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Updated: Apr 12, 2026

Studying Copper Nanoparticle-Induced Programmed Cell Death in Bacteria
Published on: May 16, 2025
DNA oxidation profiles of copper phenanthrene chemical nucleases
Zara Molphy1, Creina Slator1, Chryssostomos Chatgilialoglu2
1School of Chemical Sciences, National Institute for Cellular Biotechnology, Dublin City University Dublin, Ireland.
Abstract:
The deleterious effects of metal-catalyzed reactive oxygen species (ROS) in biological systems can be seen in a wide variety of pathological conditions including cancer, cardiovascular disease, aging, and neurodegenerative disorder. On the other hand however, targeted ROS production in the vicinity of nucleic acids-as demonstrated by metal-activated bleomycin-has paved the way for ROS-active chemotherapeutic drug development. Herein we report mechanistic investigations into the oxidative nuclease activity and redox properties of copper(II) developmental therapeutics [Cu(DPQ)(phen)](2+) (Cu-DPQ-Phen), [Cu(DPPZ)(phen)](2+) (Cu-DPPZ-Phen), and [{Cu(phen)2}2(μ-terph)](terph) (Cu-Terph), with results being compared directly to Sigman's reagent [Cu(phen)2](2+) throughout (phen = 1,10-phenanthroline; DPQ = dipyridoquinoxaline; DPPZ = dipyridophenazine; Terph = terephthalate). Oxidative DNA damage was identified at the minor groove through use of surface bound recognition elements of methyl green, netropsin, and [Co(NH3)6]Cl3 that functioned to control complex accessibility at selected regions. ROS-specific scavengers and stabilizers were employed to identify the cleavage process, the results of which infer hydrogen peroxide produced metal-hydroxo or free hydroxyl radicals ((•)OH) as the predominant species. The extent of DNA damage owing to these radicals was then quantified through 8-oxo-2'-deoxyguanosine (8-oxo-dG) lesion detection under ELISA protocol with the overall trend following Cu-DPQ-Phen > Cu-Terph > Cu-Phen > Cu-DPPZ. Finally, the effects of oxidative damage on DNA replication processes were investigated using the polymerase chain reaction (PCR) where amplification of 120 base pair DNA sequences of varying base content were inhibited-particularly along A-T rich chains-through oxidative damage of template strands.
Insights
Copper complexes like Cu-DPQ-Phen can generate reactive oxygen species (ROS) to damage DNA, offering potential for new cancer therapies. This study investigates their DNA cleavage mechanisms and impact on replication.
Area of Science:
- Coordination Chemistry
- Biochemistry
- Medicinal Chemistry
Background:
- Metal-catalyzed reactive oxygen species (ROS) contribute to diseases like cancer and neurodegeneration.
- Targeted ROS production by metal complexes shows promise for developing ROS-active chemotherapeutic drugs.
Purpose of the Study:
- To investigate the oxidative nuclease activity and redox properties of copper(II) complexes: [Cu(DPQ)(phen)](2+), [Cu(DPPZ)(phen)](2+), and [{Cu(phen)2}2(μ-terph)](terph).
- To compare their DNA damaging potential and mechanisms with Sigman's reagent [Cu(phen)2](2+).
- To assess the impact of oxidative DNA damage on DNA replication processes.
Main Methods:
- Mechanistic investigations using surface-bound recognition elements (methyl green, netropsin, [Co(NH3)6]Cl3) to control complex accessibility.
- Identification of ROS species using scavengers and stabilizers, inferring metal-hydroxo or hydroxyl radicals ((•)OH).
- Quantification of DNA damage via 8-oxo-2'-deoxyguanosine (8-oxo-dG) detection (ELISA) and assessment of DNA replication inhibition using polymerase chain reaction (PCR).
Main Results:
- Oxidative DNA damage was localized to the minor groove.
- The predominant ROS species were inferred to be metal-hydroxo or hydroxyl radicals ((•)OH).
- DNA damage extent followed the trend: Cu-DPQ-Phen > Cu-Terph > Cu-Phen > Cu-DPPZ.
- Oxidative damage inhibited PCR amplification, particularly in A-T rich sequences, by damaging template strands.
Conclusions:
- Copper(II) complexes exhibit significant oxidative nuclease activity, with varying potency.
- The study elucidates the mechanism of ROS generation and DNA damage.
- These findings support the development of copper-based ROS-active agents for cancer chemotherapy, highlighting the impact on DNA replication.
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