Dynamics of Multicomponent Vesicles in Narrow Channel

We investigate the dynamics of two-dimensional multicomponent vesicles in confined Poiseuille flow, focusing on the interplay among membrane composition, mechanical heterogeneity, and hydrodynamic confinement. The membrane composition is described by a phase-field model, while the local bending rigidity depends on the phase composition, thereby coupling phase separation to membrane deformation. Local membrane inextensibility is imposed through a Lagrange multiplier, and the coupled vesicle-fluid system is solved using a boundary integral method for matched interior and exterior viscosities. At a fixed fivefold bending-rigidity contrast, we examine the effects of the average phase composition, channel width, and initial vesicle orientation. In contrast to homogeneous vesicles, which generally relax toward symmetric bullet-like configurations near the channel centerline, multicomponent vesicles exhibit pronounced symmetry breaking and a variety of dynamical states. These include asymmetric steady shapes accompanied by membrane tank-treading, as well as confinement-dependent breathing and wagging motions. Mechanical heterogeneity also promotes localized high-curvature regions during transient deformation, with softer membrane domains preferentially occupying regions of larger curvature. These results demonstrate that composition-dependent bending rigidity can qualitatively alter vesicle dynamics in pressure-driven confined flows and highlight the importance of membrane heterogeneity in the transport and deformation of vesicle-like cells in narrow channels.

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Publication Details

Journal
Membranes
Published
2026-09-24
DOI
https://doi.org/10.3390/membranes16100312
Primary Topic
Lipid Membrane Structure and Behavior
Type
article
Field-Weighted Citation Impact
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article

Dynamics of Multicomponent Vesicles in Narrow Channel

Xiao Wang, Kai Liu, Pingqia Wang
Membranes
Lipid Membrane Structure and Behavior
article

Dynamics of Multicomponent Vesicles in Narrow Channel

Xiao Wang, Kai Liu, Pingqia Wang
article en

Abstract

We investigate the dynamics of two-dimensional multicomponent vesicles in confined Poiseuille flow, focusing on the interplay among membrane composition, mechanical heterogeneity, and hydrodynamic confinement. The membrane composition is described by a phase-field model, while the local bending rigidity depends on the phase composition, thereby coupling phase separation to membrane deformation. Local membrane inextensibility is imposed through a Lagrange multiplier, and the coupled vesicle-fluid system is solved using a boundary integral method for matched interior and exterior viscosities. At a fixed fivefold bending-rigidity contrast, we examine the effects of the average phase composition, channel width, and initial vesicle orientation. In contrast to homogeneous vesicles, which generally relax toward symmetric bullet-like configurations near the channel centerline, multicomponent vesicles exhibit pronounced symmetry breaking and a variety of dynamical states. These include asymmetric steady shapes accompanied by membrane tank-treading, as well as confinement-dependent breathing and wagging motions. Mechanical heterogeneity also promotes localized high-curvature regions during transient deformation, with softer membrane domains preferentially occupying regions of larger curvature. These results demonstrate that composition-dependent bending rigidity can qualitatively alter vesicle dynamics in pressure-driven confined flows and highlight the importance of membrane heterogeneity in the transport and deformation of vesicle-like cells in narrow channels.

MembranesVol. 16(10)
Beijing Normal University (CN), Changsha University of Science and Technology (CN)
Openalex Percentile: Top 19%
Lipid Membrane Structure and Behavior
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