Supporting Information for the manuscript ‘ Mesoscopic Model of Actin-Based Propulsion ’
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Summary
The dynamics of actin filaments are modeled as a stochastic process via a mixture of spontaneous nucleation with a spatially uniform rate and autocatalytic branching process with a rate proportional to the local density of existing model filaments.
- Published
- 2012-01-01
- Cited by
- 27
- References
- 18
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:1412143
References
- Non-Gaussian curvature distribution of actin-propelled biomimetic colloid trajectories
- Elasticity of floppy and stiff random networks.
- Actin filaments align into hollow comets for rapid VASP-mediated propulsion.
- Mechanism of actin network attachment to moving membranes: barbed end capture by N-WASP WH2 domains.
- Leading-edge-gel coupling in lamellipodium motion.
- Curvature and torsion in growing actin networks
- Effects of Molecular-Scale Processes on Observable Growth Properties of Actin Networks
- Clamped-filament elongation model for actin-based motors.
- Choosing orientation: influence of cargo geometry and ActA polarization on actin comet tails
- Actin filament curvature biases branching direction
- Elasticity of semiflexible biopolymer networks.
- Force generation by cytoskeletal filament end-tracking proteins.
- Cellular motions and thermal fluctuations: the Brownian ratchet.
- Force generation by actin polymerization II: the elastic ratchet and tethered filaments.
- Mechanics of the Cell
- Loading history determines the velocity of actin-network growth
- Scaling Concepts in Polymer Physics
- Forces generated during actin-based propulsion: a direct measurement by micromanipulation.
Cited by
- Cell–cell adhesion interface: orthogonal and parallel forces from contraction, protrusion, and retraction
- Physical constraints for pathogen movement.
- Bistable Forespore Engulfment in Bacillus subtilis by a Zipper Mechanism in Absence of the Cell Wall
- Control of actin-based motility through localized actin binding
- Mesoscopic model for filament orientation in growing actin networks: the role of obstacle geometry
- Methods for modeling cytoskeletal and DNA filaments
- Connecting local active forces to macroscopic stress in elastic media.
- Amplification of actin polymerization forces
- A variational approach to the growth dynamics of pre-stressed actin filament networks
- Actin filaments growing against a barrier with fluctuating shape.
- Growing actin networks regulated by obstacle size and shape
- Actin filaments growing against an elastic membrane: Effect of membrane tension.
- Cellular and Nuclear Forces: An Overview.
- Molecular mechanisms of force production in clathrinmediated endocytosis
- Building a dendritic actin filament network branch by branch: models of filament orientation pattern and force generation in lamellipodia
- The effect of the filament-obstacle interaction on the force-velocity relation of a growing biopolymer
- Efficient simulation of thermally fluctuating biopolymers immersed in fluids on 1-micron, 1-second scales
- Modeling Mechanisms Behind Force Generation By Actin Polymerization
- A unified role for membrane-cortex detachment during cell protrusion initiation
- Dynamics and self-organisation of active cytoskeletal gels
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