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Uncovering bifurcation patterns in cortical synapses

  • Michael Small*
  • , Hugh P. C. Robinson
  • , Ingo C. Kleppe
  • , Chi Kong Tse
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Individual cortical synapses are known to exhibit a very complex short-time dynamic behaviour in response to simple "naturalistic" stimulation. We describe a computational study of the experimentally obtained excitatory post-synaptic potential trains of individual cortical synapses. By adopting a new nonlinear modelling scheme we construct robust and repeatable models of the underlying dynamics. These models suggest that cortical synapses exhibit a wide range of either periodic or chaotic dynamics. For stimulus at a fixed rate our models predict that the response of the individual synapse will vary from a fixed point to periodic and chaotic, depending on the frequency of stimulus. Dynamics for individual synapses vary widely, suggesting that the individual behaviour of synapses is highly tuned and that the dynamic behaviour of even a small network of synapse-coupled neurons could be extremely varied. © 2009 Springer-Verlag.
Original languageEnglish
Pages (from-to)501-526
JournalJournal of Mathematical Biology
Volume61
Issue number4
Online published26 Nov 2009
DOIs
Publication statusPublished - Oct 2010
Externally publishedYes

Research Keywords

  • Bifurcation and chaos
  • Cortical synaptic transmission
  • Modelling
  • Nonlinear time series analysis

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