Cyclodextrin inclusion complexes enhance the solubility and anti-virulence activity of metronidazole against uropathogenic Proteus mirabilis.

Abd El-Baky, Rehab Mahmoud; Fathalla, Zeinab; Ahmed, Hala Rady; Yahia, Ramadan; Mawhoup, Mohamed A; Sadiq, Ghada M; Barakat, Hebatallah S; Al Fatease, Adel et al. · PLoS One · 2026

basic_science · Level V

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Abstract

Proteus mirabilis is a major uropathogen implicated in catheter-associated urinary tract infections and infection-induced urolithiasis, often exhibiting multidrug resistance. Improving the solubility and bioactivity of existing drugs represents a promising pharmaceutical strategy to overcome these challenges. In this study, inclusion complexes of metronidazole with α-cyclodextrin (α-CD), β-cyclodextrin (β-CD), and hydroxypropyl-β-cyclodextrin (HP-β-CD) were prepared using physical mixing and kneading methods. Complexes were characterized using differential scanning calorimetry (DSC) and Fourier-transform infrared spectroscopy (FTIR). In vitro release behaviour, minimum inhibitory concentration (MIC), and effects at sub-MIC levels on motility, urease-associated phenotype, and biofilm formation were evaluated. β-CD and HP-β-CD systems demonstrated improved release profiles compared to metronidazole alone. While MIC values remained within the mg/mL range, HP-β-CD complexes showed reduced MIC relative to aqueous metronidazole, achieving a four-fold reduction in MIC. At sub-MIC concentrations, β-CD and HP-β-CD formulations were associated with significant suppression of motility, reduced urease-associated phenotypes, and inhibition of biofilm formation. Molecular docking suggested spatial compatibility between metronidazole and cyclodextrins, though mechanistic conclusions remain predictive. These findings indicate that cyclodextrin-based complexation enhances physicochemical performance of metronidazole and may support adjunctive anti-virulence modulation in P. mirabilis. Further mechanistic and in-vivo studies are required to validate translational relevance.

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