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Published on: January 12, 2020
Oncomutations as biomarkers of cancer risk
Barbara L Parsons1, Meagan B Myers, Fanxue Meng
1Division of Genetic and Reproductive Toxicology, National Center for Toxicological Research, Jefferson, Arkansas 72079, USA. barbara.parsons@fda.hhs.gov
Abstract:
Cancer risk assessment impacts a range of societal needs, from the regulation of chemicals to achieving the best possible human health outcomes. Because oncogene and tumor suppressor gene mutations are necessary for the development of cancer, such mutations are ideal biomarkers to use in cancer risk assessment. Consequently, DNA-based methods to quantify particular tumor-associated hotspot point mutations (i.e., oncomutations) have been developed, including allele-specific competitive blocker-PCR (ACB-PCR). Several studies using ACB-PCR and model mutagens have demonstrated that significant induction of tumor-associated oncomutations are measureable at earlier time points than are used to score tumors in a bioassay. In the particular case of benzo[a]pyrene induction of K-Ras codon 12 TGT mutation in the A/J mouse lung, measurement of tumor-associated oncomutation was shown to be an earlier and more sensitive endpoint than tumor response. The measurement of oncomutation by ACB-PCR led to two unexpected findings. First, oncomutations are present in various tissues of control rodents and "normal" human colonic mucosa samples at relatively high frequencies. Approximately 60% of such samples (88/146) have mutant fractions (MFs) >10(-5), and some have MFs as high as 10(-3) or 10(-4). Second, preliminary data indicate that oncomutations are present frequently as subpopulations in tumors. These findings are integrated into a hypothesis that the predominant preexisting mutations in particular tissues may be useful as generic reporters of carcinogenesis. Future research opportunities using oncomutation as an endpoint are described, including rodent to human extrapolation, dose-response assessment, and personalized medicine.
Insights
Oncogene mutations (oncomutations) can be detected earlier than tumors in cancer risk assessment. Pre-existing oncomutations in normal tissues may serve as early cancer reporters.
Area of Science:
- Biomarkers and Cancer Research
- Molecular Toxicology
- Genetics and Genomics
Background:
- Cancer risk assessment is crucial for public health and chemical regulation.
- Oncogene and tumor suppressor gene mutations (oncomutations) are key drivers of cancer development.
- DNA-based methods, like allele-specific competitive blocker-PCR (ACB-PCR), quantify oncomutations.
Purpose of the Study:
- To investigate the utility of oncomutations as early biomarkers in cancer risk assessment.
- To explore the presence and frequency of oncomutations in normal tissues and tumors.
- To propose a hypothesis integrating oncomutations as generic reporters of carcinogenesis.
Main Methods:
- Utilized allele-specific competitive blocker-PCR (ACB-PCR) to quantify oncomutations.
- Applied ACB-PCR to model mutagens and benzo[a]pyrene-induced K-Ras mutations in mouse lung.
- Analyzed oncomutation frequencies in control rodent tissues and human colonic mucosa.
Main Results:
- Oncomutations were detected at earlier time points than tumor formation in bioassays.
- K-Ras codon 12 TGT mutation detection was more sensitive than tumor response for benzo[a]pyrene exposure.
- High frequencies of oncomutations were found in control rodent tissues and normal human colonic mucosa (MFs >10(-5) in ~60% of samples).
- Oncomutations were frequently observed as subpopulations within tumors.
Conclusions:
- Oncomutations are measurable earlier and more sensitively than traditional tumor endpoints.
- Pre-existing oncomutations in normal tissues may serve as sensitive, generic reporters of carcinogenesis.
- Further research into oncomutations can advance rodent-to-human extrapolation, dose-response assessment, and personalized medicine.
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