In silico and Experimental Study of Two Hydrazones: The Impact of Positional Isomerism and Metal Complexation on Antibacterial and Antioxidant Activities
Keywords:
Isoniazid, Nicotinic hydrazide, Molecular Docking, DFT calculation, Positional IsomerismAbstract
The geometric disposition of pharmacophoric groups is a critical determinant of drug efficacy
and target recognition. This study investigated the influence of structural isomerism on the
pharmacological performance of two isomeric hydrazone-based drug candidates, differing in
the position of the pyridine nitrogen atom and an ethoxy substituent located at the ortho and
para positions of an adjacent benzene ring, together with their Fe³⁺ and La³⁺ coordination
complexes. The ligands and their corresponding metal complexes were synthesized and
structurally characterized using Fourier-transform infrared (FTIR) and nuclear magnetic
resonance (NMR) spectroscopy. Density Functional Theory (DFT) calculations at the
B3LYP/6-311G(d,p) level, molecular docking, and ADMET modelling were employed to evaluate
molecular geometry, pharmacokinetic properties, and binding interactions with Escherichia
coli DNA Gyrase (PDB: 6F86) and human Keap1 (PDB: 4L7B). Computational predictions were
validated through in vitro antibacterial and antioxidant assays. Spectroscopic
characterization identified L1 as the linear isoniazid isomer, exhibiting a lower carbonyl
stretching frequency (1645 cm⁻¹) than the kinked nicotinic hydrazide analogue (L2).
Molecular docking demonstrated that the linear geometry of L1 enabled deeper penetration
into the narrow DNA Gyrase binding pocket, forming a stabilizing dual-lock interaction with
Glu50 and Asn46, whereas the bent geometry of L2 induced steric hindrance that reduced
binding affinity, highlighting the significant influence of structural isomerism. Experimental
antibacterial assays corroborated these findings, with L1 exhibiting superior activity relative
to L2 and the reference drug. Although the free ligands displayed moderate antioxidant
activity, the Fe³⁺ complex (C1) exhibited the strongest radical-scavenging capacity,
significantly outperforming C2 and the uncoordinated ligands. This enhanced activity is
attributed to the redox-active iron centre and paramagnetic enolic coordination, as supported
by NMR analysis. Overall, the isoniazid scaffold proved pharmacologically superior to the
nicotinic hydrazide analogue, while the para-oriented pyridine nitrogen and ethoxy
substituent promoted a favourable molecular architecture that enhanced antibacterial
efficacy. Furthermore, coordination to Fe³⁺ unlocked superior antioxidant activity,
identifying C1 as a promising dual-action therapeutic lead candidate.
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