Related Experiment Video
Updated: May 5, 2026

Merkel Cell Polyomavirus Infection and Detection
Published on: February 7, 2019
Structures of Merkel cell polyomavirus VP1 complexes define a sialic acid binding site required for infection
Ursula Neu1, Holger Hengel, Bärbel S Blaum
1Interfaculty Institute of Biochemistry, University of Tuebingen, Tuebingen, Germany.
Abstract:
The recently discovered human Merkel cell polyomavirus (MCPyV or MCV) causes the aggressive Merkel cell carcinoma (MCC) in the skin of immunocompromised individuals. Conflicting reports suggest that cellular glycans containing sialic acid (Neu5Ac) may play a role in MCPyV infectious entry. To address this question, we solved X-ray structures of the MCPyV major capsid protein VP1 both alone and in complex with several sialylated oligosaccharides. A shallow binding site on the apical surface of the VP1 capsomer recognizes the disaccharide Neu5Ac-α2,3-Gal through a complex network of interactions. MCPyV engages Neu5Ac in an orientation and with contacts that differ markedly from those observed in other polyomavirus complexes with sialylated receptors. Mutations in the Neu5Ac binding site abolish MCPyV infection, highlighting the relevance of the Neu5Ac interaction for MCPyV entry. Our study thus provides a powerful platform for the development of MCPyV-specific vaccines and antivirals. Interestingly, engagement of sialic acid does not interfere with initial attachment of MCPyV to cells, consistent with a previous proposal that attachment is mediated by a class of non-sialylated carbohydrates called glycosaminoglycans. Our results therefore suggest a model in which sialylated glycans serve as secondary, post-attachment co-receptors during MCPyV infectious entry. Since cell-surface glycans typically serve as primary attachment receptors for many viruses, we identify here a new role for glycans in mediating, and perhaps even modulating, post-attachment entry processes.
Insights
Human Merkel cell polyomavirus (MCPyV) uses sialic acid (Neu5Ac) as a secondary receptor for cell entry after initial attachment. This discovery offers new targets for developing MCPyV vaccines and antivirals.
Area of Science:
- Virology
- Structural Biology
- Glycobiology
Background:
- Human Merkel cell polyomavirus (MCPyV) is linked to Merkel cell carcinoma (MCC).
- The role of sialic acid (Neu5Ac) in MCPyV entry is debated.
- Cellular glycans are often primary viral attachment receptors.
Purpose of the Study:
- To elucidate the structural basis of MCPyV interaction with sialylated glycans.
- To determine the functional significance of sialic acid binding for MCPyV infection.
- To propose a model for MCPyV entry involving sialic acid.
Main Methods:
- X-ray crystallography of MCPyV VP1 protein alone and with sialylated oligosaccharides.
- Site-directed mutagenesis of the VP1 sialic acid binding site.
- Infectivity assays to assess the impact of mutations on viral entry.
Main Results:
- The MCPyV VP1 protein binds Neu5Ac-α2,3-Gal via a specific shallow site.
- MCPyV's sialic acid binding mode differs from other polyomaviruses.
- Mutations in the Neu5Ac binding site abrogate MCPyV infection.
- Sialic acid binding does not affect initial MCPyV attachment, which is mediated by glycosaminoglycans.
Conclusions:
- Sialylated glycans act as secondary co-receptors for MCPyV entry, mediating post-attachment processes.
- This identifies a novel role for glycans in modulating viral entry.
- The findings provide a basis for developing MCPyV-specific therapeutics and vaccines.
Related Concept Videos
Viral Structure
Protein Complex Assembly
Many viruses self-assemble into a fully functional unit using the infected host cell to...
Immune Response Against Viral Pathogens
NK Cells
NK cells are a crucial part of our innate immune system, acting as the first line of defense against viral infections. These cells can recognize and kill infected cells without prior exposure to the virus, effectively slowing down the spread of infection. Additionally, NK cells produce proinflammatory...
Introduction to Virus
Subviral Agents

