Calcium Time Course as a Signal for Spike-Timing–Dependent Plasticity
Open Access
- 1 May 2005
- journal article
- research article
- Published by American Physiological Society in Journal of Neurophysiology
- Vol. 93 (5) , 2600-2613
- https://doi.org/10.1152/jn.00803.2004
Abstract
Calcium has been proposed as a postsynaptic signal underlying synaptic spike-timing–dependent plasticity (STDP). We examine this hypothesis with computational modeling based on experimental results from hippocampal cultures, some of which are presented here, in which pairs and triplets of pre- and postsynaptic spikes induce potentiation and depression in a temporally asymmetric way. Specifically, we present a set of model biochemical detectors, based on plausible molecular pathways, which make direct use of the time course of the calcium signal to reproduce these experimental STDP results. Our model features a modular structure, in which long-term potentiation (LTP) and depression (LTD) components compete to determine final plasticity outcomes; one aspect of this competition is a veto through which appropriate calcium time courses suppress LTD. Simulations of our model are also shown to be consistent with classical LTP and LTD induced by several presynaptic stimulation paradigms. Overall, our results provide computational evidence that, while the postsynaptic calcium time course contains sufficient information to distinguish various experimental long-term plasticity paradigms, small changes in the properties of back-propagation of action potentials or in synaptic dynamics can alter the calcium time course in ways that will significantly affect STDP induction by any detector based exclusively on postsynaptic calcium. This may account for the variability of STDP outcomes seen within hippocampal cultures, under repeated application of a single experimental protocol, as well as for that seen in multiple spike experiments across different systems.Keywords
This publication has 68 references indexed in Scilit:
- Biophysical model of synaptic plasticity dynamicsBiological Cybernetics, 2003
- Spatiotemporal specificity of synaptic plasticity: cellular rules and mechanismsBiological Cybernetics, 2002
- Temporal asymmetry in spike timing-dependent synaptic plasticityPhysiology & Behavior, 2002
- Dynamical model of long-term synaptic plasticityProceedings of the National Academy of Sciences, 2002
- Distance-Dependent Increase in AMPA Receptor Number in the Dendrites of Adult Hippocampal CA1 Pyramidal NeuronsJournal of Neuroscience, 2001
- Synaptic Modification by Correlated Activity: Hebb's Postulate RevisitedAnnual Review of Neuroscience, 2001
- Synaptic plasticity: taming the beastNature Neuroscience, 2000
- Emergent Properties of Networks of Biological Signaling PathwaysScience, 1999
- Synaptic Modifications in Cultured Hippocampal Neurons: Dependence on Spike Timing, Synaptic Strength, and Postsynaptic Cell TypeJournal of Neuroscience, 1998
- Synaptic plasticity in a cerebellum-like structure depends on temporal orderNature, 1997