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Published on: July 28, 2016
Plasma membrane microdomains containing vesicular stomatitis virus M protein are separate from microdomains
B Dancho Swinteck1, Douglas S Lyles
1Department of Biochemistry, Wake Forest University School of Medicine, Medical Center Boulevard, Winston-Salem, NC 27157, USA.
Abstract:
Immunogold electron microscopy and analysis were used to determine the organization of the major structural proteins of vesicular stomatitis virus (VSV) during virus assembly. We determined that matrix protein (M protein) partitions into plasma membrane microdomains in VSV-infected cells as well as in transfected cells expressing M protein. The sizes of the M-protein-containing microdomains outside the virus budding sites (50 to 100 nm) were smaller than those at sites of virus budding (approximately 560 nm). Glycoprotein (G protein) and M protein microdomains were not colocalized in the plasma membrane outside the virus budding sites, nor was M protein colocalized with microdomains containing the host protein CD4, which efficiently forms pseudotypes with VSV envelopes. These results suggest that separate membrane microdomains containing either viral or host proteins cluster or merge to form virus budding sites. We also determined whether G protein or M protein was colocalized with VSV nucleocapsid protein (N protein) outside the budding sites. Viral nucleocapsids were observed to cluster in regions of the cytoplasm close to the plasma membrane. Membrane-associated N protein was colocalized with G protein in regions of plasma membrane of approximately 600 nm. In contrast to the case for G protein, M protein was not colocalized with these areas of nucleocapsid accumulation. These results suggest a new model of virus assembly in which an interaction of VSV nucleocapsids with G-protein-containing microdomains is a precursor to the formation of viral budding sites.
Insights
Vesicular stomatitis virus (VSV) assembly involves matrix protein (M protein) and glycoprotein (G protein) organizing into distinct plasma membrane microdomains. These microdomains merge to form budding sites, with nucleocapsids interacting with G protein domains.
Area of Science:
- Virology
- Cell Biology
- Structural Biology
Background:
- Vesicular stomatitis virus (VSV) assembly is a complex process involving the precise organization of viral proteins.
- Understanding the spatial and temporal interactions of viral proteins within host cells is crucial for deciphering assembly mechanisms.
Purpose of the Study:
- To investigate the organization and localization of major structural proteins of VSV during virus assembly.
- To elucidate the role of membrane microdomains in the assembly and budding of VSV.
Main Methods:
- Immunogold electron microscopy was employed to visualize and analyze the distribution of viral proteins.
- Colocalization studies were performed for matrix protein (M), glycoprotein (G), and nucleocapsid protein (N) with each other and with host proteins (CD4).
Main Results:
- Matrix protein (M protein) partitions into plasma membrane microdomains of varying sizes at and outside VSV budding sites.
- M protein microdomains did not colocalize with G protein or CD4 microdomains outside budding sites.
- Viral nucleocapsids clustered near the plasma membrane and colocalized with G protein, but not M protein, at budding sites.
Conclusions:
- Separate membrane microdomains containing viral or host proteins may cluster or merge to initiate VSV budding.
- A proposed model suggests VSV assembly involves nucleocapsid interaction with G protein-containing microdomains as a precursor to budding site formation.
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