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Amide Coupling Reaction for the Synthesis of Bispyridine-based Ligands and Their Complexation to Platinum as Dinuclear Anticancer Agents
Published on: May 28, 2014
Antiproliferative activity of platinum(II) and copper(II) complexes containing novel biquinoxaline ligands
Hager Sadek El-Beshti1, Zuhal Gercek2, Hakan Kayi3
1Atilim University, Department of Chemical Engineering, Incek, Ankara, Türkiye.
Abstract:
Nowadays, cancer represents one of the major causes of death in humans worldwide, which renders the quest for new and improved antineoplastic agents to become an urgent issue in the field of biomedicine and human health. The present research focuses on the synthesis of 2,3,2',3'-tetra(pyridin-2-yl)-6,6'-biquinoxaline) and (2,3,2',3'-tetra(thiophen-2-yl)-6,6'-biquinoxaline) containing copper(II) and platinum(II) compounds as prodrug candidates. The binding interaction of these compounds with calf thymus DNA (CT-DNA) and human serum albumin were assessed with UV titration, thermal decomposition, viscometric, and fluorometric methods. The thermodynamical parameters and the temperature-dependent binding constant (K'b) values point out to spontaneous interactions between the complexes and CT-DNA via the van der Waals interactions and/or hydrogen bonding, except Cu(ttbq)Cl2 for which electrostatic interaction was proposed. The antitumor activity of the complexes against several human glioblastomata, lung, breast, cervix, and prostate cell lines were investigated by examining cell viability, oxidative stress, apoptosis-terminal deoxynucleotidyl transferase-mediated dUTP nick end labeling, in vitro migration and invasion, in vitro-comet DNA damage, and plasmid DNA interaction assays. The U87 and HeLa cells were investigated as the cancer cells most sensitive to our complexes. The exerted cytotoxic effect of complexes was attributed to the formation of the reactive oxygen species in vitro. It is clearly demonstrated that Cu(ttbq)Cl2, Pt(ttbq)Cl2, and Pt(tpbq)Cl2 have the highest DNA degradation potential and anticancer effect among the tested complexes by leading apoptosis. The wound healing and invasion analysis results also supported the higher anticancer activity of these two compounds.
Insights
New copper and platinum compounds show potent anticancer activity by interacting with DNA and inducing apoptosis. These novel prodrug candidates demonstrate significant potential against various cancer cell lines, particularly glioblastoma and HeLa cells.
Area of Science:
- Medicinal Chemistry
- Biomedical Science
- Nanotechnology
Background:
- Cancer remains a leading global cause of death, necessitating the development of novel antineoplastic agents.
- The synthesis and evaluation of metal-based prodrugs offer a promising strategy for cancer therapy.
Purpose of the Study:
- To synthesize novel copper(II) and platinum(II) complexes with biquinoxaline ligands as potential anticancer prodrugs.
- To investigate the DNA binding interactions and cytotoxic effects of these synthesized metal complexes.
Main Methods:
- Synthesis of tetra(pyridin-2-yl)-6,6'-biquinoxaline and tetra(thiophen-2-yl)-6,6'-biquinoxaline metal complexes.
- DNA binding studies using UV-Vis titration, thermal decomposition, viscometry, and fluorometry.
- Antitumor activity assessment through cell viability, oxidative stress, apoptosis assays, and DNA damage assays on various human cancer cell lines.
Main Results:
- The synthesized complexes exhibit spontaneous interactions with calf thymus DNA (CT-DNA), primarily through van der Waals forces and hydrogen bonding.
- Copper(II) and platinum(II) complexes demonstrated significant cytotoxic effects against U87 (glioblastoma) and HeLa (cervix) cancer cell lines.
- Cu(ttbq)Cl2, Pt(ttbq)Cl2, and Pt(tpbq)Cl2 showed the highest DNA degradation potential and anticancer efficacy, inducing apoptosis via reactive oxygen species generation.
Conclusions:
- The novel copper and platinum biquinoxaline complexes show promising anticancer activity and DNA binding capabilities.
- These metal complexes, particularly Cu(ttbq)Cl2, Pt(ttbq)Cl2, and Pt(tpbq)Cl2, represent potential candidates for future cancer therapeutics.
- Further research into their mechanism of action and in vivo efficacy is warranted.
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