First published January 20, 2021BACKGROUND & AIMS: The stem/progenitor cells of the developing intestine arebiologically distinct from their adult counterparts. Here we examine the microenvironmental cues that regulate the embryonic stem/progenitor population, focusing on the role of Notch pathway factor, Delta-Like Protein 1 (DLK1). METHODS: mRNAseq analyses of intestinal mesenchymal cells (IMC) collected from embryonic day 14.5 (E14.5) or adult IMCs and a novel co-culture system with E14.5 intestinal epithelial organoids were used. Following addition of recombinant DLK1 (rDLK) or Dlk1 siRNA (siDlk1), epithelial characteristics were compared using imaging, replating efficiency assays, qPCR and immunocytochemistry. The intestinal phenotype ...
Notch signaling is known to regulate the proliferation and differentiation of intestinal stem and pr...
(ENG) The intestinal epithelium has been heavily studied for decades. It is a traditional model to s...
One of the fundamental goals in neuroscience is to understand how the diverse types of neurons are g...
BACKGROUND & AIMS: Ablation of Notch signaling within the intestinal epithelium results in loss of p...
The intestinal epithelium is one of the most rapidly self-renewing tissues in the body and thus the ...
BACKGROUND & AIMS: In addition to the Notch and Wnt signaling pathways, energy metabolism also regul...
The mammalian intestine is a prototype of a self-renewing organ. The rapid cellular turnover is supp...
International audienceAfter birth, the intestine undergoes major changes to shift from an immature p...
The intestine is composed of an epithelial layer containing rapidly proliferating cells that mature ...
The human intestinal stem cell niche supports self-renewal and epithelial function, but little is kn...
Stem cell and progenitor fate in the mammalian intestine: Notch and lateral inhibition in homeostasi...
A better understanding of the control of stem cell maintenance and differentiation fate choice is fu...
DLK1 is a maternally imprinted, paternally expressed gene coding for the transmembrane protein Delta...
The Delta-Notch pathway is an evolutionarily conserved signaling pathway which controls a broad rang...
International audienceThe rapid renewal of intestinal epithelium is mediated by a pool of stem cells...
Notch signaling is known to regulate the proliferation and differentiation of intestinal stem and pr...
(ENG) The intestinal epithelium has been heavily studied for decades. It is a traditional model to s...
One of the fundamental goals in neuroscience is to understand how the diverse types of neurons are g...
BACKGROUND & AIMS: Ablation of Notch signaling within the intestinal epithelium results in loss of p...
The intestinal epithelium is one of the most rapidly self-renewing tissues in the body and thus the ...
BACKGROUND & AIMS: In addition to the Notch and Wnt signaling pathways, energy metabolism also regul...
The mammalian intestine is a prototype of a self-renewing organ. The rapid cellular turnover is supp...
International audienceAfter birth, the intestine undergoes major changes to shift from an immature p...
The intestine is composed of an epithelial layer containing rapidly proliferating cells that mature ...
The human intestinal stem cell niche supports self-renewal and epithelial function, but little is kn...
Stem cell and progenitor fate in the mammalian intestine: Notch and lateral inhibition in homeostasi...
A better understanding of the control of stem cell maintenance and differentiation fate choice is fu...
DLK1 is a maternally imprinted, paternally expressed gene coding for the transmembrane protein Delta...
The Delta-Notch pathway is an evolutionarily conserved signaling pathway which controls a broad rang...
International audienceThe rapid renewal of intestinal epithelium is mediated by a pool of stem cells...
Notch signaling is known to regulate the proliferation and differentiation of intestinal stem and pr...
(ENG) The intestinal epithelium has been heavily studied for decades. It is a traditional model to s...
One of the fundamental goals in neuroscience is to understand how the diverse types of neurons are g...