Carcinogen adducts as an indicator for the public health risks of consuming carcinogen-exposed fish and shellfish

B P Dunn1

  • 1British Columbia Cancer Research Center, Vancouver, Canada.

Insights

Environmental carcinogens form DNA-carcinogen adducts, detectable in aquatic food. Fish form adducts, while shellfish do not, indicating varying exposure risks and potential health impacts.

Area of Science:

  • Environmental Science
  • Toxicology
  • Biochemistry

Background:

  • Environmental carcinogens are activated to electrophilic metabolites.
  • These metabolites form covalent adducts with DNA and proteins.
  • DNA-carcinogen adducts are considered a crucial step in carcinogenicity.

Purpose of the Study:

  • To review methods for detecting DNA- and protein-carcinogen adducts.
  • To assess the significance of these adducts as indicators of carcinogen exposure in aquatic organisms.
  • To evaluate the potential human health risks associated with consuming aquatic foodstuffs containing these adducts.

Main Methods:

  • Development of sensitive fluorescence, immunochemical, and radioactive-postlabeling techniques.
  • Measurement of DNA- and protein-carcinogen adducts in aquatic organisms.
  • Comparison of adduct formation and carcinogen metabolism in fish and shellfish.

Main Results:

  • Adducts are generally more persistent than the parent carcinogens.
  • Fish exhibit high carcinogen metabolism, form adducts, and develop tumors.
  • Shellfish show low metabolism, high body burdens, and minimal adducts or tumors.

Conclusions:

  • DNA- and protein-carcinogen adducts in aquatic food serve as biomarkers of prior exposure.
  • Consumption of adducts poses minimal human health risk due to lack of metabolic reactivation.
  • Further research is needed to explore theoretical risks of nucleoside adduct incorporation into human DNA.

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