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Published on: March 18, 2015
Organometallic Iridium(III) complex interacts with DNA and exhibits anticancer potential: Insights from biophysical,
Diptesh Chakraborty1, Suvasmita Behera2, Nibedita Naik1
1Department of Biotechnology, Utkal University, Bhubaneswar, Odisha, 751004, India.
Abstract:
Organometallic iridium (III) complexes have garnered significant interest in anticancer research due to their potent efficacy against a wide range of cancers. This study investigates an Ir(III) complex as a targeted DNA-binding agent for advanced cancer therapy using biophysical, cellular, and in silico approaches. Intercalative binding with calf thymus DNA was confirmed through multiple techniques: UV-visible spectroscopy showed a 73.8% hyperchromic shift at 260 nm; the absence Ir(III/IV) oxidation peak at 1.45 V in DNA-Ir-complex vs. free Ir-complex in cyclic voltammetry studies, indicating bulky Ir-DNA adduct formation, viscosity of DNA increased by 28%, competitive fluorescence quenching, circular dichroism perturbations at 245 and 275 nm, and 65% dye displacement validated classical intercalation via minor-groove access and base-stacking interactions. Raman spectroscopy shifts (e.g., 494 → 483 cm-1 for PO2- backbone vibrations, indicating conformational alterations in the phosphodiester framework, 1703 → 1696 cm-1 corresponding to base carbonyl stretching, suggesting perturbation of hydrogen bonding and base stacking interactions) revealed a ligand-induced structural modification of DNA, possibly reflecting a transition toward an A-like conformation. Molecular docking predicted a binding free energy (ΔG) of -11.17 kJ mol-1, with preferential interaction at GC-rich regions. Furthermore, the complex induced photoactivated plasmid DNA strand breakage and exhibited potent cytotoxicity (IC50 = 8.46 μM) in MIA PaCa-2 pancreatic carcinoma cells, with comet assay confirming significant DNA damage. Network pharmacology analysis identified 114 high-confidence protein targets involved in key cancer-related pathways. These integrated findings highlight the promising anticancer potential of the Ir(III) complex and paving the way for rational metallodrug design.
Insights
This study shows an organometallic iridium (III) complex targets DNA for advanced cancer therapy. The complex binds DNA, causes strand breaks, and shows potent cytotoxicity in pancreatic cancer cells, highlighting its anticancer potential.
Area of Science:
- Medicinal Chemistry
- Biochemistry
- Nanotechnology
Background:
- Organometallic iridium (III) complexes are promising anticancer agents.
- Targeted DNA binding is a key strategy for advanced cancer therapy.
Purpose of the Study:
- To investigate an iridium (III) complex as a targeted DNA-binding agent for advanced cancer therapy.
- To elucidate the DNA-binding mechanism and anticancer effects of the complex.
Main Methods:
- Biophysical techniques (UV-Vis, CV, viscosity, fluorescence, CD, Raman spectroscopy) to study DNA interaction.
- Molecular docking for binding site prediction.
- Cellular assays (cytotoxicity, comet assay) on MIA PaCa-2 cells.
- Network pharmacology for target identification.
Main Results:
- The iridium (III) complex intercalates into DNA, causing structural modifications and minor-groove access.
- Molecular docking predicted favorable binding to GC-rich regions.
- The complex induced photoactivated DNA strand breakage and potent cytotoxicity (IC50 = 8.46 μM) in pancreatic cancer cells.
- Network pharmacology identified 114 protein targets in cancer-related pathways.
Conclusions:
- The iridium (III) complex exhibits classical intercalation and induces DNA damage, leading to significant cytotoxicity.
- The findings support the development of this iridium (III) complex for targeted cancer therapy.
- This study provides a foundation for rational metallodrug design in oncology.
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