Host cell entry of Middle East respiratory syndrome coronavirus after two-step, furin-mediated activation of the spike protein.

Jean Kaoru Millet1 Gary R Whittaker2
Affiliations 2 institutions
  1. Department of Microbiology and Immunology, Cornell University, Ithaca, NY 14853.
  2. Department of Microbiology and Immunology, Cornell University, Ithaca, NY 14853 [email protected].

Abstract

Middle East respiratory syndrome coronavirus (MERS-CoV) is a newly identified betacoronavirus causing high morbidity and mortality in humans. The coronavirus spike (S) protein is the main determinant of viral entry, and although it was previously shown that MERS-CoV S can be activated by various proteases, the details of the mechanisms of proteolytic activation of fusion are still incompletely characterized. Here, we have uncovered distinctive characteristics of MERS-CoV S. We identify, by bioinformatics and peptide cleavage assays, two cleavage sites for furin, a ubiquitously expressed protease, which are located at the S1/S2 interface and at the S2' position of the S protein. We show that although the S1/S2 site is proteolytically processed by furin during protein biosynthesis, the S2' site is cleaved upon viral entry. MERS-CoV pseudovirion infection was shown to be enhanced by elevated levels of furin expression, and entry could be decreased by furin siRNA silencing. Enhanced furin activity appeared to partially override the low pH-dependent nature of MERS-CoV entry. Inhibition of furin activity was shown to decrease MERS-CoV S-mediated entry, as well as infection by the virus. Overall, we show that MERS-CoV has evolved an unusual two-step furin activation for fusion, suggestive of a role during the process of emergence into the human population. The ability of MERS-CoV to use furin in this manner, along with other proteases, may explain the polytropic nature of the virus.

Supporting text Virus Host Location
furin 16 Middle East respiratory syndrome coronavirus 69 proteolytic activation 1 spike protein 32 virus entry 10 Virus Internalization 100 Animals 1948 Cell Line, Tumor 12 Chlorocebus aethiops 70 Computational Biology 15 Furin 14 Gene Silencing 1 Genetic Predisposition to Disease 1 HEK293 Cells 61 Humans 1440 Middle East Respiratory Syndrome Coronavirus 68 Mutation 209 Peptide Hydrolases 4 Receptors, Virus 204 RNA, Small Interfering 1 Spike Glycoprotein, Coronavirus 274 Time Factors 26 Vero Cells 55

Evidence records

1 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE11529
Key finding

MERS-CoV has evolved a two-step furin activation mechanism of its spike protein for membrane fusion, representing an adaptive feature associated with emergence into humans.

Virus
Host
Not specified
Location
Not specified
Supporting text

Overall, we show that MERS-CoV has evolved an unusual two-step furin activation for fusion, suggestive of a role during the process of emergence into the human population.

Genes or proteins
spike protein | furin
Host factors
furin
Mechanism types
host entry | host-range expansion