Assessment of influenza virus and coronavirus tropism, replication competence and disease severity in ex vivo and in vitro cultures of the human respiratory tract.

Denise I T Kuok1 Angel P Y Ma1,2 Rachel H H Ching1,2 Ka Chun Ng1 Jae W Lee3 Michael A Matthay4 Yi Guan1 John M Nicholls5 Leo L M Poon1,2 J S Malik Peiris1,2 Kenrie P Y Hui1,2 Michael C W Chan1,2
Affiliations 5 institutions
  1. School of Public Health, LKS Faculty of Medicine, The University of Hong Kong, Hong Kong, PR China.
  2. Centre for Immunology and Infection (C2i), Hong Kong Science Park, Hong Kong, PR China.
  3. Department of Anesthesiology, University of California, Los Angeles, USA.
  4. Department of Medicine and Anesthesiology, University of California San Francisco, San Francisco, USA.
  5. Department of Pathology, School of Clinical Medicine, LKS Faculty of Medicine, Queen Mary Hospital, The University of Hong Kong, Hong Kong, PR China.

Abstract

The emergence of animal influenza viruses circulating in poultry and human populations poses a significant public health threat, yet current risk assessment tools that connect surveillance data to human transmission risk and disease severity are lacking. To address this, we employed a semi-quantitative approach to analyze virus tropism and replication competence, conducting risk assessments of influenza and coronavirus adaptation to human transmission in an ex vivo model, and evaluating virus-induced impairment of alveolar fluid clearance (AFC) in vitro as a correlation of disease severity. Our results showed that seasonal influenza A H1N1, H3N2, influenza B, MERS-CoV, and SARS-CoV exhibited productive viral replication and tissue infection in bronchial tissues, whereas wild bird surveillance isolates such as H5N3 and H7N1 showed minimal replication when compared to pandemic H1N1 and highly pathogenic avian influenza (HPAI) H5N1. Notably, differential lung viral replication and tissue tropism were detected for H5N6 and H9N2. HPAI H5N1, H7N9, MERS-CoV, and SARS-CoV caused more severe AFC impairment than seasonal H1N1, H3N2, and influenza B viruses, correlating with their clinical severity. Overall, these findings revealed an important association between viral tropism and human transmissibility in ex vivo explants, as well as the impairment of AFC in vitro, which aligns with the clinical manifestations of disease severity across different viral strains.

Supporting text Virus Host Location
airway epithelium 1 epithelial cells 29 influenza 61 lung injury 1 SARS 6 viral infection 1 Coronavirus 92 Coronavirus Infections 171 Influenza, Human 286 Orthomyxoviridae 13 Respiratory System 21 Viral Tropism 45 Virus Replication 191 Animals 1948 Humans 1440 Influenza A Virus, H3N2 Subtype 48 Influenza B virus 2

Evidence records

4 total
Experimental Infection
4 records · 2 evidence types
Evidence type
1 records
OVE11770
Key finding

In an in vitro human alveolar model, HPAI H5N1, H7N9, MERS-CoV, and SARS-CoV caused more severe impairment of alveolar fluid clearance than seasonal H1N1, H3N2, and influenza B viruses.

Virus
Host
Experimental system Experimental system
Location
Not specified
Supporting text

HPAI H5N1, H7N9, MERS-CoV, and SARS-CoV caused more severe AFC impairment than seasonal H1N1, H3N2, and influenza B viruses, correlating with their clinical severity.

Method
in vitro AFC impairment assay
Experimental system
in vitro human alveolar fluid clearance (AFC) model
Evidence type
3 records
OVE11767
Key finding

Seasonal influenza A H1N1, H3N2, influenza B, MERS-CoV, and SARS-CoV productively replicated and infected human bronchial tissues in an ex vivo model.

Virus
Host
Experimental system
Location
Not specified
Supporting text

seasonal influenza A H1N1, H3N2, influenza B, MERS-CoV, and SARS-CoV exhibited productive viral replication and tissue infection in bronchial tissues

Method
ex vivo tissue infection | virus replication assay
Sample type
bronchial tissues
Experimental system
ex vivo human bronchial tissue explant model
OVE11768
Key finding

Wild bird surveillance isolates H5N3 and H7N1 showed minimal replication in human bronchial tissues compared with pandemic H1N1 and HPAI H5N1 in the ex vivo model.

Virus
Host
Experimental system Natural host
Location
Not specified
Supporting text

wild bird surveillance isolates such as H5N3 and H7N1 showed minimal replication when compared to pandemic H1N1 and highly pathogenic avian influenza (HPAI) H5N1

Method
ex vivo tissue infection | comparative virus replication assay
Sample type
bronchial tissues
Experimental system
ex vivo human bronchial tissue explant model
OVE11769
Key finding

H5N6 and H9N2 displayed differential lung replication and tissue tropism in human respiratory explants.

Virus
Host
Experimental system
Location
Not specified
Supporting text

Notably, differential lung viral replication and tissue tropism were detected for H5N6 and H9N2.

Method
ex vivo tissue infection | virus replication assessment | tissue tropism analysis
Sample type
lung | respiratory explants
Experimental system
ex vivo human respiratory (lung) tissue explant model