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PMID: 9464925 Published · ppublish English Journal Article

Relation between dendritic Ca2+ levels and the polarity of synaptic long-term modifications in rat visual cortex neurons.

The European journal of neuroscience ·Vol. 9 ·No. 11 ·1997-11-00 ·Pages 2309-22

Hansel C, Artola A, Singer W

Abstract

Long-term changes of synaptic efficacy, in particular when they are use-dependent, are candidate mechanisms for the storage of information in the nervous system. In a variety of brain structures, including the neocortex and hippocampus, synapses are susceptible to long-term potentiation (LTP) and long-term depression (LTD). It has been hypothesized that the polarity of the synaptic gain change depends on the amplitude of the postsynaptic [Ca2+]i rise, the threshold for the induction of LTD being lower than that for the induction of LTP. To test this assumption, we characterized Ca2+ signals in layer II/III pyramidal cells of rat visual cortex slices, using the fluorescent Ca2+ indicator fura-2, during application of stimulation protocols that had been adjusted to reliably induce either LTP or LTD in cells not loaded with fura-2. At dendritic sites activated by the stimulated afferents the intracellular [Ca2+] concentration ([Ca2+]i) reached higher amplitudes and decayed more slowly with stimuli inducing LTP than with those inducing LTD. To directly analyse the functional significance of the observed difference in the Ca2+ signal amplitude, we examined whether a tetanization protocol suitable for the induction of LTP can be converted into a protocol inducing LTD by injecting the postsynaptic cells with Ca2+ chelators that reduce the concentration of effective free Ca2+. In the presence of fura-2 or BAPTA [bis(2-aminophenoxy) ethane-N,N,N',N'-tetraacetate], the stimulation protocol that would normally produce LTP induced either LTD or failed to induce synaptic modifications altogether. These results support the hypothesis that the amplitude of the postsynaptic rise in [Ca2+]i is a key factor in the determination of the polarity of synaptic gain change.

MeSH Terms
Animals Calcium/metabolism Cell Polarity/physiology Chelating Agents/pharmacology Dendrites/metabolism Electrophysiology Fluorescent Dyes Fura-2 Image Processing, Computer-Assisted In Vitro Techniques Long-Term Potentiation/physiology Neuronal Plasticity/physiology Neurons/metabolism Pyramidal Cells/drug effects,physiology Rats Rats, Wistar Synapses/metabolism Visual Cortex/cytology,metabolism
Chemicals
Chelating Agents Fluorescent Dyes Calcium Fura-2
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Hansel C
Max Planck Institute for Brain Research, Frankfurt, Germany.
Artola A
Singer W
Article Info
Journal
The European journal of neuroscience
Abbr.
Eur J Neurosci
ISSN
0953-816X
Published
1997-11-00
Pages
2309-22
Language
English
Region
France
NLM ID
8918110
Subset
IM
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