Inhibition of Polyamine Biosynthesis Is a Broad-Spectrum Strategy against RNA Viruses

RNA viruses present an extraordinary threat to human health, given their sudden and unpredictable appearance, the potential for rapid spread among the human population, and their ability to evolve resistance to antiviral therapies. The recent emergence of chikungunya virus, Zika virus, and Ebola vir...

Ausführliche Beschreibung

Gespeichert in:
Bibliographische Detailangaben
Veröffentlicht in:Journal of virology 2016-11, Vol.90 (21), p.9683-9692
Hauptverfasser: Mounce, Bryan C, Cesaro, Teresa, Moratorio, Gonzalo, Hooikaas, Peter Jan, Yakovleva, Anna, Werneke, Scott W, Smith, Everett Clinton, Poirier, Enzo Z, Simon-Loriere, Etienne, Prot, Matthieu, Tamietti, Carole, Vitry, Sandrine, Volle, Romain, Khou, Cécile, Frenkiel, Marie-Pascale, Sakuntabhai, Anavaj, Delpeyroux, Francis, Pardigon, Nathalie, Flamand, Marie, Barba-Spaeth, Giovanna, Lafon, Monique, Denison, Mark R, Albert, Matthew L, Vignuzzi, Marco
Format: Artikel
Sprache:eng
Schlagworte:
Online-Zugang:Volltext
Tags: Tag hinzufügen
Keine Tags, Fügen Sie den ersten Tag hinzu!
Beschreibung
Zusammenfassung:RNA viruses present an extraordinary threat to human health, given their sudden and unpredictable appearance, the potential for rapid spread among the human population, and their ability to evolve resistance to antiviral therapies. The recent emergence of chikungunya virus, Zika virus, and Ebola virus highlights the struggles to contain outbreaks. A significant hurdle is the availability of antivirals to treat the infected or protect at-risk populations. While several compounds show promise in vitro and in vivo, these outbreaks underscore the need to accelerate drug discovery. The replication of several viruses has been described to rely on host polyamines, small and abundant positively charged molecules found in the cell. Here, we describe the antiviral effects of two molecules that alter polyamine levels: difluoromethylornithine (DFMO; also called eflornithine), which is a suicide inhibitor of ornithine decarboxylase 1 (ODC1), and diethylnorspermine (DENSpm), an activator of spermidine/spermine N -acetyltransferase (SAT1). We show that reducing polyamine levels has a negative effect on diverse RNA viruses, including several viruses involved in recent outbreaks, in vitro and in vivo These findings highlight the importance of the polyamine biosynthetic pathway to viral replication, as well as its potential as a target in the development of further antivirals or currently available molecules, such as DFMO. RNA viruses present a significant hazard to human health, and combatting these viruses requires the exploration of new avenues for targeting viral replication. Polyamines, small positively charged molecules within the cell, have been demonstrated to facilitate infection for a few different viruses. Our study demonstrates that diverse RNA viruses rely on the polyamine pathway for replication and highlights polyamine biosynthesis as a promising drug target.
ISSN:0022-538X
1098-5514
DOI:10.1128/JVI.01347-16