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高剪切依赖性的膜完整性丧失和血小板黏附缺陷,发生在 GPIbα-细丝蛋白相互作用被破坏后。

High shear-dependent loss of membrane integrity and defective platelet adhesion following disruption of the GPIbα-filamin interaction.

机构信息

Australian Centre for Blood Diseases, Monash University, Alfred Medical Research & Education Precinct, Melbourne, Victoria 3004, Australia.

出版信息

Blood. 2011 Mar 3;117(9):2718-27. doi: 10.1182/blood-2010-07-296194. Epub 2010 Dec 14.

Abstract

Platelets have evolved a highly specialized membrane skeleton that provides stability to the plasma membrane and facilitates adhesion under high shear stress. The cytoskeletal anchorage of glycoprotein (GP) Ibα plays an important role in regulating the membrane skeleton. However, its role in regulating membrane stability remains unknown. To investigate this role, we have developed a new mouse model that expresses wild-type human GPIbα (hGPIbα(WT)), or a mutant form of human GPIbα that has a selective defect in its ability to bind filamin A and anchor to the membrane skeleton (hGPIbα(FW)-Phe568Ala and Trp570Ala substitutions). Our study demonstrates that the link between platelet GPIb and the cytoskeleton does not alter the intrinsic ligand binding function of GPIbα or the ability of the receptor to stimulate integrin α(IIb)β(3)-dependent spreading. However, exposure of hGPIbα(FW) platelets to pathologic shear rate levels (5000 to 40,000 s(-1)) leads to the development of unstable membrane tethers, defective platelet adhesion, and loss of membrane integrity, leading to complete disintegration of the platelet cell body. These outcomes suggest that the GPIbα-filamin A interaction not only regulates the architecture of the membrane skeleton, but also maintains the mechanical stability of the plasma membrane under conditions of high shear.

摘要

血小板进化出了高度特化的膜骨架,为质膜提供稳定性,并在高切变应力下促进黏附。糖蛋白 (GP) Ibα 的细胞骨架锚定在调节质膜骨架中发挥重要作用。然而,其在调节膜稳定性方面的作用仍不清楚。为了研究这一作用,我们开发了一种新的表达野生型人 GPIbα(hGPIbα(WT))或一种突变形式的人 GPIbα的小鼠模型,该突变形式的人 GPIbα在与纤维连接蛋白 A 结合和锚定在膜骨架的能力上存在选择性缺陷(hGPIbα(FW)-Phe568Ala 和 Trp570Ala 取代)。我们的研究表明,血小板 GPIb 与细胞骨架之间的联系不会改变 GPIbα 的固有配体结合功能或受体刺激整合素 α(IIb)β(3)依赖性扩展的能力。然而,将 hGPIbα(FW)血小板暴露于病理切变率水平(5000 至 40,000 s(-1)) 会导致不稳定的膜系留物的形成、血小板黏附缺陷以及膜完整性丧失,从而导致血小板细胞体完全解体。这些结果表明,GPIbα-纤维连接蛋白 A 相互作用不仅调节膜骨架的结构,而且在高切变条件下维持质膜的机械稳定性。

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