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A Fluorogenic Peptide Cleavage Assay to Screen for Proteolytic Activity: Applications for coronavirus spike protein activation
Published on: January 9, 2019
Functional analysis of potential cleavage sites in the MERS-coronavirus spike protein
Hannah Kleine-Weber1,2, Mahmoud Tarek Elzayat1, Markus Hoffmann3
1Infection Biology Unit, German Primate Center - Leibniz Institute for Primate Research, Kellnerweg 4, 37077, Göttingen, Germany.
Abstract:
The Middle East respiratory syndrome-related coronavirus (MERS-CoV) can cause severe disease and has pandemic potential. Therefore, development of antiviral strategies is an important task. The activation of the viral spike protein (S) by host cell proteases is essential for viral infectivity and the responsible enzymes are potential therapeutic targets. The cellular proteases furin, cathepsin L and TMPRSS2 can activate MERS-S and may cleave the S protein at two distinct sites, termed S1/S2 and S2'. Moreover, a potential cathepsin L cleavage site in MERS-S has been reported. However, the relative importance of these sites for MERS-S activation is incompletely understood. Here, we used mutagenic analysis and MERS-S-bearing vectors to study the contribution of specific cleavage sites to S protein-driven entry. We found that an intact S1/S2 site was only required for efficient entry into cells expressing endogenous TMPRSS2. In keeping with a previous study, pre-cleavage at the S1/S2 motif (RSVR) was important although not essential for subsequent MERS-S activation by TMPRSS2, and indirect evidence was obtained that this motif is processed by a protease depending on an intact RXXR motif, most likely furin. In contrast, the S2' site (RSAR) was required for robust viral entry into all cell lines tested and the integrity of one of the two arginines was sufficient for efficient entry. These findings suggest that cleavage at S2' is carried out by proteases recognizing a single arginine, most likely TMPRSS2 and cathepsin L. Finally, mutation of the proposed cathepsin L site did not impact viral entry and double mutation of S1/S2 and S2' site was compatible with cathepsin L- but not TMPRSS2-dependent host cell entry, indicating that cathepsin L can process the S protein at auxiliary sites. Collectively, our results indicate a rigid sequence requirement for S protein activation by TMPRSS2 but not cathepsin L.
Insights
Understanding Middle East respiratory syndrome-related coronavirus (MERS-CoV) activation is key to developing antivirals. This study reveals the critical S2
Area of Science:
- Virology
- Molecular Biology
- Biochemistry
Background:
- Middle East respiratory syndrome-related coronavirus (MERS-CoV) poses a significant public health threat due to its severity and pandemic potential.
- Host cell proteases activating the MERS-CoV spike (S) protein are crucial for viral entry and represent potential therapeutic targets.
- The relative importance of S protein cleavage sites (S1/S2 and S2') for MERS-CoV activation remains incompletely understood.
Purpose of the Study:
- To investigate the contribution of specific MERS-CoV S protein cleavage sites to virus entry.
- To elucidate the roles of host cell proteases, including furin, cathepsin L, and TMPRSS2, in MERS-CoV S protein activation.
Main Methods:
- Mutagenic analysis of MERS-CoV S protein cleavage sites.
- Utilized MERS-S-bearing vectors to study S protein-driven entry.
- Assessed viral entry into various cell lines with different protease expression profiles.
Main Results:
- An intact S1/S2 cleavage site is essential for efficient entry only in cells expressing endogenous TMPRSS2.
- Cleavage at the S2' site (RSAR) is critical for robust viral entry across all tested cell lines.
- Cathepsin L can process the MERS-CoV S protein at auxiliary sites, unlike TMPRSS2 which shows rigid sequence requirements.
Conclusions:
- Cleavage at the S2' site is a key determinant of MERS-CoV entry, likely mediated by TMPRSS2 and cathepsin L.
- TMPRSS2 exhibits strict sequence specificity for S protein activation, while cathepsin L demonstrates greater flexibility.
- Understanding these protease-S protein interactions is vital for developing targeted antiviral therapies against MERS-CoV.
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