Mutational impact and signature of ionizing radiation
Youk, J.; Kwon, H. W.; Lim, J.; Kim, E.; Kim, R.; Park, S.; Yi, K.; Jeon, S.; Choi, J.; Na, H.; Lee, E.-S.; Cho, Y.-W.; Min, D.-W.; Kim, H.; Kang, Y.-R.; Choi, S. H.; Bae, M. J.; Lee, C. G.; Kim, J.-G.; Kim, Y. S.; Lee, D. S.; Kim, T. Y.; Ku, T.; Kim, S. Y.; Lee, J.-H.; Koo, B.-K.; Lee, H.; Yi, O. V.; Han, E. C.; Chang, J. H.; Kim, K. S.; Son, T. G.; Ju, Y. S.
Show abstract
Whole-genome sequencing (WGS) of human tumors and normal cells exposed to various carcinogens has revealed distinct mutational patterns that provide deep insights into the DNA damage and repair processes. Although ionizing radiation (IR) is conventionally known as a strong carcinogen, its genome-wide mutational impacts have not been comprehensively investigated at the single-nucleotide level. Here, we explored the mutational landscape of normal single-cells after exposure to the various levels of IR. On average, 1 Gy of IR exposure generated [~]16 mutational events with a spectrum consisting of predominantly small nucleotide deletions and a few characteristic structural variations. In [~]30% of the post-irradiated cells, complex genomic rearrangements, such as chromoplexy, chromothripsis, and breakage-fusion-bridge cycles, were resulted, indicating the stochastic and chaotic nature of DNA repair in the presence of the massive number of concurrent DNA double-strand breaks. These mutational signatures were confirmed in the genomes of 22 IR-induced secondary malignancies. With high-resolution genomic snapshots of irradiated cells, our findings provide deep insights into how IR-induced DNA damage and subsequent repair processes operate in mammalian cells.
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