Nucleotide sequence of the G protein gene of human respiratory syncytial virus reveals an unusual type of viral membrane protein.
- 1 June 1985
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 82 (12) , 4075-4079
- https://doi.org/10.1073/pnas.82.12.4075
Abstract
The major surface glycoprotein (G) of human respiratory syncytial (RS) virus has an estimated mature Mr of 84,000-90,000. Among a library of cDNA clones prepared from RS virus mRNAs, we identified clones that hybridized to a message that encoded a Mr 36,000 polypeptide that was specifically immunoprecipitated with anti-G antiserum. The amino acid sequence of the G protein backbone was determined by nucleotide sequence analysis of several of the cDNA clones. It contains a combination of structural features that make it unique among the known viral glycoproteins. The G mRNA is 918 nucleotides long and contains a single major open reading frame that encodes a polypeptide having 298 amino acid residues with a Mr of 32,587, a finding consistent with the Mr 36,000 estimate for the in vitro translation product of the G mRNA. This suggests that greater than 50% of the molecular weight of the mature glycoprotein may be contributed by carbohydrate. Glycosylation of G is largely resistant to tunicamycin, an inhibitor of the attachment of N-linked oligosaccharides, suggesting that the majority of the carbohydrate residues are attached via O-glycosidic bonds. In accordance with this, serine and threonine residues, the acceptor sites for O-linked oligosaccharides, comprise 30.6% of the total amino acid composition. There are also four potential acceptor sites for N-linked oligosaccharides. The amino acid sequence lacks both an NH2-terminal hydrophobic signal sequence and a COOH-terminal hydrophobic region. Instead, a strongly hydrophobic region is located between amino acid residues 38 and 66. This region may serve as both the signal to insert the nascent polypeptide through the membrane and as the membrane anchor site.This publication has 30 references indexed in Scilit:
- Sequence and topology of a model intracellular membrane protein, E1 glycoprotein, from a coronavirusNature, 1984
- Respiratory Syncytial Virus Polypeptides. III. The Envelope-associated ProteinsJournal of General Virology, 1983
- Mechanisms for the incorporation of proteins in membranes and organelles.The Journal of cell biology, 1982
- Prediction of protein antigenic determinants from amino acid sequences.Proceedings of the National Academy of Sciences, 1981
- Transfer of Proteins Across MembranesAnnual Review of Biochemistry, 1981
- Structure of the neuraminidase gene in human influenza virus A/PR/8/34Nature, 1981
- Cotranslational and Posttranslational Processing of Viral GlycoproteinsPublished by Springer Nature ,1980
- The Role of Viral Glycoproteins in Adsorption, Penetration, and Pathogenicity of VirusesClinical Infectious Diseases, 1980
- Respiratory syncytial virus polypeptides: Their location in the virionVirology, 1979
- The hydrophobic anchor of small‐intestinal sucrase—isomaltaseFEBS Letters, 1978