Literature DB >> 8228987

Coupling among energy failure, loss of ion homeostasis, and phospholipase A2 and C activation during ischemia.

K Katsura1, E B Rodriguez de Turco, J Folbergrová, N G Bazan, B K Siesjö.   

Abstract

The objective of the present experiments was to correlate changes in cellular energy metabolism, dissipative ion fluxes, and lipolysis during the first 90 s of ischemia and, hence, to establish whether phospholipase A2 or phospholipase C is responsible for the early accumulation of phospholipid hydrolysis products. Ischemia was induced for 15-90 s in rats, extracellular K+ (K+e) was recorded, and neocortex was frozen in situ for measurements of labile tissue metabolites, free fatty acids, and diacylglycerides. Ischemia of 15- and 30-s duration gave rise to a decrease in phosphocreatine concentration and a decline in the ATP/free ADP ratio. Although these changes were accompanied by an activation of K+ conductances, there were no changes in free fatty acids until after 60 s, when free arachidonic acid accumulated. An increase in other free fatty acids and in total diacylglceride content did not occur until after anoxic depolarization. The results demonstrate that the early functional changes, such as activation of K+ conductances, are unrelated to changes in lipids or lipid mediators. They furthermore suggest that the initial lipolysis occurs via both phospholipase A2 and phospholipase C, which are activated when membrane depolarization leads to influx of calcium into cells.

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Year:  1993        PMID: 8228987     DOI: 10.1111/j.1471-4159.1993.tb09803.x

Source DB:  PubMed          Journal:  J Neurochem        ISSN: 0022-3042            Impact factor:   5.372


  23 in total

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7.  On the regulation of ischaemia-induced glutamate efflux from rat cortex by GABA; in vitro studies with GABA, clomethiazole and pentobarbitone.

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9.  Neuronal mechanisms of the anoxia-induced network oscillations in the rat hippocampus in vitro.

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Review 10.  Ionotropic receptors and ion channels in ischemic neuronal death and dysfunction.

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