Large dense-core vesicle exocytosis and membrane recycling in the mossy fibre synapses of the rabbit hippocampus during epileptiform seizures
- 1 April 1981
- journal article
- research article
- Published by Springer Nature in Journal of Neurocytology
- Vol. 10 (2) , 201-219
- https://doi.org/10.1007/bf01257967
Abstract
The ultrastructure of the hippocampal mossy fibre layer was studied in ultrathin sections and freeze-fracture preparations of rabbits under deep Nembutal anaesthesia, after recovery from ether anaesthesia, and 40 min after a single injection of methoxypyridoxine, that is, during the second generalized seizure discharge. The giant mossy fibre boutons contain two types of vesicles: evenly distributed, small round clear vesicles (50 nm) and a few scattered large dense-core vesicles (100 nm). In rare instances fusion of dense-core vesicles with the presynaptic membrane was observed. No differences in the morphology of the mossy fibre synapses were found between anaesthetized and unanaesthetized animals. During epileptiform seizures, however, the size and shape of clear and dense-core vesicles varied greatly. The active synaptic zones were covered with large, core-containing omega profiles or bumps and indentations. Only dense-core vesicles seem to undergo exocytosis. A fusion of clear vesicles with the presynaptic membrane was not observed. Various explanations for the fact that only dense-core vesicles seem to undergo exocytosis are discussed. The hypothesis is put forward that in the mossy fibre bouton two morphologically and functionally distinct populations of synaptic vesicles exist and that only one of them undergoes visible irreversible exocytosis, whereas the majority, that is, the small vesicles discharge their transmitter by reversible fusion. After MP injection features of membrane retrieval were also prominent. Frequently, at the borders of the active synaptic zones coated membrane convolutes of both pre- and postsynaptic membranes had invaded the terminals as well as the postsynaptic spine. Thus, in contrast to electrical stimulation, the self-sustained seizures allow energy-expensive processes such as extensive membrane internalization to take place during the interictal pauses.This publication has 36 references indexed in Scilit:
- Double-walled coated vesicle formation: Evidence for massive and transient conjugate internalization of plasma membranes during cerebellar developmentJournal of Neurocytology, 1979
- Morphological studies of stimulated adrenergic axon varicosities in the mouse vas deferens.The Journal of cell biology, 1979
- Freeze-Etching NomenclatureScience, 1975
- Acetylcholine receptor turnover in membranes of developing muscle fibers.The Journal of cell biology, 1975
- Localization and Release of Glutamic Acid in Relation to the Hippocampal Mossy Fibre PathwayNature, 1973
- DEPLETION OF VESICLES FROM FROG NEUROMUSCULAR JUNCTIONS BY PROLONGED TETANIC STIMULATIONThe Journal of cell biology, 1972
- On synaptic vesicles, complex vesicles and dense projectionsBrain Research, 1970
- Mikropinozytose im ZentralnervensystemCell and tissue research, 1964
- Special axo‐dendritic synapses in the hippocampal cortex: Electron and light microscopic studies on the layer of mossy fibersJournal of Comparative Neurology, 1961
- Quantal components of the end‐plate potentialThe Journal of Physiology, 1954