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首页> 外文期刊>Thrombosis Research: An International Journal on Vascular Obstruction, Hemorrhage and Hemostasis >Flow-based measurements of von Willebrand factor (VWF) function: binding to collagen and platelet adhesion under physiological shear rate.
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Flow-based measurements of von Willebrand factor (VWF) function: binding to collagen and platelet adhesion under physiological shear rate.

机译:von Willebrand因子(VWF)功能的基于流量的测量:在生理剪切速率下与胶原蛋白和血小板粘附的结合。

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INTRODUCTION: VWF circulates in plasma as a series of heterogeneous multimers, mediating platelet tethering, translocation and finally adhesion to areas of injured endothelium under physiological high arterial blood flow. VWF-platelet binding requires conformational changes in VWF, which are induced by immobilization and shear. Because of unavailability of a simple flow-based measurement system, VWF activity assays are generally performed under static conditions. We describe an easily reproducible in vitro flow-chamber model using commercially available flow devices to examine VWF-collagen binding and VWF-mediated platelet adhesion under physiological flow conditions. METHODS: The collagen surface of the flow-chamber was analyzed by atomic force microscopy. Collagen-bound VWF was characterized by multimer analysis and multi labelling immunofluorescence detection of exposed GPIb binding domains. Platelet adhesion was captured by time-lapse microscopy. RESULTS: The described flow-chamber system facilitates multimer analysis of collagen-bound VWF, whereas all VWF multimers bound to collagen under physiological low to high shear rates. Multi labelling immunofluorescence detection exhibited exposed GPIb binding domains co-localized with VWF molecules. VWF-dependent platelet adhesion using time-lapse microscopy showed values comparable to experiments done with whole blood, and platelet adhesion was dependent on the VWF concentration. CONCLUSIONS: The established flow-chamber model represents an easy-to-set-up and customized tool for the characterization of VWF-binding to collagen as well as the determination of VWF-dependent platelet adhesion under defined flow conditions in real-time.
机译:简介:VWF在血浆中以一系列异质多聚体的形式循环,介导血小板束缚,易位,并最终在生理性高动脉血流下粘附至受损的内皮区域。 VWF-血小板结合需要VWF的构象变化,这是由固定和剪切诱导的。由于没有简单的基于流量的测量系统,因此VWF活性测定通常在静态条件下进行。我们描述了一种易于重现的体外流腔模型,使用可商购的流动装置来检查VWF-胶原蛋白结合和生理流动条件下VWF介导的血小板粘附。方法:通过原子力显微镜分析流腔的胶原表面。通过多聚体分析和暴露的GPIb结合域的多标记免疫荧光检测来表征胶原结合的VWF。通过延时显微镜捕获血小板粘附。结果:所描述的流腔系统有助于胶原结合的VWF的多聚体分析,而所有VWF多聚体在低至高剪切速率下均与胶原结合。多标记免疫荧光检测显示与VWF分子共定位的暴露GPIb结合域。使用延时显微镜的VWF依赖性血小板粘附性显示的值可与全血实验相媲美,并且血小板粘附性取决于VWF浓度。结论:建立的流腔模型代表了易于设置和定制的工具,用于表征VWF与胶原蛋白的结合以及在确定的流动条件下实时测定VWF依赖性血小板粘附。

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