bioRxiv · 10.1101/2020.02.19.955567
A quantitative principle to understand 3D cellular connectivity in epithelial tubes
Abstract
Epithelial cell organization and the mechanical stability of tissues are closely related. In this context, it has been recently shown that packing optimization in bended/folded epithelia is achieved by a surface tension energy minimization mechanism that leads to a novel cellular shape: the scutoid. However, further cellular and tissue level implications of this new developmental paradigm remain unknown. Here we focus on the relationship between this complex cellular shape and the connectivity between cells. We address this problem using a combination of computational, experimental, and biophysical approaches in tubular epithelia. In particular, we examine how energy drivers affect the three-dimensional packing of these tissues. We challenge our biophysical model by reducing the cell adhesion in epithelial cells. As a result, we observed an increment on the cell apico-basal intercalation propensity that correlated with a decrease of the energy barrier necessary to connect with new cells. We conclude that tubular epithelia satisfy a quantitative biophysical principle, that links tissue geometry and energetics with the average cellular connectivity.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Gomez-Galvez, P., Vicente-Munuera, P., Anbari, S., Tagua, A., Gordillo, C., Palacios, A. M., Velasco, A., Capitan-Agudo, C., Grima, C., Annese, V., Robles, R., Marquez, A., Buceta, J., Escudero, L. M.. 2020-02-20. A quantitative principle to understand 3D cellular connectivity in epithelial tubes. https://doi.org/10.1101/2020.02.19.955567
Cite the original work for its findings. Save a collection to share your selection of sources.