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Status: Bibliographieeintrag

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Verfasst von:Zitzmann, Carolin [VerfasserIn]   i
 Dächert, Christopher [VerfasserIn]   i
 Schmid, Bianca [VerfasserIn]   i
 Schaar, Hilde van der [VerfasserIn]   i
 Hemert, Martijn van [VerfasserIn]   i
 Perelson, Alan S. [VerfasserIn]   i
 Kuppeveld, Frank J. M. van [VerfasserIn]   i
 Bartenschlager, Ralf [VerfasserIn]   i
 Binder, Marco [VerfasserIn]   i
 Kaderali, Lars [VerfasserIn]   i
Titel:Mathematical modeling of plus-strand RNA virus replication to identify broad-spectrum antiviral treatment strategies
Verf.angabe:Carolin Zitzmann, Christopher Dächert, Bianca Schmid, Hilde van der Schaar, Martijn van Hemert, Alan S. Perelson, Frank J.M. van Kuppeveld, Ralf Bartenschlager, Marco Binder, Lars Kaderali
E-Jahr:2023
Jahr:April 4, 2023
Umfang:38 S.
Fussnoten:Gesehen am 23.05.2023
Titel Quelle:Enthalten in: Public Library of SciencePLoS Computational Biology
Ort Quelle:San Francisco, Calif. : Public Library of Science, 2005
Jahr Quelle:2023
Band/Heft Quelle:19(2023), 4, Artikel-ID e1010423, Seite 1-38
ISSN Quelle:1553-7358
Abstract:Plus-strand RNA viruses are the largest group of viruses. Many are human pathogens that inflict a socio-economic burden. Interestingly, plus-strand RNA viruses share remarkable similarities in their replication. A hallmark of plus-strand RNA viruses is the remodeling of intracellular membranes to establish replication organelles (so-called “replication factories”), which provide a protected environment for the replicase complex, consisting of the viral genome and proteins necessary for viral RNA synthesis. In the current study, we investigate pan-viral similarities and virus-specific differences in the life cycle of this highly relevant group of viruses. We first measured the kinetics of viral RNA, viral protein, and infectious virus particle production of hepatitis C virus (HCV), dengue virus (DENV), and coxsackievirus B3 (CVB3) in the immuno-compromised Huh7 cell line and thus without perturbations by an intrinsic immune response. Based on these measurements, we developed a detailed mathematical model of the replication of HCV, DENV, and CVB3 and showed that only small virus-specific changes in the model were necessary to describe the in vitro dynamics of the different viruses. Our model correctly predicted virus-specific mechanisms such as host cell translation shut off and different kinetics of replication organelles. Further, our model suggests that the ability to suppress or shut down host cell mRNA translation may be a key factor for in vitro replication efficiency, which may determine acute self-limited or chronic infection. We further analyzed potential broad-spectrum antiviral treatment options in silico and found that targeting viral RNA translation, such as polyprotein cleavage and viral RNA synthesis, may be the most promising drug targets for all plus-strand RNA viruses. Moreover, we found that targeting only the formation of replicase complexes did not stop the in vitro viral replication early in infection, while inhibiting intracellular trafficking processes may even lead to amplified viral growth.
DOI:doi:10.1371/journal.pcbi.1010423
URL:Bitte beachten Sie: Dies ist ein Bibliographieeintrag. Ein Volltextzugriff für Mitglieder der Universität besteht hier nur, falls für die entsprechende Zeitschrift/den entsprechenden Sammelband ein Abonnement besteht oder es sich um einen OpenAccess-Titel handelt.

Volltext: https://doi.org/10.1371/journal.pcbi.1010423
 Volltext: https://journals.plos.org/ploscompbiol/article?id=10.1371/journal.pcbi.1010423
 DOI: https://doi.org/10.1371/journal.pcbi.1010423
Datenträger:Online-Ressource
Sprache:eng
Sach-SW:Dengue virus
 Hepatitis C virus
 Life cycles
 Protein translation
 Ribosomes
 RNA synthesis
 RNA viruses
 Viral replication
K10plus-PPN:1845964624
Verknüpfungen:→ Zeitschrift

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