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Oxidative DNA damage induced by potassium bromate under cell-free conditions and in mammalian cells

D Ballmaier1, B Epe

  • 1Institute of Pharmacology and Toxicology, University of Würburg, Germany.

Carcinogenesis
|February 1, 1995
PubMed

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.

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