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PMID: 9279811 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Spatiotemporal patterns of gamma frequency oscillations tetanically induced in the rat hippocampal slice.

The Journal of physiology ·Vol. 502 ( Pt 3) ·1997-08-01 ·Pages 591-607

Whittington MA, Stanford IM, Colling SB, Jefferys JG, Traub RD

Abstract

1. We used transverse and longitudinal rat hippocampal slices to study the synchronization of gamma frequency (> 20 Hz) oscillations, across distances of up to 4.5 mm. gamma oscillations were evoked in the CA1 region by tetanic stimulation at one or two sites simultaneously, and were associated with population spikes. Tetanic stimuli that were strong enough to induce oscillations were associated with depolarization of both pyramidal cells and interneurones, largely produced by activation of metabotropic glutamate receptors. 2. Computer simulations of gamma oscillations were also performed in a model with pyramidal cells and interneurones, arranged in a chain of five cell groups. This model had suggested previously that interneurone networks alone could generate synchronous gamma oscillations locally, but that pyramidal cell firing, by inducing spike doublets in interneurones, was necessary for the occurrence of highly correlated oscillations with small phase lag (< 2.5 ms), in a distributed network possessing long axon conduction delays. 3. In both experiment and model, pyramidal cell spikes occurred in phase with local population spikes, as did the first spike of the interneurone doublet. 4. The conductance of the interneurone alpha-amino-3-hydroxy-5-methyl-4-isoxazole propionic acid (AMPA) receptor-mediated conductance was manipulated in the model, while the relation between oscillations at opposite ends of the chain was examined. When the conductance was large enough for doublet firing to be synaptically induced in interneurones, oscillation phase lags were < 2.25 ms across the chain. As predicted, experimental blockade of AMPA receptors resulted in increased phase lags between two sites oscillating simultaneously, compared with control conditions. 5. Both in model and in experiment, when stimuli to the two ends of the network were slightly different, cross-network synchronization occurred with a shorter phase lag at high frequencies than at lower frequencies. 6. These data suggest that, while interneurone networks alone can generate locally synchronized gamma oscillations, firing of pyramidal cells, and the synaptically induced doublet firing in interneurones, contribute to the stability and tight synchrony of the oscillations in distributed networks.

MeSH Terms
Action Potentials/drug effects,physiology Animals Electric Stimulation Electrophysiology Excitatory Amino Acid Antagonists/pharmacology Hippocampus/cytology,physiology Interneurons/chemistry,physiology Male Organ Culture Techniques Periodicity Potassium/pharmacology Pyramidal Cells/chemistry,physiology Quinoxalines/pharmacology Rats Rats, Sprague-Dawley Receptors, AMPA/antagonists & inhibitors,physiology
Chemicals
Excitatory Amino Acid Antagonists Quinoxalines Receptors, AMPA 2,3-dioxo-6-nitro-7-sulfamoylbenzo(f)quinoxaline Potassium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Whittington M A
Department of Physiology and Biophysics, Imperial College School of Medicine at St Mary's, London, UK.
Stanford I M
Colling S B
Jefferys J G
Traub R D
References (39)
39 references, click to expand
  1. Electrophysiological identification of horizontal synaptic connections in rat visual cortex in vitro.
    Neurosci Lett. 1993 Dec 12;163(2):211-4 PMID: 8309635
  2. Relative abundance of subunit mRNAs determines gating and Ca2+ permeability of AMPA receptors in principal neurons and interneurons in rat CNS.
    Neuron. 1995 Jul;15(1):193-204 PMID: 7619522
  3. Magnetic field tomography of coherent thalamocortical 40-Hz oscillations in humans.
    Proc Natl Acad Sci U S A. 1991 Dec 15;88(24):11037-41 PMID: 1763020
  4. Thalamic modulation of high-frequency oscillating potentials in auditory cortex.
    Nature. 1996 Sep 5;383(6595):78-81 PMID: 8779725
  5. How precise is neuronal synchronization?
    Neural Comput. 1995 May;7(3):469-85 PMID: 8935960
  6. A mechanism for generation of long-range synchronous fast oscillations in the cortex.
    Nature. 1996 Oct 17;383(6601):621-4 PMID: 8857537
  7. Visual feature integration and the temporal correlation hypothesis.
    Annu Rev Neurosci. 1995;18:555-86 PMID: 7605074
  8. Intracellular recording from hippocampal CA1 interneurons before and after development of long-term potentiation.
    Brain Res. 1987 Sep 1;419(1-2):32-8 PMID: 3676735
  9. Synchronization of oscillatory neuronal responses between striate and extrastriate visual cortical areas of the cat.
    Proc Natl Acad Sci U S A. 1991 Jul 15;88(14):6048-52 PMID: 2068083
  10. Synaptic excitation of inhibitory cells by single CA3 hippocampal pyramidal cells of the guinea-pig in vitro.
    J Physiol. 1990 Sep;428:61-77 PMID: 2231426
  11. Mechanisms of selective long-term potentiation of excitatory synapses in stratum oriens/alveus interneurons of rat hippocampal slices.
    J Neurophysiol. 1995 Feb;73(2):810-9 PMID: 7760136
  12. Properties of unitary IPSPs evoked by anatomically identified basket cells in the rat hippocampus.
    Eur J Neurosci. 1995 Sep 1;7(9):1989-2004 PMID: 8528474
  13. Disposition of the slab-like modules formed by axon branches originating from single CA1 pyramidal neurons in the rat hippocampus.
    J Comp Neurol. 1990 Jan 22;291(4):509-19 PMID: 2329188
  14. Physiological properties of anatomically identified axo-axonic cells in the rat hippocampus.
    J Neurophysiol. 1994 Apr;71(4):1289-307 PMID: 8035215
  15. Synchronized oscillations in interneuron networks driven by metabotropic glutamate receptor activation.
    Nature. 1995 Feb 16;373(6515):612-5 PMID: 7854418
  16. Local circuit interactions between oriens/alveus interneurons and CA1 pyramidal cells in hippocampal slices: electrophysiology and morphology.
    J Neurosci. 1987 Jul;7(7):1979-93 PMID: 3612227
  17. Simulation of gamma rhythms in networks of interneurons and pyramidal cells.
    J Comput Neurosci. 1997 Apr;4(2):141-50 PMID: 9154520
  18. Excitatory Connections Between CA1 Pyramidal Cells Revealed by Spike Triggered Averaging in Slices of Rat Hippocampus are Partially NMDA Receptor Mediated.
    Eur J Neurosci. 1991;3(6):587-601 PMID: 12106490
  19. Gamma (40-100 Hz) oscillation in the hippocampus of the behaving rat.
    J Neurosci. 1995 Jan;15(1 Pt 1):47-60 PMID: 7823151
  20. Oscillatory responses in cat visual cortex exhibit inter-columnar synchronization which reflects global stimulus properties.
    Nature. 1989 Mar 23;338(6213):334-7 PMID: 2922061
  21. Pyramidal cell-to-inhibitory cell spike transduction explicable by active dendritic conductances in inhibitory cell.
    J Comput Neurosci. 1995 Dec;2(4):291-8 PMID: 8746403
  22. Low-calcium field burst discharges of CA1 pyramidal neurones in rat hippocampal slices.
    J Physiol. 1984 Sep;354:185-201 PMID: 6481633
  23. Analysis of gamma rhythms in the rat hippocampus in vitro and in vivo.
    J Physiol. 1996 Jun 1;493 ( Pt 2):471-84 PMID: 8782110
  24. Electrophysiological evidence from glutamate microapplications for local excitatory circuits in the CA1 area of rat hippocampal slices.
    J Neurophysiol. 1988 Jan;59(1):110-23 PMID: 2893830
  25. A branching dendritic model of a rodent CA3 pyramidal neurone.
    J Physiol. 1994 Nov 15;481 ( Pt 1):79-95 PMID: 7853251
  26. Secondary range rhythmic spiking in hippocampal neurons.
    Brain Res. 1978 Jun 23;149(1):247-50 PMID: 656957
  27. Extracellular free calcium and potassium during paroxsmal activity in the cerebral cortex of the cat.
    Exp Brain Res. 1977 Mar 30;27(3-4):237-43 PMID: 880984
  28. Local circuit synaptic interactions in hippocampal brain slices.
    J Neurosci. 1981 Mar;1(3):318-22 PMID: 7264721
  29. G protein-coupled receptors mediate a fast excitatory postsynaptic current in CA3 pyramidal neurons in hippocampal slices.
    J Neurosci. 1995 Dec;15(12):8320-30 PMID: 8613765
  30. Electrophysiological mapping of GABAA receptor-mediated inhibition in adult rat somatosensory cortex.
    J Neurophysiol. 1996 Apr;75(4):1589-600 PMID: 8727398
  31. Synchronization of fast (30-40 Hz) spontaneous oscillations in intrathalamic and thalamocortical networks.
    J Neurosci. 1996 Apr 15;16(8):2788-808 PMID: 8786454
  32. Afterpotential generation in hippocampal pyramidal cells.
    J Neurophysiol. 1981 Jan;45(1):86-97 PMID: 6259299
  33. Subunit composition at the single-cell level explains functional properties of a glutamate-gated channel.
    Neuron. 1994 Feb;12(2):383-8 PMID: 7509161
  34. Hippocampal CA1 interneurons: an in vivo intracellular labeling study.
    J Neurosci. 1995 Oct;15(10):6651-65 PMID: 7472426
  35. Long-range synchronization of oscillatory light responses in the cat retina and lateral geniculate nucleus.
    Nature. 1996 Feb 22;379(6567):728-32 PMID: 8602219
  36. Synchronization of fast (30-40 Hz) spontaneous cortical rhythms during brain activation.
    J Neurosci. 1996 Jan;16(1):392-417 PMID: 8613806
  37. Stimulus-specific fast oscillations at zero phase between visual areas V1 and V2 of awake monkey.
    Neuroreport. 1994 Nov 21;5(17):2273-7 PMID: 7881044
  38. Coherent 25- to 35-Hz oscillations in the sensorimotor cortex of awake behaving monkeys.
    Proc Natl Acad Sci U S A. 1992 Jun 15;89(12):5670-4 PMID: 1608977
  39. Permeation of calcium through excitatory amino acid receptor channels in cultured rat hippocampal neurones.
    J Physiol. 1990 May;424:151-65 PMID: 1697342
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1997-08-01
Pages
591-607
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1159531
Subset
IM
Grants
Wellcome Trust · United Kingdom
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