The DNA-Binding Polyamine Moiety in the Vectorized DNA Topoisomerase II Inhibitor F14512 Alters Reparability of the

Oriane Bombarde1, Florence Larminat1, Dennis Gomez1

  • 1Institut de Pharmacologie et Biologie Structurale, IPBS, Université de Toulouse, CNRS, UPS, Toulouse, France.

Insights

The novel cancer drug F14512, a topoisomerase II (TOP2) inhibitor, shows unique DNA repair properties. Unlike etoposide, F14512 targets TOP2α, leading to persistent DNA damage and promoting cancer cell death.

Area of Science:

  • Molecular Oncology
  • Cancer Therapeutics
  • DNA Damage Response

Background:

  • Topoisomerase II (TOP2) poisons are crucial anticancer agents that induce DNA breaks by trapping TOP2-DNA complexes (TOP2cc).
  • F14512 is a novel, highly cytotoxic TOP2 inhibitor derived from etoposide, featuring DNA-binding properties and enhanced TOP2cc stability.
  • Paradoxically, F14512 induces fewer DNA breaks than etoposide at equitoxic cellular concentrations.

Purpose of the Study:

  • To directly compare the production and resolution rates of TOP2cc by etoposide and F14512 in human cells.
  • To elucidate the specific TOP2 isoforms targeted by F14512 and etoposide.
  • To characterize the DNA repair pathways engaged by F14512-induced TOP2cc.

Main Methods:

  • Cellular assays to quantify TOP2cc production and resolution.
  • Isoform-specific targeting analysis of TOP2α and TOP2β.
  • Assessment of DNA repair pathway engagement (TDP2, CtIP, BRCA1, RAD51).

Main Results:

  • F14512 selectively targets TOP2α for cell killing, whereas etoposide targets both TOP2α and TOP2β.
  • Despite higher cytotoxicity, F14512 is less efficient than etoposide in generating TOP2αcc.
  • F14512-induced TOP2αcc are more persistent, independent of TDP2, and promote resection repair pathways involving CtIP, BRCA1, and RAD51 recruitment.

Conclusions:

  • F14512's unique TOP2α targeting and DNA repair modulation properties offer therapeutic advantages.
  • The enhanced persistence and distinct repair channeling of F14512-induced TOP2cc contribute to its potent cytotoxicity.
  • Modulating DNA lesion repair pathways via drug design, like incorporating DNA-binding moieties, is a promising strategy for developing novel anticancer agents.

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