流体剪切应力在调节VWF结构、功能和相关血液疾病中的作用

IF 1 4区 医学 Q4 BIOPHYSICS
Biorheology Pub Date : 2015-11-19 DOI:10.3233/BIR-15061
Shobhit Gogia, S. Neelamegham
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引用次数: 78

摘要

血管性血友病因子(VWF)是血液中最大的糖蛋白。它通过与血小板和内皮细胞表面受体、其他血液蛋白和细胞外基质成分的结合相互作用,在原发性止血中起着至关重要的作用。这种蛋白质被发现为一系列重复单元,它们是二硫键结合形成多聚体结构的。一旦进入血液,蛋白质多聚体的分布受到流体剪切应力的动态调节,流体剪切应力具有两种相反的作用:它促进多个VWF单元的聚集或自结合,同时通过促进各种蛋白酶对蛋白质的力依赖性切割来减少多聚体的大小,最明显的是ADAMTS13(一种具有血栓反应蛋白型重复序列的崩解素和金属蛋白酶,motif 1 type 13)。除了这些影响外,流体剪切还控制着VWF的溶液和底物固定结构,血小板与底物之间的接触性质,以及GpIbα-VWF键的生物力学。这些特征共同调节着正常止血、动脉和静脉血栓形成、血管性血友病、血栓性血小板减少性紫癜和获得性血管性血友病等不同的生理和病理过程。本文讨论了目前关于VWF结构-功能关系的知识,重点是水动力剪切的影响,包括在选定条件下估计这些力的性质和大小的快速方法。这表明,考虑到VWF的物理尺寸和在这些不同几何形状下施加的机械力,许多研究人员使用溶液和基材剪切装置所做的观察可以协调一致。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of fluid shear stress in regulating VWF structure, function and related blood disorders
Von Willebrand factor (VWF) is the largest glycoprotein in blood. It plays a crucial role in primary hemostasis via its binding interaction with platelet and endothelial cell surface receptors, other blood proteins and extra-cellular matrix components. This protein is found as a series of repeat units that are disulfide bonded to form multimeric structures. Once in blood, the protein multimer distribution is dynamically regulated by fluid shear stress which has two opposing effects: it promotes the aggregation or self-association of multiple VWF units, and it simultaneously reduces multimer size by facilitating the force-dependent cleavage of the protein by various proteases, most notably ADAMTS13 (a disintegrin and metalloprotease with thrombospondin type repeats, motif 1 type 13). In addition to these effects, fluid shear also controls the solution and substrate-immobilized structure of VWF, the nature of contact between blood platelets and substrates, and the biomechanics of the GpIbα–VWF bond. These features together regulate different physiological and pathological processes including normal hemostasis, arterial and venous thrombosis, von Willebrand disease, thrombotic thrombocytopenic purpura and acquired von Willebrand syndrome. This article discusses current knowledge of VWF structure–function relationships with emphasis on the effects of hydrodynamic shear, including rapid methods to estimate the nature and magnitude of these forces in selected conditions. It shows that observations made by many investigators using solution and substrate-based shearing devices can be reconciled upon considering the physical size of VWF and the applied mechanical force in these different geometries.
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来源期刊
Biorheology
Biorheology 医学-工程:生物医学
CiteScore
2.00
自引率
0.00%
发文量
5
审稿时长
>12 weeks
期刊介绍: Biorheology is an international interdisciplinary journal that publishes research on the deformation and flow properties of biological systems or materials. It is the aim of the editors and publishers of Biorheology to bring together contributions from those working in various fields of biorheological research from all over the world. A diverse editorial board with broad international representation provides guidance and expertise in wide-ranging applications of rheological methods to biological systems and materials. The scope of papers solicited by Biorheology extends to systems at different levels of organization that have never been studied before, or, if studied previously, have either never been analyzed in terms of their rheological properties or have not been studied from the point of view of the rheological matching between their structural and functional properties. This biorheological approach applies in particular to molecular studies where changes of physical properties and conformation are investigated without reference to how the process actually takes place, how the forces generated are matched to the properties of the structures and environment concerned, proper time scales, or what structures or strength of structures are required.
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