Platelet proteomics

被引:48
作者
Maguire, PB [1 ]
Fitzgerald, DJ [1 ]
机构
[1] Royal Coll Surgeons Ireland, Dept Clin Pharmacol, Dublin 2, Ireland
关键词
phosphoproteome; platelets; proteomics; secreteome;
D O I
10.1046/j.1538-7836.2003.00311.x
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
As anucleate cell particles, platelets do not lend themselves to analysis by traditional cell and molecular biology techniques. Moreover, while valuable information may be gleaned from studies of messenger RNA in platelets, the rapid events in platelets are not governed by or dependent on alterations in gene expression. In contrast, proteomics, the study of the protein complement of a genome, will have a major impact on platelet biology. It offers the opportunity to comprehensively describe the proteins involved in discrete elements of platelet function, from the subsecond events following platelet activation and adhesion through to platelet aggregation and granule secretion. As the function of every protein is understood and as the mechanisms that regulate protein modifications are unravelled, we will discover a wealth of proteins that are themselves potential therapeutic agents or novel targets for the development of diagnostics and drugs. Here we review the current applications of proteomics to platelet research. We briefly describe various proteomic approaches to unravel platelet biology, including the documentation of platelet proteins, the investigation of thrombin-activated phosphotyrosine signaling networks and the analysis of the proteins that are secreted upon platelet activation. Proteomics is a young field and there are only a handful of published examples applying proteomics to platelet research. This number will increase over the next few years, as advances in analytical methods allow a more functional analysis of the platelet proteome.
引用
收藏
页码:1593 / 1601
页数:9
相关论文
共 56 条
[21]   HUMAN BLEED PLATELET PROTEIN MAP ESTABLISHED BY 2-DIMENSIONAL POLYACRYLAMIDE-GEL ELECTROPHORESIS [J].
GRAVEL, P ;
SANCHEZ, JC ;
WALZER, C ;
GOLAZ, O ;
HOCHSTRASSER, DF ;
BALANT, LP ;
HUGHES, GJ ;
GARCIASEVILLA, J ;
GUIMON, J .
ELECTROPHORESIS, 1995, 16 (07) :1152-1159
[22]   Advances in proteome analysis by mass spectrometry [J].
Griffin, TJ ;
Aebersold, R .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (49) :45497-45500
[23]  
HANASH SM, 1986, AM J HUM GENET, V38, P352
[24]  
Hochstrasser DF, 2002, PROTEOMICS, V2, P807, DOI 10.1002/1615-9861(200207)2:7<807::AID-PROT807>3.0.CO
[25]  
2-4
[26]   CHARACTERIZATION OF HUMAN-PLATELET BASIC-PROTEIN, A PRECURSOR FORM OF LOW-AFFINITY PLATELET FACTOR-IV AND BETA-THROMBOGLOBULIN [J].
HOLT, JC ;
HARRIS, ME ;
HOLT, AM ;
LANGE, E ;
HENSCHEN, A ;
NIEWIAROWSKI, S .
BIOCHEMISTRY, 1986, 25 (08) :1988-1996
[27]   PROTEIN SEQUENCING BY TANDEM MASS-SPECTROMETRY [J].
HUNT, DF ;
YATES, JR ;
SHABANOWITZ, J ;
WINSTON, S ;
HAUER, CR .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1986, 83 (17) :6233-6237
[28]   Identification of phosphorylated proteins from thrombin-activated human platelets isolated by two-dimensional gel electrophoresis by electrospray ionization tandem mass spectrometry (ESI-MS/MS) and liquid chromatography electrospray ionization mass spectrometry (LC-ESI-MS) [J].
Immler, D ;
Gremm, D ;
Kirsch, D ;
Spengler, B ;
Presek, P ;
Meyer, HE .
ELECTROPHORESIS, 1998, 19 (06) :1015-1023
[29]   Tyrosine phosphorylation of α-actinin in activated platelets [J].
Izaguirre, G ;
Aguirre, L ;
Ji, P ;
Aneskievich, B ;
Haimovich, B .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (52) :37012-37020
[30]  
Jackson SP, 1996, THROMB HAEMOSTASIS, V76, P640