Neuronal Oscillations Enhance Stimulus Discrimination by Ensuring Action Potential Precision
Open Access
- 16 May 2006
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLoS Biology
- Vol. 4 (6) , e163
- https://doi.org/10.1371/journal.pbio.0040163
Abstract
Although oscillations in membrane potential are a prominent feature of sensory, motor, and cognitive function, their precise role in signal processing remains elusive. Here we show, using a combination of in vivo, in vitro, and theoretical approaches, that both synaptically and intrinsically generated membrane potential oscillations dramatically improve action potential (AP) precision by removing the membrane potential variance associated with jitter-accumulating trains of APs. This increased AP precision occurred irrespective of cell type and—at oscillation frequencies ranging from 3 to 65 Hz—permitted accurate discernment of up to 1,000 different stimuli. At low oscillation frequencies, stimulus discrimination showed a clear phase dependence whereby inputs arriving during the trough and the early rising phase of an oscillation cycle were most robustly discriminated. Thus, by ensuring AP precision, membrane potential oscillations dramatically enhance the discriminatory capabilities of individual neurons and networks of cells and provide one attractive explanation for their abundance in neurophysiological systems.Keywords
This publication has 106 references indexed in Scilit:
- Influence of Ionic Conductances on Spike Timing Reliability of Cortical Neurons for Suprathreshold Rhythmic InputsJournal of Neurophysiology, 2004
- Regulation of Backpropagating Action Potentials in Mitral Cell Lateral Dendrites by A-Type Potassium CurrentsJournal of Neurophysiology, 2003
- Bursts as a unit of neural information: selective communication via resonanceTrends in Neurosciences, 2003
- Distinct frequency preferences of different types of rat hippocampal neurones in response to oscillatory input currentsThe Journal of Physiology, 2000
- Stochastic resonanceReviews of Modern Physics, 1998
- Regulation of Synaptic Efficacy by Coincidence of Postsynaptic APs and EPSPsScience, 1997
- A Synaptically Controlled, Associative Signal for Hebbian Plasticity in Hippocampal NeuronsScience, 1997
- Reliability of Spike Timing in Neocortical NeuronsScience, 1995
- Phase relationship between hippocampal place units and the EEG theta rhythmHippocampus, 1993
- Subthreshold Behavior and Phenomenological Impedance of the Squid Giant AxonThe Journal of general physiology, 1970