的两个状态的文件夹的机械展开。在受控的适度拉力下,Csp的展开表现出高度异质性,其轨迹从单次扫描到多种长寿命机械中间体的不同组合,其顺序也各不相同。受控分子动力学模拟紧密地再现了实验观察结果,从而使展开模式与结构事件相匹配。我们的结果提供了直接了解处于二态折叠基础的纳米级复杂性的信息,并假定这些组合方法是剖析此类蛋白质机械展开机制的独特工具。

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