Balancing act of a leading strand DNA polymerase-specific domain and its exonuclease domain promotes genome-wide sister replication fork symmetry

Genes Dev. 2023 Feb 1;37(3-4):74-79. doi: 10.1101/gad.350054.122. Epub 2023 Jan 26.

Abstract

Pol2 is the leading-strand DNA polymerase in budding yeast. Here we describe an antagonism between its conserved POPS (Pol2 family-specific catalytic core peripheral subdomain) and exonuclease domain and the importance of this antagonism in genome replication. We show that multiple defects caused by POPS mutations, including impaired growth and DNA synthesis, genome instability, and reliance on other genome maintenance factors, were rescued by exonuclease inactivation. Single-molecule data revealed that the rescue stemmed from allowing sister replication forks to progress at equal rates. Our data suggest that balanced activity of Pol2's POPS and exonuclease domains is vital for genome replication and stability.

Keywords: EXO domain; Pol2; replication elongation; sister fork asymmetry.

Publication types

  • Research Support, Non-U.S. Gov't
  • Research Support, N.I.H., Extramural

MeSH terms

  • DNA Polymerase II / genetics
  • DNA Polymerase II / metabolism
  • DNA Replication* / genetics
  • Exonucleases* / genetics
  • Exonucleases* / metabolism
  • Genomic Instability / genetics
  • Humans
  • Mutation

Substances

  • Exonucleases
  • DNA Polymerase II