Feedforward and feedback inhibition of hippocampal principal cell activity evoked by perforant path stimulation: GABA‐mediated mechanisms that regulate excitability In Vivo
- 1 January 1991
- journal article
- research article
- Published by Wiley in Hippocampus
- Vol. 1 (1) , 31-40
- https://doi.org/10.1002/hipo.450010105
Abstract
Hippocampal field potentials evoked by paired-pulse perforant path stimulation were used to identify normal feedforward and feedback inhibitory influences on hippocampal principal cells. Three distinct aspects of inhibitory function were identified in the dentate gyrus. They are: (1) first spike amplitude-dependent inhibition of the second spike, which at low stimulus frequency is primarily feedback in nature; (2) frequency-dependent inhibition of a single spike of the first spike of a pair, which occurs as stimulus frequency is increased from 0.1 to 1.0 Hz and which is primarily a reflection of feedforward inhibition; and (3) frequency-dependent inhibition of the second spike that is relatively independent of first spike amplitude and probably due to a combination of feedforward and feedback mechanisms. The results indicate that granule cell recurrent inhibition alone, evoked at low stimulus frequency, is relatively brief and weak. At higher frequencies, probably more relevant to physiological activity, feedforward inhibitory activity is recruited. The combination of feedforward and feedback mechanisms results in strong, maximal duration, granule cell inhibition. Similar frequency dependence of inhibition was not seen in area CA1 in response to ipsilateral perforant path stimulation since low frequency stimulation did not evoke CA1 spikes. CA3 stimulation did evoke large contralateral CA1 population spikes, but paired-pulse inhibition was weaker than that evoked by ipsilateral perforant path stimulation in terms of the duration of inhibition and the ability to suppress the development of epileptiform behavior. The identification of simple tests that reflect distinct inhibitory processes in vivo permits similar studies to be conducted in vitro to determine how to preserve inhibitory processes for cellular studies of normal and human epileptic tissue in which the state of excitatory–inhibitory balance is the subject. These results also form the basis for the interpretation of the following study (Sloviter, 1991), which addresses the relationship between selective dentate interneuron loss and the pathophysiology that accompanies it.Keywords
This publication has 22 references indexed in Scilit:
- Permanently altered hippocampal structure, excitability, and inhibition after experimental status epilepticus in the rat: The “dormant basket cell” hypothesis and its possible relevance to temporal lobe epilepsyHippocampus, 1991
- Decreased Hippocampal Inhibition and a Selective Loss of Interneurons in Experimental EpilepsyScience, 1987
- Feed-forward inhibition in the hippocampal formationProgress in Neurobiology, 1984
- Effects of EGTA on the Calcium-Activated Afterhyperpolarization in Hippocampal CA3 Pyramidal CellsScience, 1980
- Hippocampal seizures and failure of inhibitionCanadian Journal of Physiology and Pharmacology, 1979
- A golgi study of cell types in the hilar region of the hippocampus in the ratJournal of Comparative Neurology, 1978
- Cells of origin of entorhinal cortical afferents to the hippocampus and fascia dentata of the ratJournal of Comparative Neurology, 1976
- Nature and Distribution of Inhibition in a Simple Cortex (Dentate Area)Acta Physiologica Scandinavica, 1968
- Entorhinal Activation of Dentate Granule CellsActa Physiologica Scandinavica, 1966
- Commissural connections of the hippocampal region in the rat, with special reference to their mode of terminationJournal of Comparative Neurology, 1956