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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.
Abstract:
Poisons of topoisomerase II (TOP2) kill cancer cells by preventing religation of intermediate DNA breaks during the enzymatic process and thus by accumulating enzyme-drug-DNA complexes called TOP2 cleavage-complex (TOP2cc). F14512 is a highly cytotoxic polyamine-vectorized TOP2 inhibitor derived from etoposide and currently in clinical trials. It was shown in vitro that F14512 has acquired DNA-binding properties and that the stability of TOP2cc was strongly increased. Paradoxically, at equitoxic concentrations in cells, F14512 induced less DNA breaks than etoposide. Here, we directly compared etoposide and F14512 for their rates of TOP2cc production and resolution in human cells. We report that targeting of TOP2α and not TOP2β impacts cell killing by F14512, contrary to etoposide that kills cells through targeting both isoforms. Then, we show that despite being more cytotoxic, F14512 is less efficient than etoposide at producing TOP2α cleavage-complex (TOP2αcc) in cells. Finally, we report that compared with TOP2αcc mediated by etoposide, those generated by F14512 persist longer in the genome, are not dependent on TDP2 for cleaning break ends from TOP2α, are channeled to a larger extent to resection-based repair processes relying on CtIP and BRCA1 and promote RAD51 recruitment to damaged chromatin. In addition to the addressing of F14512 to the polyamine transport system, the properties uncovered here would be particularly valuable for a therapeutic usage of this new anticancer compound. More generally, the concept of increasing drug cytotoxicity by switching the repair mode of the induced DNA lesions via addition of a DNA-binding moiety deserves further developments. Mol Cancer Ther; 16(10); 2166-77. ©2017 AACR.
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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