Spontaneous symmetry breaking in active droplets provides a generic route to motility
arXiv:1211.4707 · doi:10.1073/pnas.1200843109
Abstract
We explore a generic mechanism whereby a droplet of active matter acquires motility by the spontaneous breakdown of a discrete symmetry. The model we study offers a simple representation of a "cell extract" comprising, e.g., a droplet of actomyosin solution. (Such extracts are used experimentally to model the cytoskeleton.) Actomyosin is an active gel whose polarity describes the mean sense of alignment of actin fibres. In the absence of polymerization and depolymerization processes ('treadmilling'), the gel's dynamics arises solely from the contractile motion of myosin motors; this should be unchanged when polarity is inverted. Our results suggest that motility can arise in the absence of treadmilling, by spontaneous symmetry breaking (SSB) of polarity inversion symmetry. Adapting our model to wall-bound cells in two dimensions, we find that as wall friction is reduced, treadmilling-induced motility falls but SSB-mediated motility rises. The latter might therefore be crucial in three dimensions where frictional forces are likely to be modest. At a supra-cellular level, the same generic mechanism can impart motility to aggregates of non-motile but active bacteria; we show that SSB in this (extensile) case leads generically to rotational as well as translational motion.
13 pages, 8 figures, 1 table
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- Inertia drives a flocking phase transition in viscous active fluids
- The crucial role of adhesion in the transmigration of active droplets through interstitial orifices
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- Motor-free Contractility in Active Gels
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- Chaotic and periodical dynamics of active chiral droplets
- Morphology and flow patterns in highly asymmetric active emulsions
- Asymmetric fluctuations and self-folding of active interfaces
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