Monoterpenoids are well-recognized natural antimycotic agents, but their mechanism of action is still unclear. Interestingly, synthetic derivatives, such as 4-bromothymol (4-bromo-2-isopropyl-5-methylphenol), are emerging as promising alternatives to natural molecules, due to their even greater biological activity. Herein, the antimycotic efficacy of 4-bromothymol is evaluated: in vivo experiments on species of acclaimed resistance demonstrate that 4-bromothymol has a minimum inhibitory concentration up to 6 times lower than thymol. In silico investigations, sweeping from partition coefficient (LogP) determination through density functional theory and molecular dynamics simulations based on a minimum bias approach, support its improved antifungal activity with respect to thymol, carvacrol, and thymyl acetate. A structural insight of the mechanism of action is proposed. Even though all the analyzed compounds are able to penetrate the cellular membrane, 4-bromothymol shows a higher predicted affinity for the bilayer, and it causes a strong perturbation at the water/bilayer interface, altering the stability of the membrane, thus leading to cell death.

Pezzola, S., Sabuzi, F., Calligari, P., Conte, V., Galloni, P., Venanzi, M., et al. (2025). Investigation of the Mechanism of Action of Natural and Synthetic Monoterpenoids: For a New Route in Antimycotic Molecules. CHEMBIOCHEM [10.1002/cbic.202500070].

Investigation of the Mechanism of Action of Natural and Synthetic Monoterpenoids: For a New Route in Antimycotic Molecules

Pezzola, Silvia
;
Sabuzi, Federica;Calligari, Paolo;Conte, Valeria;Galloni, Pierluca;Venanzi, Mariano;Bocchinfuso, Gianfranco
2025-03-11

Abstract

Monoterpenoids are well-recognized natural antimycotic agents, but their mechanism of action is still unclear. Interestingly, synthetic derivatives, such as 4-bromothymol (4-bromo-2-isopropyl-5-methylphenol), are emerging as promising alternatives to natural molecules, due to their even greater biological activity. Herein, the antimycotic efficacy of 4-bromothymol is evaluated: in vivo experiments on species of acclaimed resistance demonstrate that 4-bromothymol has a minimum inhibitory concentration up to 6 times lower than thymol. In silico investigations, sweeping from partition coefficient (LogP) determination through density functional theory and molecular dynamics simulations based on a minimum bias approach, support its improved antifungal activity with respect to thymol, carvacrol, and thymyl acetate. A structural insight of the mechanism of action is proposed. Even though all the analyzed compounds are able to penetrate the cellular membrane, 4-bromothymol shows a higher predicted affinity for the bilayer, and it causes a strong perturbation at the water/bilayer interface, altering the stability of the membrane, thus leading to cell death.
11-mar-2025
Online ahead of print
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHEM-02/A - Chimica fisica
Settore CHEM-05/A - Chimica organica
English
Con Impact Factor ISI
antimycotic activities
carvacrol
molecular dynamics
partition coefficients
thymol
Pezzola, S., Sabuzi, F., Calligari, P., Conte, V., Galloni, P., Venanzi, M., et al. (2025). Investigation of the Mechanism of Action of Natural and Synthetic Monoterpenoids: For a New Route in Antimycotic Molecules. CHEMBIOCHEM [10.1002/cbic.202500070].
Pezzola, S; Sabuzi, F; Calligari, P; Conte, V; Galloni, P; Venanzi, M; Bocchinfuso, G
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/419464
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