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Force-Sensitive Autoinhibition of the von Willebrand Factor Is Mediated by Interdomain Interactions

机译:von Willebrand因子的力敏感自动抑制由域间相互作用介导。

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摘要

Von Willebrand factor (VWF) plays a central role in hemostasis. Triggered by shear-stress, it adheres to platelets at sites of vascular injury. Inactivation of VWF has been associated to the shielding of its adhesion sites and proteolytic cleavage. However, the molecular nature of this shielding and its coupling to cleavage under shear-forces in flowing blood remain unknown. In this study, we describe, to our knowledge, a new force-sensory mechanism for VWF-platelet binding, which addresses these questions, based on a combination of molecular dynamics (MD) simulations, atomic force microscopy (AFM), and microfluidic experiments. Our MD simulations demonstrate that the VWF A2 domain targets a specific region at the VWF A1 domain, corresponding to the binding site of the platelet glycoprotein Ibα (GPIbα) receptor, thereby causing its blockage. This implies autoinhibition of the VWF for the binding of platelets mediated by the A1-A2 protein-protein interaction. During force-probe MD simulations, a stretching force dissociated the A1A2 complex, thereby unblocking the GPIbα binding site. Dissociation was found to be coupled to the unfolding of the A2 domain, with dissociation predominantly occurring before exposure of the cleavage site in A2, an observation that is supported by our AFM experiments. This suggests that the A2 domain prevents platelet binding in a force-dependent manner, ensuring that VWF initiates hemostasis before inactivation by proteolytic cleavage. Microfluidic experiments with an A2-deletion VWF mutant resulted in increased platelet binding, corroborating the key autoinhibitory role of the A2 domain within VWF multimers. Overall, autoinhibition of VWF mediated by force-dependent interdomain interactions offers the molecular basis for the shear-sensitive growth of VWF-platelet aggregates, and might be similarly involved in shear-induced VWF self-aggregation and other force-sensing functions in hemostasis.
机译:冯·威兰布兰德因子(VWF)在止血中起着核心作用。在剪切应力的作用下,它粘附在血管损伤部位的血小板上。 VWF的失活与屏蔽其粘附位点和蛋白水解裂解有关。然而,这种屏蔽的分子性质及其在流动血液中的剪切力作用下与裂解的耦合仍然未知。在这项研究中,我们就我们所知,结合了分子动力学(MD)模拟,原子力显微镜(AFM)和微流体实验,描述了一种新的VWF-血小板结合力传感机制,旨在解决这些问题。 。我们的MD模拟表明,VWF A2域靶向VWF A1域的特定区域,该区域对应于血小板糖蛋白Ibα(GPIbα)受体的结合位点,从而导致其受阻。这暗示了VWF对由A1-A2蛋白-蛋白相互作用介导的血小板结合的自动抑制。在力探针MD模拟过程中,拉伸力使AlA2复合物解离,从而解开了GPIbα结合位点。发现解离与A2结构域的解偶联,解离主要发生在暴露于A2中的切割位点之前,这一发现得到了我们的AFM实验的支持。这表明A2结构域以力依赖的方式阻止了血小板结合,从而确保了VWF在通过蛋白水解裂解而失活之前开始止血。使用A2缺失VWF突变体的微流体实验导致血小板结合增加,从而证实了VWF多聚体中A2域的关键自抑制作用。总体而言,由力依赖性域间相互作用介导的VWF自抑制为VWF-血小板聚集体的剪切敏感性生长提供了分子基础,并且可能类似地参与了剪切诱导的VWF自聚集和止血中的其他力感测功能。

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