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Published on: March 1, 2019
Proteolytic processing of Middle East respiratory syndrome coronavirus spikes expands virus tropism
Jung-Eun Park1, Kun Li2, Arlene Barlan1
1Department of Microbiology and Immunology, Loyola University Chicago, Maywood, IL 60153.
Abstract:
Middle East respiratory syndrome coronavirus (MERS-CoV) infects humans from zoonotic sources and causes severe pulmonary disease. Virions require spike (S) glycoproteins for binding to cell receptors and for catalyzing virus-cell membrane fusion. Fusion occurs only after S proteins are cleaved sequentially, first during their secretion through the exocytic organelles of virus-producing cells, and second after virus binding to target-cell receptors. To more precisely determine how sequential proteolysis contributes to CoV infection, we introduced S mutations obstructing the first cleavages. These mutations severely compromised MERS-CoV infection into human lung-derived cells, but had little effect on infection into several other cell types. These cell type-specific requirements for proteolysis correlated with S conformations during cell entry. Without the first cleavages, S proteins resisted cell receptor-induced conformational changes, which restricted the second, fusion-activating cleavages. Consistent with these findings, precleaved MERS viruses used receptor-proximal, cell-surface proteases to effect the second fusion-activating cleavages during cell entry, whereas the more rigid uncleaved MERS viruses trafficked past these cell-surface proteases and into endosomes. Uncleaved viruses were less infectious to human airway epithelial and Calu3 cell cultures because they lacked sufficient endosomal fusion-activating proteases. Thus, by sensitizing viruses to receptor-induced conformational changes, the first S cleavages expand virus tropism to cell types that are relevant to lung infection, and therefore may be significant determinants of MERS-CoV virulence.
Insights
First cleavage of Middle East respiratory syndrome coronavirus (MERS-CoV) spike proteins is crucial for efficient lung cell infection. This proteolysis primes the virus for fusion, expanding its tropism and influencing MERS-CoV virulence.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Middle East respiratory syndrome coronavirus (MERS-CoV) causes severe pulmonary disease in humans.
- Viral entry relies on spike (S) glycoproteins for receptor binding and membrane fusion.
- S protein fusion requires sequential proteolytic cleavage events.
Purpose of the Study:
- To investigate the role of sequential S protein proteolysis in MERS-CoV infection.
- To determine how mutations affecting initial S protein cleavage impact MERS-CoV cell entry and tropism.
Main Methods:
- Introduction of MERS-CoV S mutations to obstruct initial cleavage sites.
- Assessment of MERS-CoV infection in various human cell types.
- Analysis of S protein conformation and protease accessibility during cell entry.
Main Results:
- Mutations blocking the first S protein cleavage severely impaired MERS-CoV infection in lung cells but not others.
- Impaired cleavage prevented receptor-induced S protein conformational changes, hindering subsequent fusion.
- Pre-cleaved MERS-CoV utilized cell-surface proteases, while uncleaved viruses entered endosomes with reduced fusion efficiency.
Conclusions:
- The initial S protein cleavage is essential for MERS-CoV tropism in lung-relevant cell types.
- This cleavage primes the virus for conformational changes, facilitating efficient cell entry and fusion.
- Sequential proteolysis of the MERS-CoV spike protein is a key determinant of viral virulence.
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