Homeostatic balance in the intestinal epithelium relies on a fast cellular turnover, which is coordinated by an intricate interplay between biochemical signalling, mechanical forces and organ geometry. We review recent modelling approaches that have been developed to understand different facets of this remarkable homeostatic equilibrium. Existing models offer different, albeit complementary, perspectives on the problem. First, biomechanical models aim to explain the local and global mechanical stresses driving cell renewal as well as tissue shape maintenance. Second, compartmental models provide insights into the conditions necessary to keep a constant flow of cells with well-defined ratios of cell types, and how perturbations can lead to a...
<p>Poster contribution for the CNRS - Jacques Monod Conference "Building, repairing and evolving bio...
Intestinal organoids capture essential features of the intestinal epithelium such as crypt folding, ...
From the smallest cell to the whole body, thousands of gears work in concert in space and time to en...
Homeostasis is a process by which biological systems maintain stability in an evolving environment. ...
The regulation of cell growth in animal tissues is a question of critical importance: most tissues c...
Objectives The luminal surface of the gut is lined with a monolayer of epithelial cells that acts a...
OBJECTIVES: The luminal surface of the gut is lined with a monolayer of epithelial cells that acts a...
The luminal surface of the gut is lined with a monolayer of epithelial cells that acts as a nutrient...
We introduce a novel dynamic model of stem cell and tissue organisation in murine intestinal crypts....
We introduce a novel dynamic model of stem cell and tissue organisation in murine intestinal crypts....
Many biological tissues are not static but continuously renewed through cycles of cell production an...
In vitro culture of intestinal tissue has been attempted for decades. Only recently did Sato et al. ...
We present a mechanical model of tissue homeostasis that is specialised to the intestinal crypt. Gro...
The conventional model of intestinal epithelial architecture describes a unidirectional tissue organ...
We developed a slow structural relaxation model to describe cellular dynamics in the crypt of the mo...
<p>Poster contribution for the CNRS - Jacques Monod Conference "Building, repairing and evolving bio...
Intestinal organoids capture essential features of the intestinal epithelium such as crypt folding, ...
From the smallest cell to the whole body, thousands of gears work in concert in space and time to en...
Homeostasis is a process by which biological systems maintain stability in an evolving environment. ...
The regulation of cell growth in animal tissues is a question of critical importance: most tissues c...
Objectives The luminal surface of the gut is lined with a monolayer of epithelial cells that acts a...
OBJECTIVES: The luminal surface of the gut is lined with a monolayer of epithelial cells that acts a...
The luminal surface of the gut is lined with a monolayer of epithelial cells that acts as a nutrient...
We introduce a novel dynamic model of stem cell and tissue organisation in murine intestinal crypts....
We introduce a novel dynamic model of stem cell and tissue organisation in murine intestinal crypts....
Many biological tissues are not static but continuously renewed through cycles of cell production an...
In vitro culture of intestinal tissue has been attempted for decades. Only recently did Sato et al. ...
We present a mechanical model of tissue homeostasis that is specialised to the intestinal crypt. Gro...
The conventional model of intestinal epithelial architecture describes a unidirectional tissue organ...
We developed a slow structural relaxation model to describe cellular dynamics in the crypt of the mo...
<p>Poster contribution for the CNRS - Jacques Monod Conference "Building, repairing and evolving bio...
Intestinal organoids capture essential features of the intestinal epithelium such as crypt folding, ...
From the smallest cell to the whole body, thousands of gears work in concert in space and time to en...