Presynaptic Electrical Coupling in Aplysia : Effects on Postsynaptic Chemical Transmission
- 25 February 1977
- journal article
- research article
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 195 (4280) , 790-792
- https://doi.org/10.1126/science.189390
Abstract
The large cholinergic interneuron L10 in the abdominal ganglion of Aplysia mediates both chemical and electrical synaptic transmission. The amplitudes of postsynaptic potentials produced by different branches of L10 are differentially affected when the electrically coupled neuron L20 is depolarized or hyperpolarized. Polarizations applied to L20 are transmitted to L10 branches by the "presynaptic"electrical synapse. Depolarization increases the amplitude of the postsynaptic potential, while hyperpolarization has the opposite effect. The differential effects occur because current supplied through the electrical synapse undergoes more electrotonic decrement for the distant branches than for branches closer to the electrical synapse. These findings indicate that the presynaptic electrically coupled neuron may have an integrative role in the modulation of chemical synaptic efficacy mediated by L10.This publication has 16 references indexed in Scilit:
- Synaptic transfer at a vertebrate central nervous system synapse.The Journal of Physiology, 1975
- Heterosynaptic facilitation in the giant cell of Aplysia.The Journal of Physiology, 1975
- Matching of excitatory and inhibitory inputs to crustacean muscle fibers.Journal of Neurophysiology, 1971
- Organization of inhibition in abdominal ganglion of Aplysia. II. Posttetanic potentiation, heterosynaptic depression, and increments in frequency of inhibitory postsynaptic potentials.Journal of Neurophysiology, 1969
- Further Study of the Relationship between Pre- and Postsynaptic Potentials in the Squid Giant SynapseThe Journal of general physiology, 1968
- Transmission in invertebrate and vertebrate ganglia.Physiological Reviews, 1967
- Heterosynaptic Facilitation as a Distinct Mechanism in AplysiaNature, 1967
- Transmitter Release at the Squid Giant Synapse in the Presence of TetrodotoxinNature, 1966
- Electrical Changes in Pre- and Postsynaptic Axons of the Giant Synapse of Loligo The Journal of general physiology, 1962
- A study on the mechanism of impulse transmission across the giant synapse of the squidThe Journal of Physiology, 1958