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Active elastohydrodynamics of vesicles in narrow, blind constrictions

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arxiv 1705.01765 v2 pith:EUTN6SGL submitted 2017-05-04 cond-mat.soft

Active elastohydrodynamics of vesicles in narrow, blind constrictions

classification cond-mat.soft
keywords transportvesiclesconstrictionsfluidforcingvesicleactiveblind
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Fluid-resistance limited transport of vesicles through narrow constrictions is a recurring theme in many biological and engineering applications. Inspired by the motor-driven movement of soft membrane-bound vesicles into closed neuronal dendritic spines, here we study this problem using a combination of passive three-dimensional simulations and a simplified semi-analytical theory for active transport of vesicles that are forced through such constrictions by molecular motors. We show that the motion of these objects is characterized by two dimensionless quantities related to the geometry and the strength of forcing relative to the vesicle elasticity. We use numerical simulations to characterize the transit time for a vesicle forced by fluid pressure through a constriction in a channel, and find that relative to an open channel, transport into a blind end leads to the formation of an effective lubrication layer that strongly impedes motion. When the fluid pressure forcing is complemented by forces due to molecular motors that are responsible for vesicle trafficking into dendritic spines, we find that the competition between motor forcing and fluid drag results in multistable dynamics reminiscent of the real system. Our study highlights the role of non-local hydrodynamic effects in determining the kinetics of vesicular transport in constricted geometries.

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