Abstract During hematopoietic development, definitive hematopoietic cells are derived from hemogenic endothelial (HE) cells through a process known as endothelial to hematopoietic transition (EHT). During EHT, transitioning cells proliferate and undergo progressive changes in gene expression culminating in the new cell identity with corresponding changes in function, phenotype and morphology. However, the metabolic pathways fueling this transition remain unclear. We show here that glutamine is a crucial regulator of EHT and a rate limiting metabolite in the hematopoietic differentiation of HE cells. Intriguingly, different hematopoietic lineages require distinct derivatives of glutamine. While both derivatives, α-ketoglutarate and nucleotid...
During development, hematopoietic cells originate from endothelium in a process known as endothelial...
Although significant variations in the metabolic profiles exist among different cells, little is und...
Hematopoietic stem cells (HSCs) have the unique ability to self-renew for life, to differentiate int...
During hematopoietic development, definitive hematopoietic cells are derived from hemogenic endothel...
SummaryThe metabolic state of quiescent hematopoietic stem cells (HSCs) is an important regulator of...
The metabolic state of quiescent hematopoietic stem cells (HSCs) is an important regulator of self-r...
During embryonic development, hematopoiesis occurs through primitive and definitive waves, giving ri...
Endothelial metabolism is a key regulator of angiogenesis. Glutamine metabolism in endothelial cells...
Human pluripotent stem cells can self-renew indefinitely or be induced to differentiate into the thr...
The molecular mechanisms underlying the regulation of pluripotency by cellular metabolism in human e...
Recently, endothelial cell metabolism has emerged as an essential driver and regulator of both blood...
SummaryThe molecular mechanisms underlying the regulation of pluripotency by cellular metabolism in ...
Human pluripotent stem cells (hPSCs) can self-renew indefinitely or can be induced to differentiate....
Natural killer T (NKT) cells operate distinctly different metabolic programming from CD4 T cells, in...
To define the metabolic requirements of hematopoiesis, we examined blood lineages in mice conditiona...
During development, hematopoietic cells originate from endothelium in a process known as endothelial...
Although significant variations in the metabolic profiles exist among different cells, little is und...
Hematopoietic stem cells (HSCs) have the unique ability to self-renew for life, to differentiate int...
During hematopoietic development, definitive hematopoietic cells are derived from hemogenic endothel...
SummaryThe metabolic state of quiescent hematopoietic stem cells (HSCs) is an important regulator of...
The metabolic state of quiescent hematopoietic stem cells (HSCs) is an important regulator of self-r...
During embryonic development, hematopoiesis occurs through primitive and definitive waves, giving ri...
Endothelial metabolism is a key regulator of angiogenesis. Glutamine metabolism in endothelial cells...
Human pluripotent stem cells can self-renew indefinitely or be induced to differentiate into the thr...
The molecular mechanisms underlying the regulation of pluripotency by cellular metabolism in human e...
Recently, endothelial cell metabolism has emerged as an essential driver and regulator of both blood...
SummaryThe molecular mechanisms underlying the regulation of pluripotency by cellular metabolism in ...
Human pluripotent stem cells (hPSCs) can self-renew indefinitely or can be induced to differentiate....
Natural killer T (NKT) cells operate distinctly different metabolic programming from CD4 T cells, in...
To define the metabolic requirements of hematopoiesis, we examined blood lineages in mice conditiona...
During development, hematopoietic cells originate from endothelium in a process known as endothelial...
Although significant variations in the metabolic profiles exist among different cells, little is und...
Hematopoietic stem cells (HSCs) have the unique ability to self-renew for life, to differentiate int...