Feedback synaptic interaction in the dragonfly ocellar retina.
Open Access
- 1 February 1978
- journal article
- research article
- Published by Rockefeller University Press in The Journal of general physiology
- Vol. 71 (2) , 157-175
- https://doi.org/10.1085/jgp.71.2.157
Abstract
The intracellular response of the ocellar nerve dendrite, the second order neuron in the retina of the dragonfly ocellus, has been modified by application of various drugs and a model developed to explain certain features of that response. Curare blocked the response completely. Both picrotoxin and bicuculline eliminated the "off" overshoot. Bicuculline also decreased the size of response and the sensitivity. gamma-Aminobutyric acid (GABA), however, increased the size of response. The evidence indicates the possibility that the receptor transmitter is acetylcholine and is inhibitory to the ocellar nerve dendrite whereas the feedback transmitter from the ocellar nerve dendrite may be GABA and is facilitory to receptor transmitter release. The model of synaptic feedback interaction developed to be consistent with these results has certain important features. It suggests that the feedback transmitter is released in the dark to increase input sensitivity from receptors in response to dim light. This implies that the dark potential of the ocellar nerve dendrite may be determined by a dynamic equilibrium established by synaptic interaction between it and the receptor terminals. Such a system is also well suited to signalling phasic information about changes in level of illumination over a wide range of intensities, a characteristic which appears to be a significant feature of the dragonfly median ocellar response.This publication has 63 references indexed in Scilit:
- PERIPHERAL INHIBITION IN SKELETAL MUSCLE OF INSECTSJournal of Neurophysiology, 1965
- EFFECT OF DRUGS ON UPTAKE RELEASE AND METABOLISM OF H3-NOREPINEPHRINE IN RAT BRAIN1965
- SELF-STIMULATION OF THE BRAIN AND THE CENTRAL STIMULANT ACTION OF AMPHETAMINE.1964
- Spatial and Temporal Aspects of Retinal Inhibitory Interaction*†Journal of the Optical Society of America, 1963
- ELECTRON MICROSCOPY OF INNER PLEXIFORM LAYER OF RETINA IN CAT AND PIGEON1962
- Cholinergic Transmission Mechanisms for both Excitation and Inhibition in Molluscan Central SynapsesNature, 1961
- Mortality of Aquatic Insects and Fishes Caused by Use of Latex Tubing in Experimental ApparatusScience, 1957
- The specific ionic conductances and the ionic movements across the motoneuronal membrane that produce the inhibitory post‐synaptic potentialThe Journal of Physiology, 1955
- Changes in end‐plate activity produced by pre‐synaptic polarizationThe Journal of Physiology, 1954
- Release of acetylcholine at voluntary motor nerve endingsThe Journal of Physiology, 1936