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本文引用的文献

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Laser-induced endothelial cell activation supports fibrin formation.激光诱导的内皮细胞激活支持纤维蛋白的形成。
Blood. 2010 Nov 25;116(22):4675-83. doi: 10.1182/blood-2010-05-283986. Epub 2010 Jul 30.
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FitSpace explorer: an algorithm to evaluate multidimensional parameter space in fitting kinetic data.FitSpace 探索器:一种用于评估拟合动力学数据的多维参数空间的算法。
Anal Biochem. 2009 Apr 1;387(1):30-41. doi: 10.1016/j.ab.2008.12.025. Epub 2008 Dec 25.
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Global kinetic explorer: a new computer program for dynamic simulation and fitting of kinetic data.全球动力学探索者:用于动力学数据的动态模拟和拟合的新计算机程序。
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Fate of membrane-bound reactants and products during the activation of human prothrombin by prothrombinase.凝血酶原酶激活人凝血酶原过程中膜结合反应物和产物的命运
J Biol Chem. 2008 Oct 31;283(44):30164-73. doi: 10.1074/jbc.M806158200. Epub 2008 Sep 2.
5
Restricted active site docking by enzyme-bound substrate enforces the ordered cleavage of prothrombin by prothrombinase.酶结合底物的活性位点受限对接促使凝血酶原酶对凝血酶原进行有序切割。
J Biol Chem. 2007 Nov 9;282(45):32974-82. doi: 10.1074/jbc.M706529200. Epub 2007 Sep 11.
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Development of a calibrated automated thrombography based thrombin generation test in mouse plasma.基于校准自动血栓形成法的小鼠血浆凝血酶生成试验的开发。
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Exosites in the substrate specificity of blood coagulation reactions.血液凝固反应底物特异性中的外结合位点。
J Thromb Haemost. 2007 Jul;5 Suppl 1(Suppl 1):81-94. doi: 10.1111/j.1538-7836.2007.02496.x.
8
Thrombin-initiated platelet activation in vivo is vWF independent during thrombus formation in a laser injury model.在激光损伤模型中,体内凝血酶引发的血小板活化在血栓形成过程中不依赖于血管性血友病因子。
J Clin Invest. 2007 Apr;117(4):953-60. doi: 10.1172/JCI30537. Epub 2007 Mar 22.
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Par4 is required for platelet thrombus propagation but not fibrin generation in a mouse model of thrombosis.在血栓形成的小鼠模型中,血小板血栓扩展需要Par4,但纤维蛋白生成不需要。
Proc Natl Acad Sci U S A. 2007 Jan 2;104(1):288-92. doi: 10.1073/pnas.0610188104. Epub 2006 Dec 26.
10
Glycoprotein VI-dependent and -independent pathways of thrombus formation in vivo.体内血栓形成的糖蛋白VI依赖性和非依赖性途径。
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活性位点标记的凝血酶原在体外抑制凝血酶原酶,并在体内抑制血栓形成。

Active site-labeled prothrombin inhibits prothrombinase in vitro and thrombosis in vivo.

机构信息

Department of Pathology, Vanderbilt University School of Medicine, Nashville, Tennessee 37232, USA.

出版信息

J Biol Chem. 2011 Jul 1;286(26):23345-56. doi: 10.1074/jbc.M111.230292. Epub 2011 Apr 29.

DOI:10.1074/jbc.M111.230292
PMID:21531712
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3123099/
Abstract

Mouse and human prothrombin (ProT) active site specifically labeled with D-Phe-Pro-Arg-CH(2)Cl (FPR-ProT) inhibited tissue factor-initiated thrombin generation in platelet-rich and platelet-poor mouse and human plasmas. FPR-prethrombin 1 (Pre 1), fragment 1 (F1), fragment 1.2 (F1.2), and FPR-thrombin produced no significant inhibition, demonstrating the requirement for all three ProT domains. Kinetics of inhibition of ProT activation by the inactive ProT(S195A) mutant were compatible with competitive inhibition as an alternate nonproductive substrate, although FPR-ProT deviated from this mechanism, implicating a more complex process. FPR-ProT exhibited ∼10-fold more potent anticoagulant activity compared with ProT(S195A) as a result of conformational changes in the ProT catalytic domain that induce a more proteinase-like conformation upon FPR labeling. Unlike ProT and ProT(S195A), the pathway of FPR-ProT cleavage by prothrombinase was redirected from meizothrombin toward formation of the FPR-prethrombin 2 (Pre 2)·F1.2 inhibitory intermediate. Localization of ProT labeled with Alexa Fluor® 660 tethered through FPR-CH(2)Cl ([AF660]FPR-ProT) during laser-induced thrombus formation in vivo in murine arterioles was examined in real time wide-field and confocal fluorescence microscopy. [AF660]FPR-ProT bound rapidly to the vessel wall at the site of injury, preceding platelet accumulation, and subsequently to the thrombus proximal, but not distal, to the vessel wall. [AF660]FPR-ProT inhibited thrombus growth, whereas [AF660]FPR-Pre 1, lacking the F1 membrane-binding domain did not bind or inhibit. Labeled F1.2 localized similarly to [AF660]FPR-ProT, indicating binding to phosphatidylserine-rich membranes, but did not inhibit thrombosis. The studies provide new insight into the mechanism of ProT activation in vivo and in vitro, and the properties of a unique exosite-directed prothrombinase inhibitor.

摘要

用 D-Phe-Pro-Arg-CH(2)Cl(FPR-ProT)特异性标记的小鼠和人凝血酶原(ProT)的活性位点可抑制富含血小板和血小板减少的小鼠和人血浆中的组织因子引发的凝血酶生成。FPR-凝血酶原 1(Pre 1)、片段 1(F1)、片段 1.2(F1.2)和 FPR-凝血酶没有产生明显的抑制作用,表明需要所有三个 ProT 结构域。无活性 ProT(S195A)突变体对 ProT 激活的抑制动力学与作为替代非生产性底物的竞争性抑制兼容,尽管 FPR-ProT 偏离了这种机制,表明存在更复杂的过程。由于 ProT 催化结构域的构象变化,FPR-ProT 表现出比 ProT(S195A)更强的抗凝活性,这种构象变化在 FPR 标记后诱导更类似于蛋白酶的构象。与 ProT 和 ProT(S195A)不同,FPR-ProT 被凝血酶原酶切割的途径从 meizothrombin 转向形成 FPR-凝血酶原 2(Pre 2)·F1.2 抑制性中间产物。体内激光诱导的鼠动脉微血栓形成过程中,通过 FPR-CH(2)Cl 连接的 Alexa Fluor®660 标记的 ProT([AF660]FPR-ProT)的定位通过实时宽场和共聚焦荧光显微镜进行了研究。[AF660]FPR-ProT 在损伤部位迅速与血管壁结合,早于血小板聚集,随后与血管壁近端结合,但不与血管壁远端结合。[AF660]FPR-ProT 抑制血栓形成,而缺乏 F1 膜结合结构域的[AF660]FPR-Pre 1 则不结合或不抑制。标记的 F1.2 与[AF660]FPR-ProT 定位相似,表明与富含磷脂酰丝氨酸的膜结合,但不抑制血栓形成。这些研究为体内和体外 ProT 激活的机制以及独特的外位定向凝血酶原酶抑制剂的特性提供了新的见解。