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PMID: 2391656 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Effects of metabolic blockade on the regulation of intracellular calcium in dissociated mouse sensory neurones.

The Journal of physiology ·Vol. 424 ·1990-05-00 ·Pages 411-26

Duchen MR, Valdeolmillos M, O'Neill SC, Eisner DA

Abstract

1. Impaired intracellular Ca2+ concentration ([Ca2+]i) regulation may underlie alterations in neuronal function during hypoxia or hypoglycaemia and may initiate cell damage. We have used the Ca2(+)-sensitive fluorophore, Fura-2, to study the regulation of [Ca2+]i in neurones isolated from mouse dorsal root ganglia. Mean resting [Ca2+]i was 163 +/- 11 nM (mean +/- S.E.M., n = 38). 2. Depolarization by exposure to 20 or 30 mM-K+ caused a rapid Co2(+)- and Cd2(+)-sensitive rise in [Ca2+]i, which subsequently declined with a time course usually fitted by the sum of two exponential functions. 3. Interference with mitochondrial function (by CN- or FCPP) or with glycolysis (by glucose removal) all raised [Ca2+]i by up to 220%. Addition of FCCP in the presence of CN- further increased [Ca2+]i. The response to CN- was still seen in the absence of extracellular Ca2+, although it attenuated rapidly, indicating release from an intracellular store. 4. Either CN- or glucose removal increased the rise in [Ca2+]i induced by K+ 2- to 3-fold and slowed recovery, suggesting interference with sequestration or extrusion of [Ca2+]i. 5. Resting [Ca2+]i rose when external Na+ was replaced by Li+ or N-methyl-D-glucamine, demonstrating the presence of a Na(+)-Ca2+ exchange process. However, Na+ replacement had only a slight effect on the handling of a Ca2+ load. 6. We conclude that (i) Ca2+ is released into the cytoplasm from intracellular organelles when energy supplies are reduced: (ii) that the extrusion or sequestration of Ca2+ entering the cell during electrical activity is rapidly impaired by interference with mitochondrial metabolism: and (iii) Na(+)-Ca2+ exchange makes only a small contribution to intracellular Ca2+ homeostasis. 7. [Ca2+]i would thus be expected to rise in vivo during hypoxia or hypoglycaemia and may initiate alterations in neuronal function. However, if a rise in Ca2+ is an important cause of cell damage in cerebral hypoxaemia, the combination of excitation and hypoxia will lead to the largest increases in [Ca2+]i, while hypoxia alone appears to cause only a small increase in [Ca2+]i in quiescent cells.

MeSH Terms
Animals Calcium/metabolism Carbonyl Cyanide p-Trifluoromethoxyphenylhydrazone/pharmacology Cations, Divalent/pharmacology Cell Compartmentation Cells, Cultured Ganglia, Spinal/cytology,metabolism Intracellular Fluid/metabolism Ion Channel Gating/drug effects Membrane Potentials/drug effects Mice Mitochondria/metabolism Neurons/drug effects,metabolism Potassium/pharmacology Sodium Cyanide/pharmacology
Chemicals
Cations, Divalent Carbonyl Cyanide p-Trifluoromethoxyphenylhydrazone Sodium Cyanide Potassium Calcium
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Duchen M R
Department of Physiology, University College London.
Valdeolmillos M
O'Neill S C
Eisner D A
References (38)
38 references, click to expand
  1. 31P-n.m.r. studies on cerebral energy metabolism under conditions of hypoglycaemia and hypoxia in vitro.
    Biochem J. 1983 May 15;212(2):365-70 PMID: 6882378
  2. Functional importance of the synaptic plasma membrane calcium pump and sodium-calcium exchanger.
    J Biol Chem. 1984 Sep 10;259(17):10807-13 PMID: 6147347
  3. Reduced ATP concentration as a basis for synaptic transmission failure during hypoxia in the in vitro guinea-pig hippocampus.
    J Physiol. 1982 Apr;325:51-65 PMID: 6286944
  4. Calcium dependence of toxic cell death: a final common pathway.
    Science. 1979 Nov 9;206(4419):700-2 PMID: 386513
  5. Calcium accumulation and neuronal damage in the rat hippocampus following cerebral ischemia.
    J Cereb Blood Flow Metab. 1987 Feb;7(1):89-95 PMID: 3805166
  6. Actions of dinitrophenol and some other metabolic inhibitors on cortical neurones.
    J Physiol. 1971 May;215(1):199-222 PMID: 5579652
  7. The dependence of calcium efflux from cardiac muscle on temperature and external ion composition.
    J Physiol. 1968 Mar;195(2):451-70 PMID: 5647333
  8. Depolarization of the mitochondrial membrane potential increases free cytosolic calcium in synaptosomes.
    Neurosci Lett. 1984 Aug 24;49(1-2):33-7 PMID: 6493595
  9. Compounds in brain extracts causing spreading depression of cerebral cortical activity and contraction of crustacean muscle.
    J Neurochem. 1959 Feb;3(4):300-15 PMID: 13642064
  10. Anoxia increases potassium conductance in hippocampal nerve cells.
    Acta Physiol Scand. 1982 Jul;115(3):301-10 PMID: 6295068
  11. Effect of anoxia on ion distribution in the brain.
    Physiol Rev. 1985 Jan;65(1):101-48 PMID: 3880896
  12. Biochemical approaches to the study of cytosolic calcium regulation in nerve endings.
    Philos Trans R Soc Lond B Biol Sci. 1981 Dec 18;296(1080):115-22 PMID: 6121337
  13. The interrelations between the transport of sodium and calcium in mitochondria of various mammalian tissues.
    Eur J Biochem. 1978 Jan 2;82(1):25-31 PMID: 23291
  14. ATP-regulated K+ channels in cardiac muscle.
    Nature. 1983 Sep 8-14;305(5930):147-8 PMID: 6310409
  15. On the role of mitochondria in transmitter release from motor nerve terminals.
    J Physiol. 1975 Jun;248(2):285-306 PMID: 50439
  16. Cytoplasmic pH and free Mg2+ in lymphocytes.
    J Cell Biol. 1982 Oct;95(1):189-96 PMID: 6815204
  17. Attenuation of evoked field potentials from dentate granule cells by low glucose, pyruvate + malate, and sodium fluoride.
    Brain Res. 1982 May 13;239(2):527-34 PMID: 6284306
  18. ATP-dependent regulation of cytoplasmic free calcium in nerve terminals.
    Am J Physiol. 1987 Jun;252(6 Pt 1):C588-94 PMID: 3591929
  19. Cell damage in the brain: a speculative synthesis.
    J Cereb Blood Flow Metab. 1981;1(2):155-85 PMID: 6276420
  20. The effects of metabolic inhibition on intracellular calcium and pH in isolated rat ventricular cells.
    J Physiol. 1989 Apr;411:393-418 PMID: 2614727
  21. An intracellular (ATP + Mg2+)-dependent calcium pump within the N1E-115 neuronal cell line.
    J Biol Chem. 1985 Aug 5;260(16):9289-97 PMID: 3160697
  22. A new generation of Ca2+ indicators with greatly improved fluorescence properties.
    J Biol Chem. 1985 Mar 25;260(6):3440-50 PMID: 3838314
  23. Effects of hypoxia on rat hippocampal neurones in vitro.
    J Physiol. 1987 Mar;384:131-51 PMID: 2443657
  24. Role for microsomal Ca storage in mammalian neurones?
    Nature. 1984 May 10-16;309(5964):158-60 PMID: 6717595
  25. Effects of metabolic inhibition on the membrane properties of isolated mouse primary sensory neurones.
    J Physiol. 1990 May;424:387-409 PMID: 2391654
  26. Measurements of intracellular Ca2+ in dissociated type I cells of the rabbit carotid body.
    J Physiol. 1989 Sep;416:421-34 PMID: 2607457
  27. Elevation of the extracellular concentrations of glutamate and aspartate in rat hippocampus during transient cerebral ischemia monitored by intracerebral microdialysis.
    J Neurochem. 1984 Nov;43(5):1369-74 PMID: 6149259
  28. Calcium uptake and membrane potential in mitochondria.
    Biochemistry. 1974 Nov 5;13(23):4811-7 PMID: 4429666
  29. Release of calcium ions linked to the activation of potassium conductance in a caffeine-treated sympathetic neurone.
    J Physiol. 1980 Jan;298:251-69 PMID: 6767024
  30. The calcium cycle of mitochondria.
    FEBS Lett. 1979 Aug 1;104(1):1-5 PMID: 383503
  31. Regulation of cytosolic calcium concentration in presynaptic nerve endings isolated from rat brain.
    J Physiol. 1985 Jun;363:87-101 PMID: 4020707
  32. Intracellular calcium homeostasis.
    Annu Rev Biochem. 1987;56:395-433 PMID: 3304139
  33. Synaptosomal bioenergetics. The role of glycolysis, pyruvate oxidation and responses to hypoglycaemia.
    Eur J Biochem. 1986 Jul 1;158(1):159-65 PMID: 2874024
  34. A survey of the interaction of calcium ions with mitochondria from different tissues and species.
    Biochem J. 1971 May;122(5):681-90 PMID: 5129264
  35. Extrusion of calcium from rod outer segments is driven by both sodium and potassium gradients.
    Nature. 1989 Feb 23;337(6209):740-3 PMID: 2537471
  36. Mitochondria and other calcium buffers of squid axon studied in situ.
    J Gen Physiol. 1978 Jul;72(1):101-27 PMID: 702105
  37. The relationship between caffeine contracture of intact muscle and the effect of caffeine on reticulum.
    J Gen Physiol. 1968 Nov;52(5):750-9 PMID: 5688082
  38. NMDA-receptor activation increases cytoplasmic calcium concentration in cultured spinal cord neurones.
    Nature. 1986 May 29-Jun 4;321(6069):519-22 PMID: 3012362
Article Info
Journal
The Journal of physiology
Abbr.
J Physiol
ISSN
0022-3751
Published
1990-05-00
Pages
411-26
Language
English
Region
England
NLM ID
0266262
PMCID
PMC1189820
Subset
IM
Grants
Wellcome Trust · United Kingdom
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