RRC ID 90089
Author Zhang J, Xin Y, Cheng L, Xing Y, Ouyang Y, Zhang M, Chen Y, Feng R, Qiu X, Xu B, Cheng Y, Li C, Herz HM, Weiss MJ, Xu P.
Title The H3K4 methyltransferase KMT2D is an essential cofactor for GATA1 at erythroid gene enhancers.
Journal Nat Commun
Abstract Gene expression during cellular differentiation is coordinated by combinatorial interactions between transcription factors (TFs) and cofactors. Although the TF GATA1 coordinates gene transcription in hematopoiesis, the specific cofactors required for GATA1-driven gene expression are incompletely defined. We identify the H3K4 methyltransferase KMT2D, as a cofactor of GATA1 in erythropoiesis. Loss of KMT2D in human erythroid precursors causes developmental arrest with impaired expression of numerous erythroid genes. Mechanistically, KMT2D colocalizes with GATA1 on more than one thousand erythroid enhancers, and such co-occupancy is associated with stronger transcriptional activity than occupancy by GATA1 alone. Acute depletion of KMT2D in erythroid precursors causes rapid reductions of H3K4me1 and H3K27ac on a subset of GATA1-bound enhancers and impairs their target gene expression. Moreover, acute depletion of GATA1 or KMT2D individually causes downregulation of overlapping gene sets. Our findings demonstrate how a lineage-specific TF cooperates with a ubiquitous epigenetic regulator to drive lineage-specific gene expression.
Volume 17(1)
Published 2026-7-6
DOI 10.1038/s41467-026-75253-9
PII 10.1038/s41467-026-75253-9
PMID 42409830
PMC PMC13473644
MeSH Animals Enhancer Elements, Genetic* Erythroid Cells / metabolism Erythropoiesis* / genetics GATA1 Transcription Factor* / genetics GATA1 Transcription Factor* / metabolism Histone-Lysine N-Methyltransferase* / genetics Histone-Lysine N-Methyltransferase* / metabolism Histones / metabolism Humans
Resource
Human and Animal Cells HUDEP-2(RCB4557)