Characterization of a Megakaryocyte-specific Enhancer of the Key Hemopoietic Transcription Factor GATA1
Overview
Authors
Affiliations
Specification and differentiation of the megakaryocyte and erythroid lineages from a common bipotential progenitor provides a well studied model to dissect binary cell fate decisions. To understand how the distinct megakaryocyte- and erythroid-specific gene programs arise, we have examined the transcriptional regulation of the megakaryocyte erythroid transcription factor GATA1. Hemopoietic-specific mouse (m)GATA1 expression requires the mGata1 enhancer mHS-3.5. Within mHS-3.5, the 3' 179 bp of mHS-3.5 are required for megakaryocyte but not red cell expression. Here, we show mHS-3.5 binds key hemopoietic transcription factors in vivo and is required to maintain histone acetylation at the mGata1 locus in primary megakaryocytes. Analysis of GATA1-LacZ reporter gene expression in transgenic mice shows that a 25-bp element within the 3'-179 bp in mHS-3.5 is critical for megakaryocyte expression. In vitro three DNA binding activities A, B, and C bind to the core of the 25-bp element, and these binding sites are conserved through evolution. Activity A is the zinc finger transcription factor ZBP89 that also binds to other cis elements in the mGata1 locus. Activity B is of particular interest as it is present in primary megakaryocytes but not red cells. Furthermore, mutation analysis in transgenic mice reveals activity B is required for megakaryocyte-specific enhancer function. Bioinformatic analysis shows sequence corresponding to the binding site for activity B is a previously unrecognized motif, present in the cis elements of the Fli1 gene, another important megakaryocyte-specific transcription factor. In summary, we have identified a motif and a DNA binding activity likely to be important in directing a megakaryocyte gene expression program that is distinct from that in red cells.
GATA1 in Normal and Pathologic Megakaryopoiesis and Platelet Development.
Takasaki K, Chou S Adv Exp Med Biol. 2024; 1459:261-287.
PMID: 39017848 DOI: 10.1007/978-3-031-62731-6_12.
Epigenetic regulation of megakaryopoiesis and platelet formation.
Xu B, Ye X, Wen Z, Chen S, Wang J Haematologica. 2024; 109(10):3125-3137.
PMID: 38867584 PMC: 11443398. DOI: 10.3324/haematol.2023.284951.
Ling T, Crispino J, Zingariello M, Martelli F, Migliaccio A Expert Rev Hematol. 2018; 11(3):169-184.
PMID: 29400094 PMC: 6108178. DOI: 10.1080/17474086.2018.1436965.
Hewitt K, Johnson K, Gao X, Keles S, Bresnick E Curr Top Dev Biol. 2016; 118:45-76.
PMID: 27137654 PMC: 8572122. DOI: 10.1016/bs.ctdb.2016.01.002.
Dynamic regulation of Gata1 expression during the maturation of conventional dendritic cells.
Kozma G, Martelli F, Verrucci M, Gutierrez L, Migliaccio G, Sanchez M Exp Hematol. 2010; 38(6):489-503.e1.
PMID: 20303380 PMC: 2872687. DOI: 10.1016/j.exphem.2010.03.006.