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Updated: Aug 5, 2026

Genetic Studies of Human DNA Repair Proteins Using Yeast as a Model System
Published on: March 18, 2010
Distinct repair processes produce APOBEC-induced deletions, tandem substitutions, and complex mutations in yeast and
Alexandra Puzon1, Atri Raval1,2, Cameron Cordero2
1School of Molecular Biosciences and Center for Reproductive Biology, Washington State University, Pullman, WA 99164.
Abstract:
APOBEC3A (A3A) and APOBEC3B (A3B) induce single base substitution signatures SBS2 and SBS13, which are composed of C>T and C>G mutations, respectively, at TCW sequences in >50% of sequenced tumors. However, few driver mutations have been attributed to APOBEC-induced SBS mutations. Although SBS2 and SBS13 have been associated with additional mutation types, the contribution of APOBECs to non-SBS mutations and the mechanisms that generate noncanonical APOBEC-induced mutations are uncharacterized. Here, we show that A3A expression generates non-SBS mutations including C deletions within TTC motifs, CC>TT and TC>AT/CT/GT dinucleotide variants (DNVs), distinct classes of paired SNV-SNV events, and complex insertion-SBS mutations in a yeast model system. Furthermore, we found that endogenous APOBEC expression in breast cancer cell lines is a significant driver of all these mutation types. In addition, we show that C deletions and complex insertion-SBS mutations within TTC motifs occur primarily by strand slippage during translesion synthesis (TLS) bypass of APOBEC-induced, UNG-dependent, abasic sites. Additionally, we found that CC>TT and TC>AT/CT/GT DNVs, which comprise the APOBEC-associated DBS11 signature, are generated by dU templating and TLS bypass of APOBEC-induced abasic sites, respectively. We also present data indicating that phased APOBEC-induced SNV-SNV mutations are produced during abasic site bypass by TLS. Analysis of WGS data from cultured human cells and tumors indicates that similar mechanisms generate these noncanonical APOBEC-induced mutations in human cancers, providing additional means by which APOBECs could contribute to carcinogenesis and therapeutic resistance.
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