Influenza viruses are transmitted from human to human via airborne droplets and can be transferred through contaminated environmental surfaces. Some works have demonstrated the efficacy of essential oils (EOs) as antimicrobial and antiviral agents, but most of them examined the liquid phases, which are generally toxic for oral applications. In our study, we describe the antiviral activity of Citrus bergamia, Melaleuca alternifolia, Illicium verum and Eucalyptus globulus vapor EOs against influenza virus type A. In the vapor phase, C. bergamia and M. alternifolia strongly reduced viral cytopathic effect without exerting any cytotoxicity. The E. globulus vapor EO reduced viral infection by 78% with no cytotoxicity, while I. verum was not effective. Furthermore, we characterized the EOs and their vapor phase by the head-space gas chromatography–mass spectrometry technique, observing that the major component found in each liquid EO is the same one of the corresponding vapor phases, with the exception of M. alternifolia. To deepen the mechanism of action, the morphological integrity of virus particles was checked by negative staining transmission electron microscopy, showing that they interfere with the lipid bilayer of the viral envelope, leading to the decomposition of membranes. We speculated that the most abundant components of the vapor EOs might directly interfere with influenza virus envelope structures or mask viral structures important for early steps of viral infection.

Ultrastructural damages to H1N1 influenza virus caused by vapor essential oils / Madia, VALENTINA NOEMI; Toscanelli, Walter; DE VITA, Daniela; DE ANGELIS, Marta; Messore, Antonella; Ialongo, Davide; Scipione, Luigi; Tudino, Valeria; D'Auria, Felicia Diodata; DI SANTO, Roberto; Garzoli, Stefania; Stringaro, Annarita; Colone, Marisa; Marchetti, Magda; Superti, Fabiana; Nencioni, Lucia; Costi, Roberta. - In: MOLECULES. - ISSN 1420-3049. - 27:(2022), pp. 1-14. [10.3390/molecules27123718]

Ultrastructural damages to H1N1 influenza virus caused by vapor essential oils

Valentina Noemi Madia;Walter Toscanelli;Daniela De Vita
;
Marta De Angelis
;
Antonella Messore;Davide Ialongo;Luigi Scipione;Valeria Tudino;Felicia Diodata D’Auria;Roberto Di Santo;Stefania Garzoli;Lucia Nencioni;Roberta Costi
2022

Abstract

Influenza viruses are transmitted from human to human via airborne droplets and can be transferred through contaminated environmental surfaces. Some works have demonstrated the efficacy of essential oils (EOs) as antimicrobial and antiviral agents, but most of them examined the liquid phases, which are generally toxic for oral applications. In our study, we describe the antiviral activity of Citrus bergamia, Melaleuca alternifolia, Illicium verum and Eucalyptus globulus vapor EOs against influenza virus type A. In the vapor phase, C. bergamia and M. alternifolia strongly reduced viral cytopathic effect without exerting any cytotoxicity. The E. globulus vapor EO reduced viral infection by 78% with no cytotoxicity, while I. verum was not effective. Furthermore, we characterized the EOs and their vapor phase by the head-space gas chromatography–mass spectrometry technique, observing that the major component found in each liquid EO is the same one of the corresponding vapor phases, with the exception of M. alternifolia. To deepen the mechanism of action, the morphological integrity of virus particles was checked by negative staining transmission electron microscopy, showing that they interfere with the lipid bilayer of the viral envelope, leading to the decomposition of membranes. We speculated that the most abundant components of the vapor EOs might directly interfere with influenza virus envelope structures or mask viral structures important for early steps of viral infection.
2022
influenza A H1N1 virus; essential oil vapors; bergamot; Chinese star anise; tea tree oil; eucalyptus; antivirals
01 Pubblicazione su rivista::01a Articolo in rivista
Ultrastructural damages to H1N1 influenza virus caused by vapor essential oils / Madia, VALENTINA NOEMI; Toscanelli, Walter; DE VITA, Daniela; DE ANGELIS, Marta; Messore, Antonella; Ialongo, Davide; Scipione, Luigi; Tudino, Valeria; D'Auria, Felicia Diodata; DI SANTO, Roberto; Garzoli, Stefania; Stringaro, Annarita; Colone, Marisa; Marchetti, Magda; Superti, Fabiana; Nencioni, Lucia; Costi, Roberta. - In: MOLECULES. - ISSN 1420-3049. - 27:(2022), pp. 1-14. [10.3390/molecules27123718]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1648549
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