Hippocampal place cell assemblies are speed-controlled oscillators
Top Cited Papers
- 8 May 2007
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (19), 8149-8154
- https://doi.org/10.1073/pnas.0610121104
Abstract
The phase of spikes of hippocampal pyramidal cells relative to the local field theta oscillation shifts forward ("phase precession") over a full theta cycle as the animal crosses the cell's receptive field ("place field"). The linear relationship between the phase of the spikes and the travel distance within the place field is independent of the animal's running speed. This invariance of the phase-distance relationship is likely to be important for coordinated activity of hippocampal cells and space coding, yet the mechanism responsible for it is not known. Here we show that at faster running speeds place cells are active for fewer theta cycles but oscillate at a higher frequency and emit more spikes per cycle. As a result, the phase shift of spikes from cycle to cycle (i.e., temporal precession slope) is faster, yet spatial-phase precession stays unchanged. Interneurons can also show transient-phase precession and contribute to the formation of coherently precessing assemblies. We hypothesize that the speed-correlated acceleration of place cell assembly oscillation is responsible for the phase-distance invariance of hippocampal place cells.Keywords
This publication has 58 references indexed in Scilit:
- Temporal Encoding of Place Sequences by Hippocampal Cell AssembliesNeuron, 2006
- Self-Motion and the Hippocampal Spatial MetricJournal of Neuroscience, 2005
- Routing of spike series by dynamic circuits in the hippocampusNature, 2004
- Memory Encoding by Theta Phase Precession in the Hippocampal NetworkNeural Computation, 2003
- Modeling goal-directed spatial navigation in the rat based on physiological data from the hippocampal formationNeural Networks, 2003
- Organization of cell assemblies in the hippocampusNature, 2003
- Role of experience and oscillations in transforming a rate code into a temporal codeNature, 2002
- Distinct frequency preferences of different types of rat hippocampal neurones in response to oscillatory input currentsThe Journal of Physiology, 2000
- Phase relationship between hippocampal place units and the EEG theta rhythmHippocampus, 1993
- The contributions of position, direction, and velocity to single unit activity in the hippocampus of freely-moving ratsExperimental Brain Research, 1983