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Blood, Vol. 93 No. 9 (May 1), 1999: pp. 2867-2875

Consequences of GATA-1 Deficiency in Megakaryocytes and Platelets

Paresh Vyas, Kenneth Ault, Carl W. Jackson, Stuart H. Orkin, and Ramesh A. Shivdasani

From the Department of Hematology-Oncology and Howard Hughes Medical Institute, Children's Hospital, Boston; the Departments of Adult Oncology and Medicine, Dana-Farber Cancer Institute and Harvard Medical School, Boston, MA; Maine Medical Center Research Institute, South Portland, ME; and the Department of Experimental Hematology, St Jude Children's Research Hospital, Memphis, TN.

In the absence of the hematopoietic transcription factor GATA-1, mice develop thrombocytopenia and an increased number of megakaryocytes characterized by marked ultrastructural abnormalities. These observations establish a critical role for GATA-1 in megakaryopoiesis and raise the question as to how GATA-1 influences megakaryocyte maturation and platelet production. To begin to address this, we have performed a more detailed examination of the megakaryocytes and platelets produced in mice that lack GATA-1 in this lineage. Our analysis demonstrates that compared with their normal counterparts, GATA-1-deficient primary megakaryocytes exhibit significant hyperproliferation in liquid culture, suggesting that the megakaryocytosis seen in animals is nonreactive. Morphologically, these mutant megakaryocytes are small and show evidence of retarded nuclear and cytoplasmic development. A significant proportion of these cells do not undergo endomitosis and express markedly lower levels of mRNA of all megakaryocyte-associated genes tested, including GPIbalpha , GPIbbeta , platelet factor 4 (PF4), c-mpl, and p45 NF-E2. These results are consistent with regulation of a program of megakaryocytic differentiation by GATA-1. Bleeding times are significantly prolonged in mutant animals. GATA-1-deficient platelets show abnormal ultrastructure, reminiscent of the megakaryocytes from which they are derived, and exhibit modest but selective defects in platelet activation in response to thrombin or to the combination of adenosine diphosphate (ADP) and epinephrine. Our findings indicate that GATA-1 serves multiple functions in megakaryocyte development, influencing both cellular growth and maturation.


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K. Freson, K. Devriendt, G. Matthijs, A. Van Hoof, R. De Vos, C. Thys, K. Minner, M. F. Hoylaerts, J. Vermylen, and C. Van Geet
Platelet characteristics in patients with X-linked macrothrombocytopenia because of a novel GATA1 mutation
Blood, July 1, 2001; 98(1): 85 - 92.
[Abstract] [Full Text] [PDF]


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A. M. Vannucchi, L. Bianchi, C. Cellai, F. Paoletti, V. Carrai, A. Calzolari, L. Centurione, R. Lorenzini, C. Carta, E. Alfani, et al.
Accentuated response to phenylhydrazine and erythropoietin in mice genetically impaired for their GATA-1 expression (GATA-1low mice)
Blood, May 15, 2001; 97(10): 3040 - 3050.
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M.-j. Xu, S. Matsuoka, F.-C. Yang, Y. Ebihara, A. Manabe, R. Tanaka, M. Eguchi, S. Asano, T. Nakahata, and K. Tsuji
Evidence for the presence of murine primitive megakarycytopoiesis in the early yolk sac
Blood, April 1, 2001; 97(7): 2016 - 2022.
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Proc. Natl. Acad. Sci. USAHome page
P. Vyas, F. A. Norris, R. Joseph, P. W. Majerus, and S. H. Orkin
Inositol polyphosphate 4-phosphatase type I regulates cell growth downstream of transcription factor GATA-1
PNAS, November 16, 2000; (2000) 250476397.
[Abstract] [Full Text]


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Mol. Cell. Biol.Home page
S. Tsuzuki, M. Towatari, H. Saito, and T. Enver
Potentiation of GATA-2 Activity through Interactions with the Promyelocytic Leukemia Protein (PML) and the t(15;17)-Generated PML-Retinoic Acid Receptor alpha Oncoprotein
Mol. Cell. Biol., September 1, 2000; 20(17): 6276 - 6286.
[Abstract] [Full Text]


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P. Albanese, M. Leboeuf, J.-P. Rosa, and G. Uzan
Identification of a GATA-overlapping sequence within the enhancer of the murine GPIIb promoter that induces transcriptional deregulation in human K562 cells
Blood, August 15, 2000; 96(4): 1348 - 1357.
[Abstract] [Full Text] [PDF]


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BloodHome page
J. G. Drachman, G. P. Jarvik, and M. G. Mehaffey
Autosomal dominant thrombocytopenia: incomplete megakaryocyte differentiation and linkage to human chromosome 10
Blood, July 1, 2000; 96(1): 118 - 125.
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J. Biol. Chem.Home page
E. Moroni, T. Mastrangelo, R. Razzini, L. Cairns, P. Moi, S. Ottolenghi, and B. Giglioni
Regulation of Mouse p45 NF-E2 Transcription by an Erythroid-specific GATA-dependent Intronic Alternative Promoter
J. Biol. Chem., March 31, 2000; 275(14): 10567 - 10576.
[Abstract] [Full Text] [PDF]


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T. Gainsford, H. Nandurkar, D. Metcalf, L. Robb, C. G. Begley, and W. S. Alexander
The residual megakaryocyte and platelet production in c-Mpl-deficient mice is not dependent on the actions of interleukin-6, interleukin-11, or leukemia inhibitory factor
Blood, January 15, 2000; 95(2): 528 - 534.
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JCBHome page
M. Shiraga, A. Ritchie, S. Aidoudi, V. Baron, D. Wilcox, G. White, B. Ybarrondo, G. Murphy, A. Leavitt, and S. Shattil
Primary Megakaryocytes Reveal a Role for Transcription Factor Nf-E2 in Integrin {alpha}iib{beta}3 Signaling
J. Cell Biol., December 27, 1999; 147(7): 1419 - 1430.
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J. Biol. Chem.Home page
A.-H. Lagrue-Lak-Hal, N. Debili, G. Kingbury, C. Lecut, J.-P. Le Couedic, J.-L. Villeval, M. Jandrot-Perrus, and W. Vainchenker
Expression and Function of the Collagen Receptor GPVI during Megakaryocyte Maturation
J. Biol. Chem., April 27, 2001; 276(18): 15316 - 15325.
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Proc. Natl. Acad. Sci. USAHome page
J. Ware, S. Russell, and Z. M. Ruggeri
Generation and rescue of a murine model of platelet dysfunction: The Bernard-Soulier syndrome
PNAS, March 14, 2000; 97(6): 2803 - 2808.
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Proc. Natl. Acad. Sci. USAHome page
P. Vyas, F. A. Norris, R. Joseph, P. W. Majerus, and S. H. Orkin
Inositol polyphosphate 4-phosphatase type I regulates cell growth downstream of transcription factor GATA-1
PNAS, December 5, 2000; 97(25): 13696 - 13701.
[Abstract] [Full Text] [PDF]


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JEMHome page
Y. Kimura, A. Hart, M. Hirashima, C. Wang, D. Holmyard, J. Pittman, X.-L. Pang, C. W. Jackson, and A. Bernstein
Zinc Finger Protein, Hzf, Is Required for Megakaryocyte Development and Hemostasis
J. Exp. Med., April 1, 2002; 195(7): 941 - 952.
[Abstract] [Full Text] [PDF]



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