Activity Patterns of a Slow Synapse Network Predicted by Explicitly Averaging Spike Dynamics
- 1 July 1992
- journal article
- Published by MIT Press in Neural Computation
- Vol. 4 (4), 534-545
- https://doi.org/10.1162/neco.1992.4.4.534
Abstract
When postsynaptic conductance varies slowly compared to the spike generation process, a straightforward averaging scheme can be used to reduce the system's complexity. Our model consists of a Hodgkin-Huxley-like membrane description for each cell; synaptic activation is described by first order kinetics, with slow rates, in which the equilibrium activation is a sigmoidal function of the presynaptic voltage. Our work concentrates on a two-cell network and it applies qualitatively to the activity patterns, including bistable behavior, recently observed in simple in vitro circuits with slow synapses (Kleinfeld et al. 1990). The fact that our averaged system is derived from a realistic biophysical model has important consequences. In particular, it can preserve certain hysteresis behavior near threshold that is not represented in a simple ad hoc sigmoidal input-output network. This behavior enables a coupled pair of cells, one excitatory and one inhibitory, to generate an alternating burst rhythm even though neither cell has fatiguing properties.Keywords
This publication has 8 references indexed in Scilit:
- In Vitro Reconstruction of the Respiratory Central Pattern Generator of the Mollusk LymnaeaScience, 1990
- Circuits constructed from identified Aplysia neurons exhibit multiple patterns of persistent activityBiophysical Journal, 1990
- Analysis of metabolic systems with complex slow and fast dynamicsBulletin of Mathematical Biology, 1989
- Threshold for repetitive activity for a slow stimulus ramp: a memory effect and its dependence on fluctuationsBiophysical Journal, 1988
- Computing with Neural Circuits: A ModelScience, 1986
- On Different Mechanisms for Membrane Potential BurstingPublished by Springer Nature ,1986
- Motor Pattern Production in Reciprocally Inhibitory Neurons Exhibiting Postinhibitory ReboundScience, 1974
- Excitatory and Inhibitory Interactions in Localized Populations of Model NeuronsBiophysical Journal, 1972