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.

Scientific Reports
|November 11, 2018
PubMed

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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