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Oxidative DNA damage induced by potassium bromate under cell-free conditions and in mammalian cells
1Institute of Pharmacology and Toxicology, University of Würburg, Germany.
Abstract:
The oxidative DNA damage induced by the renal carcinogen potassium bromate (KBrO3) in cultured mammalian cells and in a cell-free system was characterized by means of various repair endonucleases. Under cell-free conditions, no modifications were induced by KBrO3 alone, but extensive DNA damage was observed in the presence of glutathione (GSH). The DNA damage was found to consist mostly of base modifications sensitive to Fpg protein (formamidopyrimidine-DNA glycosylase). HPLC analysis demonstrated that many of the modifications were 7,8-dihydro-8-oxoguanine(8-hydroxyguanine) residues. Single-strand breaks, sites of base loss (AP sites) and base modifications sensitive to endonuclease III (5,6-dihydropyrimidine derivatives) were formed in only low amounts. This 'damage profile' and experiments with various scavengers (catalase, superoxide dismutase, deferoxamine, azide, tert-butanol) and D2O as solvent excluded the involvement of hydroxyl radicals and single oxygen in the damage production, but were consistent with a radical mechanism involving bromine radicals. In L1210 mouse leukemia cells and LLC-PK1 porcine kidney cells, KBrO3 alone gave rise to a DNA damage profile similar to that observed after treatment of cell-free DNA with KBrO3 plus GSH, i.e. base modifications sensitive to Fpg protein were formed in high excess of all other lesions quantified. In LLC-PK1 cells (derived from the target organ of KBrO3-induced carcinogenesis) the level of DNA damage was twice that in the L1210 cells. DNA damage was partially prevented by depletion of intracellular GSH with diethylmaleate, indicating that GSH played an activating role in the cells similar to that seen under cell-free conditions. The Fpg-sensitive base modifications induced by KBrO3 were repaired with only moderate efficiency (38 +/- 10% of the lesions were still present after 18 h in full medium) under conditions that did not influence cell proliferation.
Insights
Potassium bromate induces oxidative DNA damage, primarily 8-hydroxyguanine, in cells and cell-free systems, with glutathione enhancing this effect. Bromine radicals, not hydroxyl radicals, are implicated in this damage.
Area of Science:
- Toxicology
- Molecular Biology
- Biochemistry
Background:
- Potassium bromate (KBrO3) is a renal carcinogen known to induce oxidative DNA damage.
- Understanding the specific types of DNA lesions and the mechanisms involved is crucial for assessing its carcinogenic potential.
Purpose of the Study:
- To characterize the oxidative DNA damage induced by KBrO3 in mammalian cells and cell-free systems.
- To elucidate the role of glutathione (GSH) and reactive oxygen species in KBrO3-induced DNA damage.
- To investigate the repair efficiency of KBrO3-induced DNA lesions.
Main Methods:
- Utilized various repair endonucleases to characterize DNA modifications.
- Employed High-Performance Liquid Chromatography (HPLC) to identify specific DNA bases.
- Investigated the effects of scavengers and D2O solvent to determine radical involvement.
- Assessed DNA damage in L1210 mouse leukemia and LLC-PK1 porcine kidney cells.
- Manipulated intracellular GSH levels using diethylmaleate.
Main Results:
- KBrO3 alone did not induce DNA damage in cell-free systems, but extensive damage occurred in the presence of glutathione (GSH).
- The primary lesion was 7,8-dihydro-8-oxoguanine (8-hydroxyguanine), sensitive to Fpg protein, with minimal single-strand breaks or AP sites.
- Damage mechanism involved bromine radicals, excluding hydroxyl radicals and singlet oxygen.
- In cultured cells, KBrO3 induced Fpg-sensitive base modifications, with higher damage in LLC-PK1 cells (kidney target organ).
- Intracellular GSH depletion reduced KBrO3-induced DNA damage, confirming GSH's activating role.
Conclusions:
- KBrO3 induces oxidative DNA damage primarily as 8-hydroxyguanine, dependent on glutathione.
- The mechanism involves bromine radicals, highlighting a specific pathway for KBrO3 toxicity.
- Kidney cells are more susceptible to KBrO3-induced DNA damage.
- Repair of these lesions is only moderately efficient, suggesting potential for accumulation and long-term effects.