Glutamate-induced long-term potentiation of the frequency of miniature synaptic currents in cultured hippocampal neurons
- 1 May 1992
- journal article
- Published by Springer Nature in Nature
- Vol. 357 (6374) , 134-139
- https://doi.org/10.1038/357134a0
Abstract
Glutamate application at synapses between hippocampal neurons in culture produces long-term potentiation of the frequency of spontaneous miniature synaptic currents, together with long-term potentiation of evoked synaptic currents. The mini frequency potentiation is initiated postsynaptically and requires activity of NMDA receptors. Although the frequency of unitary quantal responses increases strongly, their amplitude remains little changed with potentiation. Tests of postsynaptic responsiveness rule out recruitment of latent glutamate receptor clusters. Thus, postsynaptic induction can lead to enhancement of presynaptic transmitter release. The sustained potentiation of mini frequency is expressed even in the absence of Ca2+ entry into presynaptic terminals.Keywords
This publication has 51 references indexed in Scilit:
- Postsynaptic contribution to long-term potentiation revealed by the analysis of miniature synaptic currentsNature, 1992
- Quantal analysis of excitatory synaptic action and depression in hippocampal slicesNature, 1991
- Reevaluating the constraints on hypotheses regarding LTP expressionHippocampus, 1991
- Postsynaptic factors control the duration of synaptic enhancement in area CA1 of the hippocampusNeuron, 1991
- Presynaptic enhancement of synaptic transmission in hippocampal cell cultures by phorbol estersBrain Research, 1990
- Quisqualate receptor-mediated depression of calcium currents in hippocampal neuronsNeuron, 1990
- Postsynaptic Calcium Is Sufficient for Potentiation of Hippocampal Synaptic TransmissionScience, 1988
- Electrophysiological studies of NMDA receptorsTrends in Neurosciences, 1987
- Activation of protein kinase C augments evoked transmitter releaseNature, 1987
- Effects of Black Widow Spider Venom on the Frog Neuromuscular Junction: Effects on End-plate Potential, Miniature End-plate Potential and Nerve Terminal SpikeNature, 1970