INTRODUCTION
Novel Co(II), Cu(II), and Zn(II) complexes of Schiff base ligand with N2O2 donor sites were synthesized from 5-((4-methylpyrazin-1(4)-yl)methyl)isophthalaldehyde and subsequently condensed with Phenylpropanolamine (PPA).
MATERIALS AND METHODS
FT-IR, UV-Visible, NMR (1H), and mass spectrometry established the structure of synthesized compounds. In addition, susceptibility, thermal analysis, powder XRD, and cyclic voltammetry were also performed. The interaction between the final compounds and CT-DNA was investigated using UV-visible absorption spectroscopy. In addition, cytotoxic studies were performed in the HeLa cell line using the MTT assay.
RESULTS
The Co(II) complex demonstrated a high-spin octahedral geometry with a [ML(H2O)2] stoichiometry, whereas the Cu(II) and Zn(II) complexes (6a and 6b) were found to have square-planar geometries with a (ML) stoichiometry. Agarose gel electrophoresis demonstrated that the Cu(II) complex (6c) effectively hydrolyzed and cleaved CT-DNA and also showed enhanced free-radical scavenging ability compared to the standard, ascorbic acid. The Cu(II) complex displayed superior potency in inhibiting the proliferation of the HeLa cancer cell line (IC50: 6.12 μg/mL) relative to the standard drug cisplatin.
DISCUSSION
Compound 6b showed higher cytotoxic efficiency than the complexes, which subsequently increased the lipophilic character and favored its permeation through the lipid surface of the cell, aiding in inhibiting cell growth easily. The results of cytotoxicity experiments also matched well with the order of CT-DNA binding affinities: 6b > 6a > 6c.
CONCLUSION
The current work demonstrates the bioactivity of the Cu(II) complex (6b) as a potential therapeutic agent.
V. S. Narayanan, Sowen Dhawa, Parvathy Anikumari et al.· Anti-Cancer Agents in Medici...· 0 citations
Background: Among natural products, vanillin (Van), a major component of Vanilla planifolia, exhibits multiple bioactivities, including antimicrobial effects. Methods: In this study, Van, its analogues o-vanillin (oVan), iso-vanillin (iVan), ethylvanillin (eVan), and a library of newly synthesized derivatives were evaluated against Helicobacter pylori strains with distinct antibiotic susceptibilities. Time-kill kinetics, antibacterial spectrum, and viability in a normal gastric cell line GES-1, were also assessed. Results: Van showed minimal or no activity (MIC and MBC > 128 µg/mL), whereas structural modifications markedly improved anti-H. pylori activity, with MIC values as low as 4 µg/mL. Compounds 16V, 20oV, and 29eV were among the most potent (MIC90 = 4–16 µg/mL). Activity depended on both the vanilloid core and substituent type. The compounds were inactive against representative Gram-negative and Gram-positive bacteria (MIC > 128 µg/mL). Selected compounds preserved viability in GES-1 cells. Hierarchical clustering, artificial neural clustering, and principal component analysis identified potency-related architectural motifs and strain-specific activity. Docking against H. pylori urease suggested that several compounds, particularly 16V, may interact with the enzyme, providing preliminary support for a possible involvement of this target. Conclusions: Systematic modification of the vanilloid scaffold generated selective and relatively non-cytotoxic anti-H. pylori hit compounds and confirmed the value of natural metabolites in antibacterial drug discovery.
Ilaria D’Agostino, Strahinja Z. Kovačević, Moataz A. Shaldam et al.· Antibiotics· 0 citations
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