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Updated: Jun 11, 2025

A Fluorogenic Peptide Cleavage Assay to Screen for Proteolytic Activity: Applications for coronavirus spike protein activation
Published on: January 9, 2019
Human parainfluenza virus 3 field strains undergo extracellular fusion protein cleavage to activate entry
Kyle Stearns1,2,3, George Lampe4, Rachel Hanan1,2
1Department of Pediatrics, Columbia University Vagelos College of Physicians and Surgeons, New York, New York, USA.
Abstract:
Human parainfluenza virus 3 (HPIV3) infection is driven by the coordinated action of viral surface glycoproteins hemagglutinin-neuraminidase (HN) and fusion protein (F). Receptor-engaged HN activates F to insert into the target cell membrane and drive virion-cell membrane fusion. For F to mediate entry, its precursor (F0) must first be cleaved by host proteases. F0 cleavage has been thought to be executed during viral glycoprotein transit through the trans-Golgi network by the ubiquitously expressed furin because F0 proteins of laboratory-adapted viruses contain a furin recognition dibasic cleavage motif RXKR around residue 108. Here, we show that the F proteins of field strains have a different cleavage motif from laboratory-adapted strains and are cleaved by unidentified proteases expressed in only a narrow subset of cell types. We demonstrate that extracellular serine protease inhibitors block HPIV3 F0 cleavage for field strains, suggesting F0 cleavage occurs at the cell surface facilitated by transmembrane proteases. Candidate proteases that may process HPIV3 F in vivo were identified by a genome-wide CRISPRa screen in HEK293/dCas9-VP64 + MPH cells. The lung-expressed extracellular serine proteases TMPRSS2 and TMPRSS13 are both sufficient to cleave HPIV3 F and enable infectious virus release by otherwise non-permissive cells. Our findings support an alternative mechanism of F activation in vivo, reliant on extracellular membrane-bound serine proteases expressed in a narrow subset of cells. The proportion of HPIV3 F proteins cleaved and infectious virus release is determined by host cell expression of requisite proteases, allowing just-in-time activation of F and positioning F cleavage as another key regulator of HPIV3 spread.
Importance:
Enveloped viruses cause a wide range of diseases in humans. At the first step of infection, these viruses must fuse their envelope with a cell membrane to initiate infection. This fusion is mediated by viral proteins that require a critical activating cleavage event. It was previously thought that for parainfluenza virus 3, an important cause of respiratory disease and a representative of a group of important pathogens, this cleavage event was mediated by furin in the cell secretory pathways prior to formation of the virions. We show that this is only true for laboratory strain viruses, and that clinical viruses that infect humans utilize extracellular proteases that are only made by a small subset of cells. These results highlight the importance of studying authentic clinical viruses that infect human tissues for understanding natural infection.
Insights
Human parainfluenza virus 3 (HPIV3) uses cell surface proteases for fusion protein activation, unlike lab strains. This finding reveals a new mechanism for HPIV3 spread, dependent on specific host cell proteases.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Human parainfluenza virus 3 (HPIV3) causes respiratory disease.
- Viral entry requires fusion protein (F) activation via cleavage.
- Previously, F0 cleavage was attributed to furin in the trans-Golgi network.
Purpose of the Study:
- To investigate the proteases responsible for HPIV3 F0 cleavage in clinical strains.
- To understand the mechanism of HPIV3 entry and spread in human tissues.
Main Methods:
- Comparative analysis of F protein cleavage motifs in laboratory vs. field strains.
- Inhibition assays using extracellular serine protease inhibitors.
- Genome-wide CRISPRa screen to identify candidate proteases.
- Functional assays in HEK293/dCas9-VP64 + MPH cells.
Main Results:
- HPIV3 field strains possess distinct F0 cleavage motifs compared to laboratory strains.
- Extracellular serine protease inhibitors block F0 cleavage, indicating cell surface processing.
- TMPRSS2 and TMPRSS13, lung-expressed serine proteases, are sufficient for HPIV3 F cleavage and infectious virus release.
- HPIV3 F activation is dependent on the expression of specific extracellular proteases in host cells.
Conclusions:
- HPIV3 utilizes a novel F activation mechanism involving extracellular, cell surface-bound proteases.
- This protease-dependent activation restricts HPIV3 spread to specific cell types expressing these enzymes.
- Findings challenge the established model of furin-mediated cleavage and highlight the importance of studying clinical virus strains.
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