UV-vis spectra of anionic ibuprofen and naproxen in a model lipid bilayer of the cell membrane are investigated using computational techniques in combination with a comparative analysis of drug spectra in purely aqueous environments. The simulations aim at elucidating the intricacies behind the negligible changes in the maximum absorption wavelength in the experimental spectra. A set of configurations of the systems constituted by lipid, water, and drugs or just water and drugs are obtained from classical Molecular Dynamics simulations. UV-vis spectra are computed in the framework of atomistic Quantum er with Time-Dependent Density Functional Theory (TD-DFT). Our results suggest that the molecular orbitals involved in the electronic transitions are the same, regardless of the chemical environment. A thorough analysis of the contacts between the drug and water molecules reveals that no significant changes in UV-vis spectra are a consequence of ibuprofen and naproxen molecules being permanently microsolvated by water molecules, despite the presence of lipid molecules. Water molecules microsolvate the charged carboxylate group as expected but also microsolvate the aromatic regions of the drugs.

Rojas-Valencia, N., Gómez, S., Giovannini, T., Cappelli, C., Restrepo, A., Núñez Zarur, F. (2023). Water maintains the UV-vis spectral features during the insertion of anionic Naproxen and Ibuprofen into model cell membranes. JOURNAL OF PHYSICAL CHEMISTRY. B, CONDENSED MATTER, MATERIALS, SURFACES, INTERFACES & BIOPHYSICAL, 127(10), 2146-2155 [10.1021/acs.jpcb.2c08332].

Water maintains the UV-vis spectral features during the insertion of anionic Naproxen and Ibuprofen into model cell membranes

Giovannini, Tommaso;
2023-01-01

Abstract

UV-vis spectra of anionic ibuprofen and naproxen in a model lipid bilayer of the cell membrane are investigated using computational techniques in combination with a comparative analysis of drug spectra in purely aqueous environments. The simulations aim at elucidating the intricacies behind the negligible changes in the maximum absorption wavelength in the experimental spectra. A set of configurations of the systems constituted by lipid, water, and drugs or just water and drugs are obtained from classical Molecular Dynamics simulations. UV-vis spectra are computed in the framework of atomistic Quantum er with Time-Dependent Density Functional Theory (TD-DFT). Our results suggest that the molecular orbitals involved in the electronic transitions are the same, regardless of the chemical environment. A thorough analysis of the contacts between the drug and water molecules reveals that no significant changes in UV-vis spectra are a consequence of ibuprofen and naproxen molecules being permanently microsolvated by water molecules, despite the presence of lipid molecules. Water molecules microsolvate the charged carboxylate group as expected but also microsolvate the aromatic regions of the drugs.
2023
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore PHYS-04/A - Fisica teorica della materia, modelli, metodi matematici e applicazioni
English
Con Impact Factor ISI
Absorption; Energy levels; Lipids; Molecules; Vesicles
Rojas-Valencia, N., Gómez, S., Giovannini, T., Cappelli, C., Restrepo, A., Núñez Zarur, F. (2023). Water maintains the UV-vis spectral features during the insertion of anionic Naproxen and Ibuprofen into model cell membranes. JOURNAL OF PHYSICAL CHEMISTRY. B, CONDENSED MATTER, MATERIALS, SURFACES, INTERFACES & BIOPHYSICAL, 127(10), 2146-2155 [10.1021/acs.jpcb.2c08332].
Rojas-Valencia, N; Gómez, S; Giovannini, T; Cappelli, C; Restrepo, A; Núñez Zarur, F
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/393360
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