dc.contributor.author
Muñoz-Sánchez, J. C.
dc.contributor.author
Lázaro, J. T.
dc.contributor.author
Hillung, J.
dc.contributor.author
Olmo-Ulceda, M. J.
dc.contributor.author
Sardanyés, J.
dc.contributor.author
Elena, S. F.
dc.date.accessioned
2024-12-19T09:02:19Z
dc.date.available
2024-12-19T09:02:19Z
dc.date.issued
2025-01-01
dc.identifier.uri
http://hdl.handle.net/2072/479535
dc.description.abstract
t is well known that, during replication, RNA viruses spontaneously generate defective viral genomes (DVGs). DVGs are unable to complete an infectious cycle autonomously and depend on coinfection with a wild-type helper virus (HV) for their replication and/or transmission. The study of the dynamics arising from a HV and its DVGs has been a longstanding question in virology. It has been shown that DVGs can modulate HV replication and, depending on the strength of interference, result in HV extinctions or self-sustained persistent fluctuations. Extensive experimental work has provided mechanistic explanations for DVG generation and compelling evidences of HV-DVGs virus coevolution. Some of these observations have been captured by mathematical models. Here, we develop and investigate an epidemiological-like mathematical model specifically designed to study the dynamics of betacoronavirus in cell culture experiments. The dynamics of the model is governed by several degenerate normally hyperbolic invariant manifolds given by quasineutral planes - i.e., filled by equilibrium points. Three different quasineutral planes have been identified depending on parameters and involving: (i) persistence of HV and DVGs; (ii) persistence of non-infected cells and DVG-infected cells; and (iii) persistence of DVG-infected cells and DVGs. Key parameters involved in these scenarios are the maximum burst size (B), the fraction of DVGs produced during HV replication (beta), and the replication advantage of DVGs (delta). More precisely, in the case 0<1+beta the system displays tristability, where all three scenarios are present. In the case 1+beta<1+beta+delta this tristability persists but attracting scenario (ii) is reduced to a well-defined half-plane. For B>1+beta+delta, the scenario (i) becomes globally attractor. Scenarios (ii) and (iii) are compatible with the so-called self-curing since the HV is removed from the population. Sensitivity analyses indicate that model dynamics largely depend on DVGs production rate (beta) and their replicative advantage (delta), and on both the infection rates and virus-induced cell deaths. Finally, the model has been fitted to single-passage experimental data using an artificial intelligence methodology based on genetic algorithms and key virological parameters have been estimated.
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dc.description.sponsorship
JCM has been funded by grant ACIF/2021/296 (Generalitat Valenciana) . MJO was funded by contract FPU19/05246 by MCIU/AEI/10.13039/501100011033 and ESF invests in your future. JTL has been funded by the projects PGC2018-098676-B-100 and PID2021-122954NB-I00 funded by MCIU/AEI/10.13039/501100011033/and ERDF a way of making Europe, and by the grant Ayudas para la Recualificacion del Sistema Universitario Espanol 2021-2023. JTL also thanks the Laboratorio Subterraneo de Canfranc, the I2SysBio 2 SysBio and the Institut de Mathematiques de Jussieu-Paris Rive Gauche (Sorbonne Universite) for their hospitality as hosting institutions of this grant. We also thank the MCIU/AEI/10.13039/501100011033/, through the Maria de Maeztu Program for Units of Excellence in R&D (CEX2020-001084-M) and CERCA Programme/Generalitat de Catalunya for institutional support. JS has been also supported by the Ramon y Cajal grant RYC-2017-22243 funded by MCIU/AEI/10.13039/501100011033 and ESF invests in your future. SFE was supported by CSIC PTI Salud Global grant 202020E153 and by grants SGL2021-03-009 and SGL2021-03-052 from European Union Next Generation EU/PRTR through the CSIC Global Health Platform established by EU Council Regulation 2020/2094. Many computations were performed on the HPC cluster Garnatxa at I2SysBio 2 SysBio (CSIC-UV) . JCMS, JTL, MJOU, and SFE acknowledge the support of the Santa Fe Institute, where part of this research was developed.
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dc.format.extent
25 p.
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dc.relation.ispartof
Applied Mathematical Modelling
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dc.rights
Attribution-NonCommercial-NoDerivatives 4.0 International
*
dc.rights.uri
http://creativecommons.org/licenses/by-nc-nd/4.0/
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dc.source
RECERCAT (Dipòsit de la Recerca de Catalunya)
dc.subject.other
Vesicular Stomatitis-Virus
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dc.subject.other
Interfering Particles;
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dc.subject.other
Viral mutation
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dc.title
Quasineutral multistability in an epidemiological-like model for defective-helper betacoronavirus infection in cell cultures
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dc.type
info:eu-repo/semantics/article
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dc.description.version
info:eu-repo/semantics/publishedVersion
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dc.identifier.doi
10.1016/j.apm.2024.115673
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dc.rights.accessLevel
info:eu-repo/semantics/openAccess