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research article

Connectivity reflects coding: a model of voltage-based STDP with homeostasis

Clopath, Claudia
•
Büsing, Lars
•
Vasilaki, Eleni
Show more
2010
Nature Neuroscience

Electrophysiological connectivity patterns in cortex often have a few strong connections, which are sometimes bidirectional, among a lot of weak connections. To explain these connectivity patterns, we created a model of spike timing–dependent plasticity (STDP) in which synaptic changes depend on presynaptic spike arrival and the postsynaptic membrane potential, filtered with two different time constants. Our model describes several nonlinear effects that are observed in STDP experiments, as well as the voltage dependence of plasticity. We found that, in a simulated recurrent network of spiking neurons, our plasticity rule led not only to development of localized receptive fields but also to connectivity patterns that reflect the neural code. For temporal coding procedures with spatio-temporal input correlations, strong connections were predominantly unidirectional, whereas they were bidirectional under rate-coded input with spatial correlations only. Thus, variable connectivity patterns in the brain could reflect different coding principles across brain areas; moreover, our simulations suggested that plasticity is fast.

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Type
research article
DOI
10.1038/nn.2479
Web of Science ID

WOS:000274860100017

Author(s)
Clopath, Claudia
Büsing, Lars
Vasilaki, Eleni
Gerstner, Wulfram  
Date Issued

2010

Publisher

Nature Publishing Group

Published in
Nature Neuroscience
Volume

13

Issue

3

Start page

344

End page

352

Subjects

Timing-Dependent Plasticity

•

Long-Term Potentiation

•

Neurotransmitter Release Probability

•

Bidirectional Synaptic Plasticity

•

Neocortical Pyramidal Neurons

•

Dendritic Spikes

•

Induction

•

Ltd

•

Depolarization

•

Hippocampus

Editorial or Peer reviewed

NON-REVIEWED

Written at

EPFL

EPFL units
LCN  
Available on Infoscience
February 4, 2010
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/46432
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