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PMID: 12576332 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

RUNX1 and GATA-1 coexpression and cooperation in megakaryocytic differentiation.

Blood ·Vol. 101 ·No. 11 ·2003-06-01 ·Pages 4333-41

Elagib KE, Racke FK, Mogass M, Khetawat R, Delehanty LL, Goldfarb AN

Abstract

Megakaryocytic and erythroid lineages derive from a common bipotential progenitor and share many transcription factors, most prominently factors of the GATA zinc-finger family. Little is known about transcription factors unique to the megakaryocytic lineage that might program divergence from the erythroid pathway. To identify such factors, we used the K562 system in which megakaryocyte lineage commitment is dependent on sustained extracellular regulatory kinase (ERK) activation and is inhibited by stromal cell contact. During megakaryocytic induction in this system, the myeloid transcription factor RUNX1 underwent up-regulation, dependent on ERK signaling and inhibitable by stromal cell contact. Immunostaining of healthy human bone marrow confirmed a strong expression of RUNX1 and its cofactor, core-binding factor beta (CBFbeta), in megakaryocytes and a minimal expression in erythroblasts. In primary human hematopoietic progenitor cultures, RUNX1 and CBFbeta up-regulation preceded megakaryocytic differentiation, and down-regulation of these factors preceded erythroid differentiation. Functional studies showed cooperation among RUNX1, CBFbeta, and GATA-1 in the activation of a megakaryocytic promoter. By contrast, the RUNX1-ETO leukemic fusion protein potently repressed GATA-1-mediated transactivation. These functional interactions correlated with physical interactions observed between GATA-1 and RUNX1 factors. Enforced RUNX1 expression in K562 cells enhanced the induction of the megakaryocytic integrin proteins alphaIIb and alpha2. These results suggest that RUNX1 may participate in the programming of megakaryocytic lineage commitment through functional and physical interactions with GATA transcription factors. By contrast, RUNX1-ETO inhibition of GATA function may constitute a potential mechanism for the blockade of erythroid and megakaryocytic differentiation seen in leukemias with t(8;21).

MeSH Terms
Cell Differentiation/physiology Cell Lineage/physiology Core Binding Factor Alpha 2 Subunit DNA-Binding Proteins/biosynthesis,physiology Erythroid Precursor Cells/cytology,metabolism Erythroid-Specific DNA-Binding Factors GATA1 Transcription Factor Gene Expression Regulation Humans Integrin alpha2/analysis K562 Cells Leukemia/etiology Megakaryocytes/chemistry,cytology Oncogene Proteins, Fusion/physiology Platelet Membrane Glycoprotein IIb/analysis Proto-Oncogene Proteins Transcription Factor AP-2 Transcription Factors/biosynthesis,physiology
Chemicals
Core Binding Factor Alpha 2 Subunit DNA-Binding Proteins Erythroid-Specific DNA-Binding Factors GATA1 Transcription Factor GATA1 protein, human Integrin alpha2 Oncogene Proteins, Fusion Platelet Membrane Glycoprotein IIb Proto-Oncogene Proteins RUNX1 protein, human Transcription Factor AP-2 Transcription Factors
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Elagib Kamaleldin E
Department of Pathology, University of Virginia, Charlottesville, VA 22908-0904, USA.
Racke Frederick K
Mogass Michael
Khetawat Rina
Delehanty Lorrie L
Goldfarb Adam N
Article Info
Journal
Blood
Abbr.
Blood
ISSN
0006-4971
Published
2003-06-01
Epub
2003-00-06
Pages
4333-41
Language
English
Region
United States
NLM ID
7603509
Subset
IM
Grants
NHLBI NIH HHS · K08 HL04017 · United States
NCI NIH HHS · R01 CA1000057 · United States
NCI NIH HHS · R01 CA93735 · United States
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