The αIIbβ3 integrin and GPIb-V-IX complex identify distinct stages in the maturation of CD34+ cord blood cells to megakaryocytes

被引:62
作者
Lepage, A
Leboeuf, M
Cazenave, JP
de la Salle, C
Lanza, F
Uzan, G
机构
[1] Hop Paul Brousse, INSERM, U506, F-94800 Villejuif, France
[2] Etab Francais Sang Alsace, INSERM, U311, F-67065 Strasbourg, France
关键词
D O I
10.1182/blood.V96.13.4169.h8004169_4169_4177
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Megakaryocytopoiesis is a complex multistep process involving cell division, endoreplication, and maturation and resulting in the release of platelets into the blood circulation. Megakaryocytes (MK) progressively express lineage-restricted proteins, some of which play essential roles in platelet physiology, Glycoprotein (GP)Ib-V-IX (CD42) and GPIIb (CD41) are examples of MK-specific proteins having receptor properties essential for platelet adhesion and aggregation. This study defined the progressive expression of the GPIb-V-IX complex during in vitro MK maturation and compared it to that of GPIIb, an early MK marker. Human cord blood CD34(+) progenitor cells were cultured in the presence of cytokines inducing megakaryocytic differentiation. GPIb-V-IX expression appeared at day 3 of culture and was strictly dependent on MK cytokine induction, whereas GPIIb was already present in immature CD34(+) cells. Analysis by flow cytometry and of the messenger RNA level both showed that GPV appeared 1 day later than GPIb-IX, Microscopy studies confirmed the late appearance of GPV, which was principally localized in the cytoplasm when GPIb-IX was found on the cell surface, suggesting a delayed program of GPV synthesis and trafficking, Cell sorting studies revealed that the CD41(+)GPV(+) population contained 4N and 8N cells at day 7, and was less effective than CD41(+)GPV(-) cells in generating burst-forming units of erythrocytes or MK colonies, This study shows that the subunits of the GPIb-V-IX complex represent unique surface markers of MK maturation. The genes coding for GPIb-IX and GPV are useful tools to study megakaryocytopoiesis and for tissue-specific or conditional expression in mature MK and platelets. (C) 2000 by The American Society of Hematology.
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页码:4169 / 4177
页数:9
相关论文
共 55 条
[1]  
ABE A, 1995, LEUKEMIA, V9, P341
[2]   THE COMPLETE SEQUENCE OF A FULL LENGTH CDNA FOR HUMAN-LIVER GLYCERALDEHYDE-3-PHOSPHATE DEHYDROGENASE - EVIDENCE FOR MULTIPLE MESSENGER-RNA SPECIES [J].
ARCARI, P ;
MARTINELLI, R ;
SALVATORE, F .
NUCLEIC ACIDS RESEARCH, 1984, 12 (23) :9179-9189
[3]   SELECTIVE GROWTH-RESPONSE TO IL-3 OF A HUMAN-LEUKEMIC CELL-LINE WITH MEGAKARYOBLASTIC FEATURES [J].
AVANZI, GC ;
LISTA, P ;
GIOVINAZZO, B ;
MINIERO, R ;
SAGLIO, G ;
BENETTON, G ;
CODA, R ;
CATTORETTI, G ;
PEGORARO, L .
BRITISH JOURNAL OF HAEMATOLOGY, 1988, 69 (03) :359-366
[4]  
Azorsa DO, 1999, THROMB HAEMOSTASIS, V81, P131
[5]   Analysis of the megakaryocyte glycoprotein IX promoter identifies positive and negative regulatory domains and functional GATA and Ets sites [J].
Bastian, LS ;
Yagi, M ;
Chan, C ;
Roth, GJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (31) :18554-18560
[6]   SERUM-FREE MEDIUM ALLOWS THE OPTIMAL-GROWTH OF HUMAN MEGAKARYOCYTE PROGENITORS COMPARED WITH HUMAN PLASMA SUPPLEMENTED CULTURES - ROLE OF TGF-BETA [J].
BERTHIER, R ;
VALIRON, O ;
SCHWEITZER, A ;
MARGUERIE, G .
STEM CELLS, 1993, 11 (02) :120-129
[7]  
BRIDDELL RA, 1989, BLOOD, V74, P145
[8]   THROMBOPOIETIN (C-MPL LIGAND) ACTS SYNERGISTICALLY WITH ERYTHROPOIETIN, STEM-CELL FACTOR, AND INTERLEUKIN-11 TO ENHANCE MURINE MEGAKARYOCYTE COLONY GROWTH AND INCREASES MEGAKARYOCYTE PLOIDY IN-VITRO [J].
BROUDY, VC ;
LIN, NL ;
KAUSHANSKY, K .
BLOOD, 1995, 85 (07) :1719-1726
[9]   SINGLE-STEP METHOD OF RNA ISOLATION BY ACID GUANIDINIUM THIOCYANATE PHENOL CHLOROFORM EXTRACTION [J].
CHOMCZYNSKI, P ;
SACCHI, N .
ANALYTICAL BIOCHEMISTRY, 1987, 162 (01) :156-159
[10]  
DEBILI N, 1990, BLOOD, V76, P368