Neuronal synchrony: Peculiarity and generality
- 1 September 2008
- journal article
- research article
- Published by AIP Publishing in Chaos: An Interdisciplinary Journal of Nonlinear Science
- Vol. 18 (3), 037119
- https://doi.org/10.1063/1.2949925
Abstract
Synchronization in neuronal systems is a new and intriguing application of dynamical systems theory. Why are neuronal systems different as a subject for synchronization? (1) Neurons in themselves are multidimensional nonlinear systems that are able to exhibit a wide variety of different activity patterns. Their “dynamical repertoire” includes regular or chaotic spiking, regular or chaotic bursting, multistability, and complex transient regimes. (2) Usually, neuronal oscillations are the result of the cooperative activity of many synaptically connected neurons (a neuronal circuit). Thus, it is necessary to consider synchronization between different neuronal circuits as well. (3) The synapses that implement the coupling between neurons are also dynamical elements and their intrinsic dynamics influences the process of synchronization or entrainment significantly. In this review we will focus on four new problems: (i) the synchronization in minimal neuronal networks with plastic synapses (synchronization with activity dependent coupling), (ii) synchronization of bursts that are generated by a group of nonsymmetrically coupled inhibitory neurons (heteroclinic synchronization), (iii) the coordination of activities of two coupled neuronal networks (partial synchronization of small composite structures), and (iv) coarse grained synchronization in larger systems (synchronization on a mesoscopic scale).Keywords
This publication has 78 references indexed in Scilit:
- Gamma Oscillations and Stimulus SelectionNeural Computation, 2008
- Multistability in the Kuramoto model with synaptic plasticityPhysical Review E, 2007
- Synchronization and coordination of sequences in two neural ensemblesPhysical Review E, 2005
- Dynamical Motifs: Building Blocks of Complex Dynamics in Sparsely Connected Random NetworksPhysical Review Letters, 2004
- Oscillatory nature of human basal ganglia activity: Relationship to the pathophysiology of Parkinson's diseaseMovement Disorders, 2002
- Modeling of spiking-bursting neural behavior using two-dimensional mapPhysical Review E, 2002
- Spike-train bifurcation scaling in two coupled chaotic neuronsPhysical Review E, 1997
- Regulation of Synaptic Efficacy by Coincidence of Postsynaptic APs and EPSPsScience, 1997
- Sexual dimorphism of auditory activity in the zebra finch song systemBehavioral and Neural Biology, 1985
- A model of neuronal bursting using three coupled first order differential equationsProceedings of the Royal Society of London. B. Biological Sciences, 1984