Line tension of branching junctions of bilayer membranes
arXiv:1110.2652 · doi:10.1039/c2sm06943a
Abstract
Branching of bilayer membranes appear in the inverted hexagonal phase as well as in metastable states of the lamellar phase such as membrane fusion intermediates. A method for estimating the line tension of the branching junction is proposed for molecular simulations. The line tension is calculated from the pressure tensor of equiangularly branched membranes. The simulation results agree very well with the theoretical prediction of Hamm and Kozlov's tilt model. The transition between the lamellar and inverted hexagonal phases is also investigated using the tilt model.
9 pages, 9 figures
References in corpus (4)
- Biological and synthetic membranes: What can be learned from a coarse-grained description?
- Measurement of the bending rigidity and spontaneous curvature of fluid membranes in simulations
- Anisotropic surface tension of buckled fluid membrane
- Solvent-free coarse-grained lipid model for large-scale simulations
Cited by in corpus (9)
- Binding of thermalized and active membrane curvature-inducing proteins
- Acceleration and suppression of banana-shaped-protein-induced tubulation by addition of small membrane inclusions of isotropic spontaneous curvatures
- Structure formation in binary mixtures of surfactants: vesicle opening-up to bicelles and octopus-like micelles
- Shape transformations of toroidal vesicles
- Structure formation in binary mixtures of lipids and detergents: Self-assembly and vesicle division
- Binding of curvature-inducing proteins onto tethered vesicles
- Membrane domain formation induced by binding/unbinding of curvature-inducing molecules onto both membrane surfaces
- Entropy-driven aggregation in multilamellar membranes
- Spatiotemporal pattern formation of membranes induced by surface molecular binding/unbinding