Kinetics of DNA Adducts and Abasic Site Formation in Tissues of Mice Treated with a Nitrogen Mustard
Haoqing Chen, Ziyou Cui, Leila Hejazi
1Departments of Chemistry and Biochemistry, and Vanderbilt-Ingram Cancer Center, Vanderbilt University, Nashville, Tennessee 37067, United States.
Abstract:
Nitrogen mustards (NM) are an important class of chemotherapeutic drugs used in the treatment of malignant tumors. The accepted mechanism of action of NM is through the alkylation of DNA bases. NM-adducts block DNA replication in cancer cells by forming cytotoxic DNA interstrand cross-links. We previously characterized several adducts formed by reaction of bis(2-chloroethyl)ethylamine (NM) with calf thymus (CT) DNA and the MDA-MB-231 mammary tumor cell line. The monoalkylated N7-guanine (NM-G) adduct and its cross-link (G-NM-G) were major lesions. The cationic NM-G undergoes a secondary reaction through depurination to form an apurinic (AP) site or reacts with hydroxide to yield the stable ring-opened N5-substituted formamidopyrimidine (NM-Fapy-G) adduct. Both of these lesions are mutagenic and may contribute to secondary tumor development, a major clinical limitation of NM chemotherapy. We established a kinetic model with NM-treated female mice and measured the rates of formation and removal of NM-DNA adducts and AP sites. We employed liquid chromatography-mass spectrometry (LC-MS) to measure NM-G, G-NM-G, and NM-Fapy-G adducts in liver, lung, and spleen over 168 h. NM-G reached a maximum level within 6 h in all organs and then rapidly declined. The G-NM-G cross-link and NM-FapyG were more persistent with half-lives over three-times longer than NM-G. We quantified AP site lesions in the liver and showed that NM treatment increased AP site levels by 3.7-fold over the basal levels at 6 h. The kinetics of AP site repair closely followed the rate of removal of NM-G; however, AP sites remained 1.3-fold above basal levels 168 h post-treatment with NM. Our data provide new insights into NM-induced DNA damage and biological processing in vivo. The quantitative measurement of the spectrum of NM adducts and AP sites can serve as biomarkers in the design and assessment of the efficacy of novel chemotherapeutic regimens.
Insights
Nitrogen mustards (NM) cause DNA damage, forming persistent lesions like cross-links and apurinic sites that may lead to secondary tumors. Understanding their kinetics in vivo is crucial for improving chemotherapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Nitrogen mustards (NM) are chemotherapeutics alkylating DNA, forming interstrand cross-links that inhibit cancer cell replication.
- Key NM-DNA adducts include monoalkylated N7-guanine (NM-G), cross-links (G-NM-G), and ring-opened forms (NM-Fapy-G).
- Mutagenic NM-G can depurinate into apurinic (AP) sites or form NM-Fapy-G, potentially causing secondary tumors.
Purpose of the Study:
- To establish a kinetic model for NM-induced DNA adducts and AP sites in vivo.
- To quantify the formation and removal rates of NM-G, G-NM-G, and NM-Fapy-G adducts in mice.
- To assess AP site kinetics and their relationship with NM-G removal.
Main Methods:
- Utilized a kinetic model in NM-treated female mice.
- Employed liquid chromatography-mass spectrometry (LC-MS) to measure NM-DNA adducts (NM-G, G-NM-G, NM-Fapy-G) in liver, lung, and spleen over 168 hours.
- Quantified AP site lesions in the liver.
Main Results:
- NM-G peaked within 6 hours and rapidly declined; G-NM-G and NM-Fapy-G were more persistent with longer half-lives.
- NM treatment increased liver AP sites 3.7-fold at 6 hours.
- AP site repair kinetics mirrored NM-G removal, but AP sites remained elevated 168 hours post-treatment.
Conclusions:
- NM-induced DNA damage involves persistent adducts and AP sites, contributing to mutagenicity and potential secondary tumors.
- Quantitative adduct and AP site measurements can serve as biomarkers for novel chemotherapy assessment.
- This study provides in vivo insights into NM DNA damage processing and repair kinetics.
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