Literature DB >> 17005642

Respiratory syncytial virus F envelope protein associates with lipid rafts without a requirement for other virus proteins.

Elisa H Fleming1, Andrey A Kolokoltsov, Robert A Davey, Joan E Nichols, Norbert J Roberts.   

Abstract

Like many enveloped viruses, human respiratory syncytial virus (RSV) assembles at and buds from lipid rafts. Translocation of the envelope proteins to these membrane subdomains is essential for production of infectious virus, but the targeting mechanism is poorly understood and it is not known if other virus proteins are required. Here we demonstrate that F protein of RSV intrinsically targets to lipid rafts without a requirement for any other virus protein, including the SH and G envelope proteins. Recombinant virus deficient in SH and G but retaining F protein expression was used to demonstrate that F protein still localized in rafts in both A549 and HEp-2 cells. Expression of a recombinant F gene by use of plasmid vectors demonstrated that F contains its own targeting domain and localized to rafts in the absence of other virus proteins. The domain responsible for translocation was then mapped. Unlike most other virus envelope proteins, F is unusual since the target signal is not contained within the cytoplasmic domain nor did it involve fatty acid modified residues. Furthermore, exchange of the transmembrane domain with that of the vesicular stomatitis virus G protein, a nonraft protein, did not alter F protein raft localization. Taken together, these data suggest that domains present in the extracellular portion of the protein are responsible for lipid raft targeting of the RSV F protein.

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Year:  2006        PMID: 17005642      PMCID: PMC1676292          DOI: 10.1128/JVI.00643-06

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  52 in total

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Authors:  V Dolganiuc; L McGinnes; E J Luna; T G Morrison
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  22 in total

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3.  The respiratory syncytial virus fusion protein targets to the perimeter of inclusion bodies and facilitates filament formation by a cytoplasmic tail-dependent mechanism.

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4.  Antibody-Induced Internalization of the Human Respiratory Syncytial Virus Fusion Protein.

Authors:  A Leemans; M De Schryver; W Van der Gucht; A Heykers; I Pintelon; A L Hotard; M L Moore; J A Melero; J S McLellan; B S Graham; L Broadbent; U F Power; G Caljon; P Cos; L Maes; P Delputte
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5.  Cholesterol is required for stability and infectivity of influenza A and respiratory syncytial viruses.

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8.  Mandarin fish caveolin 1 interaction with major capsid protein of infectious spleen and kidney necrosis virus and its role in early stages of infection.

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9.  Architecture of respiratory syncytial virus revealed by electron cryotomography.

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10.  Evidence that Gag facilitates HIV-1 envelope association both in GPI-enriched plasma membrane and detergent resistant membranes and facilitates envelope incorporation onto virions in primary CD4+ T cells.

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