Biomimetic emulsions reveal the effect of homeostatic pressure on cell-cell adhesion
arXiv:1202.0570 · doi:10.1073/pnas.1201499109
Abstract
Cell-cell contacts in tissues are continuously subject to mechanical forces due to homeostatic pressure and active cytoskeleton dynamics. While much is known about the molecular pathways of adhesion, the role of mechanics is less well understood. To isolate the role of pressure we present a dense packing of functionalized emulsion droplets in which surface interactions are tuned to mimic those of real cells. By visualizing the microstructure in 3D we find that a threshold compression force is necessary to overcome electrostatic repulsion and surface elasticity and establish protein-mediated adhesion. Varying the droplet interaction potential maps out a phase diagram for adhesion as a function of force and salt concentration. Remarkably, fitting the data with our theoretical model predicts binder concentrations in the adhesion areas that are similar to those found in real cells. Moreover, we quantify the adhesion size dependence on the applied force and thus reveal adhesion strengthening with increasing homeostatic pressure even in the absence of active cellular processes. This biomimetic approach reveals the physical origin of pressure-sensitive adhesion and its strength across cell-cell junctions.
20 pages, 5 figures
Cited by in corpus (14)
- Volume and porosity thermal regulation in lipid mesophases by coupling mobile ligands to soft membranes
- Specificity, flexibility and valence of DNA bonds guide emulsion architecture
- Colloidomers: freely-jointed polymers made of droplets
- Theory and Simulation of DNA-Coated Colloids: a Guide for Rational Design
- Programmable interactions with biomimetic DNA linkers at fluid membranes and interfaces
- A biological tissue-inspired tunable photonic fluid
- Bond formation kinetics affects self-assembly directed by ligand-receptor interactions
- DNA self-organization controls valence in programmable colloid design
- A Coarse-Grained Simulation Model for Self-Assembly of Liquid Droplets Featuring Explicit Mobile Binders
- Depletion attraction favors the elastic response of emulsions flowing in a constriction
- Surface-triggered cascade reactions between DNA linkers direct self-assembly of colloidal crystals of controllable thickness
- Jamming and force distribution in growing epithelial tissue
- Skinny emulsions take on granular matter
- Compression and fracture of ordered and disordered droplet rafts