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Analysis of foot-and-mouth disease virus internalization events in cultured cells
Vivian O'Donnell1, Michael LaRocco, Hernando Duque
1Department of Pathobiology and Veterinary Science, University of Connecticut at Storrs, 06269, USA.
Abstract:
It has been demonstrated that foot-and-mouth disease virus (FMDV) can utilize at least four members of the alpha(V) subgroup of the integrin family of receptors in vitro. The virus interacts with these receptors via a highly conserved arginine-glycine-aspartic acid amino acid sequence motif located within the betaG-betaH loop of VP1. While there have been extensive studies of virus-receptor interactions at the cell surface, our understanding of the events during viral entry into the infected cell is still not clear. We have utilized confocal microscopy to analyze the entry of two FMDV serotypes (types A and O) after interaction with integrin receptors at the cell surface. In cell cultures expressing both the alphaVbeta3 and alphaVbeta6 integrins, virus adsorbed to the cells at 4 degrees C appears to colocalize almost exclusively with the alphaVbeta6 integrin. Upon shifting the infected cells to 37 degrees C, FMDV capsid proteins were detected within 15 min after the temperature shift, in association with the integrin in vesicular structures that were positive for a marker of clathrin-mediated endocytosis. In contrast, virus did not colocalize with a marker for caveola-mediated endocytosis. Virus remained associated with the integrin until about 1 h after the temperature shift, when viral proteins appeared around the perinuclear region of the cell. By 15 min after the temperature shift, viral proteins were seen colocalizing with a marker for early endosomes, while no colocalization with late endosomal markers was observed. In the presence of monensin, which raises the pH of endocytic vesicles and has been shown to inhibit FMDV replication, viral proteins were not released from the recycling endosome structures. Viral proteins were not observed associated with the endoplasmic reticulum or the Golgi. These data indicate that FMDV utilizes the clathrin-mediated endocytosis pathway to infect the cells and that viral replication begins due to acidification of endocytic vesicles, causing the breakdown of the viral capsid structure and release of the genome by an as-yet-unidentified mechanism.
Insights
Foot-and-mouth disease virus (FMDV) uses clathrin-mediated endocytosis for cell entry, binding specifically to alphaVbeta6 integrins. Viral replication initiates upon endosomal acidification, releasing the genome via an unknown mechanism.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Foot-and-mouth disease virus (FMDV) interacts with integrin receptors via an RGD motif on VP1.
- Previous research focused on cell surface interactions, leaving viral entry mechanisms unclear.
Purpose of the Study:
- To elucidate the viral entry pathway of FMDV into infected cells.
- To analyze the role of integrin receptors in FMDV internalization.
Main Methods:
- Confocal microscopy was used to track FMDV (types A and O) entry.
- Cells expressing alphaVbeta3 and alphaVbeta6 integrins were utilized.
- Markers for clathrin-mediated and caveola-mediated endocytosis were employed.
Main Results:
- FMDV preferentially bound to alphaVbeta6 integrins at 4°C.
- Upon warming, FMDV entered cells via clathrin-mediated endocytosis, not caveolae.
- Viral proteins localized to early endosomes and perinuclear regions, dependent on endosomal pH.
Conclusions:
- FMDV utilizes the clathrin-mediated endocytosis pathway for cellular infection.
- Endosomal acidification triggers viral capsid breakdown and genome release.
- The precise mechanism of genome release remains to be identified.
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