Weisel J W
Department of Cell and Developmental Biology, University of Pennsylvania School of Medicine, Philadelphia, PA 19104-6058, USA.
J Thromb Haemost. 2007 Jul;5 Suppl 1:116-24. doi: 10.1111/j.1538-7836.2007.02504.x.
Information on the structural origins of clot stability is necessary for understanding the functions and pathology of fibrin clots and thrombi, but is also important for interpreting correctly the results of a variety of clinical diagnostic systems and technologies used daily to assess the hemostatic potential in patients. Fibrin polymerizes to make clots with a great diversity of structural, biological, physical and chemical properties, depending on the conditions of formation, and correlations have been established between these clot properties and many pathophysiological conditions. Clot stability refers to both viscoelastic properties, which are important because the clot essentially fulfills mechanical functions, and fibrinolytic properties, because the clot must be efficiently dissolved in a timely manner. The structure of the fibrin clot, which can be characterized in terms of a branched network, directly affects the clot's fibrinolytic and viscoelastic properties, which are remarkable and unique among polymers. Basic mechanisms underlying both the mechanical and fibrinolytic characteristics of fibrin are described. Some of the known correlations between clot structure and mechanical and fibrinolytic properties are summarized.
了解血凝块稳定性的结构起源信息,对于理解纤维蛋白凝块和血栓的功能及病理学至关重要,同时对于正确解读日常用于评估患者止血潜能的各种临床诊断系统和技术的结果也很重要。纤维蛋白聚合形成具有多种多样结构、生物学、物理和化学性质的凝块,这取决于形成条件,并且已经在这些凝块性质与许多病理生理状况之间建立了相关性。凝块稳定性既指粘弹性性质,这很重要是因为凝块本质上履行机械功能,也指纤维蛋白溶解性质,因为凝块必须及时有效地溶解。纤维蛋白凝块的结构可以用分支网络来表征,它直接影响凝块的纤维蛋白溶解和粘弹性性质,这些性质在聚合物中是显著且独特的。描述了纤维蛋白机械和纤维蛋白溶解特性的基本机制。总结了凝块结构与机械和纤维蛋白溶解性质之间一些已知的相关性。