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PMID: 6207861 Published · ppublish English Journal Article

Quantitative analysis of electrical properties of dendritic spines.

Biological cybernetics ·Vol. 50 ·No. 6 ·1984-00-00 ·Pages 447-54

Kawato M, Hamaguchi T, Murakami F, Tsukahara N

Abstract

Several suggestions have been made with regard to the functional significance of dendritic spines in connection with synaptic plasticity. We have shown that for a constant synaptic current, when the synaptic resistance is large compared to the spine-stem resistance, a morphological change in the spine does not produce a marked change in the postsynaptic potential (PSP). When the synaptic resistance is comparable to the spine-stem impedance a morphological change in the spine can induce changes in the synaptic current and the PSP due to the so-called nonlinear effect to the synapse (Kawato and Tsukahara, 1983, 1984). Consequently, in a study of the electrical properties of dendritic spines the input impedance of the parent dendrite, the spinestalk conductance and the conductance change associated with synaptic activity must be considered. We quantitatively estimated all three factors. By comparing electrophysiological data with morphological data, we estimated the synaptic conductance which causes corticorubral EPSP. Its maximum amplitude was 43 nS with a time-to-peak value of 0.3 ms. With this value, the effects of the spine were examined using an improved algorithm based on that of Butz and Cowan (1974). It uses a three-dimensional morphology of the rubrospinal (RS) neurons, which was reconstructed from serial sections containing HRP-filled RS cells. As the spine shortens, the amplitude of the EPSP becomes considerably larger, but its time-to-peak value does not markedly change. Moreover, if unitary EPSP in the RS cell is produced by the activation of several synaptic terminals a morphological change of the spine has a smaller effect on the EPSPs.

MeSH Terms
Animals Axonal Transport Dendrites/physiology Electric Conductivity Horseradish Peroxidase Models, Neurological Neuronal Plasticity Spinal Cord/physiology Synapses/physiology
Chemicals
Horseradish Peroxidase
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Kawato M
Hamaguchi T
Murakami F
Tsukahara N
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30 references, click to expand
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Article Info
Journal
Biological cybernetics
Abbr.
Biol Cybern
ISSN
0340-1200
Published
1984-00-00
Pages
447-54
Language
English
Region
Germany
NLM ID
7502533
Subset
IM
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