Electrohydrodynamic model of vesicle deformation in alternating electric fields
arXiv:0811.1923 · doi:10.1016/j.bpj.2009.03.054
Abstract
We develop an analytical theory to explain the experimentally-observed morphological transitions of giant vesicles induced by AC electric fields (1). The model treats the inner and suspending media as lossy dielectrics, while the membrane as an ion-impermeable flexible incompressible-fluid sheet. The vesicle shape is obtained by balancing electric, hydrodynamic, and bending stresses exerted on the membrane. Considering a nearly spherical vesicle, the solution to the electrohydrodynamic problem is obtained as a regular perturbation expansion in the excess area. The theory predicts that stationary vesicle deformation depends on field frequency and conductivity conditions. If the inner fluid is more conducting than the suspending medium, the vesicle always adopts a prolate shape. In the opposite case, the vesicle undergoes a transition from a prolate to oblate ellipsoid at a critical frequency, which the theory identifies with the inverse membrane charging time. At frequencies higher than the inverse Maxwell-Wagner polarization time, the electrohydrodynamic stresses become too small to alter the vesicle's quasi-spherical rest shape. The analysis shows that the evolution towards the stationary vesicle deformation strongly depends on membrane properties such as viscosity. The model can be applied to rationalize the transient and steady deformation of biological cells in electric fields.
References in corpus (7)
- Induced-Charge Electro-Osmosis
- Dynamics of a viscous vesicle in linear flows
- Dynamics of nearly spherical vesicles in an external flow
- Dynamics and rheology of a dilute suspension of vesicles: higher order theory
- Electrostatic and electrokinetic contributions to the elastic moduli of a driven membrane
- Applying a potential across a biomembrane: electrostatic contribution to the bending rigidity and membrane instability
- The prolate-to-oblate shape transition of phospholipid vesicles in response to frequency variation of an AC electric field can be explained by the dielectric anisotropy of a phospholipid bilayer
Cited by in corpus (15)
- Fluctuation spectroscopy of giant unilamellar vesicles using confocal and phase contrast microscopy
- Effective zero-thickness model for a conductive membrane driven by an electric field
- Frequency-dependent electrodeformation of giant phospholipid vesicles in AC electric field
- Vesicle electrohydrodynamics
- Electrohydrodynamics of Three-Dimensional Vesicles: A Numerical Approach
- A transient solution for vesicle electrodeformation and relaxation
- A Poisson-Boltzmann approach for a lipid membrane in an electric field
- Dynamics of Three-Dimensional Vesicles in DC Electric fields
- Lipid membrane instability and poration driven by capacitive charging
- A numerical model for the trans-membrane voltage of vesicles
- A planar lipid bilayer in an electric field: membrane instability, flow field and electrical impedance
- Large deformation electrohydrodynamics of a Skalak elastic capsule in AC electric field
- Electrohydrodynamics of deflated vesicles: budding, rheology and pairwise interactions
- Shape deformation of a vesicle under axisymmetric non-uniform alternating electric field
- A vesicle microrheometer for high-throughput viscosity measurements of lipid and polymer membranes