GONUTS has been updated to MW1.31 Most things seem to be working but be sure to report problems.

Have any questions? Please email us at ecoliwiki@gmail.com

PMID:20592081

From GONUTS
Jump to: navigation, search
Citation

Khayat, R, Fu, CY, Ortmann, AC, Young, MJ and Johnson, JE (2010) The architecture and chemical stability of the archaeal Sulfolobus turreted icosahedral virus. J. Virol. 84:9575-83

Abstract

Viruses utilize a diverse array of mechanisms to deliver their genomes into hosts. While great strides have been made in understanding the genome delivery of eukaryotic and prokaryotic viruses, little is known about archaeal virus genome delivery and the associated particle changes. The Sulfolobus turreted icosahedral virus (STIV) is a double-stranded DNA (dsDNA) archaeal virus that contains a host-derived membrane sandwiched between the genome and the proteinaceous capsid shell. Using cryo-electron microscopy (cryo-EM) and different biochemical treatments, we identified three viral morphologies that may correspond to biochemical disassembly states of STIV. One of these morphologies was subtly different from the previously published 27-A-resolution electron density that was interpreted with the crystal structure of the major capsid protein (MCP). However, these particles could be analyzed at 12.5-A resolution by cryo-EM. Comparing these two structures, we identified the location of multiple proteins forming the large turret-like appendages at the icosahedral vertices, observed heterogeneous glycosylation of the capsid shell, and identified mobile MCP C-terminal arms responsible for tethering and releasing the underlying viral membrane to and from the capsid shell. Collectively, our studies allow us to propose a fusogenic mechanism of genome delivery by STIV, in which the dismantled capsid shell allows for the fusion of the viral and host membranes and the internalization of the viral genome.

Links

PubMed PMC2937605 Online version:10.1128/JVI.00708-10

Keywords

Cryoelectron Microscopy; Macromolecular Substances; Models, Biological; Models, Molecular; Protein Structure, Quaternary; Rudiviridae/chemistry; Rudiviridae/ultrastructure; Sulfolobus/virology; Viral Proteins/chemistry; Virion/chemistry; Virion/ultrastructure; Virus Internalization

Significance

Annotations

Gene product Qualifier GO Term Evidence Code with/from Aspect Extension Notes Status

9VIRU:Q6Q0J1

GO:0019012: virion

ECO:0000314:

C

Figure 1B.

complete
CACAO 7348

9VIRU:Q6Q0J1

part_of

GO:0019012: virion

ECO:0000314: direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

9VIRU:Q6Q0M1

GO:0019012: virion

ECO:0000314:

C

Figure 1B.

complete
CACAO 7349

9VIRU:Q6Q0M1

part_of

GO:0019012: virion

ECO:0000314: direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

9VIRU:Q6Q0M3

GO:0019012: virion

ECO:0000314:

C

Figure 1B.

complete
CACAO 7350

9VIRU:Q6Q0M3

part_of

GO:0019012: virion

ECO:0000314: direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

9VIRU:Q6Q0J0

GO:0019012: virion

ECO:0000314:

C

Figure 1B.

complete
CACAO 7351

9VIRU:Q6Q0J0

part_of

GO:0019012: virion

ECO:0000314: direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

9VIRU:Q6Q0L4

GO:0019012: virion

ECO:0000314:

C

Figure 1B.

complete
CACAO 7352

9VIRU:Q6Q0L4

part_of

GO:0019012: virion

ECO:0000314: direct assay evidence used in manual assertion

C

Seeded From UniProt

complete

9VIRU:Q6Q0L3

GO:0019012: virion

ECO:0000314:

C

Figure 1B.

complete
CACAO 7353

9VIRU:Q6Q0L3

part_of

GO:0019012: virion

ECO:0000314: direct assay evidence used in manual assertion

C

Seeded From UniProt

complete


See also

References

See Help:References for how to manage references in GONUTS.