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Published on: March 1, 2019
Pre-fusion structure of a human coronavirus spike protein
Robert N Kirchdoerfer1, Christopher A Cottrell1, Nianshuang Wang2
1Department of Integrative Structural and Computational Biology, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.
Abstract:
HKU1 is a human betacoronavirus that causes mild yet prevalent respiratory disease, and is related to the zoonotic SARS and MERS betacoronaviruses, which have high fatality rates and pandemic potential. Cell tropism and host range is determined in part by the coronavirus spike (S) protein, which binds cellular receptors and mediates membrane fusion. As the largest known class I fusion protein, its size and extensive glycosylation have hindered structural studies of the full ectodomain, thus preventing a molecular understanding of its function and limiting development of effective interventions. Here we present the 4.0 Å resolution structure of the trimeric HKU1 S protein determined using single-particle cryo-electron microscopy. In the pre-fusion conformation, the receptor-binding subunits, S1, rest above the fusion-mediating subunits, S2, preventing their conformational rearrangement. Surprisingly, the S1 C-terminal domains are interdigitated and form extensive quaternary interactions that occlude surfaces known in other coronaviruses to bind protein receptors. These features, along with the location of the two protease sites known to be important for coronavirus entry, provide a structural basis to support a model of membrane fusion mediated by progressive S protein destabilization through receptor binding and proteolytic cleavage. These studies should also serve as a foundation for the structure-based design of betacoronavirus vaccine immunogens.
Insights
Researchers determined the structure of the HKU1 coronavirus spike protein, revealing how it binds cells and fuses membranes. This finding aids in developing interventions and vaccines against human betacoronaviruses.
Area of Science:
- Structural biology
- Virology
- Molecular biology
Background:
- Human betacoronavirus HKU1 causes prevalent respiratory illness.
- Coronaviruses like SARS and MERS pose pandemic threats.
- The spike (S) protein dictates cell tropism and host range.
Purpose of the Study:
- Determine the structure of the HKU1 coronavirus S protein.
- Understand the molecular mechanisms of viral entry and membrane fusion.
- Provide a basis for designing betacoronavirus vaccines.
Main Methods:
- Single-particle cryo-electron microscopy (cryo-EM).
- Determined the 4.0 Å resolution structure of the trimeric HKU1 S protein.
Main Results:
- The pre-fusion structure shows S1 subunits atop S2 subunits, inhibiting conformational changes.
- Interdigitated S1 C-terminal domains form quaternary interactions, blocking known receptor-binding surfaces.
- The structure reveals protease sites crucial for viral entry.
Conclusions:
- The findings support a model of membrane fusion driven by S protein destabilization via receptor binding and proteolysis.
- The structure serves as a foundation for structure-based vaccine design against betacoronaviruses.
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