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PMID: 9129812 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Assessment of frequency-dependent alterations in the level of extracellular Ca2+ in the synaptic cleft.

Biophysical journal ·Vol. 72 ·No. 5 ·1997-05-00 ·Pages 2103-16

Vassilev PM, Mitchel J, Vassilev M, Kanazirska M, Brown EM

Abstract

The synaptic cleft may be represented as a very thin disk of extracellular fluid. It is possible that at high stimulation frequencies the interval between pulses would be insufficient for diffusion of Ca2+ from the periphery of the cleft to replace extracellular Ca2+ depleted at the center of the cleft as a result of activation of postsynaptic, Ca2(+)-permeable channels. Computer modeling was employed to assess the impact of activation of glutamate receptor channels (GRCs) in the postsynaptic membrane on the level of extracellular Ca2+ within the synaptic cleft. The model includes calcium influx from the synaptic cleft into the postsynaptic compartment through GRC and calcium efflux through calcium pumps and Na/Ca exchangers. Concentrations of extracellular Ca2+ inside the cleft are estimated by using a compartmental model incorporating flux across the postsynaptic membrane and radial diffusion from the edges of the cleft. The simulations suggest that substantial extracellular Ca2+ depletion can occur in the clefts during activation of GRCs, particularly at high stimulation frequencies used to induce long-term potentiation (LTP). Only minimal transitory changes in extracellular Ca2+ are observed at low frequencies. These frequency-dependent alterations in extracellular Ca2+ dynamics are a direct reflection of the activity of GRCs and could be involved in the modulation of presynaptic function via a retrograde messenger mechanism, if there are extracellular Ca2+ sensors on the presynaptic membranes. The recently cloned extracellular Ca2(+)-sensing receptors that are known to be present in nerve terminals in hippocampus and other areas of the brain could potentially play such a role.

MeSH Terms
Calcium/metabolism Cell Membrane Permeability Computer Simulation Diffusion Membrane Potentials Models, Biological Synapses/physiology Time Factors
Chemicals
Calcium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Vassilev P M
Department of Medicine, Brigham and Women's Hospital, Boston, Massachsetts, USA.
Mitchel J
Vassilev M
Kanazirska M
Brown E M
References (51)
51 references, click to expand
  1. Movements of labelled calcium in squid giant axons.
    J Physiol. 1957 Sep 30;138(2):253-81 PMID: 13526124
  2. Presynaptic mechanism for long-term potentiation in the hippocampus.
    Nature. 1990 Aug 23;346(6286):724-9 PMID: 2167454
  3. The effects of high extracellular Ca2+ and Mg2+ concentrations on the levels of inositol 1,3,4,5-tetrakisphosphate in bovine parathyroid cells.
    Endocrinology. 1989 Feb;124(2):838-44 PMID: 2912705
  4. Transmitter timecourse in the synaptic cleft: its role in central synaptic function.
    Trends Neurosci. 1996 May;19(5):163-71 PMID: 8723198
  5. Calcium signaling in restricted diffusion spaces.
    Biophys J. 1994 Jul;67(1):262-72 PMID: 7918994
  6. N-methyl-D-aspartate-activated channels of mouse central neurones in magnesium-free solutions.
    J Physiol. 1988 May;399:207-26 PMID: 2457087
  7. Postsynaptic induction and presynaptic expression of hippocampal long-term depression.
    Science. 1994 May 20;264(5162):1148-52 PMID: 7909958
  8. The rate of diffusion of Ca2+ and Ba2+ in a nerve cell body.
    Biophys J. 1985 May;47(5):735-8 PMID: 4016193
  9. Comparison of quantitative calcium flux through NMDA, ATP, and ACh receptor channels.
    Biophys J. 1995 Feb;68(2):501-6 PMID: 7696503
  10. Early transient depletion of extracellular Ca during individual cardiac muscle contractions.
    Am J Physiol. 1983 Mar;244(3):H462-8 PMID: 6829789
  11. Postsynaptic calcium is sufficient for potentiation of hippocampal synaptic transmission.
    Science. 1988 Oct 7;242(4875):81-4 PMID: 2845577
  12. The rate of action of calcium ions on the contraction of the heart.
    J Physiol. 1957 Oct 30;138(3):506-15 PMID: 13481890
  13. The dynamics of free calcium in dendritic spines in response to repetitive synaptic input.
    Science. 1987 Jun 5;236(4806):1311-5 PMID: 3495885
  14. Dendritic glutamate receptor channels in rat hippocampal CA3 and CA1 pyramidal neurons.
    J Physiol. 1995 Jan 15;482 ( Pt 2):325-52 PMID: 7536248
  15. Calcium sensing receptor: molecular cloning in rat and localization to nerve terminals.
    Proc Natl Acad Sci U S A. 1995 Apr 11;92(8):3161-5 PMID: 7724534
  16. A model of the mechanisms of long-term potentiation in the hippocampus.
    Biol Cybern. 1990;64(1):33-9 PMID: 2149518
  17. Glutamate-induced long-term potentiation of the frequency of miniature synaptic currents in cultured hippocampal neurons.
    Nature. 1992 May 14;357(6374):134-9 PMID: 1349728
  18. Diffusion around a cardiac calcium channel and the role of surface bound calcium.
    Biophys J. 1991 Mar;59(3):703-21 PMID: 1646660
  19. Effects of GABA and bicuculline on N-methyl-D-aspartate- and quisqualate-induced reductions in extracellular free calcium in area CA1 of the hippocampal slice.
    Exp Brain Res. 1986;64(1):27-36 PMID: 3533598
  20. The dendritic spine: a multifunctional integrative unit.
    J Neurophysiol. 1996 Jun;75(6):2197-210 PMID: 8793734
  21. Ca(2+)-permeable AMPA and NMDA receptor channels in basket cells of rat hippocampal dentate gyrus.
    J Physiol. 1995 Jun 1;485 ( Pt 2):383-402 PMID: 7545230
  22. Ca2+ movement in smooth muscle cells studied with one- and two-dimensional diffusion models.
    Biophys J. 1991 Nov;60(5):1088-100 PMID: 1662084
  23. 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
  24. A synaptic model of memory: long-term potentiation in the hippocampus.
    Nature. 1993 Jan 7;361(6407):31-9 PMID: 8421494
  25. Calcium ions as extracellular messengers.
    Cell. 1995 Dec 1;83(5):679-82 PMID: 8521484
  26. The function of dendritic spines: devices subserving biochemical rather than electrical compartmentalization.
    J Neurosci. 1993 Feb;13(2):413-22 PMID: 8426220
  27. Biophysical model of a Hebbian synapse.
    Proc Natl Acad Sci U S A. 1990 Sep;87(17):6718-22 PMID: 2168555
  28. Ionic mobility in muscle cells.
    Science. 1969 Dec 5;166(3910):1297-8 PMID: 5350329
  29. Calcium depletion in frog muscle tubules: the decline of calcium current under maintained depolarization.
    J Physiol. 1981 Mar;312:177-207 PMID: 6267262
  30. Dendritic spines of CA 1 pyramidal cells in the rat hippocampus: serial electron microscopy with reference to their biophysical characteristics.
    J Neurosci. 1989 Aug;9(8):2982-97 PMID: 2769375
  31. Fractional contribution of calcium to the cation current through glutamate receptor channels.
    Neuron. 1993 Jul;11(1):133-43 PMID: 7687849
  32. The synaptic vesicle cycle: a cascade of protein-protein interactions.
    Nature. 1995 Jun 22;375(6533):645-53 PMID: 7791897
  33. Calcium permeability of the N-methyl-D-aspartate receptor channel in hippocampal neurons in culture.
    Proc Natl Acad Sci U S A. 1993 Dec 15;90(24):11573-7 PMID: 8265592
  34. Extracellular Ca2+ sensing, regulation of parathyroid cell function, and role of Ca2+ and other ions as extracellular (first) messengers.
    Physiol Rev. 1991 Apr;71(2):371-411 PMID: 2006218
  35. Homosynaptic long-term depression in area CA1 of hippocampus and effects of N-methyl-D-aspartate receptor blockade.
    Proc Natl Acad Sci U S A. 1992 May 15;89(10):4363-7 PMID: 1350090
  36. NMDA and non-NMDA receptors are co-localized at individual excitatory synapses in cultured rat hippocampus.
    Nature. 1989 Sep 21;341(6239):230-3 PMID: 2571090
  37. Is the function of dendritic spines to concentrate calcium?
    Brain Res. 1990 Jun 11;519(1-2):338-42 PMID: 2397414
  38. Extracellular calcium transients at single excitations in rabbit atrium measured with tetramethylmurexide.
    J Gen Physiol. 1986 May;87(5):707-35 PMID: 3723105
  39. Changes of extracellular calcium concentration induced by application of excitatory amino acids in the human neocortex in vitro.
    Brain Res. 1995 Feb 13;671(2):222-6 PMID: 7538028
  40. Suppression of presynaptic calcium influx by metabotropic glutamate receptor agonists in neonatal rat hippocampus.
    Brain Res. 1995 Oct 16;695(2):179-85 PMID: 8556329
  41. Cloning and characterization of an extracellular Ca(2+)-sensing receptor from bovine parathyroid.
    Nature. 1993 Dec 9;366(6455):575-80 PMID: 8255296
  42. Optical measurements of extracellular calcium depletion during a single heartbeat.
    Science. 1984 Oct 12;226(4671):174-7 PMID: 6091269
  43. Intracellular calcium homeostasis.
    Annu Rev Biochem. 1987;56:395-433 PMID: 3304139
  44. Pharmacological properties of excitatory amino acid induced changes in extracellular calcium concentration in rat hippocampal slices.
    Can J Physiol Pharmacol. 1992;70 Suppl:S194-205 PMID: 1295671
  45. The inositol high-polyphosphate series blocks synaptic transmission by preventing vesicular fusion: a squid giant synapse study.
    Proc Natl Acad Sci U S A. 1994 Dec 20;91(26):12990-3 PMID: 7809161
  46. Extracellular calcium ion depletion in frog cardiac ventricular muscle.
    Biophys J. 1985 Jul;48(1):33-45 PMID: 3874655
  47. Linearized models of calcium dynamics: formal equivalence to the cable equation.
    J Neurosci. 1994 Aug;14(8):4705-15 PMID: 8046445
  48. Presynaptic enhancement shown by whole-cell recordings of long-term potentiation in hippocampal slices.
    Nature. 1990 Jul 12;346(6280):177-80 PMID: 2164158
  49. Cloning and functional expression of a rat kidney extracellular calcium/polyvalent cation-sensing receptor.
    Proc Natl Acad Sci U S A. 1995 Jan 3;92(1):131-5 PMID: 7816802
  50. Intracellular Ca2+ stores can account for the time course of LTP induction: a model of Ca2+ dynamics in dendritic spines.
    J Neurophysiol. 1995 Sep;74(3):1046-55 PMID: 7500131
  51. ATP-dependent inositide phosphorylation required for Ca(2+)-activated secretion.
    Nature. 1995 Mar 9;374(6518):173-7 PMID: 7877690
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
1997-05-00
Pages
2103-16
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1184404
Subset
IM
Grants
NIDDK NIH HHS · DK41415 · United States
NIDDK NIH HHS · DK44588 · United States
NIDDK NIH HHS · DK48330 · United States
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