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Targeting Cysteine Thiols for in Vitro Site-specific Glycosylation of Recombinant Proteins
Published on: October 4, 2017
Global aspects of viral glycosylation
Ieva Bagdonaite1, Hans H Wandall1
1Copenhagen Center for Glycomics, Department of Cellular and Molecular Medicine, University of Copenhagen, Blegdamsvej 3B, Copenhagen N, Denmark.
Abstract:
Enveloped viruses encompass some of the most common human pathogens causing infections of different severity, ranging from no or very few symptoms to lethal disease as seen with the viral hemorrhagic fevers. All enveloped viruses possess an envelope membrane derived from the host cell, modified with often heavily glycosylated virally encoded glycoproteins important for infectivity, viral particle formation and immune evasion. While N-linked glycosylation of viral envelope proteins is well characterized with respect to location, structure and site occupancy, information on mucin-type O-glycosylation of these proteins is less comprehensive. Studies on viral glycosylation are often limited to analysis of recombinant proteins that in most cases are produced in cell lines with a glycosylation capacity different from the capacity of the host cells. The glycosylation pattern of the produced recombinant glycoproteins might therefore be different from the pattern on native viral proteins. In this review, we provide a historical perspective on analysis of viral glycosylation, and summarize known roles of glycans in the biology of enveloped human viruses. In addition, we describe how to overcome the analytical limitations by using a global approach based on mass spectrometry to identify viral O-glycosylation in virus-infected cell lysates using the complex enveloped virus herpes simplex virus type 1 as a model. We underscore that glycans often pay important contributions to overall protein structure, function and immune recognition, and that glycans represent a crucial determinant for vaccine design. High throughput analysis of glycosylation on relevant glycoprotein formulations, as well as data compilation and sharing is therefore important to identify consensus glycosylation patterns for translational applications.
Insights
This review explores viral glycosylation, focusing on O-glycosylation of enveloped viruses. Mass spectrometry analysis of herpes simplex virus type 1 reveals glycan importance for viral structure and vaccine design.
Area of Science:
- Virology
- Glycobiology
- Immunology
Background:
- Enveloped viruses are significant human pathogens, utilizing host-derived envelopes with viral glycoproteins.
- N-linked glycosylation of viral proteins is understood, but mucin-type O-glycosylation remains less characterized.
- Recombinant protein analysis often uses cell lines with different glycosylation capacities than host cells, potentially altering glycan patterns.
Purpose of the Study:
- To provide a historical overview of viral glycosylation analysis.
- To summarize the roles of glycans in enveloped human virus biology.
- To present a mass spectrometry-based approach for identifying viral O-glycosylation in infected cells.
Main Methods:
- Review of existing literature on viral glycosylation.
- Application of mass spectrometry for global O-glycosylation analysis.
- Utilizing herpes simplex virus type 1 as a model enveloped virus.
Main Results:
- Glycans significantly influence viral protein structure, function, and immune recognition.
- O-glycosylation analysis in virus-infected cells provides insights into native viral glycoproteins.
- Identified glycosylation patterns are crucial for understanding viral pathogenesis and developing vaccines.
Conclusions:
- Glycans are critical determinants of enveloped virus biology and immune interactions.
- Advanced mass spectrometry techniques are vital for accurate viral glycosylation profiling.
- Consensus glycosylation patterns are essential for effective vaccine development and translational applications.
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