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Updated: Jul 8, 2026

Targeted in Situ Mutagenesis of Histone Genes in Budding Yeast
Published on: January 26, 2017
Mutational specificity and genetic control of replicative bypass of an abasic site in yeast
Vincent Pagès1, Robert E Johnson, Louise Prakash
1Department of Biochemistry and Molecular Biology, University of Texas Medical Branch, 301 University Boulevard, Galveston, TX 77555-1061, USA.
Abstract:
Abasic (AP) sites represent one of the most frequently formed lesions in DNA, and they present a strong block to continued synthesis by the replicative DNA polymerases (Pols). Here we determine the mutational specificity and the genetic control of translesion synthesis (TLS) opposite an AP site in yeast by using a double-stranded plasmid system that we have devised in which bidirectional replication proceeds from a replication origin. We find that the rate, the genetic control, and the types and frequencies of nucleotides inserted opposite the AP site are very similar for both the leading and the lagging DNA strands, and that an A is predominantly inserted opposite the AP site, whereas C insertion by Rev1 constitutes a much less frequent event. In striking contrast, in studies that have been reported previously for AP bypass with gapped-duplex and single-stranded plasmids, it has been shown that a C is the predominant nucleotide inserted opposite the AP site. We discuss the implications of our observations for the mechanisms of TLS on the leading versus the lagging DNA strand and suggest that lesion bypass during replication involves the coordination of activities of the replicative Pol with that of the lesion-bypass Pol.
Insights
DNA abasic (AP) sites block replication. Yeast studies show leading and lagging strands insert
Area of Science:
- Molecular Biology
- Genetics
- DNA Repair
Background:
- Abasic (AP) sites are frequent DNA lesions.
- AP sites stall replicative DNA polymerases (Pols).
- Translesion synthesis (TLS) bypasses DNA lesions.
Purpose of the Study:
- Investigate TLS opposite AP sites in yeast.
- Determine mutational specificity and genetic control of AP site bypass.
- Compare TLS on leading versus lagging DNA strands.
Main Methods:
- Devised a double-stranded plasmid system for bidirectional replication.
- Analyzed nucleotide insertion opposite AP sites during replication.
- Assessed genetic control of TLS.
Main Results:
- Nucleotide insertion opposite AP sites was similar for leading and lagging strands.
- Adenine (A) was predominantly inserted opposite AP sites.
- Cytosine (C) insertion by Rev1 was a less frequent event, contrasting previous studies.
Conclusions:
- AP site bypass mechanisms may differ between leading and lagging strands.
- Replication involves coordination between replicative and lesion-bypass polymerases.
- Findings challenge previous models of AP site bypass.
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