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.

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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