The evolution of chromatin-based epigenetic cell memory may be driven not only by the necessity for cells to stably maintain transcription programs, but also by the need to recognize signals and allow plastic responses to environmental stimuli. The mechanistic role of the epigenome in adult postmitotic tissues, however, remains largely unknown. In vertebrates, two variants of the Polycomb repressive complex (PRC2-Ezh2 and PRC2-Ezh1) control gene silencing via methylation of histone H3 on Lys27 (H3K27me). Here we describe a reversible mechanism that involves a novel isoform of Ezh1 (Ezh1β). Ezh1β lacks the catalytic SET domain and acts in the cytoplasm of skeletal muscle cells to control nuclear PRC2-Ezh1 activity in response to atrophic oxidative stress, by regulating Eed assembly with Suz12 and Ezh1α (the canonical isoform) at their target genes. We report a novel PRC2-Ezh1 function that utilizes Ezh1β as an adaptive stress sensor in the cytoplasm, thus allowing postmitotic cells to maintain tissue integrity in response to environmental changes.
The nucleophosmin 1 gene (
NPM1
) is the most frequently mutated gene in acute myeloid leukemia. Notably,
NPM1
mutations are always accompanied by additional mutations such as those in cohesin genes
RAD21
,
SMC1A
,
SMC3
, and
STAG2
but not in the cohesin regulator, nipped B-like (
NIPBL
). In this work, we analyzed a cohort of adult patients with acute myeloid leukemia and
NPM1
mutation and observed a specific reduction in the expression of
NIPBL
but not in other cohesin genes. In our zebrafish model, overexpression of the mutated form of
NPM1
also induced downregulation of
nipblb
, the zebrafish ortholog of human
NIPBL
. To investigate the hematopoietic phenotype and the interaction between mutated
NPM1
and
nipblb
, we generated a zebrafish model with
nipblb
downregulation which showed an increased number of myeloid progenitors. This phenotype was due to hyper-activation of the canonical Wnt pathway: myeloid cells blocked in an undifferentiated state could be rescued when the Wnt pathway was inhibited by
dkk1b
mRNA injection or indomethacin administration. Our results reveal, for the first time, a role for
NIPBL
during zebrafish hematopoiesis and suggest that an interplay between
NIPBL/NPM1
may regulate myeloid differentiation in zebrafish and humans through the canonical Wnt pathway and that dysregulation of these interactions may drive leukemic transformation.
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