Home LiteratureArticle Details
PMID: 8764642 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Apical dendritic location of slow afterhyperpolarization current in hippocampal pyramidal neurons: implications for the integration of long-term potentiation.

Sah P, Bekkers JM

Abstract

Trains of action potentials in hippocampal pyramidal neurons are followed by a prolonged afterhyperpolarization (AHP) lasting several seconds, which is attributable to the activation of a slow calcium-activated potassium current ((sI)AHP). Here we examine the location of (sI)AHP on CA1 pyramidal neurons by comparing it with two GABAergic inhibitory postsynaptic currents (IPSCs) with known somatic and dendritic locations. Whole-cell patch-clamp recordings were made for CA1 pyramidal neurons in acute hippocampal slices. Stepping the membrane potential at the peak of (sI)AHP produced a relaxation ("switchoff") of the AHP current with a time constant of 7.4 +/- 0.4 msec (mean +/- SEM). The switchoff time constants for somatic and dendritic GABAA IPSCs were 3.5 +/- 0.5 msec and 8.8 +/- 0.3 msec, respectively. This data, together with cable modeling, indicates that active (sI)AHP channels are distributed over the proximal dendrites within approximately 200 micrometers of the soma. Excitatory postsynaptic potentials (EPSPs) evoked in stratum (s.) radiatum had their amplitudes shunted more by the AHP than did EPSPs evoked in s. oriens, suggesting that active AHP channels are restricted to the apical dendritic tree. Blockade of the AHP during a tetanus, which in control conditions elicited a decremental short-term potentiation (STP), converted STP to long-term potentiation (LTP). Thus, activation of the AHP increases the threshold for induction of LTP. These results suggest that in addition to its established role in spike frequency adaptation, the AHP works as an adjustable gain control, variably hyperpolarizing and shunting synaptic potentials arising in the apical dendrites.

MeSH Terms
Action Potentials/physiology Animals Dendrites/physiology Electrophysiology Hippocampus/physiology Long-Term Potentiation/physiology Neurons/physiology Pyramidal Cells/physiology Rats
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Sah P
Neuroscience Group and the Discipline of Physiology, University of Newcastle, New South Wales, Australia.
Bekkers J M
References (41)
41 references, click to expand
  1. Different calcium channels are coupled to potassium channels with distinct physiological roles in vagal neurons.
    Proc Biol Sci. 1995 Apr 22;260(1357):105-11 PMID: 7539148
  2. Biochemical properties and subcellular distribution of an N-type calcium channel alpha 1 subunit.
    Neuron. 1992 Dec;9(6):1099-115 PMID: 1334419
  3. Facilitated induction of hippocampal long-lasting potentiation during blockade of inhibition.
    Nature. 1983 Feb 17-23;301(5901):603-4 PMID: 6298626
  4. Modelling the postsynaptic location and magnitude of tonic conductance changes resulting from neurotransmitters or drugs.
    Neuroscience. 1981;6(5):839-46 PMID: 6113561
  5. Properties of two calcium-activated hyperpolarizations in rat hippocampal neurones.
    J Physiol. 1987 Aug;389:187-203 PMID: 2445972
  6. Effects of EGTA on the calcium-activated afterhyperpolarization in hippocampal CA3 pyramidal cells.
    Science. 1980 Dec 5;210(4474):1125-6 PMID: 6777871
  7. 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
  8. Solutions for transients in arbitrarily branching cables: I. Voltage recording with a somatic shunt.
    Biophys J. 1993 Jul;65(1):423-49 PMID: 8369447
  9. Photolytic manipulation of Ca2+ and the time course of slow, Ca(2+)-activated K+ current in rat hippocampal neurones.
    J Physiol. 1994 Mar 1;475(2):229-39 PMID: 8021830
  10. The coupling of neurotransmitter receptors to ion channels in the brain.
    Science. 1988 Jul 29;241(4865):545-51 PMID: 2456612
  11. Actions of noradrenaline recorded intracellularly in rat hippocampal CA1 pyramidal neurones, in vitro.
    J Physiol. 1986 Mar;372:221-44 PMID: 2873241
  12. Cyclic adenosine 3',5'-monophosphate mediates beta-receptor actions of noradrenaline in rat hippocampal pyramidal cells.
    J Physiol. 1986 Mar;372:245-59 PMID: 2425084
  13. A synaptic model of memory: long-term potentiation in the hippocampus.
    Nature. 1993 Jan 7;361(6407):31-9 PMID: 8421494
  14. Postsynaptic factors control the duration of synaptic enhancement in area CA1 of the hippocampus.
    Neuron. 1991 Jan;6(1):53-60 PMID: 1670922
  15. Pharmacological evidence for two kinds of GABA receptor on rat hippocampal pyramidal cells studied in vitro.
    J Physiol. 1982 Jul;328:125-41 PMID: 7131310
  16. A model of a CA3 hippocampal pyramidal neuron incorporating voltage-clamp data on intrinsic conductances.
    J Neurophysiol. 1991 Aug;66(2):635-50 PMID: 1663538
  17. Factors regulating the magnitude of long-term potentiation induced by theta pattern stimulation.
    Brain Res. 1992 Dec 11;598(1-2):173-84 PMID: 1486479
  18. Subunit structure and localization of dihydropyridine-sensitive calcium channels in mammalian brain, spinal cord, and retina.
    Neuron. 1990 Jun;4(6):819-32 PMID: 2163262
  19. Synaptically activated increases in Ca2+ concentration in hippocampal CA1 pyramidal cells are primarily due to voltage-gated Ca2+ channels.
    Neuron. 1992 Dec;9(6):1163-73 PMID: 1361128
  20. nMDA receptor activation increases cyclic AMP in area CA1 of the hippocampus via calcium/calmodulin stimulation of adenylyl cyclase.
    J Neurochem. 1993 Nov;61(5):1933-42 PMID: 7901336
  21. Temporal limits on the rise in postsynaptic calcium required for the induction of long-term potentiation.
    Neuron. 1992 Jul;9(1):121-8 PMID: 1632966
  22. Cable analysis with the whole-cell patch clamp. Theory and experiment.
    Biophys J. 1992 Mar;61(3):756-66 PMID: 1504246
  23. Noradrenergic enhancement of long-term potentiation at mossy fiber synapses in the hippocampus.
    J Neurophysiol. 1988 Feb;59(2):667-87 PMID: 2832552
  24. Channels underlying the slow afterhyperpolarization in hippocampal pyramidal neurons: neurotransmitters modulate the open probability.
    Neuron. 1995 Aug;15(2):435-41 PMID: 7646895
  25. Activity-dependent action potential invasion and calcium influx into hippocampal CA1 dendrites.
    Science. 1995 Apr 14;268(5208):297-300 PMID: 7716524
  26. The excitability of CA1 pyramidal cell dendrites is modulated by a local Ca(2+)-dependent K(+)-conductance.
    Brain Res. 1995 Nov 6;698(1-2):193-203 PMID: 8581481
  27. Multiple potassium conductances and their role in action potential repolarization and repetitive firing behavior of neonatal rat hypoglossal motoneurons.
    J Neurophysiol. 1993 Jun;69(6):2150-63 PMID: 8350136
  28. Feed-forward dendritic inhibition in rat hippocampal pyramidal cells studied in vitro.
    J Physiol. 1982 Jul;328:105-23 PMID: 7131309
  29. A calcium-activated hyperpolarization follows repetitive firing in hippocampal neurons.
    J Neurophysiol. 1980 Feb;43(2):409-19 PMID: 6247461
  30. Analysis of excitatory synaptic action in pyramidal cells using whole-cell recording from rat hippocampal slices.
    J Physiol. 1990 Mar;422:203-25 PMID: 1972190
  31. PATHWAY OF POSTSYNAPTIC INHIBITION IN THE HIPPOCAMPUS.
    J Neurophysiol. 1964 Jul;27:608-19 PMID: 14194961
  32. Inhibitory post-synaptic currents in rat hippocampal CA1 neurones.
    J Physiol. 1984 Nov;356:551-64 PMID: 6097677
  33. Ca(2+)-activated K+ currents in neurones: types, physiological roles and modulation.
    Trends Neurosci. 1996 Apr;19(4):150-4 PMID: 8658599
  34. A model for dendritic Ca2+ accumulation in hippocampal pyramidal neurons based on fluorescence imaging measurements.
    J Neurophysiol. 1994 Mar;71(3):1065-77 PMID: 8201402
  35. Calcium concentration dynamics produced by synaptic activation of CA1 hippocampal pyramidal cells.
    J Neurosci. 1992 Nov;12(11):4202-23 PMID: 1359030
  36. A comparison of distal and proximal dendritic synapses on CAi pyramids in guinea-pig hippocampal slices in vitro.
    J Physiol. 1980 Oct;307:273-99 PMID: 7205666
  37. Physiological evidence for two distinct GABAA responses in rat hippocampus.
    Neuron. 1993 Feb;10(2):189-200 PMID: 8382497
  38. Calcium-dependent current generating the afterhyperpolarization of hippocampal neurons.
    J Neurophysiol. 1986 Jun;55(6):1268-82 PMID: 2426421
  39. Control of the repetitive discharge of rat CA 1 pyramidal neurones in vitro.
    J Physiol. 1984 Sep;354:319-31 PMID: 6434729
  40. Dendritic attenuation of synaptic potentials and currents: the role of passive membrane properties.
    Trends Neurosci. 1994 Apr;17(4):161-6 PMID: 7517596
  41. N-type Ca2+ channels are located on somata, dendrites, and a subpopulation of dendritic spines on live hippocampal pyramidal neurons.
    J Neurosci. 1994 Nov;14(11 Pt 2):6815-24 PMID: 7525892
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
0270-6474
Published
1996-08-01
Pages
4537-42
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6579026
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