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Probing static disorder in Arrhenius kinetics by single-molecule force spectroscopy

机译:用单分子力谱法探究Arrhenius动力学中的静态异常

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摘要

The widely used Arrhenius equation describes the kinetics of simple two-state reactions, with the implicit assumption of a single transition state with a well-defined activation energy barrier ΔE, as the rate-limiting step. However, it has become increasingly clear that the saddle point of the free-energy surface in most reactions is populated by ensembles of conformations, leading to nonexponential kinetics. Here we present a theory that generalizes the Arrhenius equation to include static disorder of conformational degrees of freedom as a function of an external perturbation to fully account for a diverse set of transition states. The effect of a perturbation on static disorder is best examined at the single-molecule level. Here we use force-clamp spectroscopy to study the nonexponential kinetics of single ubiquitin proteins unfolding under force. We find that the measured variance in ΔE shows both force-dependent and independent components, where the force-dependent component scales with F2, in excellent agreement with our theory. Our study illustrates a novel adaptation of the classical Arrhenius equation that accounts for the microscopic origins of nonexponential kinetics, which are essential in understanding the rapidly growing body of single-molecule data.
机译:广泛使用的Arrhenius方程描述了简单的两态反应的动力学,并隐含了具有明确定义的活化能垒ΔE的单一跃迁状态作为速率限制步骤。但是,越来越清楚的是,在大多数反应中,自由能表面的鞍点都由一系列构象组成,从而导致非指数动力学。在这里,我们提出了一种理论,该理论将Arrhenius方程泛化为包括构象自由度的静态无序度,作为外部扰动的函数,以充分说明一组不同的过渡态。最好在单分子水平上检查摄动对静态障碍的影响。在这里,我们使用力夹光谱法研究单个泛素蛋白在力作用下展开的非指数动力学。我们发现测得的ΔE方差既显示了力相关分量又显示了独立分量,其中力相关分量随F 2 缩放,与我们的理论非常吻合。我们的研究说明了经典Arrhenius方程的一种新颖适应方法,该方程解释了非指数动力学的微观起源,这对于理解快速增长的单分子数据非常重要。

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