Activation of the SARS coronavirus spike protein via sequential proteolytic cleavage at two distinct sites.

Sandrine Belouzard1 Victor C Chu Gary R Whittaker
Affiliations 1 institutions
  1. Department of Microbiology and Immunology, College of Veterinary Medicine, Cornell University, Ithaca, NY 14853, USA.

Abstract

The coronavirus spike protein (S) plays a key role in the early steps of viral infection, with the S1 domain responsible for receptor binding and the S2 domain mediating membrane fusion. In some cases, the S protein is proteolytically cleaved at the S1-S2 boundary. In the case of the severe acute respiratory syndrome coronavirus (SARS-CoV), it has been shown that virus entry requires the endosomal protease cathepsin L; however, it was also found that infection of SARS-CoV could be strongly induced by trypsin treatment. Overall, in terms of how cleavage might activate membrane fusion, proteolytic processing of the SARS-CoV S protein remains unclear. Here, we identify a proteolytic cleavage site within the SARS-CoV S2 domain (S2', R797). Mutation of R797 specifically inhibited trypsin-dependent fusion in both cell-cell fusion and pseudovirion entry assays. We also introduced a furin cleavage site at both the S2' cleavage site within S2 793-KPTKR-797 (S2'), as well as at the junction of S1 and S2. Introduction of a furin cleavage site at the S2' position allowed trypsin-independent cell-cell fusion, which was strongly increased by the presence of a second furin cleavage site at the S1-S2 position. Taken together, these data suggest a novel priming mechanism for a viral fusion protein, with a critical proteolytic cleavage event on the SARS-CoV S protein at position 797 (S2'), acting in concert with the S1-S2 cleavage site to mediate membrane fusion and virus infectivity.

Supporting text Virus Host Location
Binding Sites 89 Cell Fusion 6 Furin 14 Hydrolysis 1 Membrane Glycoproteins 26 Mutagenesis, Site-Directed 12 Severe acute respiratory syndrome-related coronavirus 78 Spike Glycoprotein, Coronavirus 274 Trypsin 5 Viral Envelope Proteins 60 Virus Internalization 100 spike glycoprotein, SARS-CoV 16 spike protein, mouse hepatitis virus 7

Evidence records

1 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE11482
Key finding

Mutation of residue R797 in the SARS-CoV spike S2′ domain inhibited trypsin-dependent fusion, showing that the spike protein adaptation depends on proteolytic cleavage for host entry.

Virus
Host
Not specified
Location
Not specified
Supporting text

Here, we identify a proteolytic cleavage site within the SARS-CoV S2 domain (S2', R797). Mutation of R797 specifically inhibited trypsin-dependent fusion in both cell-cell fusion and pseudovirion entry assays.

Genes or proteins
spike protein | S2' cleavage site
Host factors
trypsin
Mutations
R797 mutation
Mechanism types
host entry