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Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
Genotoxic C8-Arylamino-2'-deoxyadenosines Act as Latent Alkylating Agents to Induce DNA Interstrand Cross-Links
Aaron L Rozelle1,2, Seongmin Lee1
1Division of Chemical Biology and Medicinal Chemistry, College of Pharmacy, The University of Texas at Austin, Austin, Texas 78712, United States.
Abstract:
DNA interstrand cross-links (ICLs) are extremely deleterious and structurally diverse, driving the evolution of ICL repair pathways. Discovering ICL-inducing agents is, thus, crucial for the characterization of ICL repair pathways and Fanconi anemia, a genetic disease caused by mutations in ICL repair genes. Although several studies point to oxidative stress as a cause of ICLs, oxidative stress-induced cross-linking events remain poorly characterized. Also, polycyclic aromatic amines, potent environmental carcinogens, have been implicated in producing ICLs, but their identities and sequences are unknown. To close this knowledge gap, we tested whether ICLs arise by the oxidation of 8-arylamino-2'-deoxyadenosine (ArNHdA) lesions, adducts produced by arylamino carcinogens. Herein, we report that ArNHdA acts as a latent cross-linking agent to generate ICLs under oxidative conditions. The formation of an ICL from 8-aminoadenine, but not from 8-aminoguanine, highlights the specificity of 8-aminopurine-mediated ICL production. Under the influence of the reactive oxygen species (ROS) nitrosoperoxycarbonate, ArNHdA (Ar = biphenyl, fluorenyl) lesions were selectively oxidized to generate ICLs. The cross-linking reaction may occur between the C2-ArNHdA and N2-dG, presumably via oxidation of ArNHdA into a reactive diiminoadenine intermediate followed by the nucleophilic attack of the N2-dG on the diiminoadenine. Overall, ArNHdA-mediated ICLs represent rare examples of ROS-induced ICLs and polycyclic aromatic amine-mediated ICLs. These results reveal novel cross-linking chemistry and the genotoxic effects of arylamino carcinogens and support the hypothesis that C8-modified adenines with low redox potential can cause ICLs in oxidative stress.
Insights
Polycyclic aromatic amines can cause DNA interstrand cross-links (ICLs) by oxidizing 8-arylamino-2'-deoxyadenosine lesions under oxidative stress, revealing new genotoxic mechanisms.
Area of Science:
- Molecular Biology
- Genetics
- Environmental Health
Background:
- DNA interstrand cross-links (ICLs) are harmful DNA lesions that can lead to genetic diseases like Fanconi anemia.
- Oxidative stress and polycyclic aromatic amines are suspected causes of ICLs, but the specific mechanisms and agents remain poorly understood.
Purpose of the Study:
- To investigate if 8-arylamino-2 -deoxyadenosine (ArNHdA) lesions, formed by arylamino carcinogens, can generate ICLs under oxidative conditions.
- To elucidate the chemical pathways and specificity of ICL formation induced by these lesions.
Main Methods:
- Exposure of 8-arylamino-2 -deoxyadenosine lesions to reactive oxygen species (ROS), specifically nitrosoperoxycarbonate.
- Analysis of ICL formation using specific arylamino carcinogens (biphenyl, fluorenyl) and DNA bases (adenine, guanine).
- Proposed a reaction mechanism involving oxidation of ArNHdA to a diiminoadenine intermediate.
Main Results:
- 8-arylamino-2 -deoxyadenosine lesions act as latent cross-linking agents, forming ICLs under oxidative conditions.
- ICL formation was observed from 8-aminoadenine but not 8-aminoguanine, indicating base specificity.
- The study identified novel cross-linking chemistry involving ROS and arylamino carcinogens.
Conclusions:
- 8-arylamino-2 -deoxyadenosine-mediated ICLs are a novel class of ROS-induced and polycyclic aromatic amine-induced ICLs.
- These findings reveal the genotoxic effects of arylamino carcinogens and highlight the role of C8-modified adenines in oxidative stress-induced ICLs.
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