Issue 29, 2014

Wetting transitions within membrane compartments

Abstract

A biomimetic membrane in contact with several aqueous phases is theoretically studied using a combination of Helfrich curvature elasticity theory for fluid membranes and self-consistent field theory for polymers in solutions. Two phases that are thermodynamically formed by phase separation of aqueous solutions, as well as stable and metastable shapes of fluid vesicles, have been observed. The wetting transitions from complete to partial wetting and to complete dewetting are identified within a membrane compartment. The dependences of wetting transitions on material parameters, such as the intrinsic contact angles θin, the interaction strengths between the polymers χαβ and between the membrane and the polymer ηp, and impermeability of the membrane to the enclosed polymers ζp, are investigated. For a given χαβ, impermeability ζp and affinity to the membrane ηp, θin is found to be a constant and independent of the reduced volume of vesicles and the volume fraction of two phases.

Graphical abstract: Wetting transitions within membrane compartments

Article information

Article type
Paper
Submitted
07 Mar 2014
Accepted
15 May 2014
First published
16 May 2014

Soft Matter, 2014,10, 5311-5317

Author version available

Wetting transitions within membrane compartments

K. Guo, W. Xiao and K. Yoshikawa, Soft Matter, 2014, 10, 5311 DOI: 10.1039/C4SM00515E

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