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Published on: March 17, 2023
Pyrene-based fluorescent Ru(II)-arene complexes for significant biological applications: catalytic potential,
Pragti1, Bidyut Kumar Kundu1,2, Shrish Nath Upadhyay3
1Department of Chemistry, School of Basic Sciences, Indian Institute of Technology Indore, Simrol, Khandwa Road, Indore 453552, India. suman@iiti.ac.in.
Abstract:
Ruthenium complexes are being studied extensively as anticancer drugs following the inclusion of NAMI-A and KP1019 in phase II clinical trials for the treatment of metastatic phase and primary tumors. Herein, we designed and synthesized four organometallic Ru(II)-arene complexes [Ru(η6-p-cymene)(L)Cl] (1), [Ru(η6-benzene)(L)Cl] (2), [Ru(η6-p-cymene)(L)N3] (3) and [Ru(η6-benzene)(L)N3] (4) [HL = (E)-N'-(pyren-1-ylmethylene)thiopene-2-carbohydrazide] that have anticancer, antimetastatic and two-photon cell imaging abilities. Moreover, in the transfer hydrogenation of NADH to NAD+, these compounds also display good catalytic activity. All the complexes, 1-4, are well characterized by spectroscopic techniques (NMR, mass, FTIR, UV-vis and fluorescence). The single crystal X-ray diffraction technique proved that the ligand L coordinates through an N,O-bidentate chelating fashion in the solid-state structures of complexes 1 and 2. The stability study of the complexes was performed through UV-visible spectroscopy. The cytotoxicities of all the complexes were screened through MTT assay and the results revealed that the complexes have potential anticancer activity against various cancerous cells (HeLa, MCF7 and A431). Studies with spectroscopic techniques revealed that complexes 1-4 exhibit strong interactions with biological molecules i.e. proteins (HSA and BSA) and CT-DNA. The density functional theory (DFT-D) method has been employed in the present study to know the interaction between DNA and complexes by calculating the HOMO and LUMO energy. A plausible mechanism for NADH oxidation has also been explored and the DFT calculations are found to be in accord with the experimental observation. Furthermore, we have investigated intracellular reactive oxygen species (ROS) generation capabilities in the MCF7 breast cancer cell line. The Hoechst/PI dual staining method confirmed the apoptosis mode of cell death. Meanwhile, complexes 1-4 show capabilities to prevent the metastasis phase of cancer cells by inhibiting cell migration.
Insights
Four new organometallic Ruthenium(II)-arene complexes show significant anticancer and antimetastatic potential. These compounds also exhibit catalytic activity and cell imaging capabilities, offering a multi-faceted approach to cancer research.
Area of Science:
- Organometallic Chemistry
- Medicinal Chemistry
- Cancer Research
Background:
- Ruthenium complexes are increasingly investigated as anticancer agents, with some progressing to clinical trials.
- Existing ruthenium drugs like NAMI-A and KP1019 highlight the therapeutic potential of this metal in oncology.
- There is a continuous need for novel anticancer agents with improved efficacy and multiple modes of action.
Purpose of the Study:
- To design, synthesize, and characterize novel organometallic Ruthenium(II)-arene complexes.
- To evaluate the anticancer, antimetastatic, and cell imaging properties of these synthesized complexes.
- To explore their catalytic activity in transfer hydrogenation and their interactions with biological macromolecules.
Main Methods:
- Synthesis of four Ru(II)-arene complexes using a thiophene-2-carbohydrazide ligand.
- Characterization using spectroscopic techniques (NMR, mass, FTIR, UV-vis, fluorescence) and X-ray diffraction.
- Evaluation of cytotoxicity (MTT assay), DNA/protein binding, ROS generation, apoptosis (Hoechst/PI staining), and metastasis inhibition (cell migration assays).
Main Results:
- All four complexes demonstrated significant cytotoxic activity against HeLa, MCF7, and A431 cancer cell lines.
- Complexes showed strong interactions with DNA and proteins (HSA, BSA), indicating potential biological targets.
- The complexes exhibited promising antimetastatic properties by inhibiting cancer cell migration and induced apoptosis.
Conclusions:
- The synthesized Ruthenium(II)-arene complexes possess multifaceted anticancer properties, including cytotoxicity and antimetastatic effects.
- These complexes show potential for application in cancer therapy, cell imaging, and catalysis.
- Further investigation into their mechanism of action and in vivo efficacy is warranted.
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