Synchronization in Hybrid Neuronal Networks of the Hippocampal Formation
- 1 March 2005
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 93 (3), 1197-1208
- https://doi.org/10.1152/jn.00982.2004
Abstract
Understanding the mechanistic bases of neuronal synchronization is a current challenge in quantitative neuroscience. We studied this problem in two putative cellular pacemakers of the mammalian hippocampal theta rhythm: glutamatergic stellate cells (SCs) of the medial entorhinal cortex and GABAergic oriens-lacunosum-moleculare (O-LM) interneurons of hippocampal region CA1. We used two experimental methods. First, we measured changes in spike timing induced by artificial synaptic inputs applied to individual neurons. We then measured responses of free-running hybrid neuronal networks, consisting of biological neurons coupled (via dynamic clamp) to biological or virtual counterparts. Results from the single-cell experiments predicted network behaviors well and are compatible with previous model-based predictions of how specific membrane mechanisms give rise to empirically measured synchronization behavior. Both cell types phase lock stably when connected via homogeneous excitatory-excitatory (E-E) or inhibitory-inhibitory (I-I) connections. Phase-locked firing is consistently synchronous for either cell type with E-E connections and nearly anti-synchronous with I-I connections. With heterogeneous connections (e.g., excitatory-inhibitory, as might be expected if members of a given population had heterogeneous connections involving intermediate interneurons), networks often settled into phase locking that was either stable or unstable, depending on the order of firing of the two cells in the hybrid network. Our results imply that excitatory SCs, but not inhibitory O-LM interneurons, are capable of synchronizing in phase via monosynaptic mutual connections of the biologically appropriate polarity. Results are largely independent of synaptic strength and synaptic kinetics, implying that our conclusions are robust and largely unaffected by synaptic plasticity.Keywords
This publication has 63 references indexed in Scilit:
- Synchronization of Strongly Coupled Excitatory Neurons: Relating Network Behavior to BiophysicsJournal of Computational Neuroscience, 2003
- The Neurally Controlled Animat: Biological Brains Acting with Simulated BodiesAutonomous Robots, 2001
- Hippocampal and Entorhinal Cortex High‐Frequency Oscillations (100–500 Hz) in Human Epileptic Brain and in Kainic Acid‐Treated Rats with Chronic SeizuresEpilepsia, 1999
- Gamma frequency oscillations gate temporally coded afferent inputs in the rat hippocampal sliceNeuroscience Letters, 1998
- Spike Frequency Adaptation Affects the Synchronization Properties of Networks of Cortical OscillatorsNeural Computation, 1998
- Frequency Control in Synchronized Networks of Inhibitory NeuronsJournal of Computational Neuroscience, 1998
- Gamma Oscillations in the Entorhinal Cortex of the Freely Behaving RatJournal of Neuroscience, 1998
- Phase response characteristics of model neurons determine which patterns are expressed in a ring circuit model of gait generationBiological Cybernetics, 1997
- Differential electroresponsiveness of stellate and pyramidal-like cells of medial entorhinal cortex layer IIJournal of Neurophysiology, 1993
- Subthreshold Na+-dependent theta-like rhythmicity in stellate cells of entorhinal cortex layer IINature, 1989