The role of reductive and oxidative metabolism in the toxicity of mitoxantrone, adriamycin and menadione in human liver derived Hep G2 hepatoma cells
Open Access
- 1 October 1989
- journal article
- research article
- Published by Springer Nature in British Journal of Cancer
- Vol. 60 (4) , 566-571
- https://doi.org/10.1038/bjc.1989.314
Abstract
The cytotoxic properties of quinones, such as menadione, are mediated through one electron reduction to yield semi-quinone radicals which can subsequently enter redox cycles with molecular oxygen leading to the formation of reactive oxygen radicals. In this study the role of reduction and oxidation in the toxicity of mitoxantrone was studied and its toxicity compared with that of adriamycin and menadione. The acute toxicity of mitoxantrone was not mediated through one-electron reduction, since inhibition of the enzymes glutathione reductase and catalase, responsible for protecting the cells against oxidative damage, did not affect its toxicity. Adriamycin was the most potent inhibitor of protein and RNA synthesis of the three quinones. Menadione, at concentrations up to 25 microM, did not inhibit either protein or RNA synthesis unless dicoumarol, an inhibitor of DT-diaphorase, was also present. The two-electron reduction of menadione by DT-diaphorase is therefore a protective mechanism in the cell. This enzyme also protected against the toxicity of high concentrations (100 microM) of mitoxantrone. The inhibitory effect of mitoxantrone, but not of menadione or adriamycin, on cell growth was prevented by inhibiting the activity of cytochrome P450-dependent mixed function oxidase (MFO) system using metyrapone. This suggests that mitoxantrone is oxidised to a toxic intermediate by the MFO system.Keywords
This publication has 35 references indexed in Scilit:
- Horseradish peroxidase-catalyzed oxidation of mitoxantrone: spectrophotometric and electron paramagnetic resonance studiesJournal of Free Radicals in Biology & Medicine, 1986
- Mitoxantrone affects topoisomerase activities in human breast cancer cellsBiochemical and Biophysical Research Communications, 1986
- Effects of DNA intercalating agents on topoisomerase II induced DNA strand cleavage in isolated mammalian cell nucleiBiochemistry, 1985
- Induction of cell damage by menadione and benzo(a)-pyrene-3,6-quinone in cultures of adult rat hepatocytes and human fibroblastsToxicology Letters, 1985
- Interaction of menadione (2-methyl-1,4-naphthoquinone) with glutathioneChemico-Biological Interactions, 1985
- Mitoxantrone for the treatment of advanced breast cancer: Single-agent therapy in previously untreated patientsEuropean Journal of Cancer and Clinical Oncology, 1984
- Antitumor anthracyclines: Recent developmentsMedicinal Research Reviews, 1984
- Oxidation of glutathione during hydroperoxide metabolismEuropean Journal of Biochemistry, 1984
- Mitoxantrone (novantrone): a review of experimental and early clinical studiesCancer Treatment Reviews, 1983
- One-electron-transfer reactions in biochemical systems V. Difference in the mechanism of quinone reduction by the NADH dehydrogenase and the NAD(P)H dehydrogenase (DT-diaphorase)Biochimica et Biophysica Acta (BBA) - Bioenergetics, 1970