Sims P J, Wiedmer T
Blood. 1986 Aug;68(2):556-61.
Gel-filtered blood platelets exposed to complement proteins C5b-9 have previously been shown to undergo a reversible depolarization of membrane potential (Em) in the absence of lytic plasma membrane rupture. In this paper, we examine the mechanism by which C5b-9 damaged platelets restore their basal electrochemical state, despite increased ion conductance due to membrane insertion of these cytolytic serum proteins. Repolarization of Em after formation of the C5b-9 membrane pore is shown to be accompanied by a Ca++-dependent vesiculation of the platelet surface, which results in the release of these proteins from the plasma membrane and a restoration of the membrane's functional integrity. This exocytotic elimination of C5b-9 complexes from the plasma membrane is accompanied by a ouabain-inhibitable repolarization of Em, which presumably reflects restoration of transmembrane cation gradients by the plasma membrane Na/K ATPase. The role of external Ca++ in the platelet's response to membrane-insertion of the C5b-9 proteins is discussed both in the context of the known cellular effects of this ion and in the context of recent observations suggesting sublytic changes in platelet function after complement-mediated plasma membrane damage.
先前已表明,暴露于补体蛋白C5b - 9的凝胶过滤血小板在没有溶细胞性质膜破裂的情况下会经历膜电位(Em)的可逆去极化。在本文中,我们研究了C5b - 9损伤的血小板恢复其基础电化学状态的机制,尽管由于这些溶细胞性血清蛋白插入膜中导致离子电导增加。C5b - 9膜孔形成后Em的复极化显示伴随着血小板表面的Ca++依赖性囊泡化,这导致这些蛋白从质膜释放并恢复膜的功能完整性。质膜中C5b - 9复合物的这种胞吐消除伴随着Em的哇巴因抑制性复极化,这可能反映了质膜Na/K ATP酶对跨膜阳离子梯度的恢复。本文在该离子已知的细胞效应背景下以及在最近观察结果表明补体介导的质膜损伤后血小板功能发生亚溶细胞性变化的背景下,讨论了细胞外Ca++在血小板对C5b - 9蛋白插入膜的反应中的作用。