Pathways of cross-species transmission of synthetically reconstructed zoonotic severe acute respiratory syndrome coronavirus.

Timothy Sheahan1 Barry Rockx Eric Donaldson Davide Corti Ralph Baric
Affiliations 1 institutions
  1. Department of Microbiology and Immunology, University of North Carolina, Chapel Hill, North Carolina 27699-7435, USA.

Abstract

Zoonotic severe acute respiratory syndrome coronavirus (SARS-CoV) likely evolved to infect humans by a series of transmission events between humans and animals in markets in China. Virus sequence data suggest that the palm civet served as an amplification host in which civet and human interaction fostered the evolution of the epidemic SARS Urbani strain. The prototypic civet strain of SARS-CoV, SZ16, was isolated from a palm civet but has not been successfully cultured in vitro. To propagate a chimeric recombinant SARS-CoV bearing an SZ16 spike (S) glycoprotein (icSZ16-S), we constructed cell lines expressing the civet ortholog (DBT-cACE2) of the SARS-CoV receptor (hACE2). Zoonotic SARS-CoV was completely dependent on ACE2 for entry. Urbani grew with similar kinetics in both the DBT-cACE2 and the DBT-hACE2 cells, while icSZ16-S only grew in DBT-cACE2 cells. The SZ16-S mutant viruses adapted to human airway epithelial cells and displayed enhanced affinity for hACE2 but exhibited severe growth defects in the DBT-cACE2 cells, suggesting that the evolutionary pathway that promoted efficient hACE2 interactions simultaneously abolished efficient cACE2 interactions. Structural modeling predicted two distinct biochemical interaction networks by which zoonotic receptor binding domain architecture can productively engage hACE2, but only the Urbani mutational repertoire promoted efficient usage of both hACE2 and cACE2 binding interfaces. Since dual species tropism was preserved in Urbani, it is likely that the virus evolved a high affinity for cACE2/hACE2 receptors through adaptation via repeated passages between human and civet hosts. Furthermore, zoonotic SARS-CoV was variably neutralized by antibodies that were effective against the epidemic strain, highlighting their utility for evaluating passive immunization efficacy.

Supporting text Virus Host Location
Amino Acid Sequence 128 Animals 1948 Antibodies, Monoclonal 26 Cell Line 158 China 229 Chiroptera 371 Chlorocebus aethiops 70 Cytopathogenic Effect, Viral 2 Disease Reservoirs 149 Genes, Viral 37 Green Fluorescent Proteins 1 Humans 1440 Kinetics 8 Membrane Glycoproteins 26 Models, Molecular 99 Molecular Sequence Data 160 Neutralization Tests 31 Plasmids 5 Point Mutation 7 Protein Binding 193 Protein Structure, Secondary 11 Protein Structure, Tertiary 29 Receptors, Virus 204 Sequence Analysis, DNA 113

Evidence records

4 total
Zoonotic Surveillance
1 records · 1 evidence types
Evidence type
1 records
Functional Mechanism
3 records · 2 evidence types
Evidence type
2 records
OVE580
Key finding

Zoonotic SARS-CoV entry was completely dependent on ACE2, with differential receptor usage showing Urbani infected both human and civet ACE2-expressing cells while icSZ16-S infected only civet ACE2-expressing cells.

Virus
Host
Location
Not specified
Supporting text

Zoonotic SARS-CoV was completely dependent on ACE2 for entry. Urbani grew with similar kinetics in both the DBT-cACE2 and the DBT-hACE2 cells, while icSZ16-S only grew in DBT-cACE2 cells.

Method
cell culture growth assay | receptor-specific cell line infection | receptor dependence entry experiment
Receptors
ACE2 | hACE2 | cACE2
OVE583
Key finding

SARS-CoV exhibited adaptation through repeated passages between civet and human hosts, maintaining dual tropism that indicates cross-species viral transmission.

Virus
Host
Location
Not specified
Supporting text

Since dual species tropism was preserved in Urbani, it is likely that the virus evolved a high affinity for cACE2/hACE2 receptors through adaptation via repeated passages between human and civet hosts.

Method
receptor usage assay | cell line infection | structural modeling
Receptors
ACE2
Evidence type
1 records
OVE581
Key finding

SZ16-S mutant SARS-CoV viruses adapted to human airway epithelial cells, showing enhanced affinity for hACE2 but impaired replication with cACE2, indicating receptor-specific molecular adaptation between civet and human hosts.

Virus
Host
Not specified
Location
Not specified
Supporting text

The SZ16-S mutant viruses adapted to human airway epithelial cells and displayed enhanced affinity for hACE2 but exhibited severe growth defects in the DBT-cACE2 cells, suggesting that the evolutionary pathway that promoted efficient hACE2 interactions simultaneously abolished efficient cACE2 interactions.

Genes or proteins
spike (S) glycoprotein
Receptors
hACE2 | cACE2
Mechanism types
receptor binding | receptor usage | host-range expansion