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PMID: 8474021 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.

Mitochondrial and glycolytic dysfunction in lethal injury to hepatocytes by t-butylhydroperoxide: protection by fructose, cyclosporin A and trifluoperazine.

The Journal of pharmacology and experimental therapeutics ·Vol. 265 ·No. 1 ·1993-04-00 ·Pages 392-400

Imberti R, Nieminen AL, Herman B, Lemasters JJ

Abstract

In isolated mitochondria, t-butylhydroperoxide (t-BuOOH) and other pro-oxidants cause a permeability transition characterized by increased permeability to small ions, swelling and loss of membrane potential. Cyclosporin A and trifluoperazine inhibit this permeability transition. Here, we investigated the role of the mitochondrial permeability transition in lethal cellular injury from t-BuOOH. Hepatocytes from fasted rats were isolated by collagenase perfusion, and cell viability was assessed by propidium iodide fluorescence. t-BuOOH caused dose- and time-dependent cell killing. Fructose, a substrate for glycolytic ATP formation, protected at lower (< or = 100 microM), but not at higher concentrations of t-BuOOH. In fructose-treated cells, oligomycin (10 micrograms/ml) delayed cell killing after 100 to 300 microM t-BuOOH, whereas cyclosporin A (0.5 microM) plus trifluoperazine (5 microM) even more potently reduced lethal injury. In hepatocyte suspensions, 100 microM t-BuOOH caused mitochondrial depolarization as determined by release of rhodamine 123. Cyclosporin A plus trifluoperazine in the presence of fructose substantially reduced release of rhodamine 123. Similarly, in single cultured hepatocytes viewed by laser scanning confocal microscopy, t-BuOOH caused leakage of rhodamine 123 from mitochondria, an event which preceded cell death and which was delayed by fructose in combination with cyclosporin A plus trifluoperazine. At 1 mM, t-BuOOH inhibited glycolysis, and fructose in combination with either oligomycin or cyclosporin A plus trifluoperazine had only a short-lived protective effect. In conclusion, t-BuOOH toxicity was progressive with increasing dosages. At low t-BuOOH (< or = 50 microM), mitochondrial ATP synthetic capacity was inhibited, but not uncoupled.(ABSTRACT TRUNCATED AT 250 WORDS)

MeSH Terms
Adenosine Triphosphate/metabolism Animals Cell Survival/drug effects Cells, Cultured Cyclosporine/pharmacology Fructose/pharmacology Glycolysis Intracellular Membranes/drug effects,physiology Lactates/biosynthesis Lactic Acid Liver/cytology,drug effects,metabolism Male Membrane Potentials/drug effects Mitochondria, Liver/drug effects,metabolism Oligomycins/pharmacology Oxidative Phosphorylation Peroxides/antagonists & inhibitors,toxicity Pyruvates/metabolism Pyruvic Acid Rats Rats, Sprague-Dawley Trifluoperazine/pharmacology tert-Butylhydroperoxide
Chemicals
Lactates Oligomycins Peroxides Pyruvates Trifluoperazine Fructose Lactic Acid Cyclosporine Pyruvic Acid Adenosine Triphosphate tert-Butylhydroperoxide
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Imberti R
Department of Cell Biology & Anatomy, School of Medicine, University of North Carolina, Chapel Hill.
Nieminen A L
Herman B
Lemasters J J
Article Info
Journal
The Journal of pharmacology and experimental therapeutics
Abbr.
J Pharmacol Exp Ther
ISSN
0022-3565
Published
1993-04-00
Pages
392-400
Language
English
Region
United States
NLM ID
0376362
Subset
IM
Grants
NIA NIH HHS · AG07218 · United States
NIDDK NIH HHS · DK37034 · United States
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