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The influence of repeated spreading depression-induced calcium transients on neuronal viability in moderately hypoglycemic rats

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Abstract

The calcium transients which are associated with spreading depression (SD) do not lead to neuronal necrosis, even if the SDs are repeated over hours. We have previously shown that a restriction of energy production by moderate hypoglycemia prolongs the calcium transients during SD. In the present experiments, we explored whether such prolonged transients lead to neuronal necrosis. To that end, SDs were elicited for 2 h by topical application of KC1 in anesthetized rats at plasma glucose concentrations of 6, 3, and 2 mM. The animals were then allowed to recover, and they were studied histopathologically after 7 days. In two other groups, hypoglycemic coma of 5 min duration (defined in terms of the d.c. potential shift) was induced either without or with a preceding train of SDs. These animals were also evaluated with respect to histopathological alterations. SDs elicited for 2 h did not give rise to neuronal damage when elicited at plasma glucose concentration of 6 mM, and, of the animals maintained at 3 and 2 mM, only a few animals showed (mild) damage. In general, therefore, repeated SDs with calcium transients of normal or increased duration fail to induce neuronal damage. The results suggest that, if calcium transients are responsible for a gradual extension of the infarct into the penumbra zone of a focal ischemie lesion some additional pathophysiological factors must be present, such as overt energy failure, acidosis, or microvascular damage. A hypoglycemia-induced calcium transient of 5 min duration gave no or only moderate neuronal damage. However, if a series of SDs were elicited in the precoma period, the damage was exaggerated. The results demonstrate that, normally, brain tissues can tolerate a hypoglycemic calcium transient of up to 5 min duration without incurring neuronal necrosis. They also demonstrate that calcium transients preceding a subsequent insult involving calcium influx into cells exaggerate the damage incurred. It is tentatively concluded that the “priming” transients alter membrane properties in such a way that cellular calcium homeostasis is perturbed.

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References

  • Auer RN, Wieloch T, Olsson Y, Siesjö BK (1984a) Distribution of hypoglycemic brain damage: relationship to white matter and cerebrospinal fluid pathways. Acta Neuropathol. (Berl) 64:177–191

    Google Scholar 

  • Auer RN, Wieloch T, Olsson Y, Siesjö BK (1984b) Hypoglycemic brain injury in the rat: correlation of density of brain damage with the EEG isoelectric time. A quantitative study. Diabetes 33:1090–1098

    Google Scholar 

  • Bures J, Buresova O, Krivanek J (1974) The mechanism and applications of Leao's spreading depression of electroencephalographic activity. Academia, Prague, Czechoslovakia

    Google Scholar 

  • Folbergrová J, Memezawa H, Smith M-L, Siesjö BK (1992) Focal and perifocal changes in tissue energy state during middle cerebral artery occlusion in normo and hypoglycemic rats. J Cereb Blood Flow Metab 12:25–33

    Google Scholar 

  • Gidö G, Katsura K, Kristián T, Siesjö BK (1993) Influence of plasma glucose concentration on rat brain extracellular calcium transients during spreading depression. J Cereb Blood Flow Metab 13:179–182

    Google Scholar 

  • Gill R, Andiné P, Hillered L, Persson L, Hagberg H (1992) The effect of MK-801 on cortical spreading depression in the penumbral zone following focal ischemia in the rat. J Cereb Blood Flow Metab 12:371–379

    Google Scholar 

  • Hansen AJ (1985) Effects of anoxia on ion distribution in the brain. Physiol Rev 65(1): 101–148

    CAS  PubMed  Google Scholar 

  • Hansen A, Zeuthen T (1981) Extracellular ion concentration during spreading depression and ischemia in the rat brain cortex. Acta Physiol Scand 113:437–4145

    Google Scholar 

  • Hansen A, Nedergaard M (1988) Brain ion homeostasis in cerebral ischemia. Neurochemical Pathology 9:195–209

    Google Scholar 

  • Inoue T, Kato H, Araki T, Kogure K (1992) Emphasized selective vulnerability after repeated nonlethal cerebral ischemic insults in rats. Stroke 23:739–745

    Google Scholar 

  • Kirino T, Tsujita Y, Tamura A (1991) Induced tolerance to ischemia in gerbil hippocampal neurons. J Cereb Blood Flow Metab 11:299–307

    Google Scholar 

  • Kitagawa K, Matsumoto M, Kuwabara K, Tagaya M, Ohtsuki T, Hata R, Ueda H, Kimura K, Kamada T (1991) Ischemic tolerance phenomenon detected in various brain regions. Brain Res 561:203–211

    Google Scholar 

  • Kraig R, Ferreira-Filho C, Nicholson C (1983) Alkaline and acid transients in the cerebellar microenvironment. J Neurophysiol 49:831–849

    Google Scholar 

  • Lundgren J, Zhang H, Agardh CD, Smith ML, Evans PJ, Halliwell B, Siesjö BK (1991) Acidosis-induced ischemic brain damage: are free radicals involved? J Cereb Blood Flow Metab 11:587–596

    Google Scholar 

  • Nakano S, Kato H, Kogure K (1986) Neuronal damage in the rat hippocampus in a new model of repeated reversible transient cerebral ischemia. Brain Res 490:178–180

    Google Scholar 

  • Nedergaard M, Astrup J (1986) Effect of hyperglycemia on direct current potential and [14C]2-deoxyglucose phosphorylation. J Cereb Blood Flow Metab 6:607–615

    Google Scholar 

  • Nedergaard M, Hansen AJ (1988) Spreading depression is not associated with neuronal injury in the normal brain. Brain Res 449:395–398

    Google Scholar 

  • Nicholson C, Kraig R (1981) The behavior of extracellular ions during spreading during spreading depression. In: Zeuten T (eds) Application of ion-selective microelectrodes. Elsevier, Amsterdam pp 217–238

    Google Scholar 

  • Selman W, Ricci A, RC C, LaManna J, Ratcheson R, Lust W (1990) The evolution of focal ischemic damage: a metabolic analysis. Metab Brain Dis 5:33–414

    Google Scholar 

  • Siesjö B (1991) The role of calcium in cell death. In: Price D, Aguayo A, Thoenen H (eds) Neurodoegenerative disorders: mechanisms and prospects for therapy. Wiley Chichester, pp 35–59

    Google Scholar 

  • Siesjö BK (1993) Calcium-related damage in the brain. In: de Yebenes JG (ed) Calcium antagonists and neurological disorders. Dekker, New York (in press)

    Google Scholar 

  • Siesjö BK (1992a) Pathophysiology and treatment of focal cerebral ischemia. I. Pathophysiology. J Neurosurg 77:169–184

    Google Scholar 

  • Siesjö BK (1992b) Pathophysiology and treatment of focal cerebral ischemia. II. Mechanisms of damage and treatment. J Neurosurg 77:337–354

    CAS  PubMed  Google Scholar 

  • Siesjö BK, Bengtsson F (1989) Calcium fluxes, calcium antagonists, and calcium-related pathology in brain ischemia, hypoglycemia, and spreading depression: A unifying hypothesis. J Cereb Blood Flow Metab 9:127–140

    Google Scholar 

  • Snutch T, Reiner P (1992) Ca2+ channels: diversity of form and function. Current Opinion in Neurobiol 2:247–253

    Google Scholar 

  • Strong AJ, Venables GS, Gibson G (1983) The cortical ischaemic penumbra associated with occlusion of the middle cerebral artery in the cat. 1. Topography of changes in blood flow, potassium ion activity, and EEG. J Cereb Blood Flow Metab 3:86–96

    Google Scholar 

  • Tomida S, Nowak TSJ, Vass K, Lohr JM, Klatzo I (1987) Experimental model for repetitive ischemic attacks in the gerbil; the cumulative effect of repeated ischemic insults. J Cereb Blood Flow Metab 7:773–782

    Google Scholar 

  • Vinogradova LV, Koroleva VI, Bures J (1991) Re-entry waves of Leao's spreading depression between neocortex and caudate nucleus. Brain Res 538:161–164

    Google Scholar 

  • Vyskocil F, Kriz N, Bures J (1972) Potassium-selective microelectrodes used for measuring the extracellular brain potassium during spreading depression and anoxic depolarization in rats. Brain Res 39:255–259

    Google Scholar 

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Gidö, G., Kristián, T., Katsura, Ki. et al. The influence of repeated spreading depression-induced calcium transients on neuronal viability in moderately hypoglycemic rats. Exp Brain Res 97, 397–403 (1994). https://doi.org/10.1007/BF00241533

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