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PMID: 8301352 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The role of presynaptic calcium in short-term enhancement at the hippocampal mossy fiber synapse.

Regehr WG, Delaney KR, Tank DW

Abstract

The mossy fiber synapse between dentate granule cells and CA3 pyramidal cells in the guinea pig hippocampus shows a robust short-term synaptic enhancement. We have simultaneously measured presynaptic residual free calcium ([Ca2+]i) and postsynaptic field potentials at this synapse to examine the role of [Ca2+]i in this enhancement. Single action potentials produced an increase in [Ca2+]i of 10-50 nM that decayed to resting levels with a time constant of about 1 sec. Trains of action potentials produced larger [Ca2+]i increases that returned more slowly to resting levels. Following the onset of moderate frequency stimulus trains (0.1-5 Hz), synaptic transmission and [Ca2+]i both increased and eventually plateaued. During the steady-state phase a linear relationship between [Ca2+]i and synaptic enhancement was observed. During the initial buildup, however, [Ca2+]i rose more rapidly than synaptic enhancement. Similarly, during the decay phase immediately following termination of a stimulus train, [Ca2+]i returned to prestimulus levels faster than synaptic enhancement. High concentrations of the calcium buffer EGTA in the presynaptic terminal slowed the buildup and decay of both [Ca2+]i and synaptic enhancement produced by stimulus trains. Under these conditions, the time course of [Ca2+]i and synaptic enhancement were well matched. This suggests that, despite the differences in kinetic rates observed for normal buffering conditions, increases in [Ca2+]i play a causal role in short-term enhancement. An increase in [Ca2+]i of 10-30 nM produced a twofold enhancement. We propose a simple kinetic model to explain these results. The model assumes that synaptic enhancement is controlled by a Ca-dependent first-order reaction. According to this scheme, a change in [Ca2+]i alters neurotransmitter release, but the slow kinetics of the underlying reaction introduces a temporal filter, producing a delay in the change in synaptic enhancement.

MeSH Terms
Animals Calcium/metabolism,physiology Edetic Acid/pharmacology Egtazic Acid/pharmacology Electric Stimulation Fluorescent Dyes Fura-2/analogs & derivatives Guinea Pigs Hippocampus/physiology In Vitro Techniques Kinetics Mathematics Nerve Endings/drug effects,physiology Nerve Fibers/physiology Pyramidal Tracts/drug effects,physiology Synapses/drug effects,physiology Synaptic Transmission/physiology Temperature Time Factors
Chemicals
Fluorescent Dyes fura-2-am Egtazic Acid Edetic Acid Calcium Fura-2
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Regehr W G
AT&T Bell Laboratories, Murray Hill, New Jersey 07974.
Delaney K R
Tank D W
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
0270-6474
Published
1994-02-00
Pages
523-37
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6576812
Subset
IM
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