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ADP刺激的时间定量磷酸化蛋白质组学揭示了血小板激活和抑制中的新核心节点。

Temporal quantitative phosphoproteomics of ADP stimulation reveals novel central nodes in platelet activation and inhibition.

作者信息

Beck Florian, Geiger Jörg, Gambaryan Stepan, Solari Fiorella A, Dell'Aica Margherita, Loroch Stefan, Mattheij Nadine J, Mindukshev Igor, Pötz Oliver, Jurk Kerstin, Burkhart Julia M, Fufezan Christian, Heemskerk Johan W M, Walter Ulrich, Zahedi René P, Sickmann Albert

机构信息

Leibniz-Institut für Analytische Wissenschaften-ISAS-e.V., Dortmund, Germany.

Interdisciplinary Bank of Biomaterials and Data, Würzburg, Germany.

出版信息

Blood. 2017 Jan 12;129(2):e1-e12. doi: 10.1182/blood-2016-05-714048. Epub 2016 Nov 9.

Abstract

Adenosine diphosphate (ADP) enhances platelet activation by virtually any other stimulant to complete aggregation. It binds specifically to the G-protein-coupled membrane receptors P2Y1 and P2Y12, stimulating intracellular signaling cascades, leading to integrin αIIbβ3 activation, a process antagonized by endothelial prostacyclin. P2Y12 inhibitors are among the most successful antiplatelet drugs, however, show remarkable variability in efficacy. We reasoned whether a more detailed molecular understanding of ADP-induced protein phosphorylation could identify (1) critical hubs in platelet signaling toward aggregation and (2) novel molecular targets for antiplatelet treatment strategies. We applied quantitative temporal phosphoproteomics to study ADP-mediated signaling at unprecedented molecular resolution. Furthermore, to mimic the antagonistic efficacy of endothelial-derived prostacyclin, we determined how Iloprost reverses ADP-mediated signaling events. We provide temporal profiles of 4797 phosphopeptides, 608 of which showed significant regulation. Regulated proteins are implicated in well-known activating functions such as degranulation and cytoskeletal reorganization, but also in less well-understood pathways, involving ubiquitin ligases and GTPase exchange factors/GTPase-activating proteins (GEF/GAP). Our data demonstrate that ADP-triggered phosphorylation occurs predominantly within the first 10 seconds, with many short rather than sustained changes. For a set of phosphorylation sites (eg, PDE3A, CALDAG-GEFI, ENSA), we demonstrate an inverse regulation by ADP and Iloprost, suggesting that these are central modulators of platelet homeostasis. This study demonstrates an extensive spectrum of human platelet protein phosphorylation in response to ADP and Iloprost, which inversely overlap and represent major activating and inhibitory pathways.

摘要

二磷酸腺苷(ADP)可增强几乎任何其他刺激剂引起的血小板活化,以完成聚集。它特异性结合G蛋白偶联膜受体P2Y1和P2Y12,刺激细胞内信号级联反应,导致整合素αIIbβ3活化,这一过程受到内皮前列环素的拮抗。P2Y12抑制剂是最成功的抗血小板药物之一,然而,其疗效存在显著差异。我们推测,对ADP诱导的蛋白质磷酸化进行更详细的分子理解是否能够确定(1)血小板信号传导中朝向聚集的关键枢纽,以及(2)抗血小板治疗策略的新分子靶点。我们应用定量时间磷酸化蛋白质组学以前所未有的分子分辨率研究ADP介导的信号传导。此外,为了模拟内皮源性前列环素的拮抗作用,我们确定了伊洛前列素如何逆转ADP介导的信号事件。我们提供了4797个磷酸肽的时间图谱,其中608个显示出显著调节。受调节的蛋白质涉及脱颗粒和细胞骨架重组等众所周知的激活功能,但也涉及泛素连接酶和鸟苷酸交换因子/鸟苷酸激活蛋白(GEF/GAP)等了解较少的途径。我们的数据表明,ADP触发的磷酸化主要发生在最初10秒内,有许多短暂而非持续的变化。对于一组磷酸化位点(例如,PDE3A、CALDAG-GEFI、ENSA),我们证明了ADP和伊洛前列素的反向调节,表明这些是血小板稳态的核心调节因子。这项研究证明了人类血小板蛋白对ADP和伊洛前列素的广泛磷酸化反应,它们反向重叠,代表主要的激活和抑制途径。

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