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PNAS Plus: Heterogeneous and rate-dependent streptavidin–biotin unbinding revealed by high-speed force spectroscopy and atomistic simulations

机译:PNAS Plus:高速力光谱法和原子模拟显示异质性和速率依赖性链霉亲和素-生物素的解结合

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摘要

Receptor–ligand interactions are essential for biological function and their binding strength is commonly explained in terms of static lock-and-key models based on molecular complementarity. However, detailed information on the full unbinding pathway is often lacking due, in part, to the static nature of atomic structures and ensemble averaging inherent to bulk biophysics approaches. Here we combine molecular dynamics and high-speed force spectroscopy on the streptavidin–biotin complex to determine the binding strength and unbinding pathways over the widest dynamic range. Experiment and simulation show excellent agreement at overlapping velocities and provided evidence of the unbinding mechanisms. During unbinding, biotin crosses multiple energy barriers and visits various intermediate states far from the binding pocket, while streptavidin undergoes transient induced fits, all varying with loading rate. This multistate process slows down the transition to the unbound state and favors rebinding, thus explaining the long lifetime of the complex. We provide an atomistic, dynamic picture of the unbinding process, replacing a simple two-state picture with one that involves many routes to the lock and rate-dependent induced-fit motions for intermediates, which might be relevant for other receptor–ligand bonds.
机译:受体-配体相互作用对于生物学功能至关重要,它们的结合强度通常根据基于分子互补性的静态锁钥模型来解释。然而,由于原子结构的静态性质和整体生物物理学方法固有的整体平均,通常缺乏关于完全解链途径的详细信息。在这里,我们结合了链霉亲和素-生物素复合物的分子动力学和高速力谱分析,以确定在最宽的动态范围内的结合强度和解结合途径。实验和仿真结果表明,在重叠速度方面具有极好的一致性,并提供了解绑机理的证据。在解除结合过程中,生物素会跨越多个能垒,并到达远离结合袋的各种中间状态,而链霉亲和素则经历短暂的诱导拟合,所有这些都随加载速率而变化。这种多状态过程减慢了向未绑定状态的过渡,并有利于重新绑定,因此可以说明复合物的使用寿命长。我们提供了解除结合过程的原子动力学图,用一个简单的二态图代替了一个二态图,该图涉及到中间体的许多锁定途径和速率依赖性诱导配合运动,这可能与其他受体-配体键有关。

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