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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
Endosomal proteolysis by cathepsins is necessary for murine coronavirus mouse hepatitis virus type 2 spike-mediated
Zhaozhu Qiu1, Susan T Hingley, Graham Simmons
1Department of Microbiology, University of Pennsylvania, School of Medicine, Philadelphia, PA 19104-6076, USA.
Abstract:
Most strains of murine coronavirus mouse hepatitis virus (MHV) express a cleavable spike glycoprotein that mediates viral entry and pH-independent cell-cell fusion. The MHV type 2 (MHV-2) strain of murine coronavirus differs from other strains in that it expresses an uncleaved spike and cannot induce cell-cell fusion at neutral pH values. We show here that while infection of the prototype MHV-A59 strain is not sensitive to pretreatment with lysosomotropic agents, MHV-2 replication is significantly inhibited by these agents. By use of an A59/MHV-2 chimeric virus, the susceptibility to lysosomotropic agents is mapped to the MHV-2 spike, suggesting a requirement of acidification of endosomes for MHV-2 spike-mediated entry. However, acidification is likely not a direct trigger for MHV-2 spike-mediated membrane fusion, as low-pH treatment is unable to overcome ammonium chloride inhibition, and it also cannot induce cell-cell fusion between MHV-2-infected cells. In contrast, trypsin treatment can both overcome ammonium chloride inhibition and promote cell-cell fusion. Inhibitors of the endosomal cysteine proteases cathepsin B and cathepsin L greatly reduce MHV-2 spike-mediated entry, while they have little effect on A59 entry, suggesting that there is a proteolytic step in MHV-2 entry. Finally, a recombinant virus expressing a cleaved MHV-2 spike has the ability to induce cell-cell fusion at neutral pH values and does not require low pH and endosomal cathepsins during infection. These studies demonstrate that endosomal proteolysis by cathepsins is necessary for MHV-2 spike-mediated entry; this is similar to the entry pathway recently described for severe acute respiratory syndrome coronavirus and indicates that coronaviruses may use multiple pathways for entry.
Insights
Murine coronavirus mouse hepatitis virus type 2 (MHV-2) entry requires endosomal proteolysis by cathepsins, unlike other strains. This finding reveals a distinct viral entry mechanism for MHV-2, impacting coronavirus research.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Most murine coronavirus (MHV) strains utilize a cleavable spike glycoprotein for viral entry and pH-independent cell-cell fusion.
- The MHV type 2 (MHV-2) strain exhibits an uncleaved spike and lacks fusion capability at neutral pH.
Purpose of the Study:
- To elucidate the entry mechanism of the MHV-2 strain.
- To determine the role of endosomal acidification and proteolysis in MHV-2 entry.
Main Methods:
- Infection of cells with MHV-A59, MHV-2, and chimeric viruses.
- Treatment with lysosomotropic agents, ammonium chloride, and specific protease inhibitors (cathepsin B/L inhibitors).
- Analysis of viral entry, replication, and cell-cell fusion under different pH conditions and with inhibitor treatments.
Main Results:
- MHV-2 replication is sensitive to lysosomotropic agents, indicating a requirement for endosomal acidification.
- Endosomal acidification alone does not trigger MHV-2 fusion; proteolysis is necessary.
- Inhibitors of cathepsin B and L significantly reduce MHV-2 entry, suggesting a proteolytic step.
- A recombinant MHV-2 with a cleaved spike bypasses the need for low pH and cathepsins.
Conclusions:
- Endosomal proteolysis by cathepsins is essential for MHV-2 spike-mediated viral entry.
- This pathway is distinct from other MHV strains and shares similarities with SARS-CoV entry.
- Coronaviruses may employ diverse entry mechanisms, including pH-dependent and proteolysis-dependent routes.
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