Chemotaxis of cargo-carrying self-propelled particles
arXiv:2009.09060 · doi:10.1103/PhysRevLett.126.208102
Abstract
Active particles with their characteristic feature of self-propulsion are regarded as the simplest models for motility in living systems. The accumulation of active particles in low activity regions has led to the general belief that chemotaxis requires additional features and at least a minimal ability to process information and to control motion. We show that self-propelled particles display chemotaxis and move into regions of higher activity, if the particles perform work on passive objects, or cargo, to which they are bound. The origin of this cooperative chemotaxis is the exploration of the activity gradient by the active particle when bound to a load, resulting in an average excess force on the load in the direction of higher activity. Using a minimalistic theoretical model, we capture the most relevant features of these active-passive dimers and in particular we predict the crossover between anti-chemotactic and chemotactic behaviour. Moreover we show that merely connecting active particles to chains is sufficient to obtain the crossover from anti-chemotaxis to chemotaxis with increasing chain length. Such an active complex is capable of moving up a gradient of activity such as provided by a gradient of fuel and to accumulate where the fuel concentration is at its maximum. The observed transition is of significance to proto-forms of life enabling them to locate a source of nutrients even in the absence of any supporting sensomotoric apparatus.
References in corpus (13)
- Self-motile colloidal particles: from directed propulsion to random walk
- Statistical Mechanics of Interacting Run-and-Tumble Bacteria
- When are active Brownian particles and run-and-tumble particles equivalent? Consequences for motility-induced phase separation
- Diffusive transport without detailed balance in motile bacteria: Does microbiology need statistical physics?
- Sedimentation, trapping, and rectification of dilute bacteria
- A self-propelled particle in an external potential: is there an effective temperature?
- Phototaxis of synthetic microswimmers in optical landscapes
- Statistical Mechanics of Active Ornstein Uhlenbeck Particles
- Hydrodynamics of self-propelled hard rods
- Dynamic clustering and chemotactic collapse of self-phoretic active particles
- The physics of active polymers and filaments
- How does a flexible chain of active particles swell?
- Run-and-Tumble Dynamics of Self-Propelled Particles in Confinement
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- Dynamics of active particles with space-dependent swim velocity
- Field-Theory of Active Chiral Hard Disks: A First-Principles Approach to Steric Interactions
- Active Colloidal Molecules in Activity Gradients
- Taxis of cargo-carrying microswimmers in traveling activity waves
- Resonant diffusion of a gravitactic circle swimmer
- Biohybrid active matter -- the emergent properties of cell-mediated microtransport
- Transport of molecules via polymerization in chemical gradients
- Statistics of carrier-cargo complexes
- Active Transport of Cargo-Carrying and Interconnected Chiral Particles
- Bistability in orbital trajectories of a chiral self-propelled particle interacting with an external field
- A Hitchhiker's Guide To Active Motion
- Active chiral molecules in activity gradients
- Diffusion of gravitactic chiral active Brownian particles in an asymmetric channel
- Riding the Wave: Polymers in Time-dependent Nonequilibrium Baths