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

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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