TY - JOUR
T1 - Differentiation lineage-specific expression of human heat shock transcription factor 2
AU - Pirkkala, L
AU - Alastalo, T P
AU - Nykanen, P
AU - Seppa, L
AU - Sistonen, L
PY - 1999/6
Y1 - 1999/6
N2 - Differentiation of multipotential hematopoietic cells into lineage-committed precursors involves the selection and maintenance of appropriate programs of gene expression, regulated by specific transcription factors. Using human K562 erythroleukemia cells capable of differentiating along erythroid and megakaryocytic lineages, we explore the differentiation-related role of heat shock transcription factor 2 (HSF2), which belongs to a family of transcription factors generally known to regulate heat shock gene expression. We demonstrate that enhanced HSF2 expression and the acquisition of HSF2 DNA binding activity are strictly specific for erythroid characteristics of K562 cells. Our results reveal a multistep regulatory process of HSF2 gene expression. In K562 cells undergoing hemin-mediated erythroid differentiation, the increase in HSF2 protein levels is preceded by transcriptional induction of the HSF2 gene, accompanied by increased HSF2 mRNA stability. In contrast, during megakaryocytic differentiation induced by the phorbol ester TPA, expression of HSF2 is rapidly down-regulated, leading to a complete loss of the HSF2 protein. These results indicate that the determination of HSF2 expression occurs at the early stages of lineage commitment. Taken together, our data suggest that HSF2 could function as a lineage-restricted transcription factor during differentiation of K562 cells along either the erythroid or the megakaryocytic pathway.
AB - Differentiation of multipotential hematopoietic cells into lineage-committed precursors involves the selection and maintenance of appropriate programs of gene expression, regulated by specific transcription factors. Using human K562 erythroleukemia cells capable of differentiating along erythroid and megakaryocytic lineages, we explore the differentiation-related role of heat shock transcription factor 2 (HSF2), which belongs to a family of transcription factors generally known to regulate heat shock gene expression. We demonstrate that enhanced HSF2 expression and the acquisition of HSF2 DNA binding activity are strictly specific for erythroid characteristics of K562 cells. Our results reveal a multistep regulatory process of HSF2 gene expression. In K562 cells undergoing hemin-mediated erythroid differentiation, the increase in HSF2 protein levels is preceded by transcriptional induction of the HSF2 gene, accompanied by increased HSF2 mRNA stability. In contrast, during megakaryocytic differentiation induced by the phorbol ester TPA, expression of HSF2 is rapidly down-regulated, leading to a complete loss of the HSF2 protein. These results indicate that the determination of HSF2 expression occurs at the early stages of lineage commitment. Taken together, our data suggest that HSF2 could function as a lineage-restricted transcription factor during differentiation of K562 cells along either the erythroid or the megakaryocytic pathway.
KW - Cell Differentiation
KW - Cell Lineage
KW - Erythropoiesis
KW - Gene Expression Regulation, Developmental
KW - Heat-Shock Proteins/biosynthesis
KW - Hematopoietic Stem Cells/cytology
KW - Hemin/pharmacology
KW - Humans
KW - Leukemia, Erythroblastic, Acute
KW - Megakaryocytes/cytology
KW - Promoter Regions, Genetic
KW - RNA Processing, Post-Transcriptional
KW - Tetradecanoylphorbol Acetate/pharmacology
KW - Transcription Factors/biosynthesis
KW - Transcription, Genetic
KW - Tumor Cells, Cultured
U2 - 10.1096/fasebj.13.9.1089
DO - 10.1096/fasebj.13.9.1089
M3 - Article
C2 - 10336892
SN - 0892-6638
VL - 13
SP - 1089
EP - 1098
JO - FASEB Journal
JF - FASEB Journal
IS - 9
ER -