Comprehensive Study on Synthesis, Quantum Chemical Calculations, Molecular Modeling Studies, and Cytotoxic Activities of Metal(II) Schiff Base Complexes
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Abstract
In this study, mononuclear Ni(II), Cu(II), Zn(II), and Pd(II) complexes of a diimine molecule (H2L) were synthesized, and their structures were elucidated by NMR, FT-IR, UV–Vis, ICP-OES, molar conductivity, magnetic susceptibility, and elemental analysis techniques. Stoichiometric and spectroscopic data revealed that the complexes have a metal:ligand ratio of 1:1 and the Schiff base coordinates with the metal(II) ion via nitrogen atoms of two imine groups and oxygen anions of two phenolate moieties and have a square planar geometry. The cytotoxic activity properties of the ligand and its metal complexes were screened in two distinct cancer cell lines: lung (A549) and colon (DLD-1). The optimized molecular geometries, molecular electrostatic potential diagrams, total density of states plots, and frontier molecular orbitals of the H2L ligand and all metal(II) complexes at the ground level were calculated using density functional theory. The LANL2DZ basis set containing the effective core potentials for transition metals was used for quantum chemical calculations. The calculations supported the square planar geometry of the metal(II) ions in the complexes. The potential of all molecules to inhibit the MLK4 kinase domain (PDB ID: 4UYA) involved in cancer progression was examined by molecular docking study and the best inhibition activity belonged to the H2L molecule with a binding energy of −10.8 kcal/mol. The stability of the H2L–4UYA complex in physiological media was also confirmed by molecular dynamics simulation for 100 ns.
期刊介绍:
All new compounds should be satisfactorily identified and proof of their structure given according to generally accepted standards. Structural reports, such as papers exclusively dealing with synthesis and characterization, analytical techniques, or X-ray diffraction studies of metal-organic or organometallic compounds will not be considered. The editors reserve the right to refuse without peer review any manuscript that does not comply with the aims and scope of the journal. Applied Organometallic Chemistry publishes Full Papers, Reviews, Mini Reviews and Communications of scientific research in all areas of organometallic and metal-organic chemistry involving main group metals, transition metals, lanthanides and actinides. All contributions should contain an explicit application of novel compounds, for instance in materials science, nano science, catalysis, chemical vapour deposition, metal-mediated organic synthesis, polymers, bio-organometallics, metallo-therapy, metallo-diagnostics and medicine. Reviews of books covering aspects of the fields of focus are also published.