Predicting spike timing of neocortical pyramidal neurons by simple threshold models
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BORIS DOI
Publisher DOI
PubMed ID
16633938
Description
Neurons generate spikes reliably with millisecond precision if driven by a fluctuating current--is it then possible to predict the spike timing knowing the input? We determined parameters of an adapting threshold model using data recorded in vitro from 24 layer 5 pyramidal neurons from rat somatosensory cortex, stimulated intracellularly by a fluctuating current simulating synaptic bombardment in vivo. The model generates output spikes whenever the membrane voltage (a filtered version of the input current) reaches a dynamic threshold. We find that for input currents with large fluctuation amplitude, up to 75% of the spike times can be predicted with a precision of +/-2 ms. Some of the intrinsic neuronal unreliability can be accounted for by a noisy threshold mechanism. Our results suggest that, under random current injection into the soma, (i) neuronal behavior in the subthreshold regime can be well approximated by a simple linear filter; and (ii) most of the nonlinearities are captured by a simple threshold process.
Date of Publication
2006
Publication Type
Article
Language(s)
en
Contributor(s)
Jolivet, Renaud | |
Rauch, Alexander | |
Gerstner, Wulfram |
Additional Credits
Series
Journal of computational neuroscience
Publisher
Springer
ISSN
0929-5313
ISBN
16633938
Access(Rights)
open.access