SummaryHuman embryonic stem cells (hESCs) share an identical genome with lineage-committed cells, yet possess the remarkable properties of self-renewal and pluripotency. The diverse cellular properties in different cells have been attributed to their distinct epigenomes, but how much epigenomes differ remains unclear. Here, we report that epigenomic landscapes in hESCs and lineage-committed cells are drastically different. By comparing the chromatin-modification profiles and DNA methylomes in hESCs and primary fibroblasts, we find that nearly one-third of the genome differs in chromatin structure. Most changes arise from dramatic redistributions of repressive H3K9me3 and H3K27me3 marks, which form blocks that significantly expand in fibrobl...
The regulatory capacities of epigenetic mechanisms including DNA methylation, histone modifications,...
Differentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study the reg...
In opposition to terminally differentiated cells, stem cells can self-renew and give rise to multipl...
SummaryHuman embryonic stem cells (hESCs) share an identical genome with lineage-committed cells, ye...
Epigenetic genome modifications are thought to be important for specifying the lineage and developme...
Differentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study the reg...
SummaryDifferentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study ...
SummaryEpigenetic modifications are crucial for proper lineage specification and embryo development....
The molecular mechanisms underlying pluripotency and lineage specification from embryonic stem cells...
<div><p>Epigenetic regulation of the replication program during mammalian cell differentiation remai...
The cellular epigenetic landscape changes as pluripotent stem cells differentiate to somatic cells o...
Epigenetic regulation serves as the basis for stem cell differentiation into distinct cell types, bu...
Self-renewal of human pluripotent embryonic stem cells proceeds via an abbreviated cell cycle with a...
Heritable epigenetic signatures are proposed to serve as an important regulatory mechanism in lineag...
SummaryEpigenetic regulation serves as the basis for stem cell differentiation into distinct cell ty...
The regulatory capacities of epigenetic mechanisms including DNA methylation, histone modifications,...
Differentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study the reg...
In opposition to terminally differentiated cells, stem cells can self-renew and give rise to multipl...
SummaryHuman embryonic stem cells (hESCs) share an identical genome with lineage-committed cells, ye...
Epigenetic genome modifications are thought to be important for specifying the lineage and developme...
Differentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study the reg...
SummaryDifferentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study ...
SummaryEpigenetic modifications are crucial for proper lineage specification and embryo development....
The molecular mechanisms underlying pluripotency and lineage specification from embryonic stem cells...
<div><p>Epigenetic regulation of the replication program during mammalian cell differentiation remai...
The cellular epigenetic landscape changes as pluripotent stem cells differentiate to somatic cells o...
Epigenetic regulation serves as the basis for stem cell differentiation into distinct cell types, bu...
Self-renewal of human pluripotent embryonic stem cells proceeds via an abbreviated cell cycle with a...
Heritable epigenetic signatures are proposed to serve as an important regulatory mechanism in lineag...
SummaryEpigenetic regulation serves as the basis for stem cell differentiation into distinct cell ty...
The regulatory capacities of epigenetic mechanisms including DNA methylation, histone modifications,...
Differentiation of human embryonic stem cells (hESCs) provides a unique opportunity to study the reg...
In opposition to terminally differentiated cells, stem cells can self-renew and give rise to multipl...