Adhesion dynamics of confined membranes
Tung B.T. To, Thomas Le Goff, and Olivier Pierre-Louis

TL;DR
This paper models the complex dynamics of confined lipid membranes, revealing three distinct regimes of behavior based on membrane area, including flat, coarsening, and labyrinthine wrinkle patterns, with implications for understanding membrane adhesion.
Contribution
The study introduces a novel thin film model for inextensible membranes with bending rigidity confined between adhesive walls, incorporating a nonlocal tension term and analyzing different dynamical regimes.
Findings
Regime A: membranes form flat adhesion domains and freeze.
Regime B: membranes exhibit endless coarsening with coexistence of flat and wrinkle domains.
Regime C: membranes are covered by a frozen labyrinthine wrinkle pattern.
Abstract
We report on the modeling of the dynamics of confined lipid membranes. We derive a thin film model in the lubrication limit which describes an inextensible liquid membrane with bending rigidity confined between two adhesive walls. The resulting equations share similarities with the Swift-Hohenberg model. However, inextensibility is enforced by a time-dependent nonlocal tension. Depending on the excess membrane area available in the system, three different dynamical regimes, denoted as A, B and C, are found from the numerical solution of the model. In regime A, membranes with small excess area form flat adhesion domains and freeze. Such freezing is interpreted by means of an effective model for curvature-driven domain wall motion. The nonlocal membrane tension tends to a negative value corresponding to the linear stability threshold of flat domain walls in the Swift-Hohenberg equation.…
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Taxonomy
TopicsLipid Membrane Structure and Behavior · Force Microscopy Techniques and Applications · Fluid Dynamics and Thin Films
