Factors that influence the mutagenic patterns of DNA adducts from chemical carcinogens

K Y Seo1, S A Jelinsky, E L Loechler

  • 1Department of Biology, Boston University, Boston, MA 02215, USA.

Mutation Research
|October 6, 2000
PubMed

Insights

Carcinogen-induced mutations arise from DNA polymerase encountering DNA adducts. A single adduct can cause diverse mutations by adopting multiple conformations, influenced by DNA structure and sequence.

Area of Science:

  • Molecular Biology
  • Genetics
  • Toxicology

Background:

  • Carcinogens are mutagens that cause uncontrolled cell growth by inducing mutations in critical genes.
  • Mutational complexity, such as GC-->TA and GC-->AT changes, is often observed.
  • These mutations are initiated when DNA polymerase encounters carcinogen-DNA adducts during replication.

Purpose of the Study:

  • To investigate the mechanisms underlying the complex mutational patterns induced by carcinogens.
  • To differentiate between hypotheses where multiple adducts cause single mutations versus a single adduct causing multiple mutations.
  • To explore how structural and biological factors influence adduct mutagenesis patterns.

Main Methods:

  • Review of existing literature on carcinogen-induced mutagenesis.
  • Analysis of structural and biological factors affecting adduct mutagenesis.
  • Experimental investigation of benzo[a]pyrene-N(2)-deoxyguanosine adducts in different DNA contexts (sequence, single-stranded vs. double-stranded).

Main Results:

  • Evidence supports the hypothesis that a single carcinogen-DNA adduct can induce multiple types of mutations.
  • The conformation of the adduct, influenced by DNA sequence context and DNA structure (ssDNA vs. dsDNA), dictates the mutation pattern.
  • Specific adducts, like [+ta]-B[a]P-N(2)-dG, can be trapped in conformations favoring distinct mutations (e.g., G-->T or G-->A).

Conclusions:

  • Adduct conformational complexity is a key driver of adduct mutational complexity.
  • Understanding these conformational dynamics is crucial for predicting and mitigating carcinogen-induced mutations.
  • Factors like DNA sequence and strand status significantly modulate the mutagenic potential of carcinogen-DNA adducts.

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