English

Position-dependent stochastic diffusion model of ion channel gating

Mesoscale and Nanoscale Physics 2014-07-24 v1 Soft Condensed Matter Biological Physics

Abstract

A position-dependent stochastic diffusion model of gating in ion channels is developed by considering the spatial variation of the diffusion coefficient between the closed and open states. It is assumed that a sensor which regulates the opening of the ion channel experiences Brownian motion in a closed region RcR_{c} and a transition region RmR_{m}, where the dynamics is described by probability densities pc(x,t)p_{c}(x,t) and pm(x,t)p_{m}(x,t) which satisfy interacting Fokker-Planck equations with diffusion coefficient Dc(x)=Dcexp(γcx)D_{c}(x)=D_{c}\exp(\gamma_{c}x) and Dm(x)=Dmexp(γmx)D_{m}(x)=D_{m} \exp(-\gamma_{m}x). The analytical solution of the coupled equations may be approximated by the lowest frequency relaxation, a short time after the application of a depolarizing voltage clamp, when DmDcD_{m} \ll D_{c} or the diffusion parameter γm\gamma_{m} is sufficiently large. Thus, an empirical rate equation that describes gating transitions may be derived from a stochastic diffusion model if there is a large diffusion (or potential) barrier between open and closed states.

Keywords

Cite

@article{arxiv.1406.7790,
  title  = {Position-dependent stochastic diffusion model of ion channel gating},
  author = {Samuel Robert Vaccaro},
  journal= {arXiv preprint arXiv:1406.7790},
  year   = {2014}
}

Comments

9 pages, 5 figures

R2 v1 2026-06-22T04:51:30.366Z