ABSTRACT The emergence of multidrug-resistant Candidozyma auris has created an urgent need for antifungals with novel mechanisms of action. We screened 121 nucleoside and nucleobase derivatives against C. auris and other clinically relevant Candida species to identify effective antimetabolite scaffolds. Among all compounds tested, only the C-5-fluorinated nucleosides 5-fluorouridine (5-FU) and 5-fluorocytidine exhibited potent antifungal activity. 5-FU demonstrated consistently low minimum inhibitory concentrations (0.5–10 µg/mL) across multiple Candida species, including fluconazole-resistant strains, and displayed fungicidal activity against C. auris at concentrations lower than several frontline antifungals. Uridine rescue assays confirmed competitive interference with endogenous uridine metabolism. Checkerboard assays revealed synergistic or additive interactions between 5-FU and clinically used azoles and echinocandins. Toxicity evaluation using plant, nematode, and human cell models showed minimal cytotoxicity even at concentrations far exceeding antifungal minimum inhibitory concentrations. In silico docking analyses revealed dual inhibition of thymidylate synthase and RNA polymerase III, explaining the fungicidal phenotype and broad-spectrum efficacy. These findings identify 5-fluorouridine as a promising antifungal candidate and establish C-5-halogenated nucleosides as a privileged scaffold for antifungal drug development.
Bharath Reddy Boya, Ezhaveni Sathiyamoorthi, Jin-Hyung Lee et al.· Antimicrobial Agents and Che...· 0 citations
Biofilm-associated Staphylococcus aureus infections remain difficult to treat using conventional antibiotics. Herein, we report the synthesis and biological evaluation of lauric acid- and BDSF-derived N-acyl sulfonamides as antibiofilm and antivirulence agents. Structure-activity relationship (SAR) analysis identified 4-tert-butylphenyl sulfonyldodecenamide (59) as a lead compound with a minimum inhibitory concentration of 5 μg/mL and >60% inhibition of MSSA and MRSA biofilm formation at sub-minimum inhibitory concentration levels. Microscopy confirmed marked reductions in biofilm biomass and thickness. The lead compound synergized with gentamicin and tobramycin, suppressed hemolysis, slime production, metabolic activity, and cell-surface hydrophobicity, and induced intracellular reactive oxygen species. qRT-PCR revealed downregulation of key virulence regulators (agrA, RNAIII, saeR, and seb), indicating disruption of quorum-sensing circuitry. SAR modeling rationalized steric and electronic requirements for activity. Low toxicity in plant, nematode, and mammalian models highlights bioisosteric N-acyl sulfonamides as promising antivirulence scaffolds for combating S. aureus biofilm infections.
Yong-Guy Kim, Michelle O'Driscoll, Conor Horgan et al.· Journal of Medicinal Chemist...· 0 citations