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K+ at concentrations reached in the extracellular space during neuronal activity promotes a Ca2+-dependent glycogen hydrolysis in mouse cerebral cortex

PR Hof, E Pascale and PJ Magistretti
Journal of Neuroscience 1 June 1988, 8 (6) 1922-1928; https://doi.org/10.1523/JNEUROSCI.08-06-01922.1988
PR Hof
Departement de Pharmacologie, Centre Medical Universitaire, Geneva, Switzerland.
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E Pascale
Departement de Pharmacologie, Centre Medical Universitaire, Geneva, Switzerland.
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PJ Magistretti
Departement de Pharmacologie, Centre Medical Universitaire, Geneva, Switzerland.
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Abstract

The effect of increasing [K+]0 on 3H-glycogen levels was examined in mouse cerebral cortical slices. K+ stimulates in a time- and concentration-dependent manner the hydrolysis of 3H-glycogen. Over 70% of the maximal effect is reached within 30 sec and the EC50 for the glycogenolytic action of K+ is 11 mM. Significant 3H-glycogen hydrolysis occurs at 5–12 mM [K+]0, concentrations reached by the ion in the extracellular space during neuronal activity. The K+-evoked glycogenolysis is Ca2+-dependent, and is inhibited by Ca2+-channel blockers such as Ni2+ and Mn2+, but not by Cd2+, nifedipine, and omega- conotoxin. Furthermore, the effect of K+ is not enhanced by the Ca2+- channel agonist Bay K 8644. This type of pharmacological profile suggests that the activation of voltage-sensitive Ca2+ channels of the T subtype mediates the glycogenolytic action of K+. This set of observations suggests that K+ released in the extracellular space by active neurons may promote the mobilization of energy substrates and therefore play a role in the coupling between neuronal activity and energy metabolism.

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The Journal of Neuroscience: 8 (6)
Journal of Neuroscience
Vol. 8, Issue 6
1 Jun 1988
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K+ at concentrations reached in the extracellular space during neuronal activity promotes a Ca2+-dependent glycogen hydrolysis in mouse cerebral cortex
PR Hof, E Pascale, PJ Magistretti
Journal of Neuroscience 1 June 1988, 8 (6) 1922-1928; DOI: 10.1523/JNEUROSCI.08-06-01922.1988

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K+ at concentrations reached in the extracellular space during neuronal activity promotes a Ca2+-dependent glycogen hydrolysis in mouse cerebral cortex
PR Hof, E Pascale, PJ Magistretti
Journal of Neuroscience 1 June 1988, 8 (6) 1922-1928; DOI: 10.1523/JNEUROSCI.08-06-01922.1988
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