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Evaluating the genotoxicity of topoisomerase-targeted antibiotics
Daniel J Smart1, Anthony M Lynch
1Safety Assessment, GlaxoSmithKline R&D, Ware, Hertfordshire, UK. daniel.j.smart@GSK.com
Abstract:
Antibiotics like fluoroquinolones (FQs) that target bacterial type II topoisomerases pose a potential genotoxic risk due to interactions with mammalian topoisomerase II (TOPO II) counterparts. Inhibition of TOPO II can lead to the generation of clastogenic DNA double-strand breaks (DSBs) that can in turn manifest in mutagenesis. Thus, methods that allow early identification of drugs that present the greatest hazard are warranted. A rapid, medium-throughput and predictive genotoxicity screen that can be applied to bacterial type II topoisomerase inhibitors is described herein. Maximal induction of the DSB biomarker serine139-phosphorylated histone H2AX (γH2AX) in L5178Y cells was quantified via flow cytometry and correlated with data derived from the mouse lymphoma screen (MLS), a default assay used to rank genotoxic potential. When applied to a class of novel bacterial type II topoisomerase inhibitors (NBTIs) in lead-optimisation, maximal γH2AX induction >1.4-fold (relative to controls) identified 22/27 NBTIs that induced >6-fold relative mutation frequency (MF) in MLS. Moreover, response signatures comprising of γH2AX induction and G(2)M cell cycle arrest elucidated using this approach suggested that these NBTIs, primarily of the H class, operated via a TOPO II poison-like mechanism of action (MoA) similar to FQs. NBTIs that induced ≤6-fold relative MF, which were mainly A class-derived, had less impact on γH2AX (≤1.4-fold) and also evoked G(1) arrest, indicating that their cytotoxic effects were likely mediated through a non-poison MoA. Concordance between assays was 86% (54/63) when 1.4- and 6-fold 'cut offs' were applied. These findings were corroborated through inspection of human TOPO IIα IC(50) data as NBTIs exhibiting equivalent inhibitory capacities had differing genotoxic potencies. Deployed in an early screening capacity, the γH2AX by flow assay coupled with structure-activity relationship evaluation can provide insight into MoA and impact medicinal chemistry efforts, ultimately leading to the production of inherently safer molecules.
Insights
A new assay using γH2AX biomarker effectively predicts genotoxic risk in novel bacterial type II topoisomerase inhibitors. This method aids in identifying potentially harmful compounds early, promoting safer drug development.
Area of Science:
- Pharmacology and Toxicology
- Molecular Biology
- Drug Discovery
Background:
- Fluoroquinolones (FQs) targeting bacterial topoisomerases can pose genotoxic risks by interacting with mammalian topoisomerase II (TOPO II).
- Inhibition of TOPO II leads to DNA double-strand breaks (DSBs), increasing mutagenesis risk.
- Early identification of hazardous drug candidates is crucial for safer drug development.
Purpose of the Study:
- To develop a rapid, medium-throughput genotoxicity screen for bacterial type II topoisomerase inhibitors.
- To correlate DNA double-strand break (DSB) biomarker induction with established genotoxicity assays.
- To elucidate the mechanism of action (MoA) of novel bacterial type II topoisomerase inhibitors (NBTIs).
Main Methods:
- Quantified serine139-phosphorylated histone H2AX (γH2AX) induction in L5178Y cells via flow cytometry as a DSB biomarker.
- Correlated γH2AX induction with data from the mouse lymphoma assay (MLS) to assess genotoxic potential.
- Evaluated response signatures including γH2AX induction and cell cycle arrest (G2M, G1) to determine MoA.
Main Results:
- Maximal γH2AX induction (>1.4-fold) identified 22/27 NBTIs that showed >6-fold relative mutation frequency (MF) in MLS.
- Response signatures indicated that H-class NBTIs acted via a TOPO II poison-like MoA, similar to FQs.
- A-class NBTIs showed lower γH2AX induction (≤1.4-fold) and G1 arrest, suggesting a non-poison MoA, with 86% concordance between assays.
Conclusions:
- The γH2AX flow cytometry assay is a valuable predictive tool for genotoxicity screening of NBTIs.
- This assay, combined with structure-activity relationship evaluation, provides insights into drug MoA.
- Early genotoxicity screening aids medicinal chemistry in developing safer drug molecules.
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