Contributions of Matrix and Large Protein Genes of the Measles Virus Edmonston Strain to Growth in Cultured Cells as Revealed by Recombinant Viruses
Open Access
- 15 December 2005
- journal article
- Published by American Society for Microbiology in Journal of Virology
- Vol. 79 (24) , 15218-15225
- https://doi.org/10.1128/jvi.79.24.15218-15225.2005
Abstract
The Edmonston strain of measles virus (MV) was obtained by sequential passages of the original isolate in various cultured cells. Although attenuated in vivo, it grows efficiently in most primate cell lines. Previous studies have revealed that MV tropism cannot be solely explained by the use of CD150 and/or CD46 as a cellular receptor. In order to evaluate the contributions of individual genes of the Edmonston strain to growth in cultured cells, we generated a series of recombinant viruses in which part of the genome of the clinical isolate IC-B (which uses CD150 as a receptor) was replaced with the corresponding sequences of the Edmonston strain. The recombinant virus possessing the Edmonston hemagglutinin (H) gene (encoding the receptor-binding protein) grew as efficiently in Vero cells as the Edmonston strain. Those viruses having either the matrix (M) or large (L) protein gene from the Edmonston strain could also replicate well in Vero cells, although they entered them at low efficiencies. P64S and E89K substitutions were responsible for the ability of the M protein to make virus grow efficiently in Vero cells, while the first half of the Edmonston L gene was important for better replication. Despite efficient growth in Vero cells, the recombinant viruses with these mutations had growth disadvantage in CD150-positive lymphoid B95a cells. Thus, not only the H gene but also the M and L genes contribute to efficient replication of the Edmonston strain in some cultured cells.Keywords
This publication has 39 references indexed in Scilit:
- Efficient rescue of measles virus from cloned cDNA using SLAM-expressing Chinese hamster ovary cellsVirus Research, 2005
- Cell tropism of wild-type measles virus is affected by amino acid substitutions in the P, V and M proteins, or by a truncation in the C proteinJournal of General Virology, 2004
- Structural Features of Paramyxovirus F Protein Required for Fusion InitiationBiochemistry, 2003
- Mutations in the Putative HR-C Region of the Measles Virus F 2 Glycoprotein Modulate Syncytium FormationJournal of Virology, 2003
- Activity of Polymerase Proteins of Vaccine and Wild-Type Measles Virus Strains in a Minigenome Replication AssayJournal of Virology, 2002
- Recombinant Wild-Type and Edmonston Strain Measles Viruses Bearing Heterologous H Proteins: Role of H Protein in Cell Fusion and Host Cell SpecificityJournal of Virology, 2002
- CD150 (SLAM) Is a Receptor for Measles Virus but Is Not Involved in Viral Contact-Mediated Proliferation InhibitionJournal of Virology, 2001
- Increased binding activity of measles virus to monkey red blood cells after long-term passage in Vero cell culturesJournal of General Virology, 1994
- Comparison of sequences of the H, F, and N coding genes of measles virus vaccine strainsVirus Research, 1994
- Specific inhibition of paramyxovirus and myxovirus replication by oligopeptides with amino acid sequences similar to those at the N-termini of the Fl or HA2 viral polypeptidesVirology, 1980