Cleavage of the SARS Coronavirus Spike Glycoprotein by Airway Proteases Enhances Virus Entry into Human Bronchial Epithelial Cells In Vitro

Расщепление шиповидного гликопротеина коронавируса SARS протеазами дыхательных путей усиливает проникновение вируса в эпителиальные клетки бронхов человека in vitro
Lisa F. P. Ng, Yiu‐Wing Kam, Yuushi Okumura, Hiroshi Kido, Roberto Bruzzone, Ralf Altmeyer
2009-11-17

ACE2-mediated virus entrySARS-CoV spike glycoproteinTMPRSS11aairway proteaseshuman bronchial epithelial cells
BACKGROUND: Entry of enveloped viruses into host cells requires the activation of viral envelope glycoproteins through cleavage by either intracellular or extracellular proteases. In order to gain insight into the molecular basis of protease cleavage and its impact on the efficiency of viral entry, we investigated the susceptibility of a recombinant native full-length S-protein trimer (triSpike) of the severe acute respiratory syndrome coronavirus (SARS-CoV) to cleavage by various airway proteases. METHODOLOGY/PRINCIPAL FINDINGS: PURIFIED TRISPIKE PROTEINS WERE READILY CLEAVED IN VITRO BY THREE DIFFERENT AIRWAY PROTEASES: trypsin, plasmin and TMPRSS11a. High Performance Liquid Chromatography (HPLC) and amino acid sequencing analyses identified two arginine residues (R667 and R797) as potential protease cleavage site(s). The effect of protease-dependent enhancement of SARS-CoV infection was demonstrated with ACE2 expressing human bronchial epithelial cells 16HBE. Airway proteases regulate the infectivity of SARS-CoV in a fashion dependent on previous receptor binding. The role of arginine residues was further shown with mutant constructs (R667A, R797A or R797AR667A). Mutation of R667 or R797 did not affect the expression of S-protein but resulted in a differential efficacy of pseudotyping into SARS-CoVpp. The R667A SARS-CoVpp mutant exhibited a lack of virus entry enhancement following protease treatment. CONCLUSIONS/SIGNIFICANCE: These results suggest that SARS S-protein is susceptible to airway protease cleavage and, furthermore, that protease mediated enhancement of virus entry depends on specific conformation of SARS S-protein upon ACE2 binding. These data have direct implications for the cell entry mechanism of SARS-CoV along the respiratory system and, furthermore expand the possibility of identifying potential therapeutic agents against SARS-CoV.
1
Airway proteases enhance SARS-CoV entry into ACE2-expressing human bronchial epithelial cells, and enhancement depends on prior receptor binding.
2
HPLC and amino acid sequencing identified spike arginine residues R667 and R797 as potential airway-protease cleavage sites.
3
Mutating R667 or R797 preserves spike expression but differentially impairs pseudovirus production and entry enhancement; R667A abolishes protease-mediated enhancement.
4
Protease-dependent spike activation may regulate SARS-CoV respiratory-tract entry and provides potential targets for therapeutic intervention.
5
The native full-length SARS-CoV spike trimer is readily cleaved in vitro by the airway proteases trypsin, plasmin, and TMPRSS11a.

the native full-length SARS-CoV S-protein trimer and SARS-CoV pseudovirus entry into ACE2-expressing human bronchial epithelial cells

airway-protease cleavage at R667 and R797 and its receptor-binding-dependent enhancement of SARS-CoV entry

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2009-11-17
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Lisa F. P. Ng
Yiu‐Wing Kam
Yuushi Okumura
Hiroshi Kido
Roberto Bruzzone
Ralf Altmeyer
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