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Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection

The flavivirus life cycle is strictly dependent on cellular lipid metabolism. Polyphenols like gallic acid and its derivatives are promising lead compounds for new therapeutic agents as they can exert multiple pharmacological activities, including the alteration of lipid metabolism. The evaluation o...

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Autores principales: Jiménez de Oya, Nereida, San-Félix, Ana, Casasampere, Mireia, Blázquez, Ana-Belén, Mingo-Casas, Patricia, Escribano-Romero, Estela, Calvo-Pinilla, Eva, Poderoso, Teresa, Casas, Josefina, Saiz, Juan-Carlos, Pérez-Pérez, María-Jesús, Martín-Acebes, Miguel A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10112131/
https://www.ncbi.nlm.nih.gov/pubmed/36920206
http://dx.doi.org/10.1128/aac.01687-22
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author Jiménez de Oya, Nereida
San-Félix, Ana
Casasampere, Mireia
Blázquez, Ana-Belén
Mingo-Casas, Patricia
Escribano-Romero, Estela
Calvo-Pinilla, Eva
Poderoso, Teresa
Casas, Josefina
Saiz, Juan-Carlos
Pérez-Pérez, María-Jesús
Martín-Acebes, Miguel A.
author_facet Jiménez de Oya, Nereida
San-Félix, Ana
Casasampere, Mireia
Blázquez, Ana-Belén
Mingo-Casas, Patricia
Escribano-Romero, Estela
Calvo-Pinilla, Eva
Poderoso, Teresa
Casas, Josefina
Saiz, Juan-Carlos
Pérez-Pérez, María-Jesús
Martín-Acebes, Miguel A.
author_sort Jiménez de Oya, Nereida
collection PubMed
description The flavivirus life cycle is strictly dependent on cellular lipid metabolism. Polyphenols like gallic acid and its derivatives are promising lead compounds for new therapeutic agents as they can exert multiple pharmacological activities, including the alteration of lipid metabolism. The evaluation of our collection of polyphenols against West Nile virus (WNV), a representative medically relevant flavivirus, led to the identification of N,N′-(dodecane-1,12-diyl)bis(3,4,5-trihydroxybenzamide) and its 2,3,4-trihydroxybenzamide regioisomer as selective antivirals with low cytotoxicity and high antiviral activity (half-maximal effective concentrations [EC(50)s] of 2.2 and 0.24 μM, respectively, in Vero cells; EC(50)s of 2.2 and 1.9 μM, respectively, in SH-SY5Y cells). These polyphenols also inhibited the multiplication of other flaviviruses, namely, Usutu, dengue, and Zika viruses, exhibiting lower antiviral or negligible antiviral activity against other RNA viruses. The mechanism underlying their antiviral activity against WNV involved the alteration of sphingolipid metabolism. These compounds inhibited ceramide desaturase (Des1), promoting the accumulation of dihydrosphingomyelin (dhSM), a minor component of cellular sphingolipids with important roles in membrane properties. The addition of exogenous dhSM or Des1 blockage by using the reference inhibitor GT-11 {N-[(1R,2S)-2-hydroxy-1-hydroxymethyl-2-(2-tridecyl-1-cyclopropenyl)ethyl]octanamide} confirmed the involvement of this pathway in WNV infection. These results unveil the potential of novel antiviral strategies based on the modulation of the cellular levels of dhSM and Des1 activity for the control of flavivirus infection.
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spelling pubmed-101121312023-04-19 Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection Jiménez de Oya, Nereida San-Félix, Ana Casasampere, Mireia Blázquez, Ana-Belén Mingo-Casas, Patricia Escribano-Romero, Estela Calvo-Pinilla, Eva Poderoso, Teresa Casas, Josefina Saiz, Juan-Carlos Pérez-Pérez, María-Jesús Martín-Acebes, Miguel A. Antimicrob Agents Chemother Antiviral Agents The flavivirus life cycle is strictly dependent on cellular lipid metabolism. Polyphenols like gallic acid and its derivatives are promising lead compounds for new therapeutic agents as they can exert multiple pharmacological activities, including the alteration of lipid metabolism. The evaluation of our collection of polyphenols against West Nile virus (WNV), a representative medically relevant flavivirus, led to the identification of N,N′-(dodecane-1,12-diyl)bis(3,4,5-trihydroxybenzamide) and its 2,3,4-trihydroxybenzamide regioisomer as selective antivirals with low cytotoxicity and high antiviral activity (half-maximal effective concentrations [EC(50)s] of 2.2 and 0.24 μM, respectively, in Vero cells; EC(50)s of 2.2 and 1.9 μM, respectively, in SH-SY5Y cells). These polyphenols also inhibited the multiplication of other flaviviruses, namely, Usutu, dengue, and Zika viruses, exhibiting lower antiviral or negligible antiviral activity against other RNA viruses. The mechanism underlying their antiviral activity against WNV involved the alteration of sphingolipid metabolism. These compounds inhibited ceramide desaturase (Des1), promoting the accumulation of dihydrosphingomyelin (dhSM), a minor component of cellular sphingolipids with important roles in membrane properties. The addition of exogenous dhSM or Des1 blockage by using the reference inhibitor GT-11 {N-[(1R,2S)-2-hydroxy-1-hydroxymethyl-2-(2-tridecyl-1-cyclopropenyl)ethyl]octanamide} confirmed the involvement of this pathway in WNV infection. These results unveil the potential of novel antiviral strategies based on the modulation of the cellular levels of dhSM and Des1 activity for the control of flavivirus infection. American Society for Microbiology 2023-03-15 /pmc/articles/PMC10112131/ /pubmed/36920206 http://dx.doi.org/10.1128/aac.01687-22 Text en Copyright © 2023 Jiménez de Oya et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Antiviral Agents
Jiménez de Oya, Nereida
San-Félix, Ana
Casasampere, Mireia
Blázquez, Ana-Belén
Mingo-Casas, Patricia
Escribano-Romero, Estela
Calvo-Pinilla, Eva
Poderoso, Teresa
Casas, Josefina
Saiz, Juan-Carlos
Pérez-Pérez, María-Jesús
Martín-Acebes, Miguel A.
Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection
title Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection
title_full Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection
title_fullStr Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection
title_full_unstemmed Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection
title_short Pharmacological Elevation of Cellular Dihydrosphingomyelin Provides a Novel Antiviral Strategy against West Nile Virus Infection
title_sort pharmacological elevation of cellular dihydrosphingomyelin provides a novel antiviral strategy against west nile virus infection
topic Antiviral Agents
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10112131/
https://www.ncbi.nlm.nih.gov/pubmed/36920206
http://dx.doi.org/10.1128/aac.01687-22
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