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Updated: Jul 5, 2025

Detection of Post-Replicative Gaps Accumulation and Repair in Human Cells Using the DNA Fiber Assay
Published on: February 3, 2022
APOBEC3A induces DNA gaps through PRIMPOL and confers gap-associated therapeutic vulnerability
Ajinkya S Kawale1, Xiaojuan Ran2, Parasvi S Patel1
1Massachusetts General Hospital Cancer Center, Harvard Medical School, Boston, MA, USA.
Abstract:
Mutation signatures associated with apolipoprotein B mRNA editing catalytic polypeptide-like 3A/B (APOBEC3A/B) cytidine deaminases are prevalent across cancers, implying their roles as mutagenic drivers during tumorigenesis and tumor evolution. APOBEC3A (A3A) expression induces DNA replication stress and increases the cellular dependency on the ataxia telangiectasia and Rad3-related (ATR) kinase for survival. Nonetheless, how A3A induces DNA replication stress remains unclear. We show that A3A induces replication stress without slowing replication forks. We find that A3A induces single-stranded DNA (ssDNA) gaps through PrimPol-mediated repriming. A3A-induced ssDNA gaps are repaired by multiple pathways involving ATR, RAD51, and translesion synthesis. Both ATR inhibition and trapping of poly(ADP-ribose) polymerase (PARP) on DNA by PARP inhibitor impair the repair of A3A-induced gaps, preferentially killing A3A-expressing cells. When used in combination, PARP and ATR inhibitors selectively kill A3A-expressing cells synergistically in a manner dependent on PrimPol-generated gaps. Thus, A3A-induced replication stress arises from PrimPol-generated ssDNA gaps, which confer a therapeutic vulnerability to gap-targeted DNA repair inhibitors.
Insights
APOBEC3A (A3A) causes DNA replication stress via ssDNA gaps, increasing cancer cell vulnerability. Combining ATR and PARP inhibitors selectively kills A3A-expressing cells by targeting these gaps.
Area of Science:
- Molecular Biology
- Cancer Biology
- Genetics
Background:
- APOBEC3A/B (A3A/B) cytidine deaminases are linked to cancer mutations.
- A3A expression causes DNA replication stress and reliance on ATR kinase.
Purpose of the Study:
- To elucidate the mechanism by which A3A induces DNA replication stress.
- To identify therapeutic vulnerabilities associated with A3A expression.
Main Methods:
- Investigated A3A's effect on replication fork speed.
- Utilized PrimPol-mediated repriming assays.
- Assessed DNA repair pathways including ATR, RAD51, and translesion synthesis.
- Examined the effects of ATR and PARP inhibitors on A3A-expressing cells.
Main Results:
- A3A induces replication stress without slowing replication forks.
- A3A generates single-stranded DNA (ssDNA) gaps via PrimPol.
- ATR and PARP inhibitors impair the repair of A3A-induced gaps.
- Combined ATR and PARP inhibition synergistically kills A3A-expressing cells.
Conclusions:
- A3A-induced replication stress stems from PrimPol-generated ssDNA gaps.
- These gaps create a therapeutic vulnerability exploitable by gap-repair inhibitors.
- Targeting DNA repair pathways offers a selective strategy against A3A-expressing cancers.
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