Genomic context influences translesion synthesis DNA polymerase-dependent mechanisms of micronuclei induction by G-quadruplexes

  • Cell Rep. 2025 May 27;44(5):115706. doi: 10.1016/j.celrep.2025.115706.
Simona Pepe  1 Federico Guerra  1 Marco Russo  2 Renée C Duardo  1 Giovanni Capranico  3
Affiliations
  • 1. Department of Pharmacy and Biotechnology, University of Bologna, Bologna, Italy.
  • 2. Department of Pharmacy and Biotechnology, University of Bologna, Bologna, Italy; Preclinical & Translational Research in Oncology (PRO), IRCCS Azienda Ospedaliero-Universitaria di Bologna, Bologna, Italy.
  • 3. Department of Pharmacy and Biotechnology, University of Bologna, Bologna, Italy; Preclinical & Translational Research in Oncology (PRO), IRCCS Azienda Ospedaliero-Universitaria di Bologna, Bologna, Italy. Electronic address: [email protected].
Abstract

Guanine quadruplexes (G4s) are non-canonical DNA structures that can trigger micronuclei (MNi). Mechanisms of micronuclei formation by G4s are not fully understood. Here, we show that G4 stabilization can trigger cell-cycle-phase-specific mechanisms of replication fork stalling and DNA synthesis restart dependent on translesion synthesis (TLS) DNA polymerases (Pols). Fork stalling is caused by G-loops and high transcription during early S only. Moreover, while induction of micronuclei is dependent on DNA Pol η throughout S phase, primase and DNA-directed polymerase (PrimPol) is required in late S only. DNA breakage is not an immediate response to stabilized G4s but rather a consequence of persistent G4-mediated replication stress. Thus, different modes of fork stalling and restart, based on genomic context and TLS Pols, avoid immediate DNA breakage at stalled forks but at the expense of a risk of later mitotic chromosomal instability. The insights can lead to the development of more effective therapies for Cancer and neurological diseases.

Keywords
CP: Molecular biology; G-loop; G-quadruplex; Pol η; PrimPol; chromosomal instability; micronuclei; replication fork stalling; replication stress.
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