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Updated: May 23, 2026

Method for Measurement of Viral Fusion Kinetics at the Single Particle Level
Published on: September 7, 2009
Filovirus entry: a novelty in the viral fusion world
Catherine L Hunt1, Nicholas J Lennemann, Wendy Maury
1Department of Microbiology, University of Iowa, Iowa City, IA 52242, USA. catherine-l-miller@uiowa.edu
Abstract:
Ebolavirus (EBOV) and Marburgvirus (MARV) that compose the filovirus family of negative strand RNA viruses infect a broad range of mammalian cells. Recent studies indicate that cellular entry of this family of viruses requires a series of cellular protein interactions and molecular mechanisms, some of which are unique to filoviruses and others are commonly used by all viral glycoproteins. Details of this entry pathway are highlighted here. Virus entry into cells is initiated by the interaction of the viral glycoprotein(1) subunit (GP(1)) with both adherence factors and one or more receptors on the surface of host cells. On epithelial cells, we recently demonstrated that TIM-1 serves as a receptor for this family of viruses, but the cell surface receptors in other cell types remain unidentified. Upon receptor binding, the virus is internalized into endosomes primarily via macropinocytosis, but perhaps by other mechanisms as well. Within the acidified endosome, the heavily glycosylated GP(1) is cleaved to a smaller form by the low pH-dependent cellular proteases Cathepsin L and B, exposing residues in the receptor binding site (RBS). Details of the molecular events following cathepsin-dependent trimming of GP(1) are currently incomplete; however, the processed GP(1) specifically interacts with endosomal/lysosomal membranes that contain the Niemann Pick C1 (NPC1) protein and expression of NPC1 is required for productive infection, suggesting that GP/NPC1 interactions may be an important late step in the entry process. Additional events such as further GP(1) processing and/or reducing events may also be required to generate a fusion-ready form of the glycoprotein. Once this has been achieved, sequences in the filovirus GP(2) subunit mediate viral/cellular membrane fusion via mechanisms similar to those previously described for other enveloped viruses. This multi-step entry pathway highlights the complex and highly orchestrated path of internalization and fusion that appears unique for filoviruses.
Insights
Filovirus entry into mammalian cells involves glycoprotein (GP) interactions with host cell receptors and proteases. Niemann Pick C1 (NPC1) protein is crucial for viral fusion and infection.
Area of Science:
- Virology
- Cellular Biology
- Molecular Mechanisms
Background:
- Filoviruses, including Ebolavirus (EBOV) and Marburgvirus (MARV), are negative-strand RNA viruses infecting mammalian cells.
- Viral entry relies on complex interactions between viral glycoproteins and host cell factors.
Purpose of the Study:
- To detail the multi-step cellular entry pathway of filoviruses.
- To highlight unique molecular mechanisms and protein interactions involved in filovirus cell entry.
Main Methods:
- Review of recent studies on filovirus entry mechanisms.
- Analysis of glycoprotein (GP) interactions with host cell receptors and intracellular proteins.
Main Results:
- Filovirus entry initiates with GP(1) binding to host cell receptors (e.g., TIM-1 on epithelial cells).
- Internalization occurs via macropinocytosis into endosomes, where GP(1) is cleaved by Cathepsin L/B at low pH.
- Processed GP(1) interacts with Niemann Pick C1 (NPC1) protein in endosomal/lysosomal membranes, essential for infection.
Conclusions:
- Filovirus entry is a complex, orchestrated process involving specific receptor binding, endosomal processing, and NPC1-mediated fusion.
- The GP(2) subunit mediates membrane fusion, similar to other enveloped viruses.
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