Published 2000 | Version Published
Journal Article Open

Channel noise in excitable neuronal membranes

Abstract

Stochastic fluctuations of voltage-gated ion channels generate current and voltage noise in neuronal membranes. This noise may be a critical determinant of the efficacy of information processing within neural systems. Using Monte-Carlo simulations, we carry out a systematic investigation of the relationship between channel kinetics and the resulting membrane voltage noise using a stochastic Markov version of the Mainen-Sejnowski model of dendritic excitability in cortical neurons. Our simulations show that kinetic parameters which lead to an increase in membrane excitability (increasing channel densities, decreasing temperature) also lead to an increase in the magnitude of the sub-threshold voltage noise. Noise also increases as the membrane is depolarized from rest towards threshold. This suggests that channel fluctuations may interfere with a neuron's ability to function as an integrator of its synaptic inputs and may limit the reliability and precision of neural information processing.

Additional Information

This work was funded by NSF, NIMH and the Sloan Center for Theoretical Neuroscience. We thank our collaborators Michael London, Idan Segev and Yosef Yarom for their invaluable suggestions.

Attached Files

Published - 179.pdf

Published - 179.ps

Files

179.pdf

Files (1.1 MB)

Name Size
md5:541e63a958f95aa59c7b22ee9054ed8b
468.0 kB Preview Download
md5:a9bc69e2359c789ecb92e9d028350299
675.5 kB Download

Additional details

Identifiers

Eprint ID
40569
Resolver ID
CaltechAUTHORS:20130816-103247343

Funding

NSF
NIMH
Sloan Center for Theoretical Neuroscience

Dates

Created
2008-01-16
Created from EPrint's datestamp field
Updated
2020-03-03
Created from EPrint's last_modified field

Caltech Custom Metadata

Caltech groups
Koch Laboratory (KLAB)