DNA adduct formation and mutation induction by aristolochic acid in rat kidney and liver

Nan Mei1, Volker M Arlt, David H Phillips

  • 1Division of Genetic and Reproductive Toxicology, National Center for Toxicological Research, FDA, Jefferson, AR 72079, USA. nan.mei@fda.hhs.gov

Mutation Research
|October 3, 2006
PubMed

Insights

Aristolochic acid (AA) causes DNA damage and mutations in rat kidneys and livers, with kidneys showing higher levels. This study investigates the molecular mechanisms of AA-induced tumorigenicity.

Area of Science:

  • Toxicology
  • Carcinogenesis
  • Molecular Biology

Background:

  • Aristolochic acid (AA) is a known nephrotoxin and carcinogen, linked to Chinese herb nephropathy and urothelial cancers.
  • AA induces kidney and forestomach tumors in rodents, suggesting a need to understand its molecular tumorigenic mechanisms.

Purpose of the Study:

  • To investigate the molecular mechanisms of aristolochic acid (AA) tumorigenicity.
  • To determine DNA adduct formation and mutagenicity of AA in the liver and kidney of Big Blue rats.

Main Methods:

  • Rats were gavaged with varying doses of AA (0-10.0 mg/kg) five times weekly for 3 months.
  • DNA adducts were analyzed using 32P-postlabeling.
  • Mutant frequency (MF) was determined using the lambda Select-cII Mutation Detection System.

Main Results:

  • Three major AA-DNA adducts were identified.
  • A linear dose-response was observed for AA-induced DNA adducts and mutations in both liver and kidney.
  • Kidneys exhibited at least twofold higher levels of DNA adducts and MF compared to livers.
  • A:T-->T:A transversion was the predominant mutation in AA-treated rats, differing from control mutations.

Conclusions:

  • AA treatment significantly increases DNA adduct formation and MF in rat kidneys, correlating with observed kidney tumors.
  • While not producing tumors, AA also induces DNA adducts and mutations in the liver, albeit at lower levels than in the kidney.
  • The study elucidates molecular mechanisms underlying AA's carcinogenicity, highlighting differential target organ susceptibility.

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