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Method for Measurement of Viral Fusion Kinetics at the Single Particle Level
Published on: September 7, 2009
Membrane fusion of Semliki Forest virus requires sphingolipids in the target membrane
1Department of Physiological Chemistry, Groningen Institute for Drug Studies, University of Groningen, The Netherlands.
Abstract:
Enveloped animal viruses, such as Semliki Forest virus (SFV), utilize a membrane fusion strategy to deposit their genome into the cytosol of the host cell. SFV enters cells through receptor-mediated endocytosis, fusion of the viral envelope occurring subsequently from within acidic endosomes. Fusion of SFV has been demonstrated before to be strictly dependent on the presence of cholesterol in the target membrane. Here, utilizing a variety of membrane fusion assays, including an on-line fluorescence assay involving pyrene-labeled virus, we demonstrate that low-pH-induced fusion of SFV with cholesterol-containing liposomal model membranes requires the presence of sphingomyelin or other sphingolipids in the target membrane. The minimal molecular characteristics essential for supporting SFV fusion are encompassed by a ceramide. The action of the sphingolipids is confined to the actual fusion event, cholesterol being necessary and sufficient for low-pH-dependent binding of the virus to target membranes. Complex formation of the sphingolipids with cholesterol is unlikely to be important for the induction of SFV--liposome fusion, as sphingolipids that do not interact appreciably with cholesterol, such as galactosylceramide, effectively support the process. The remarkably low levels of sphingomyelin required for half-maximal fusion (1-2 mole%) suggest that sphingolipids do not play a structural role in the SFV fusion process, but rather act as a cofactor, possibly activating the viral fusion protein in a specific manner.
Insights
Semliki Forest virus (SFV) fusion requires cholesterol for binding and sphingolipids for the fusion event. Sphingolipids, like sphingomyelin, act as cofactors, possibly activating viral fusion proteins.
Area of Science:
- Virology
- Membrane Biology
- Biochemistry
Background:
- Enveloped viruses like Semliki Forest virus (SFV) use membrane fusion to infect host cells.
- SFV enters cells via endocytosis, with fusion occurring in acidic endosomes.
- Previous studies established cholesterol's necessity for SFV fusion.
Purpose of the Study:
- To investigate the role of specific lipids in low-pH-induced SFV fusion.
- To elucidate the molecular requirements for SFV-target membrane fusion.
Main Methods:
- Utilized various membrane fusion assays.
- Employed an on-line fluorescence assay with pyrene-labeled SFV.
- Tested fusion with cholesterol-containing liposomal model membranes.
Main Results:
- Low-pH fusion of SFV requires both cholesterol and sphingolipids (e.g., sphingomyelin) in target membranes.
- Cholesterol is essential for low-pH virus-membrane binding.
- Sphingolipids, with a minimal requirement defined by ceramide, facilitate the fusion event itself.
- Sphingolipids' function is independent of significant cholesterol interaction.
Conclusions:
- Sphingolipids act as cofactors, not structural components, in SFV fusion.
- Low levels of sphingomyelin suggest a specific cofactor role, potentially activating viral fusion proteins.
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