Sufficient conditions for the additivity of stall forces generated by multiple filaments or motors
arXiv:1503.06529 · doi:10.1103/PhysRevE.95.022406
Abstract
Molecular motors and cytoskeletal filaments work collectively most of the time under opposing forces. This opposing force may be due to cargo carried by motors or resistance coming from the cell membrane pressing against the cytoskeletal filaments. Some recent studies have shown that the collective maximum force (stall force) generated by multiple cytoskeletal filaments or molecular motors may not always be just a simple sum of the stall forces of the individual filaments or motors. To understand this excess or deficit in the collective force, we study a broad class of models of both cytoskeletal filaments and molecular motors. We argue that the stall force generated by a group of filaments or motors is additive, that is, the stall force of number of filaments (motors) is times the stall force of one filament (motor), when the system is in equilibrium at stall. Conversely, we show that this additive property typically does not hold true when the system is not at equilibrium at stall. We thus present a novel and unified understanding of the existing models exhibiting such non-addivity, and generalise our arguments by developing new models that demonstrate this phenomena. We also propose a quantity similar to thermodynamic efficiency to easily predict this deviation from stall-force additivity for filament and motor collectives.
14 pages, 7 figures
References in corpus (10)
- Tug-of-war as a cooperative mechanism for bidirectional cargo transport by molecular motors
- Pressure and Phase Equilibria in Interacting Active Brownian Spheres
- Stochastic mechano-chemical kinetics of molecular motors: a multidisciplinary enterprise from a physicist's perspective
- Fluctuation theorem and large deviation function for a solvable model of a molecular motor
- Dynamics of Microtubule Growth and Catastrophe
- Influence of direct motor-motor interaction in models for cargo transport by a single team of motors
- Stall force of polymerizing microtubules and filament bundles
- Collective force generated by multiple biofilaments can exceed the sum of forces due to individual ones
- Cooperative dynamics of microtubule ensembles: Polymerization forces and rescue-induced oscillations
- Force-induced dynamical properties of multiple cytoskeletal filaments are distinct from that of single filaments
Cited by in corpus (4)
- Entropy production and entropy extraction rates for a Brownian particle that walks in underdamped medium
- Molecular force spectroscopy of kinetochore-microtubule attachment {\it in silico}: Mechanical signatures of an unusual catch bond and collective effects
- Exact time-dependent analytical solutions for entropy production rate for a system that operates in a heat bath where its temperature varies linearly in space
- Effect of viscous friction on entropy, entropy production and entropy extraction rates in underdamped and overdamped media