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Updated: Jun 24, 2026

Generation, Amplification, and Titration of Recombinant Respiratory Syncytial Viruses
Published on: April 4, 2019
The respiratory syncytial virus matrix protein possesses a Crm1-mediated nuclear export mechanism
Reena Ghildyal1, Adeline Ho, Manisha Dias
1Department of Biochemistry and Molecular Biology, Monash University, Melbourne, Victoria, Australia.
Abstract:
The respiratory syncytial virus (RSV) matrix (M) protein is localized in the nucleus of infected cells early in infection but is mostly cytoplasmic late in infection. We have previously shown that M localizes in the nucleus through the action of the importin beta1 nuclear import receptor. Here, we establish for the first time that M's ability to shuttle to the cytoplasm is due to the action of the nuclear export receptor Crm1, as shown in infected cells, and in cells transfected to express green fluorescent protein (GFP)-M fusion proteins. Specific inhibition of Crm1-mediated nuclear export by leptomycin B increased M nuclear accumulation. Analysis of truncated and point-mutated M derivatives indicated that Crm1-dependent nuclear export of M is attributable to a nuclear export signal (NES) within residues 194 to 206. Importantly, inhibition of M nuclear export resulted in reduced virus production, and a recombinant RSV carrying a mutated NES could not be rescued by reverse genetics. That this is likely to be due to the inability of a nuclear export deficient M to localize to regions of virus assembly is indicated by the fact that a nuclear-export-deficient GFP-M fails to localize to regions of virus assembly when expressed in cells infected with wild-type RSV. Together, our data suggest that Crm1-dependent nuclear export of M is central to RSV infection, representing the first report of such a mechanism for a paramyxovirus M protein and with important implications for related paramyxoviruses.
Insights
Respiratory syncytial virus (RSV) matrix protein export from the nucleus to the cytoplasm is crucial for infection. Inhibition of this nuclear export significantly reduces RSV production, highlighting a key viral mechanism.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- The respiratory syncytial virus (RSV) matrix (M) protein exhibits dynamic localization, shifting from the nucleus early in infection to the cytoplasm later.
- Previous studies identified importin beta1 as the receptor mediating M protein's nuclear import.
Purpose of the Study:
- To elucidate the mechanism by which the RSV M protein is exported from the nucleus to the cytoplasm.
- To investigate the role of Crm1-mediated nuclear export in RSV replication and assembly.
Main Methods:
- Utilized infected cells and cells expressing green fluorescent protein (GFP)-M fusion proteins to study M protein localization.
- Employed leptomycin B to inhibit Crm1-mediated nuclear export and analyzed M protein mutants.
- Assessed virus production and viral rescue via reverse genetics in the presence of M protein export inhibition.
Main Results:
- Demonstrated that the nuclear export receptor Crm1 mediates the cytoplasmic localization of the RSV M protein.
- Identified a nuclear export signal (NES) within residues 194–206 of the M protein responsible for Crm1-dependent export.
- Inhibition of M protein nuclear export led to decreased virus production and failure to rescue a recombinant RSV with a mutated NES.
Conclusions:
- Crm1-dependent nuclear export of the RSV M protein is essential for efficient virus production and assembly.
- This mechanism represents a novel finding for paramyxovirus M proteins and has significant implications for understanding and targeting related viruses.
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