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Published on: January 9, 2019
Activation of paramyxovirus membrane fusion and virus entry
Theodore S Jardetzky1, Robert A Lamb2
1Department of Structural Biology, Stanford University School of Medicine, Stanford, CA 94305, United States.
Abstract:
The paramyxoviruses represent a diverse virus family responsible for a wide range of human and animal diseases. In contrast to other viruses, such as HIV and influenza virus, which use a single glycoprotein to mediate host receptor binding and virus entry, the paramyxoviruses require two distinct proteins. One of these is an attachment glycoprotein that binds receptor, while the second is a fusion glycoprotein, which undergoes conformational changes that drive virus-cell membrane fusion and virus entry. The details of how receptor binding by one protein activates the second to undergo conformational changes have been poorly understood until recently. Over the past couple of years, structural and functional data have accumulated on representative members of this family, including parainfluenza virus 5, Newcastle disease virus, measles virus, Nipah virus and others, which suggest a mechanistic convergence of activation models. Here we review the data indicating that paramyxovirus attachment glycoproteins shield activating residues within their N-terminal stalk domains, which are then exposed upon receptor binding, leading to the activation of the fusion protein by a 'provocateur' mechanism.
Insights
Paramyxoviruses use two distinct glycoproteins for cell entry. Receptor binding by the attachment protein exposes activating residues, triggering fusion protein conformational changes via a
Area of Science:
- Virology
- Structural Biology
Background:
- Paramyxoviruses cause significant human and animal diseases.
- Unlike other viruses, they utilize two distinct glycoproteins for host cell entry: an attachment glycoprotein and a fusion glycoprotein.
Purpose of the Study:
- To review recent structural and functional data on paramyxovirus entry mechanisms.
- To elucidate the activation process of the fusion protein by the attachment protein.
Main Methods:
- Review of accumulated structural and functional data from various paramyxoviruses (e.g., parainfluenza virus 5, Newcastle disease virus, measles virus, Nipah virus).
- Analysis of conserved mechanistic principles underlying fusion protein activation.
Main Results:
- Recent data suggest a convergence in activation models across different paramyxoviruses.
- Attachment glycoproteins shield activating residues in their N-terminal stalk domains.
- Receptor binding exposes these residues, activating the fusion protein through a 'provocateur' mechanism.
Conclusions:
- A unified 'provocateur' mechanism explains paramyxovirus-mediated membrane fusion.
- Understanding this mechanism is crucial for developing antiviral strategies against paramyxovirus infections.
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