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A new approach to identifying genotoxic carcinogens: p53 induction as an indicator of genotoxic damage
1Department of Biology, Georgia State University, Atlanta 30303, USA.
Abstract:
The tumor suppressor gene p53 encodes a nuclear phosphoprotein which is critical for cell cycle control and prevention of uncontrolled cell proliferation that can lead to cancer. Previous studies have shown that cells respond to DNA damage by increasing their levels of p53, which then acts to prevent replication of damaged DNA. This study examined the effects on p53 protein levels of several different categories of chemical carcinogens. N-Methyl-N'-nitro-nitrosoguanidine and N-ethyl-N-nitrosourea, two direct-acting genotoxic (DNA-reactive) carcinogens, caused p53 induction as early as 2 h following treatment, with peak increases within 4-12 h. Aflatoxin B1 and 2-acetylaminofluorene, indirect-acting genotoxic carcinogens, caused a later induction of p53, with the peak increase appearing between 16 and 24 h following treatment. These observations demonstrate a correlation between p53 induction pattern and DNA damaging mechanism of genotoxins. Phenol, diethylstilbestrol and ethylacrylate also induced increases in cellular p53. The half-life of p53 protein was increased in cells treated with genotoxic agents. On the other hand, the epigenetic (non-DNA-reactive) carcinogens azathioprine and saccharin, as well as two substances generally considered to be non-carcinogens, dimethylsulfoxide and benzethonium chloride, had no effect on p53 protein levels of treated cells. Measurement of the cytotoxic effects of each of these chemicals led to the conclusion that p53 protein induction is not a general, non-specific consequence of the cytotoxic effect of these genotoxins. These results suggest that measurement of p53 protein induction may be an effective tool to identify environmental genotoxins.
Insights
The tumor suppressor protein p53 is induced by genotoxic carcinogens, with timing dependent on the DNA-damaging mechanism. Measuring p53 induction can help identify environmental genotoxins.
Area of Science:
- Molecular Biology
- Toxicology
- Cancer Research
Background:
- The p53 tumor suppressor gene is crucial for cell cycle control and cancer prevention.
- Cells increase p53 levels in response to DNA damage to halt replication of damaged DNA.
Purpose of the Study:
- To investigate the effects of various chemical carcinogens on p53 protein levels.
- To determine if p53 induction patterns correlate with carcinogen mechanisms.
- To assess the potential of p53 induction as a biomarker for genotoxicity.
Main Methods:
- Treatment of cells with direct-acting genotoxic carcinogens (e.g., N-Methyl-N'-nitro-nitrosoguanidine), indirect-acting genotoxic carcinogens (e.g., Aflatoxin B1), epigenetic carcinogens (e.g., azathioprine), and non-carcinogens.
- Monitoring p53 protein levels over time post-treatment.
- Assessing cytotoxic effects of the tested chemicals.
Main Results:
- Direct-acting genotoxins induced p53 within 2-12 hours, while indirect-acting genotoxins induced it within 16-24 hours.
- Genotoxic agents increased the half-life of p53 protein.
- Epigenetic carcinogens and non-carcinogens did not affect p53 levels.
- p53 induction was not a non-specific consequence of cytotoxicity.
Conclusions:
- p53 protein induction patterns correlate with the DNA-damaging mechanisms of genotoxins.
- p53 induction is a specific response to genotoxic agents, not general cytotoxicity.
- Measurement of p53 protein induction shows promise as a method for identifying environmental genotoxins.