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遗传性出血性、血栓性和血小板疾病常规基因分析的经验。

Experiences in Routine Genetic Analysis of Hereditary Hemorrhagic, Thrombotic, and Platelet Disorders.

机构信息

Institute of Experimental Hematology and Transfusion Medicine, University Hospital Bonn, Medical Faculty, University of Bonn, Bonn, Germany.

Center for Rare Diseases Bonn (ZSEB), University Clinic Bonn, Bonn, Germany.

出版信息

Hamostaseologie. 2022 Oct;42(S 01):S5-S12. doi: 10.1055/a-1726-4793. Epub 2022 Feb 28.

Abstract

Hemostasis is a complex and tightly regulated system that attempts to maintain a homeostatic balance to permit normal blood flow, without bleeding or thrombosis. Hemostasis reflects the subtle balance between procoagulant and anticoagulant factors in the pathways of primary hemostasis, secondary hemostasis, and fibrinolysis. The major components in this interplay include the vascular endothelium, platelets, coagulation factors, and fibrinolytic factors. After vessel wall injury, the subendothelium is exposed to the blood stream, followed by rapid activation of platelets via collagen binding and von Willebrand factor-mediated platelet adhesion to the damaged vessel wall through platelet glycoprotein receptor Ib/IX/V. Activated platelets change their shape, release bioactive molecules from their granules, and expose negatively charged phospholipids on their surface. For a proper function of this process, an adequate number of functional platelets are required. Subsequently, a rapid generation of sufficient amounts of thrombin begins; followed by activation of the coagulation system and its coagulation factors (secondary hemostasis), generating fibrin that consolidates the platelet plug. To maintain equilibrium between coagulation and anticoagulation, the naturally occurring anticoagulants such as protein C, protein S, and antithrombin keep this process in balance. Deficiencies (inherited or acquired) at any level of this fine-tuned system result in pathologic bleedings or increased hypercoagulability states leading to thrombosis. This review will focus on genetic diagnosis of inherited bleeding, thrombotic, and platelet disorders, discussing strengths and limitations of existing diagnostic settings and genetic tools and highlight some important considerations necessary for clinical application.

摘要

止血是一个复杂且受到严格调控的系统,其试图维持体内平衡,从而实现正常的血流而不发生出血或血栓形成。止血反映了初级止血、次级止血和纤维蛋白溶解途径中促凝和抗凝因子之间的微妙平衡。这种相互作用的主要成分包括血管内皮细胞、血小板、凝血因子和纤维蛋白溶解因子。血管壁损伤后,内皮下组织暴露于血流中,随后通过胶原结合迅速激活血小板,通过 von Willebrand 因子介导的血小板黏附到受损的血管壁,从而使血小板糖蛋白受体 Ib/IX/V 发生作用。活化的血小板改变形状,从其颗粒中释放生物活性分子,并暴露其表面带负电荷的磷脂。为了使这个过程正常发挥作用,需要有足够数量的功能正常的血小板。随后,迅速产生足够量的凝血酶开始;随后激活凝血系统及其凝血因子(次级止血),生成纤维蛋白以巩固血小板栓子。为了在凝血和抗凝之间维持平衡,天然存在的抗凝剂(如蛋白 C、蛋白 S 和抗凝血酶)使这个过程保持平衡。在这个精密调控系统的任何一个水平上发生的缺陷(遗传性或获得性)都会导致病理性出血或增加高凝状态,从而导致血栓形成。这篇综述将重点介绍遗传性出血、血栓形成和血小板疾病的基因诊断,讨论现有诊断设置和遗传工具的优势和局限性,并强调临床应用所需的一些重要考虑因素。

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