Mechanisms of mutagenesis in mammalian cells. Application to human thyroid tumours

A Sarasin1, A Bounacer, F Lepage

  • 1Laboratoire de génétique moléculaire, UPR 42 CNRS, Institut de recherches sur le cancer, Villejuif, France. sarasin@infobiogen.fr

Insights

Ionizing radiation (IR) causes DNA mutations, including base modifications and double-strand breaks. These mutations can lead to RET/PTC rearrangements in thyroid cancer, with specific types linked to Chernobyl exposure or therapeutic radiation.

Area of Science:

  • Molecular Biology
  • Genetics
  • Oncology

Background:

  • Mutations are permanent genetic alterations arising from DNA replication errors or unrepaired DNA lesions.
  • Ionizing radiation (IR) induces diverse DNA lesions, including base modifications (e.g., 8-oxo-guanine) and double-strand breaks, leading to various mutation types.
  • While nucleotide excision repair (NER) handles bulky adducts, IR-induced lesions like double-strand breaks can cause chromosomal rearrangements, contributing to cancer development.

Purpose of the Study:

  • To investigate the specific types of mutations and genetic rearrangements induced by ionizing radiation (IR) in papillary thyroid carcinomas (PTCs).
  • To analyze the association between different RET/PTC fusion gene types and the source of IR exposure (Chernobyl fallout vs. therapeutic radiation).

Main Methods:

  • Analysis of DNA lesions induced by IR, including base modifications and chromosomal rearrangements.
  • Molecular characterization of RET/PTC proto-oncogene rearrangements in radiation-induced PTCs.
  • Statistical comparison of RET/PTC subtypes between Chernobyl-exposed and therapeutically irradiated patient cohorts.

Main Results:

  • IR induces mutations such as G to T transversions and chromosomal rearrangements, including deletions and translocations.
  • A high frequency (60-84%) of RET/PTC rearrangements was observed in radiation-induced PTCs, compared to 15% in spontaneous PTCs.
  • Specific RET/PTC subtypes were predominantly associated with different IR exposure types: RET/PTC1 with therapeutic radiation and RET/PTC3 with Chernobyl exposure.

Conclusions:

  • Ionizing radiation plays a significant role in the pathogenesis of papillary thyroid carcinoma through the induction of specific RET/PTC rearrangements.
  • The distinct patterns of RET/PTC rearrangements provide insights into the mechanisms of radiation carcinogenesis and can serve as biomarkers for exposure source.

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