Antimicrobial, antibiofilm, antioxidant activities and molecular docking of Schiff base and its complexes of Cu(II), Co(II), Ni(II), Mn(II) and UO2(II)
Abstract
Abstract The global escalation of multidrug-resistant pathogens demands the urgent development of multifunctional metallo-pharmaceuticals. Coordination compounds offer a unique advantage by combining ligand bioactivity with metal-centered redox potential. A novel tetradentate N 2 O 2 Schiff base ligand (H 2 L) was synthesized via the condensation of 2,6-diaminopyridine and 2,4-dihydroxybenzaldehyde. Its coordination potential was explored through the synthesis of Cu(II), Co(II), Ni(II), Mn(II), and UO 2 (II) complexes. Comprehensive characterization was performed using spectroscopic (FT-IR, NMR, UV–Vis) and physicochemical techniques. Biological efficacy was quantified through antimicrobial (MIC/MMC), antibiofilm, and DPPH radical scavenging assays, supplemented by enzymatic (POX/CAT) profiling. Molecular docking studies using MOE 2019 targeted essential proteins from B. cereus , S. aureus , E. coli , and S. typhi (PDB: 1FEZ, 3Q8U, 3T88, and 6J90). Structural analysis confirmed the tetradentate dibasic nature of H 2 L. Metal complexation significantly enhanced biological potency; the UO 2 (II) and Cu(II) complexes exhibited superior antimicrobial effects, while the Mn(II) complex demonstrated the highest antioxidant potential (78.1% inhibition; IC 50 = 64.10 µg/mL), acting as a functional SOD-mimic. Biofilm formation in S. aureus, B. cereus, and E. coli was suppressed by up to 50% at 100 µg/mL of ligand and its complexes. Computational analysis revealed that Co(II) and UO 2 (II) complexes achieved the most favorable binding affinities, stabilized by hydrogen bonding and π-cation interactions. These findings suggest that these complexes represent promising scaffolds for next-generation antimicrobial and antioxidant agents, with significant potential for therapeutic application in disrupting microbial redox homeostasis.
Article Details
Authors (7)
Reham H. Wahba
Elsayed M. AbouElleef
E. A. Gomaa
M. A. Diab
M. I. Abou-Dobara
M. M. El-Zahed
A. Z. El-Sonbati