Home LiteratureArticle Details
PMID: 10066901 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Passive electrotonic properties of rat hippocampal CA3 interneurones.

The Journal of physiology ·Vol. 515 ( Pt 3) ·1999-03-15 ·Pages 743-56

Chitwood RA, Hubbard A, Jaffe DB

Abstract

1. The linear membrane responses of CA3 interneurones were determined with the use of whole-cell patch recording methods. The mean input resistance (RN) for all cells in this study was 526 +/- 16 MOmega and the slowest membrane time constant (tau0) was 73 +/- 3 ms. 2. The three-dimensional morphology of 63 biocytin-labelled neurones was used to construct compartmental models. Specific membrane resistivity (Rm) and specific membrane capacitance (Cm) were estimated by fitting the linear membrane response. Acceptable fits were obtained for 24 CA3 interneurones. The mean Rm was 61.9 +/- 34.2 Omega cm2 and the mean Cm was 0.9 +/- 0.3 microF cm-2. Intracellular resistance (Ri) could not be resolved in this study. 3. Examination of voltage attenuation revealed a significantly low synaptic efficiency from most dendritic synaptic input locations to the soma. 4. Simulations of excitatory postsynaptic potentials (EPSPs) were analysed at both the site of synaptic input and at the soma. There was little variability in the depolarization at the soma from synaptic inputs placed at different locations along the dendritic tree. The EPSP amplitude at the site of synaptic input was progressively larger with distance from the soma, consistent with a progressive increase in input impedance. 5. The 'iso-efficiency' of spatially different synaptic inputs arose from two opposing factors: an increase in EPSP amplitude at the synapse with distance from the soma was opposed by a nearly equivalent increase in voltage attenuation. These simulations suggest that, in these particular neurones, the amplitude of EPSPs measured at the soma will not be significantly affected by the location of synaptic inputs.

MeSH Terms
Analysis of Variance Animals Excitatory Postsynaptic Potentials Hippocampus/physiology In Vitro Techniques Interneurons/physiology Lysine/analogs & derivatives Membrane Potentials Models, Neurological Patch-Clamp Techniques Rats Rats, Sprague-Dawley Synapses
Chemicals
biocytin Lysine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Chitwood R A
Division of Life Sciences, The University of Texas at San Antonio, San Antonio, TX 78249, USA.
Hubbard A
Jaffe D B
References (43)
43 references, click to expand
  1. Interneurons in the stratum lucidum of the rat hippocampus: an anatomical and electrophysiological characterization.
    J Comp Neurol. 1997 Sep 1;385(3):427-40 PMID: 9300769
  2. The NEURON simulation environment.
    Neural Comput. 1997 Aug 15;9(6):1179-209 PMID: 9248061
  3. Active dendrites reduce location-dependent variability of synaptic input trains.
    J Neurophysiol. 1997 Oct;78(4):2116-28 PMID: 9325379
  4. CA1 pyramidal to basket and bistratified cell EPSPs: dual intracellular recordings in rat hippocampal slices.
    J Physiol. 1998 Feb 15;507 ( Pt 1):201-17 PMID: 9490840
  5. Impact of spontaneous synaptic activity on the resting properties of cat neocortical pyramidal neurons In vivo.
    J Neurophysiol. 1998 Mar;79(3):1450-60 PMID: 9497424
  6. Determinants of voltage attenuation in neocortical pyramidal neuron dendrites.
    J Neurosci. 1998 May 15;18(10):3501-10 PMID: 9570781
  7. Synaptically evoked dendritic action potentials in rat neocortical pyramidal neurons.
    J Neurophysiol. 1998 May;79(5):2432-46 PMID: 9582218
  8. Passive electrical properties of ventral horn neurons in rat spinal cord slices.
    J Neurophysiol. 1998 May;79(5):2485-502 PMID: 9582222
  9. How many subtypes of inhibitory cells in the hippocampus?
    Neuron. 1998 May;20(5):983-93 PMID: 9620702
  10. Reliability and state dependence of pyramidal cell-interneuron synapses in the hippocampus: an ensemble approach in the behaving rat.
    Neuron. 1998 Jul;21(1):179-89 PMID: 9697862
  11. Dendritic hyperpolarization-activated currents modify the integrative properties of hippocampal CA1 pyramidal neurons.
    J Neurosci. 1998 Oct 1;18(19):7613-24 PMID: 9742133
  12. Theory of physiological properties of dendrites.
    Ann N Y Acad Sci. 1962 Mar 2;96:1071-92 PMID: 14490041
  13. Immunocytochemical investigation of L-glutamic acid decarboxylase in the rat hippocampal formation: the influence of transient cerebral ischemia.
    J Comp Neurol. 1989 Mar 1;281(1):40-53 PMID: 2925901
  14. A Fourier method for the analysis of exponential decay curves.
    Biophys J. 1976 Jan;16(1):27-41 PMID: 1244888
  15. Electrophysiological characterization of remote chemical synapses.
    J Neurophysiol. 1982 Apr;47(4):606-21 PMID: 7069456
  16. Insights into associative long-term potentiation from computational models of NMDA receptor-mediated calcium influx and intracellular calcium concentration changes.
    J Neurophysiol. 1990 May;63(5):1148-68 PMID: 2162921
  17. 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
  18. Perforated patch-clamp analysis of the passive membrane properties of three classes of hippocampal neurons.
    J Neurophysiol. 1992 Mar;67(3):508-29 PMID: 1578242
  19. Estimating the electrotonic structure of neurons with compartmental models.
    J Neurophysiol. 1992 Oct;68(4):1438-52 PMID: 1432091
  20. Matching dendritic neuron models to experimental data.
    Physiol Rev. 1992 Oct;72(4 Suppl):S159-86 PMID: 1438585
  21. Patch-clamp recordings from the soma and dendrites of neurons in brain slices using infrared video microscopy.
    Pflugers Arch. 1993 Jun;423(5-6):511-8 PMID: 8351200
  22. Active propagation of somatic action potentials into neocortical pyramidal cell dendrites.
    Nature. 1994 Jan 6;367(6458):69-72 PMID: 8107777
  23. Physiology, morphology and detailed passive models of guinea-pig cerebellar Purkinje cells.
    J Physiol. 1994 Jan 1;474(1):101-18 PMID: 8014888
  24. Dendritic attenuation of synaptic potentials and currents: the role of passive membrane properties.
    Trends Neurosci. 1994 Apr;17(4):161-6 PMID: 7517596
  25. Detailed passive cable models of whole-cell recorded CA3 pyramidal neurons in rat hippocampal slices.
    J Neurosci. 1994 Aug;14(8):4613-38 PMID: 8046439
  26. Electrotonic profiles of interneurons in stratum pyramidale of the CA1 region of rat hippocampus.
    J Neurophysiol. 1994 May;71(5):1948-58 PMID: 8064358
  27. Amplification and linearization of distal synaptic input to cortical pyramidal cells.
    J Neurophysiol. 1994 Dec;72(6):2743-53 PMID: 7897486
  28. Excitatory synaptic connections onto rat hippocampal inhibitory cells may involve a single transmitter release site.
    J Physiol. 1994 Dec 1;481 ( Pt 2):395-405 PMID: 7738832
  29. Morphometric and electrical properties of reconstructed hippocampal CA3 neurons recorded in vivo.
    J Comp Neurol. 1995 Jun 12;356(4):580-94 PMID: 7560268
  30. Amplification of EPSPs by axosomatic sodium channels in neocortical pyramidal neurons.
    Neuron. 1995 Nov;15(5):1065-76 PMID: 7576650
  31. Electrical consequences of spine dimensions in a model of a cortical spiny stellate cell completely reconstructed from serial thin sections.
    J Comput Neurosci. 1995 Jun;2(2):117-30 PMID: 8521282
  32. A model of spike initiation in neocortical pyramidal neurons.
    Neuron. 1995 Dec;15(6):1427-39 PMID: 8845165
  33. 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
  34. Synchronous oscillations in neuronal systems: mechanisms and functions.
    J Comput Neurosci. 1994 Jun;1(1-2):11-38 PMID: 8792223
  35. Axonal action-potential initiation and Na+ channel densities in the soma and axon initial segment of subicular pyramidal neurons.
    J Neurosci. 1996 Nov 1;16(21):6676-86 PMID: 8824308
  36. Active properties of neuronal dendrites.
    Annu Rev Neurosci. 1996;19:165-86 PMID: 8833440
  37. Membrane properties and synaptic currents evoked in CA1 interneuron subtypes in rat hippocampal slices.
    J Neurophysiol. 1996 Jul;76(1):1-16 PMID: 8836204
  38. Electrotonic architecture of hippocampal CA1 pyramidal neurons based on three-dimensional reconstructions.
    J Neurophysiol. 1996 Sep;76(3):1904-23 PMID: 8890303
  39. Dendritic Na+ channels amplify EPSPs in hippocampal CA1 pyramidal cells.
    J Neurophysiol. 1996 Oct;76(4):2181-91 PMID: 8899593
  40. The hyperpolarization-activated current (Ih) and its contribution to pacemaker activity in rat CA1 hippocampal stratum oriens-alveus interneurones.
    J Physiol. 1996 Nov 15;497 ( Pt 1):119-30 PMID: 8951716
  41. Amplification of EPSPs by low Ni(2+)- and amiloride-sensitive Ca2+ channels in apical dendrites of rat CA1 pyramidal neurons.
    J Neurophysiol. 1997 Mar;77(3):1639-43 PMID: 9084628
  42. Interneurons of the dentate-hilus border of the rat dentate gyrus: morphological and electrophysiological heterogeneity.
    J Neurosci. 1997 Jun 1;17(11):3990-4005 PMID: 9151716
  43. Comparative electrotonic analysis of three classes of rat hippocampal neurons.
    J Neurophysiol. 1997 Aug;78(2):703-20 PMID: 9307106
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1999-03-15
Pages
743-56
Language
English
Region
England
NLM ID
0266262
PMCID
PMC2269181
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com