English

Quantification of Ebola virus replication kinetics in vitro

Cell Behavior 2024-04-02 v1

Abstract

Mathematical modelling has successfully been used to provide quantitative descriptions of many viral infections, but for the Ebola virus, which requires biosafety level 4 facilities for experimentation, modelling can play a crucial role. Ebola modelling efforts have primarily focused on in vivo virus kinetics, e.g., in animal models, to aid the development of antivirals and vaccines. But, thus far, these studies have not yielded a detailed specification of the infection cycle, which could provide a foundational description of the virus kinetics and thus a deeper understanding of their clinical manifestation. Here, we obtain a diverse experimental data set of the Ebola infection in vitro, and then make use of Bayesian inference methods to fully identify parameters in a mathematical model of the infection. Our results provide insights into the distribution of time an infected cell spends in the eclipse phase (the period between infection and the start of virus production), as well as the rate at which infectious virions lose infectivity. We suggest how these results can be used in future models to describe co-infection with defective interfering particles, which are an emerging alternative therapeutic.

Keywords

Cite

@article{arxiv.2010.09898,
  title  = {Quantification of Ebola virus replication kinetics in vitro},
  author = {Laura E. Liao and Jonathan Carruthers and Sophie J. Smither and CL4 Virology Team and Simon A. Weller and Diane Williamson and Thomas R. Laws and Isabel Garcia-Dorival and Julian Hiscox and Benjamin P. Holder and Catherine A. A. Beauchemin and Alan S. Perelson and Martin Lopez-Garcia and Grant Lythe and John Barr and Carmen Molina-Paris},
  journal= {arXiv preprint arXiv:2010.09898},
  year   = {2024}
}

Comments

16 pages, 3 figures, to be published in PLOS Computational Biology

R2 v1 2026-06-23T19:28:15.530Z