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Covalent DNA damage in tissues of cigarette smokers as determined by 32P-postlabeling assay
E Randerath1, R H Miller, D Mittal
1Department of Pharmacology, Baylor College of Medicine, Houston, TX 77030.
Abstract:
Covalent DNA addition products (adducts) formed by the reaction of chemical carcinogens or their metabolites with DNA are critically involved in the initiation of chemical carcinogenesis and may serve as molecular markers and dosimeters for environmental carcinogen exposures. Using a highly sensitive 32P-postlabeling assay for DNA adduct analysis, we studied DNA damage elicited by cigarette smoke in tissues of smokers. A multitude of characteristic smoking-induced, presumably aromatic DNA adducts were found to occur in a dose- and time-dependent manner in the lung, bronchus, and larynx of smokers with cancer of these organs and to decline only slowly after cessation of smoking. Low levels of adducts appeared to persist for up to 14 years in the lungs of exsmokers with high previous exposures. These results corroborate data of epidemiological studies showing that the lung cancer risk and mortality of smokers increase with the intensity and duration of smoking and decline only slowly after cessation of smoking. Tissue distribution studies in autopsy samples revealed the presence of smoking-associated DNA lesions also in the kidney, bladder, esophagus, heart, ascending aorta, and liver. The most extensive DNA damage was found in lung and heart, i.e., 1 aromatic adduct in about 10(7) DNA nucleotides. Our results suggest that cigarette smoking-induced DNA adduct formation is causally related to cancer in the target organs.
Insights
Cigarette smoke causes DNA damage (adducts) in smokers, linked to cancer risk. This damage persists long-term, even after quitting smoking.
Area of Science:
- Environmental Health
- Molecular Biology
- Cancer Research
Background:
- Chemical carcinogens form DNA adducts, initiating cancer.
- DNA adducts can serve as biomarkers for carcinogen exposure.
Purpose of the Study:
- To investigate DNA damage from cigarette smoke in smokers.
- To analyze smoking-induced DNA adducts in various tissues.
Main Methods:
- Utilized a sensitive 32P-postlabeling assay for DNA adduct analysis.
- Examined DNA adducts in lung, bronchus, larynx, kidney, bladder, esophagus, heart, aorta, and liver tissues from smokers and ex-smokers.
Main Results:
- Identified numerous aromatic DNA adducts in smokers' tissues, correlating with dose and duration of smoking.
- Observed slow decline of adducts after smoking cessation, with persistence up to 14 years in lungs.
- Found smoking-associated DNA lesions in multiple organs, with highest levels in lung and heart.
Conclusions:
- Cigarette smoking-induced DNA adduct formation is causally linked to cancer in target organs.
- DNA adduct levels reflect smoking intensity and duration, supporting epidemiological findings.
- Persistence of DNA adducts in ex-smokers highlights long-term health risks.