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Analysis of an autonomous phase model for neuronal parabolic bursting
Authors:S M Baert  J Rinzel  H Carrillo
Institution:(1) Department of Mathematics, Arizona State University, 85287-1804 Tempe, AZ, USA;(2) Mathematical Research Branch, NIDDK, National Institutes of Health, 20892 Bethesda, MD, USA;(3) Laboratorio de Dinamica No Lineal, Facultad de Ciencias, Universidad Nacional Autonoma de Mexico, 04510 Mexico, D.F.
Abstract:An understanding of the nonlinear dynamics of bursting is fundamental in unraveling structure-function relations in nerve and secretory tissue. Bursting is characterized by alternations between phases of rapid spiking and slowly varying potential. A simple phase model is developed to study endogenous parabolic bursting, a class of burst activity observed experimentally in excitable membrane. The phase model is motivated by Rinzel and Lee's dissection of a model for neuronal parabolic bursting (J. Math. Biol. 25, 653–675 (1987)). Rapid spiking is represented canonically by a one-variable phase equation that is coupled bi-directionally to a two-variable slow system. The model is analyzed in the slow-variable phase plane, using quasi steady-state assumptions and formal averaging. We derive a reduced system to explore where the full model exhibits bursting, steady-states, continuous and modulated spiking. The relative speed of activation and inactivation of the slow variables strongly influences the burst pattern as well as other dynamics. We find conditions of the bistability of solutions between continuous spiking and bursting. Although the phase model is simple, we demonstrate that it captures many dynamical features of more complex biophysical models.This research was partially supported by NSF-JOINT RESEARCH grant 8803573, grant from CONCYT and DGAPA(UNAM) Mexico for H. Carrillo, and for the S. M. Baer NSF DMS-9107538
Keywords:Excitable membrane  Bursting oscillations  Neuronal modeling
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