DNA-damaging activities of twenty-four structurally diverse unsubstituted and substituted cyclic compounds in

Tetyana Kobets1, Jian-Dong Duan1, Klaus D Brunnemann1

  • 1Department of Pathology, New York Medical College, Valhalla, NY, 10595, USA.

Insights

Substituted cyclic compounds, particularly polycyclic ones, caused DNA damage in chicken embryos, unlike their unsubstituted counterparts. This highlights chicken embryos as a reliable model for assessing chemical genotoxicity and structure-activity relationships.

Area of Science:

  • Toxicology
  • Genetics
  • Environmental Science

Background:

  • Assessing the genotoxicity of cyclic compounds is crucial for understanding potential health risks.
  • Structure-activity relationships can predict DNA-damaging potential.
  • Embryo-fetal systems offer a sensitive model for toxicological studies.

Purpose of the Study:

  • To evaluate the DNA-damaging activities of diverse cyclic compounds in embryo-fetal chicken livers.
  • To investigate the influence of substitution patterns on the genotoxicity of cyclic compounds.
  • To establish the utility of chicken embryos for structure-activity relationship assessments.

Main Methods:

  • Utilized nucleotide 32P-postlabelling (NPL) assay to detect DNA adducts.
  • Employed the comet assay to measure DNA strand breaks.
  • Tested twenty-four structurally varied unsubstituted and substituted cyclic compounds.

Main Results:

  • Unsubstituted compounds (benzene, naphthalene, biphenyl, fluorene) and some amino-substituted compounds showed no DNA damage.
  • Carcinogenic methyl-substituted anilines, diamino/dinitro toluenes, and genotoxic polycyclic amino/nitro compounds induced DNA damage.
  • DNA-damaging activity correlated with the type and position of aromatic ring substitutions; polycyclic compounds were more potent.

Conclusions:

  • The substitution pattern on aromatic rings significantly influences the DNA-damaging activity of cyclic compounds.
  • Chicken embryo livers serve as a reliable model for assessing chemical genotoxicity and structure-activity relationships.
  • Findings align with in vivo studies in other species, validating the chicken egg system.

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