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Updated: Aug 5, 2026

The Lambda Select cII Mutation Detection System
Published on: April 26, 2018
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
Abstract:
Mutations are defined as stable and irreversible modifications of the normal genetic message due to small changes in the number or type of bases, or to large modifications of the genome such as deletions, insertions or chromosome rearrangements. These lesions are due to either polymerase errors during normal DNA replication or unrepaired DNA lesions, which will give rise to mutations through a mutagenic pathway. The molecular process leading to mutagenesis depends largely on the type of DNA lesions. Base modifications, such as 8-oxo-guanine or thymine glycol, both induced by ionizing radiations (IR), are readily replicated leading to direct mutations, usually base-pair substitutions. The 8-oxo-G gives rise predominantly to G to T transversions, the type of mutations found in ras or p53 gene from IR-induced tumors. Bulky adducts produced by chemical carcinogens or UV-irradiation are usually repaired by the nucleotide excision repair (NER) pathway which is able to detect structural distortion in the normal double-strand DNA backbone. These lesions represent a blockage to DNA and RNA polymerases as well as some signal for p53 accumulation in the damaged cell. In the absence of repair, these lesions could be eventually replicated owing to the induction of specific proteins at least in bacteria during the SOS process. The precise nature of the error-prone replication across an unexcised DNA lesion in the template is not fully understood in detailed biochemical terms, in mammalian cells. IR basically produce a very large number of DNA lesions from unique base modifications to single- or double-strand breaks and even complex DNA lesions due to the passage of very high energy particles or to a local re-emission of numerous radicals. The breakage of the double-helix is a difficult lesion to repair. Either it will result in cell death or, after an incorrect recombinational pathway, it will induce frameshifts, large deletions or chromosomal rearrangements. Most of the IR-induced mutations are recessive ones, requiring therefore a second genetic event in order to exhibit any harmful effect and a long latency period before the development of a radiation-induced tumor. The fact that IR essentially induced deletions and chromosomal translocations renders very difficult the use of the p53 gene as a marker for mutation analysis. In agreement with the type of lesions induced by IR, it is interesting to point out that the presence has been observed, in a vast majority of radiation-induced papillary thyroid carcinomas (PTC), of an activated ret proto-oncogene originated by the fusion of the tyrosine kinase 3' domain of this gene with the 5' domain of four different genes. These ret chimeric genes which are due to intra- or inter-chromosomal translocations, were called RET/PTC1 to PTC5. The RET/PTC rearrangements were found in PTC from children contaminated by the Chernobyl fall-out as well as in tumours from patients with a history of therapeutic external radiation, with a frequency of 60-84%. This frequency was only 15% in 'spontaneous' PTC. The type of ret chimeric gene predominantly originated by the accidental or therapeutic IR was different. Indeed, PTC1 was present in 75% of the tumours linked to a therapeutic radiation and PTC3 in 75% of the Chernobyl ones. The other forms of RET/PTC were observed in only a minority of the post-Chernobyl PTC (< 20%). The difference in the frequency of PTC1 and PTC3 in both types of PTC, is statistically significant (P < 10(-5), Fischer's exact test). In two of the post-therapeutic radiation PTC, RET/PTC1 and PTC3 were simultaneously present. A PTC1 gene was also observed in 45% of the adenomas appearing after therapeutic radiation. The long-period of latency between exposure to IR and the appearance of thyroid tumours is probably due to the conversion of a heterozygote genotype of IR-induced mutations to a homozygote one. It will be interesting to use this time lag in accidental or therapeutic-irradiated p
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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