Utility of Human In Vitro Data in Risk Assessments of Influenza A Virus Using the Ferret Model.

Hannah M Creager1 Troy J Kieran1 Hui Zeng1 Xiangjie Sun1 Joanna A Pulit-Penaloza1 Katie E Holmes2 Anders F Johnson2 Terrence M Tumpey1 Taronna R Maines1 Catherine A A Beauchemin3,4 Jessica A Belser1
Affiliations 4 institutions
  1. Influenza Division, Centers for Disease Control and Prevention, Atlanta, Georgia, USA.
  2. Emory University, Atlanta, Georgia, USA.
  3. Department of Physics, Ryerson University, Toronto, Canada.
  4. Interdisciplinary Theoretical and Mathematical Sciences (iTHEMS) at RIKEN, Wako, Japan.

Abstract

As influenza A viruses (IAV) continue to cross species barriers and cause human infection, the establishment of risk assessment rubrics has improved pandemic preparedness efforts. In vivo pathogenicity and transmissibility evaluations in the ferret model represent a critical component of this work. As the relative contribution of in vitro experimentation to these rubrics has not been closely examined, we sought to evaluate to what extent viral titer measurements over the course of in vitro infections are predictive or correlates of nasal wash and tissue measurements for IAV infections in vivo. We compiled data from ferrets inoculated with an extensive panel of over 50 human and zoonotic IAV (inclusive of swine-origin and high- and low-pathogenicity avian influenza viruses associated with human infection) under a consistent protocol, with all viruses concurrently tested in a human bronchial epithelial cell line (Calu-3). Viral titers in ferret nasal wash specimens and nasal turbinate tissue correlated positively with peak titer in Calu-3 cells, whereas additional phenotypic and molecular determinants of influenza virus virulence and transmissibility in ferrets varied in their association with in vitro viral titer measurements. Mathematical modeling was used to estimate more generalizable key replication kinetic parameters from raw in vitro viral titers, revealing commonalities between viral infection progression in vivo and in vitro. Meta-analyses inclusive of IAV that display a diverse range of phenotypes in ferrets, interpreted with mathematical modeling of viral kinetic parameters, can provide critical information supporting a more rigorous and appropriate contextualization of in vitro experiments toward pandemic preparedness. IMPORTANCE Both in vitro and in vivo models are employed for assessing the pandemic potential of novel and emerging influenza A viruses in laboratory settings, but systematic examinations of how well viral titer measurements obtained in vitro align with results from in vivo experimentation are not frequently performed. We show that certain viral titer measurements following infection of a human bronchial epithelial cell line are positively correlated with viral titers in specimens collected from virus-inoculated ferrets and employ mathematical modeling to identify commonalities between viral infection progression between both models. These analyses provide a necessary first step in enhanced interpretation and incorporation of in vitro-derived data in risk assessment activities and highlight the utility of employing mathematical modeling approaches to more closely examine features of virus replication not identifiable by experimental studies alone.

Supporting text Virus Host Location
epithelial cells 29 ferret 8 influenza 61 risk assessment 18 virus replication 192 Influenza A virus 186 Orthomyxoviridae Infections 228 Risk Assessment 13 Animals 1948 Cell Line 158 Ferrets 79 Humans 1440 In Vitro Techniques 5 Influenza, Human 286 Swine 258 Virus Replication 191

Evidence records

1 total
Experimental Infection
1 records · 1 evidence types
Evidence type
1 records
OVE6647
Key finding

Human and zoonotic influenza A viruses were experimentally infected in the Calu-3 human bronchial epithelial cell line and in ferrets, demonstrating infection and replication across both host systems with correlated viral titers.

Virus
Host
Location
Not specified
Supporting text

We compiled data from ferrets inoculated with an extensive panel of over 50 human and zoonotic IAVs under a consistent protocol, with all viruses concurrently tested in a human bronchial epithelial cell line (Calu-3). Viral titers in ferret nasal wash specimens and nasal turbinate tissue correlated positively with peak titer in Calu-3 cells.

Method
in vitro viral infection assays | in vivo ferret inoculation | viral titer measurement | mathematical modeling of replication kinetics
Sample type
nasal wash specimens | nasal turbinate tissue
Experimental system
in vitro cell-culture infection system and in vivo ferret challenge model