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.

Synthesis, Antibacterial Evaluation, and Chemometric Profiling of a Vanilloid-Based Compounds Library Active Against Helicobacter pylori

Shaldam, Moataz A.;Ammazzalorso, Alessandra;Campestre, Cristina;Carradori, Simone
Ultimo
2026-01-01

Abstract

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.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11564/895194
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