Scinovex
articleTop 10% cited

Alternating and Synchronous Rhythms in Reciprocally Inhibitory Model Neurons

Neural Computation · 1992 · Vol. 4(1) · pp. 84–97
Xiao‐Jing WangJohn Rinzel

Abstract

We study pacemaker rhythms generated by two nonoscillatory model cells that are coupled by inhibitory synapses. A minimal ionic model that exhibits postinhibitory rebound (PIR) is presented. When the post-synaptic conductance depends instantaneously on presynaptic potential the classical alternating rhythm is obtained. Using phase-plane analysis we identify two underlying mechanisms, “release” and “escape,” for the out-of-phase oscillation. When the postsynaptic conductance is not instantaneous but decays slowly, the two cells can oscillate synchronously with no phase difference. In each case, different stable activity patterns can coexist over a substantial parameter range.

Neural dynamics and brain functionstochastic dynamics and bifurcationNonlinear Dynamics and Pattern FormationInhibitory postsynaptic potentialRhythmConductanceOscillation (cell signaling)Postsynaptic potentialPhysicsNeurosciencePhase (matter)Phase response curveChemistry
Citations
592
FWCI
7.06
field-weighted impact
References
14
Percentile
97%
vs. same field & year
Citations per year
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.