Dynamics in Steady State In Vitro Acto-Myosin Networks
arXiv:1611.09551 · doi:10.1088/1361-648X/aa62ca
Abstract
It is well known that many biochemical processes in the cell such as gene regulation, growth signals and activation of ion channels, rely on mechanical stimuli. However, the mechanism by which mechanical signals propagate through cells is not as well understood. In this review we focus on stress propagation in a minimal model for cell elasticity, actomyosin networks, which are comprised of a sub-family of cytoskeleton proteins. After giving an overview of th actomyosin network components, structure and evolution we review stress propagation in these materials as measured through the correlated motion of tracer beads. We also discuss the possibility to extract structural features of these networks from the same experiments. We show that stress transmission through these networks has two pathways, a quickly dissipative one through the bulk, and a long ranged weakly dissipative one through the pre-stressed actin network.
20 pages, 10 figures, Topical review
References in corpus (8)
- Non-equilibrium mechanics and dynamics of motor activated gels
- Anomalous hydrodynamic interaction in a quasi-two-dimensional suspension
- Screened hydrodynamic interaction in a narrow channel
- Hydrodynamic interaction in confined geometries
- Active contractility in actomyosin networks
- Geometrical origins of contractility in disordered actomyosin networks
- Response of a polymer network to the motion of a rigid sphere
- Structure and dynamics of a layer of sedimented Brownian particles
Cited by in corpus (5)
- The active trap model
- Different anomalous diffusion regimes measured in the dynamics of tracer particles in actin networks
- Signatures of motor susceptibility in the dynamics of a tracer particle in an active gel
- Shape regulation generates elastic interaction between living cells
- Diffusion of an Active Particle Bound to a Generalized Elastic Model: Fractional Langevin Equation