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Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study

Favipiravir (6-fluoro-3-hydroxypyrazine-2-carboxamide, FPV), an active pharmaceutical component of the drug discovered and registered in March 2014 in Japan under the name Avigan, with an indication for pandemic influenza, has been studied. The study of this compound was prompted by the idea that ef...

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Autores principales: Latosińska, Jolanta Natalia, Latosińska, Magdalena, Seliger, Janez, Žagar, Veselko, Apih, Tomaž, Grieb, Paweł
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10147075/
https://www.ncbi.nlm.nih.gov/pubmed/37110542
http://dx.doi.org/10.3390/molecules28083308
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author Latosińska, Jolanta Natalia
Latosińska, Magdalena
Seliger, Janez
Žagar, Veselko
Apih, Tomaž
Grieb, Paweł
author_facet Latosińska, Jolanta Natalia
Latosińska, Magdalena
Seliger, Janez
Žagar, Veselko
Apih, Tomaž
Grieb, Paweł
author_sort Latosińska, Jolanta Natalia
collection PubMed
description Favipiravir (6-fluoro-3-hydroxypyrazine-2-carboxamide, FPV), an active pharmaceutical component of the drug discovered and registered in March 2014 in Japan under the name Avigan, with an indication for pandemic influenza, has been studied. The study of this compound was prompted by the idea that effective processes of recognition and binding of FPV to the nucleic acid are affected predominantly by the propensity to form intra- and intermolecular interactions. Three nuclear quadrupole resonance experimental techniques, namely (1)H-(14)N cross-relaxation, multiple frequency sweeps, and two-frequency irradiation, followed by solid-state computational modelling (density functional theory supplemented by the quantum theory of atoms in molecules, 3D Hirshfeld Surfaces, and reduced density gradient) approaches were applied. The complete NQR spectrum consisting of nine lines indicating the presence of three chemically inequivalent nitrogen sites in the FPV molecule was detected, and the assignment of lines to particular sites was performed. The description of the nearest vicinity of all three nitrogen atoms was used to characterize the nature of the intermolecular interactions from the perspective of the local single atoms and to draw some conclusions on the nature of the interactions required for effective recognition and binding. The propensity to form the electrostatic N−H···O, N−H···N, and C−H···O intermolecular hydrogen bonds competitive with two intramolecular hydrogen bonds, strong O−H···O and very weak N−H···N, closing the 5-member ring and stiffening the structure, as well as π···π and F···F dispersive interactions, were analysed in detail. The hypothesis regarding the similarity of the interaction pattern in the solid and the RNA template was verified. It was discovered that the -NH(2) group in the crystal participates in intermolecular hydrogen bonds N–H···N and N–H···O, in the precatalytic state only in N–H···O, while in the active state in N–H···N and N–H···O hydrogen bonds, which is of importance to link FVP to the RNA template. Our study elucidates the binding modes of FVP (in crystal, precatalytic, and active forms) in detail and should guide the design of more potent analogues targeting SARS-CoV-2. Strong direct binding of FVP-RTP to both the active site and cofactor discovered by us suggests a possible alternative, allosteric mechanism of FVP action, which may explain the scattering of the results of clinical trials or the synergistic effect observed in combined treatment against SARS-CoV-2.
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spelling pubmed-101470752023-04-29 Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study Latosińska, Jolanta Natalia Latosińska, Magdalena Seliger, Janez Žagar, Veselko Apih, Tomaž Grieb, Paweł Molecules Article Favipiravir (6-fluoro-3-hydroxypyrazine-2-carboxamide, FPV), an active pharmaceutical component of the drug discovered and registered in March 2014 in Japan under the name Avigan, with an indication for pandemic influenza, has been studied. The study of this compound was prompted by the idea that effective processes of recognition and binding of FPV to the nucleic acid are affected predominantly by the propensity to form intra- and intermolecular interactions. Three nuclear quadrupole resonance experimental techniques, namely (1)H-(14)N cross-relaxation, multiple frequency sweeps, and two-frequency irradiation, followed by solid-state computational modelling (density functional theory supplemented by the quantum theory of atoms in molecules, 3D Hirshfeld Surfaces, and reduced density gradient) approaches were applied. The complete NQR spectrum consisting of nine lines indicating the presence of three chemically inequivalent nitrogen sites in the FPV molecule was detected, and the assignment of lines to particular sites was performed. The description of the nearest vicinity of all three nitrogen atoms was used to characterize the nature of the intermolecular interactions from the perspective of the local single atoms and to draw some conclusions on the nature of the interactions required for effective recognition and binding. The propensity to form the electrostatic N−H···O, N−H···N, and C−H···O intermolecular hydrogen bonds competitive with two intramolecular hydrogen bonds, strong O−H···O and very weak N−H···N, closing the 5-member ring and stiffening the structure, as well as π···π and F···F dispersive interactions, were analysed in detail. The hypothesis regarding the similarity of the interaction pattern in the solid and the RNA template was verified. It was discovered that the -NH(2) group in the crystal participates in intermolecular hydrogen bonds N–H···N and N–H···O, in the precatalytic state only in N–H···O, while in the active state in N–H···N and N–H···O hydrogen bonds, which is of importance to link FVP to the RNA template. Our study elucidates the binding modes of FVP (in crystal, precatalytic, and active forms) in detail and should guide the design of more potent analogues targeting SARS-CoV-2. Strong direct binding of FVP-RTP to both the active site and cofactor discovered by us suggests a possible alternative, allosteric mechanism of FVP action, which may explain the scattering of the results of clinical trials or the synergistic effect observed in combined treatment against SARS-CoV-2. MDPI 2023-04-07 /pmc/articles/PMC10147075/ /pubmed/37110542 http://dx.doi.org/10.3390/molecules28083308 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Latosińska, Jolanta Natalia
Latosińska, Magdalena
Seliger, Janez
Žagar, Veselko
Apih, Tomaž
Grieb, Paweł
Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study
title Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study
title_full Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study
title_fullStr Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study
title_full_unstemmed Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study
title_short Elucidating the Role of Noncovalent Interactions in Favipiravir, a Drug Active against Various Human RNA Viruses; a (1)H-(14)N NQDR/Periodic DFT/QTAIM/RDS/3D Hirshfeld Surfaces Combined Study
title_sort elucidating the role of noncovalent interactions in favipiravir, a drug active against various human rna viruses; a (1)h-(14)n nqdr/periodic dft/qtaim/rds/3d hirshfeld surfaces combined study
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10147075/
https://www.ncbi.nlm.nih.gov/pubmed/37110542
http://dx.doi.org/10.3390/molecules28083308
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