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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
Coronavirus and influenza virus proteolytic priming takes place in tetraspanin-enriched membrane microdomains
James T Earnest1, Michael P Hantak1, Jung-Eun Park1
1Department of Microbiology and Immunology, Loyola University Medical Center, Maywood, Illinois, USA.
Unlabelled:
Coronaviruses (CoVs) and low-pathogenicity influenza A viruses (LP IAVs) depend on target cell proteases to cleave their viral glycoproteins and prime them for virus-cell membrane fusion. Several proteases cluster into tetraspanin-enriched microdomains (TEMs), suggesting that TEMs are preferred virus entry portals. Here we found that several CoV receptors and virus-priming proteases were indeed present in TEMs. Isolated TEMs, when mixed with CoV and LP IAV pseudoparticles, cleaved viral fusion proteins to fusion-primed fragments and potentiated viral transductions. That entering viruses utilize TEMs as a protease source was further confirmed using tetraspanin antibodies and tetraspanin short hairpin RNAs (shRNAs). Tetraspanin antibodies inhibited CoV and LP IAV infections, but their virus-blocking activities were overcome by expressing excess TEM-associated proteases. Similarly, cells with reduced levels of the tetraspanin CD9 resisted CoV pseudoparticle transductions but were made susceptible by overproducing TEM-associated proteases. These findings indicated that antibodies and CD9 depletions interfere with viral proteolytic priming in ways that are overcome by surplus proteases. TEMs appear to be exploited by some CoVs and LP IAVs for appropriate coengagement with cell receptors and proteases.
Importance:
Enveloped viruses use their surface glycoproteins to catalyze membrane fusion, an essential cell entry step. Host cell components prime these viral surface glycoproteins to catalyze membrane fusion at specific times and places during virus cell entry. Among these priming components are proteases, which cleave viral surface glycoproteins, unleashing them to refold in ways that catalyze virus-cell membrane fusions. For some enveloped viruses, these proteases are known to reside on target cell surfaces. This research focuses on coronavirus and influenza A virus cell entry and identifies TEMs as sites of viral proteolysis, thereby defining subcellular locations of virus priming with greater precision. Implications of these findings extend to the use of virus entry antagonists, such as protease inhibitors, which might be most effective when localized to these microdomains.
Insights
Coronaviruses and influenza viruses use tetraspanin-enriched microdomains (TEMs) as entry portals. Proteases in TEMs prime viral glycoproteins for cell entry, a process targeted by antibodies and inhibitors.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Enveloped viruses like coronaviruses (CoVs) and influenza A viruses (IAVs) require host cell proteases to cleave viral glycoproteins, enabling membrane fusion and cell entry.
- Proteases are known to reside on target cell surfaces, but their precise subcellular localization for viral priming has been unclear.
Purpose of the Study:
- To investigate the role of tetraspanin-enriched microdomains (TEMs) in the cell entry of CoVs and low-pathogenicity IAVs (LP IAVs).
- To identify TEMs as specific sites for viral glycoprotein proteolysis and priming.
Main Methods:
- Localization of CoV receptors and virus-priming proteases within TEMs.
- Assay of isolated TEMs with CoV and LP IAV pseudoparticles to measure viral fusion protein cleavage and transduction.
- Inhibition studies using tetraspanin antibodies and tetraspanin short hairpin RNAs (shRNAs) to block viral entry.
- Rescue experiments involving the overexpression of TEM-associated proteases.
Main Results:
- TEMs were found to contain CoV receptors and proteases essential for viral priming.
- Isolated TEMs effectively cleaved viral fusion proteins and enhanced viral transduction.
- Tetraspanin antibodies inhibited CoV and LP IAV infections, but this effect was overcome by excess TEM proteases.
- Reduced CD9 levels (a tetraspanin) conferred resistance to CoV entry, which was reversed by overproducing TEM proteases.
Conclusions:
- TEMs serve as critical portals for CoV and LP IAV entry, providing a localized source of proteases for viral glycoprotein priming.
- Targeting TEM-associated proteases could be a strategy for developing novel antiviral therapies against these viruses.
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