[HTML][HTML] The Zebrafish moonshine Gene Encodes Transcriptional Intermediary Factor 1γ, an Essential Regulator of Hematopoiesis

DG Ransom, N Bahary, K Niss, D Traver, C Burns… - PLoS …, 2004 - journals.plos.org
DG Ransom, N Bahary, K Niss, D Traver, C Burns, NS Trede, N Paffett-Lugassy, WJ Saganic…
PLoS biology, 2004journals.plos.org
Hematopoiesis is precisely orchestrated by lineage-specific DNA-binding proteins that
regulate transcription in concert with coactivators and corepressors. Mutations in the
zebrafish moonshine (mon) gene specifically disrupt both embryonic and adult
hematopoiesis, resulting in severe red blood cell aplasia. We report that mon encodes the
zebrafish ortholog of mammalian transcriptional intermediary factor 1γ (TIF1γ)(or TRIM33), a
member of the TIF1 family of coactivators and corepressors. During development …
Hematopoiesis is precisely orchestrated by lineage-specific DNA-binding proteins that regulate transcription in concert with coactivators and corepressors. Mutations in the zebrafish moonshine (mon) gene specifically disrupt both embryonic and adult hematopoiesis, resulting in severe red blood cell aplasia. We report that mon encodes the zebrafish ortholog of mammalian transcriptional intermediary factor 1γ (TIF1γ) (or TRIM33), a member of the TIF1 family of coactivators and corepressors. During development, hematopoietic progenitor cells in mon mutants fail to express normal levels of hematopoietic transcription factors, including gata1, and undergo apoptosis. Three different mon mutant alleles each encode premature stop codons, and enforced expression of wild-type tif1γ mRNA rescues embryonic hematopoiesis in homozygous mon mutants. Surprisingly, a high level of zygotic tif1γ mRNA expression delineates ventral mesoderm during hematopoietic stem cell and progenitor formation prior to gata1 expression. Transplantation studies reveal that tif1γ functions in a cell-autonomous manner during the differentiation of erythroid precursors. Studies in murine erythroid cell lines demonstrate that Tif1γ protein is localized within novel nuclear foci, and expression decreases during erythroid cell maturation. Our results establish a major role for this transcriptional intermediary factor in the differentiation of hematopoietic cells in vertebrates.
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