Redundancy and cooperativity in the mechanics of compositely crosslinked filamentous networks
arXiv:1106.3004 · doi:10.1371/journal.pone.0035939
Abstract
The actin cytoskeleton in living cells has many types of crosslinkers. The mechanical interplay between these different crosslinker types is an open issue in cytoskeletal mechanics. We develop a framework to study the cooperativity and redundancy in the mechanics of filamentous networks with two types of crosslinkers: crosslinkers that allow free rotations of filaments and crosslinkers that do not. The framework consists of numerical simulations and an effective medium theory on a percolating triangular lattice. We find that the introduction of angle-constraining crosslinkers significantly lowers the filament concentrations required for these networks to attain mechanical integrity. This cooperative effect also enhances the stiffness of the network and suppresses non-affine deformations at a fixed filament concentration. We further find that semiflexible networks with only freely-rotating crosslinks are mechanically very similar to compositely crosslinked flexible networks with both networks exhibiting the same scaling behavior. We show that the network mechanics can either be redundant or cooperative depending on the relative energy scale of filament bending to the energy stored in the angle-constraining crosslinkers, and the relative concentration of crosslinkers. Our results may have implications for understanding the role of multiple crosslinkers even in a system without bundle formation or other structural motifs.
21 pages, 5 figures
References in corpus (7)
- Elasticity of Stiff Polymer Networks
- Criticality and isostaticity in fiber networks
- Stiff Polymers, Foams and Fiber Networks
- Effective medium theory of semiflexible filamentous networks
- Filamin cross-linked semiflexible networks: Fragility under strain
- Semiflexible Filamentous Composites
- Dual contribution to amplification in the mammalian inner ear
Cited by in corpus (24)
- A density-independent glass transition in biological tissues
- Modeling semiflexible polymer networks
- Biopolymers: life's mechanical scaffolds
- Multicellular rosettes drive fluid-solid transition in epithelial tissues
- Nonlinear elasticity of disordered fiber networks
- Alignment and Nonlinear Elasticity in Biopolymer Gels
- Elasticity of Filamentous Kagome Lattice
- Scaling theory for mechanical critical behavior in fiber networks
- Effective Medium Theory of Filamentous Triangular Lattice
- Beyond linear elasticity: Jammed solids at finite shear strain and rate
- Dynamical behavior of disordered spring networks
- Rigidity percolation control of the brittle-ductile transition in disordered networks
- Loops versus lines and the compression stiffening of cells
- Frictional rigidity percolation and minimal rigidity proliferation: From a new universality class to superuniversality
- Deformation and fracture of echinoderm collagen networks
- Viscoelasticity of reversibly crosslinked networks of semiflexible polymers
- Elastic response of filamentous networks with compliant crosslinks
- Normal stresses, contraction, and stiffening in sheared elastic networks
- Normal stress anisotropy and marginal stability in athermal elastic networks
- Mechanics of fiber networks under a bulk strain
- Elasticity of randomly diluted honeycomb and diamond lattices with bending forces
- The mechanics of anisotropic spring networks
- Criticality enhances the reinforcement of disordered networks by rigid inclusions
- Spatial patterning of force centers controls folding pathways of active elastic networks