Polymerase δ promotes chromosomal rearrangements and imprecise double-strand break repair

Proc Natl Acad Sci U S A. 2020 Nov 3;117(44):27566-27577. doi: 10.1073/pnas.2014176117. Epub 2020 Oct 19.

Abstract

Recent studies have implicated DNA polymerases θ (Pol θ) and β (Pol β) as mediators of alternative nonhomologous end-joining (Alt-NHEJ) events, including chromosomal translocations. Here we identify subunits of the replicative DNA polymerase δ (Pol δ) as promoters of Alt-NHEJ that results in more extensive intrachromosomal mutations at a single double-strand break (DSB) and more frequent translocations between two DSBs. Depletion of the Pol δ accessory subunit POLD2 destabilizes the complex, resulting in degradation of both POLD1 and POLD3 in human cells. POLD2 depletion markedly reduces the frequency of translocations with sequence modifications but does not affect the frequency of translocations with exact joins. Using separation-of-function mutants, we show that both the DNA synthesis and exonuclease activities of the POLD1 subunit contribute to translocations. As described in yeast and unlike Pol θ, Pol δ also promotes homology-directed repair. Codepletion of POLD2 with 53BP1 nearly eliminates translocations. POLD1 and POLD2 each colocalize with phosphorylated H2AX at ionizing radiation-induced DSBs but not with 53BP1. Codepletion of POLD2 with either ligase 3 (LIG3) or ligase 4 (LIG4) does not further reduce translocation frequency compared to POLD2 depletion alone. Together, these data support a model in which Pol δ promotes Alt-NHEJ in human cells at DSBs, including translocations.

Keywords: POLD1; POLD2; nonhomologous end-joining; polymerase δ; translocation.

Publication types

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

MeSH terms

  • DNA Breaks, Double-Stranded
  • DNA End-Joining Repair*
  • DNA Polymerase III / genetics
  • DNA Polymerase III / metabolism*
  • Gene Knockdown Techniques
  • HEK293 Cells
  • HeLa Cells
  • Humans
  • RNA, Small Interfering / metabolism
  • Translocation, Genetic*

Substances

  • RNA, Small Interfering
  • POLD1 protein, human
  • POLD2 protein, human
  • POLD3 protein, human
  • DNA Polymerase III