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Updated: Jun 18, 2026

Formation of Covalent DNA Adducts by Enzymatically Activated Carcinogens and Drugs In Vitro and Their Determination by 32P-postlabeling
Published on: March 20, 2018
Benzene and dopamine catechol quinones could initiate cancer or neurogenic disease
Muhammad Zahid1, Muhammad Saeed, Eleanor G Rogan
1Eppley Institute for Research in Cancer and Allied Diseases, University of Nebraska Medical Center, Omaha, NE 68198-6805, USA.
Abstract:
Catechol quinones of estrogens react with DNA by 1,4-Michael addition to form depurinating N3Ade and N7Gua adducts. Loss of these adducts from DNA creates apurinic sites that can generate mutations leading to cancer initiation. We compared the reactions of the catechol quinones of the leukemogenic benzene (CAT-Q) and N-acetyldopamine (NADA-Q) with 2'-deoxyguanosine (dG) or DNA. NADA was used to prevent intramolecular cyclization of dopamine quinone. Reaction of CAT-Q or NADA-Q with dG at pH 4 afforded CAT-4-N7dG or NADA-6-N7dG, which lost deoxyribose with a half-life of 3 h to form CAT-4-N7Gua or 4 h to form NADA-6-N7Gua. When CAT-Q or NADA-Q was reacted with DNA, N3Ade adducts were formed and lost from DNA instantaneously, whereas N7Gua adducts were lost over several hours. The maximum yield of adducts in the reaction of CAT-Q or NADA-Q with DNA at pH 4 to 7 was at pH 4. When tyrosinase-activated CAT or NADA was reacted with DNA at pH 5 to 8, adduct levels were much higher (10- to 15-fold), and the highest yield was at pH 5. Reaction of catechol quinones of natural and synthetic estrogens, benzene, naphthalene, and dopamine with DNA to form depurinating adducts is a common feature that may lead to initiation of cancer or neurodegenerative disease.
Insights
Catechol quinones from estrogens and other compounds form DNA adducts that can lead to mutations and cancer. Understanding these reactions is key to cancer prevention.
Area of Science:
- Chemical Biology
- Molecular Toxicology
Background:
- Estrogen catechol quinones are reactive metabolites implicated in DNA damage.
- Depurinating DNA adducts formed by these quinones can lead to mutations and cancer initiation.
Purpose of the Study:
- To compare the DNA adduct formation by catechol quinones of benzene (CAT-Q) and N-acetyldopamine (NADA-Q).
- To investigate the kinetics of depurination and the influence of pH on adduct formation.
Main Methods:
- Reaction of CAT-Q and NADA-Q with 2'-deoxyguanosine (dG) and DNA.
- Analysis of adduct formation and depurination rates at various pH conditions.
- Use of tyrosinase activation to study adduct formation in a more biologically relevant context.
Main Results:
- CAT-Q and NADA-Q form N7Gua adducts with dG, which undergo depurination.
- Instantaneous loss of N3Ade adducts and slower loss of N7Gua adducts from DNA were observed.
- Optimal adduct formation occurred at acidic pH (4-5), with significantly higher levels upon tyrosinase activation.
Conclusions:
- The formation of depurinating DNA adducts by catechol quinones is a common mechanism for various compounds, including estrogens, benzene, and dopamine.
- This adduct formation pathway may contribute to the initiation of cancer and neurodegenerative diseases.
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