Department of Physics and Astronomy, Rice University, Houston, Texas 77005, USA.
Thrombosis Division, Section of Cardiovascular Sciences, Department of Medicine, Baylor College of Medicine, Houston, Texas 77005, USA.
Phys Rev E. 2016 Jan;93(1):012410. doi: 10.1103/PhysRevE.93.012410. Epub 2016 Jan 21.
Von Willebrand factor (VWF) multimers are large adhesive proteins that are essential to the initiation of hemostatic plugs at sites of vascular injury. The binding of VWF multimers to platelets, as well as VWF proteolysis, is regulated by shear stresses that alter VWF multimeric conformation. We used single molecule manipulation with atomic force microscopy (AFM) to investigate the effect of high fluid shear stress on soluble dimeric and multimeric forms of VWF. VWF dimers are the smallest unit that polymerizes to construct large VWF multimers. The resistance to mechanical unfolding with or without exposure to shear stress was used to evaluate VWF conformational forms. Our data indicate that, unlike recombinant VWF multimers (RVWF), recombinant dimeric VWF (RDVWF) unfolding force is not altered by high shear stress (100dynes/cm^{2} for 3 min at 37^{∘}C). We conclude that under the shear conditions used (100dynes/cm^{2} for 3 min at 37^{∘}C), VWF dimers do not self-associate into a conformation analogous to that attained by sheared large VWF multimers.
血管性血友病因子(VWF)多聚体是大型黏附蛋白,对于血管损伤部位止血塞的初始形成至关重要。VWF 多聚体与血小板的结合以及 VWF 的蛋白水解受到剪切力的调节,这种剪切力改变了 VWF 多聚体的构象。我们使用原子力显微镜(AFM)的单分子操纵来研究高流体剪切力对可溶性二聚体和多聚体形式的 VWF 的影响。VWF 二聚体是聚合形成大 VWF 多聚体的最小单位。我们利用抵抗机械展开的能力(无论是否暴露于剪切力下)来评估 VWF 的构象形式。我们的数据表明,与重组 VWF 多聚体(RVWF)不同,重组二聚体 VWF(RDVWF)的展开力不受高剪切力(37°C 下 100 达因/平方厘米持续 3 分钟)的影响。我们得出的结论是,在使用的剪切条件下(37°C 下 100 达因/平方厘米持续 3 分钟),VWF 二聚体不会自发组装成类似于受剪切的大 VWF 多聚体所获得的构象。