Conformational activation and inhibition of von Willebrand factor by targeting its autoinhibitory module

血管性血友病因子 位阻效应 化学 结合位点 生物物理学 血浆蛋白结合 生物化学 立体化学 生物 免疫学 血小板
作者
Nicholas A. Arce,Zoe Markham‐Lee,Qian Liang,Shabir Najmudin,Emily R. Legan,Gabrielle Dean,Ally J. Su,Moriah S. Wilson,Robert F. Sidonio,Pete Lollar,Jonas Emsley,Renhao Li
出处
期刊:Blood [Elsevier BV]
卷期号:143 (19): 1992-2004 被引量:4
标识
DOI:10.1182/blood.2023022038
摘要

Abstract Activation of von Willebrand factor (VWF) is a tightly controlled process governed primarily by local elements around its A1 domain. Recent studies suggest that the O-glycosylated sequences flanking the A1 domain constitute a discontinuous and force-sensitive autoinhibitory module (AIM), although its extent and conformation remains controversial. Here, we used a targeted screening strategy to identify 2 groups of nanobodies. One group, represented by clone 6D12, is conformation insensitive and binds the N-terminal AIM (NAIM) sequence that is distal from A1; 6D12 activates human VWF and induces aggregation of platelet-rich plasma at submicromolar concentrations. The other group, represented by clones Nd4 and Nd6, is conformation sensitive and targets the C-terminal AIM (CAIM). Nd4 and Nd6 inhibit ristocetin-induced platelet aggregation and reduce VWF-mediated platelet adhesion under flow. A crystal structure of Nd6 in complex with AIM-A1 shows a novel conformation of both CAIM and NAIM that are primed to interact, providing a model of steric hindrance stabilized by the AIM as the mechanism for regulating GPIbα binding to VWF. Hydrogen-deuterium exchange mass spectrometry analysis shows that binding of 6D12 induces the exposure of the GPIbα-binding site in the A1 domain, but binding of inhibitory nanobodies reduces it. Overall, these results suggest that the distal portion of NAIM is involved in specific interactions with CAIM, and binding of nanobodies to the AIM could either disrupt its conformation to activate VWF or stabilize its conformation to upkeep VWF autoinhibition. These reported nanobodies could facilitate future studies of VWF functions and related pathologies.
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