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血小板 G 蛋白偶联受体刺激信号的梯度依赖性抑制。

Gradient-dependent inhibition of stimulatory signaling from platelet G protein-coupled receptors.

机构信息

Department of Clinical and Experimental Medicine, Linköping University, Linköping, Sweden

Department of Clinical and Experimental Medicine, Linköping University, Linköping, Sweden.

出版信息

Haematologica. 2019 Jul;104(7):1482-1492. doi: 10.3324/haematol.2018.205815. Epub 2019 Jan 10.

Abstract

As platelet activation is an irreversible and potentially harmful event, platelet stimulatory signaling must be tightly regulated to ensure the filtering-out of inconsequential fluctuations of agonist concentrations in the vascular milieu. Herein, we show that platelet activation via G protein-coupled receptors is gradient-dependent, i.e., determined not only by agonist concentrations but also by how rapidly concentrations change over time. We demonstrate that gradient-dependent inhibition is a common feature of all major platelet stimulatory G protein-coupled receptors, while platelet activation via the non-G protein-coupled receptor glycoprotein VI is strictly concentration-dependent. By systematically characterizing the effects of variations in temporal agonist concentration gradients on different aspects of platelet activation, we demonstrate that gradient-dependent inhibition of protease-activated receptors exhibits different kinetics, with platelet activation occurring at lower agonist gradients for protease-activated receptor 4 than for protease-activated receptor 1, but shares a characteristic bimodal effect distribution, as gradient-dependent inhibition increases over a narrow range of gradients, below which aggregation and granule secretion is effectively shut off. In contrast, the effects of gradient-dependent inhibition on platelet activation via adenosine diphosphate and thromboxane receptors increase incrementally over a large range of gradients. Furthermore, depending on the affected activation pathway, gradient-dependent inhibition results in different degrees of refractoriness to subsequent autologous agonist stimulation. Mechanistically, our study identifies an important role for the cyclic adenosine monophosphate-dependent pathway in gradient-dependent inhibition. Together, our findings suggest that gradient-dependent inhibition may represent a new general mechanism for hemostatic regulation in platelets.

摘要

由于血小板激活是一个不可逆的且潜在有害的事件,因此必须对血小板刺激信号进行严格的调控,以确保过滤掉血管环境中激动剂浓度无关紧要的波动。在此,我们发现,通过 G 蛋白偶联受体的血小板激活是依赖于浓度梯度的,即不仅取决于激动剂浓度,还取决于浓度随时间变化的速度。我们证明,浓度梯度依赖性抑制是所有主要的血小板刺激 G 蛋白偶联受体的共同特征,而通过非 G 蛋白偶联受体糖蛋白 VI 的血小板激活是严格依赖于浓度的。通过系统地描述不同时间的激动剂浓度梯度对血小板激活的不同方面的影响,我们证明,蛋白酶激活受体的浓度梯度依赖性抑制具有不同的动力学特征,与蛋白酶激活受体 1 相比,蛋白酶激活受体 4 的血小板激活发生在较低的激动剂梯度下,但具有特征性的双峰效应分布,因为在较低的梯度范围内,浓度依赖性抑制增加,在此范围内,聚集和颗粒分泌被有效地关闭。相比之下,浓度梯度依赖性抑制对通过二磷酸腺苷和血栓素受体的血小板激活的影响在较大的浓度梯度范围内逐渐增加。此外,根据受影响的激活途径,浓度梯度依赖性抑制导致对随后的自体激动剂刺激的不同程度的耐药性。从机制上讲,我们的研究确定了环磷酸腺苷依赖途径在浓度梯度依赖性抑制中的重要作用。总之,我们的发现表明,浓度梯度依赖性抑制可能代表血小板止血调节的一种新的普遍机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c1dc/6601095/76c74b203e2c/1041482.fig1.jpg

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