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Updated: Nov 29, 2025

The Lambda Select cII Mutation Detection System
Published on: April 26, 2018
Atypical UV Photoproducts Induce Non-canonical Mutation Classes Associated with Driver Mutations in Melanoma
Marian F Laughery1, Alexander J Brown1, Kaitlynne A Bohm1
1School of Molecular Biosciences, Washington State University, Pullman, WA 99164, USA.
Abstract:
Somatic mutations in skin cancers and other ultraviolet (UV)-exposed cells are typified by C>T and CC>TT substitutions at dipyrimidine sequences; however, many oncogenic "driver" mutations in melanoma do not fit this UV signature. Here, we use genome sequencing to characterize mutations in yeast repeatedly irradiated with UV light. Analysis of ~50,000 UV-induced mutations reveals abundant non-canonical mutations, including T>C, T>A, and AC>TT substitutions. These mutations display transcriptional asymmetry that is modulated by nucleotide excision repair (NER), indicating that they are caused by UV photoproducts. Using a sequencing method called UV DNA endonuclease sequencing (UVDE-seq), we confirm the existence of an atypical thymine-adenine photoproduct likely responsible for UV-induced T>A substitutions. Similar non-canonical mutations are present in skin cancers, which also display transcriptional asymmetry and dependence on NER. These include multiple driver mutations, most prominently the recurrent BRAF V600E and V600K substitutions, suggesting that mutations arising from rare, atypical UV photoproducts may play a role in melanomagenesis.
Insights
Ultraviolet (UV) radiation causes common C>T mutations in skin cells. This study reveals rare UV-induced mutations, including T>A, in yeast and skin cancers, potentially driving melanoma development.
Area of Science:
- Molecular Biology
- Genetics
- Photochemistry
Background:
- Somatic mutations in UV-exposed cells typically show C>T and CC>TT substitutions.
- Many melanoma driver mutations lack this canonical UV signature.
Purpose of the Study:
- To characterize UV-induced mutations in yeast, focusing on non-canonical substitutions.
- To investigate the role of atypical UV photoproducts in melanoma pathogenesis.
Main Methods:
- Genome sequencing of UV-irradiated yeast.
- Analysis of mutation signatures and transcriptional asymmetry.
- UV DNA endonuclease sequencing (UVDE-seq).
Main Results:
- UV irradiation of yeast produced abundant non-canonical mutations (T>C, T>A, AC>TT).
- These mutations exhibited transcriptional asymmetry, modulated by nucleotide excision repair (NER).
- An atypical thymine-adenine photoproduct was identified as a source of UV-induced T>A substitutions.
Conclusions:
- Rare, atypical UV photoproducts can cause non-canonical mutations.
- Similar mutations and dependencies on NER are found in skin cancers, including melanoma driver mutations (e.g., BRAF V600E/K).
- These atypical UV-induced mutations may contribute to melanoma development.
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