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Action-potential discharge in hippocampal CA1 pyramidal neurons: current source-density analysis.

Publication ,  Journal Article
Richardson, TL; Turner, RW; Miller, JJ
Published in: J Neurophysiol
November 1987

1. The site of origin of evoked action-potential discharge in hippocampal CA1 pyramidal neurons was investigated using the in vitro rat hippocampal slice preparation. 2. Action-potential discharge in pyramidal cells was evoked by stimulation of efferent pyramidal cell fibers in the alveus (antidromic) or afferent synaptic inputs in stratum oriens (SO) or stratum radiatum (SR). Laminar profiles of evoked extracellular field potentials were recorded at 25-micron intervals along the entire dendrosomatic axis of the pyramidal cell and a one-dimensional current source-density analysis was applied. 3. Suprathreshold stimulation of the alveus evoked an antidromic population spike response and current sink with the shortest peak latency in stratum pyramidale or proximal stratum oriens. A biphasic positive/negative potential associated with a current source/sink was recorded in dendritic regions, with both components increasing in peak latency with distance from the border of stratum pyramidale. 4. Suprathreshold stimulation of SO or SR evoked a population spike response superimposed upon the underlying synaptic depolarization at all levels of the dendrosomatic axis. The shortest latency population spike and current sink were recorded in stratum pyramidale or proximal stratum oriens. In dendritic regions, a biphasic positive/negative potential and current source/sink conducted with increasing latency from the border of stratum pyramidale. 5. A direct comparison of alvear- and SR-evoked responses revealed a basic similarity in population spike potentials and associated sink/source relationships at both the somatic and dendritic level and a similar shift in peak latency of spike components along the pyramidal cell axis. 6. It is concluded that the initial site for generation of a spike along the dendrosomatic axis of the pyramidal cell following antidromic or orthodromic stimulation is in the region of the cell body layer (soma or axon hillock). Action-potential discharge in dendritic regions then occurs as the result of a subsequent retrograde spike invasion of basal and apical dendritic arborizations.

Duke Scholars

Published In

J Neurophysiol

DOI

ISSN

0022-3077

Publication Date

November 1987

Volume

58

Issue

5

Start / End Page

981 / 996

Location

United States

Related Subject Headings

  • Rats, Inbred Strains
  • Rats
  • Pyramidal Tracts
  • Neurons
  • Neurology & Neurosurgery
  • Models, Neurological
  • Male
  • Hippocampus
  • Evoked Potentials
  • Electric Stimulation
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Richardson, T. L., Turner, R. W., & Miller, J. J. (1987). Action-potential discharge in hippocampal CA1 pyramidal neurons: current source-density analysis. J Neurophysiol, 58(5), 981–996. https://doi.org/10.1152/jn.1987.58.5.981
Richardson, T. L., R. W. Turner, and J. J. Miller. “Action-potential discharge in hippocampal CA1 pyramidal neurons: current source-density analysis.J Neurophysiol 58, no. 5 (November 1987): 981–96. https://doi.org/10.1152/jn.1987.58.5.981.
Richardson TL, Turner RW, Miller JJ. Action-potential discharge in hippocampal CA1 pyramidal neurons: current source-density analysis. J Neurophysiol. 1987 Nov;58(5):981–96.
Richardson, T. L., et al. “Action-potential discharge in hippocampal CA1 pyramidal neurons: current source-density analysis.J Neurophysiol, vol. 58, no. 5, Nov. 1987, pp. 981–96. Pubmed, doi:10.1152/jn.1987.58.5.981.
Richardson TL, Turner RW, Miller JJ. Action-potential discharge in hippocampal CA1 pyramidal neurons: current source-density analysis. J Neurophysiol. 1987 Nov;58(5):981–996.

Published In

J Neurophysiol

DOI

ISSN

0022-3077

Publication Date

November 1987

Volume

58

Issue

5

Start / End Page

981 / 996

Location

United States

Related Subject Headings

  • Rats, Inbred Strains
  • Rats
  • Pyramidal Tracts
  • Neurons
  • Neurology & Neurosurgery
  • Models, Neurological
  • Male
  • Hippocampus
  • Evoked Potentials
  • Electric Stimulation