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February 6, 2026Proceedings of the National Academy of Sciences1 citations

Mutations and structural variants arising during double-strand break repair

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SDSimona DalinBroad InstituteSWSophie WebsterBroad InstituteNSNeal SugawaraBrandeis University

Key Points

  • This research aims to understand the types of mutations arising during the repair of double-strand breaks in yeast.
  • Analyzed repair of HO endonuclease-induced double-strand breaks in budding yeast.
  • Examined types and frequencies of mutations, including base-pair substitutions and indels.
  • Investigated the role of microhomology in intragenic deletions and structural variants.
  • 50% of mutations were base-pair substitutions and 30% were 1-bp indels.
  • Intragenic deletions occurred 12 times more frequently than tandem duplications.
  • Approximately 10% of mutations were interchromosomal template switches, influenced by adjacent homeology.

Abstract

Double-strand break (DSB) repair is highly mutagenic compared to normal replication. In budding yeast, repair of an HO (homothallism) endonuclease-induced DSB at the mating-type α locus ( MAT α) can be repaired by using an ectopic heterochromatic HMR::Kl-URA3 donor, producing MAT::Kl-URA3 . Among MAT::Kl -Ura3− mutations arising during repair, 50% are base-pair substitutions. 30% are 1-bp indels in short homonucleotide runs, with −1 strongly favored over +1, whereas during replication, spontaneous −1 and +1 events are equal. Microhomology-bounded, repair-associated intragenic deletions (IDs) are recovered 12 times more frequently than tandem duplications (TDs). These data suggest a picture of the structure of the repair replication fork: IDs and TDs occur within the open structure of a migrating D-loop, where the 3’ end of a partly copied new DNA strand can dissociate and anneal with a single-stranded region of microhomology either within ~80 bp ahead or ~40 bp behind the 3’ end. Approximately ~10% of repair-associated mutations are interchromosomal template switches (ICTS), even though the Kluyveromyces lactis URA3 sequence in HMR is only 72% identical (homeologous) with Saccharomyces cerevisiae ura3-52 . ICTS events begin and end at regions of short (~7.5 bp) microhomology; however, ICTS events are constrained to the middle of the copied sequence. Whereas microhomology usage in intragenic deletions is not influenced by adjacent homeology, we show that extensive pairing of adjacent homeology plays a critical role in ICTS. Thus, although by convention, structural variants are characterized by the precise base pairs at their junction, microhomology-mediated template switching actually requires alignment of extensive adjacent homeology.

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Cite This Study

Dalin et al. (2026) studied this question.

synapsesocial.com/papers/698586118f7c464f23009f44https://doi.org/10.1073/pnas.2504584123
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