The growing complexity of platelet aggregation

被引:523
作者
Jackson, Shaun P. [1 ]
机构
[1] Monash Univ, Australian Ctr Blood Dis, Melbourne, Vic 3004, Australia
关键词
D O I
10.1182/blood-2006-12-027698
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Platelet aggregation, the process by which platelets adhere to each other at sites of vascular injury, has long been recognized as critical for hemostatic plug formation and thrombosis. Until relatively recently, platelet aggregation was considered a straightforward process involving the noncovalent bridging of integrin 011103 receptors on the platelet surface by the dimeric adhesive protein fibrinogen. However, with recent technical advances enabling real-time analysis of platelet aggregation in vivo, it has become apparent that this process is much more complex and dynamic than previously anticipated. Over the last decade, it has become clear that platelet aggregation represents a multistep adhesion process involving distinct receptors and adhesive ligands, with the contribution of individual receptor-ligand interactions to the aggregation process dependent on the prevailing blood flow conditions. It now appears that at least 3 distinct mechanisms can initiate platelet aggregation, with each of these mechanisms operating over a specific shear range in vivo. The identification of shear-dependent mechanisms of platelet aggregation has raised the possibility that vascular-bed-specific inhibitors of platelet aggregation may be developed in the future that are safer and more effective than existing antiplatelet agents.
引用
收藏
页码:5087 / 5095
页数:9
相关论文
共 100 条
[1]   Lipid raft adhesion receptors and Syk regulate selectin-dependent rolling under flow conditions [J].
Abbal, Claire ;
Lambelet, Martine ;
Bertaggia, Debora ;
Gerbex, Carole ;
Martinez, Manuel ;
Arcaro, Alexandre ;
Schapira, Marc ;
Spertini, Olivier .
BLOOD, 2006, 108 (10) :3352-3359
[2]   P2Y12 regulates platelet adhesion/activation, thrombus growth, and thrombus stability in injured arteries [J].
André, P ;
Delaney, SM ;
LaRocca, T ;
Vincent, D ;
DeGuzman, F ;
Jurek, M ;
Koller, B ;
Phillips, DR ;
Conley, PB .
JOURNAL OF CLINICAL INVESTIGATION, 2003, 112 (03) :398-406
[3]   CD40L stabilizes arterial thrombi by a β3 integrin-dependent mechanism [J].
André, P ;
Prasad, KSS ;
Denis, CV ;
He, M ;
Papalia, JM ;
Hynes, RO ;
Phillips, DR ;
Wagner, DD .
NATURE MEDICINE, 2002, 8 (03) :247-252
[4]   Deficiency or inhibition of Gas6 causes platelet dysfunction and protects mice against thrombosis [J].
Angelillo-Scherrer, A ;
de Frutos, PG ;
Aparicio, C ;
Melis, E ;
Savi, P ;
Lupu, F ;
Arnout, J ;
Dewerchin, M ;
Hoylaerts, MF ;
Herbert, M ;
Collen, D ;
Dahlbäck, B ;
Carmeliet, P .
NATURE MEDICINE, 2001, 7 (02) :215-221
[5]  
[Anonymous], MED NEWS
[6]   PTP-1B is an essential positive regulator of platelet integrin signaling [J].
Arias-Salgado, EG ;
Haj, F ;
Dubois, C ;
Moran, B ;
Kasirer-Friede, A ;
Furie, BC ;
Furie, B ;
Neel, BG ;
Shattil, SJ .
JOURNAL OF CELL BIOLOGY, 2005, 170 (05) :837-845
[7]   F11-receptor (F11R/JAM) mediates platelet adhesion to endothelial cells: Role in inflammatory thrombosis [J].
Babinska, A ;
Kedees, MH ;
Athar, H ;
Ahmed, T ;
Batuman, C ;
Ehrlich, YH ;
Hussain, MM ;
Kornecki, E .
THROMBOSIS AND HAEMOSTASIS, 2002, 88 (05) :843-850
[8]  
BASTIDA E, 1987, BLOOD, V70, P1437
[9]  
BAUMGARTNER HR, 1977, THROMB HAEMOSTASIS, V37, P1
[10]   ADHESION OF PLATELETS TO SUBENDOTHELIUM [J].
BAUMGARTNER, HR ;
HAUDENSCHILD, C .
ANNALS OF THE NEW YORK ACADEMY OF SCIENCES, 1972, 201 (OCT27) :22-+