Channel noise induced stochastic facilitation in an auditory brainstem neuron model
arXiv:1311.2643 · doi:10.1103/PhysRevE.88.052722
Abstract
Neuronal membrane potentials fluctuate stochastically due to conductance changes caused by random transitions between the open and close states of ion channels. Although it has previously been shown that channel noise can nontrivially affect neuronal dynamics, it is unknown whether ion-channel noise is strong enough to act as a noise source for hypothesised noise-enhanced information processing in real neuronal systems, i.e. 'stochastic facilitation.' Here, we demonstrate that biophysical models of channel noise can give rise to two kinds of recently discovered stochastic facilitation effects in a Hodgkin-Huxley-like model of auditory brainstem neurons. The first, known as slope-based stochastic resonance (SBSR), enables phasic neurons to emit action potentials that can encode the slope of inputs that vary slowly relative to key time-constants in the model. The second, known as inverse stochastic resonance (ISR), occurs in tonically firing neurons when small levels of noise inhibit tonic firing and replace it with burst-like dynamics. Consistent with previous work, we conclude that channel noise can provide significant variability in firing dynamics, even for large numbers of channels. Moreover, our results show that possible associated computational benefits may occur due to channel noise in neurons of the auditory brainstem. This holds whether the firing dynamics in the model are phasic (SBSR can occur due to channel noise) or tonic (ISR can occur due to channel noise).
Published by Physical Review E, November 2013 (this version 17 pages total - 10 text, 1 refs, 6 figures/tables); Associated matlab code is available online in the ModelDB repository at http://senselab.med.yale.edu/ModelDB/ShowModel.asp?model=151483
References in corpus (6)
- The what and where of adding channel noise to the Hodgkin-Huxley equations
- On stochastic differential equation models for ion channel noise in Hodgkin-Huxley neurons
- Optimal stimulus and noise distributions for information transmission via suprathreshold stochastic resonance
- Analysis of inverse stochastic resonance and the long-term firing of Hodgkin-Huxley neurons with Gaussian white noise
- Simple, Fast and Accurate Implementation of the Diffusion Approximation Algorithm for Stochastic Ion Channels with Multiple States
- A point process framework for modeling electrical stimulation of the auditory nerve
Cited by in corpus (6)
- Functional importance of noise in neuronal information processing
- Double Inverse Stochastic Resonance with Dynamic Synapses
- Two paradigmatic scenarios for inverse stochastic resonance
- Noise-tuned bursting in a Hedgehog burster
- Modeling and characterizing stochastic neurons based on in vitro voltage-dependent spike probability functions
- Multilevel Monte Carlo for stochastic differential equations with small noise