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Affinity Purification of Influenza Virus Ribonucleoprotein Complexes from the Chromatin of Infected Cells
Published on: June 3, 2012
Evidence for ubiquitin-regulated nuclear and subnuclear trafficking among Paramyxovirinae matrix proteins
Mickey Pentecost1, Ajay A Vashisht2, Talia Lester1
1Department of Microbiology, Immunology, and Molecular Genetics, David Geffen School of Medicine, University of California Los Angeles, Los Angeles, California, United States of America.
Abstract:
The paramyxovirus matrix (M) protein is a molecular scaffold required for viral morphogenesis and budding at the plasma membrane. Transient nuclear residence of some M proteins hints at non-structural roles. However, little is known regarding the mechanisms that regulate the nuclear sojourn. Previously, we found that the nuclear-cytoplasmic trafficking of Nipah virus M (NiV-M) is a prerequisite for budding, and is regulated by a bipartite nuclear localization signal (NLSbp), a leucine-rich nuclear export signal (NES), and monoubiquitination of the K258 residue within the NLSbp itself (NLSbp-lysine). To define whether the sequence determinants of nuclear trafficking identified in NiV-M are common among other Paramyxovirinae M proteins, we generated the homologous NES and NLSbp-lysine mutations in M proteins from the five major Paramyxovirinae genera. Using quantitative 3D confocal microscopy, we determined that the NES and NLSbp-lysine are required for the efficient nuclear export of the M proteins of Nipah virus, Hendra virus, Sendai virus, and Mumps virus. Pharmacological depletion of free ubiquitin or mutation of the conserved NLSbp-lysine to an arginine, which inhibits M ubiquitination, also results in nuclear and nucleolar retention of these M proteins. Recombinant Sendai virus (rSeV-eGFP) bearing the NES or NLSbp-lysine M mutants rescued at similar efficiencies to wild type. However, foci of cells expressing the M mutants displayed marked fusogenicity in contrast to wild type, and infection did not spread. Recombinant Mumps virus (rMuV-eGFP) bearing the homologous mutations showed similar defects in viral morphogenesis. Finally, shotgun proteomics experiments indicated that the interactomes of Paramyxovirinae M proteins are significantly enriched for components of the nuclear pore complex, nuclear transport receptors, and nucleolar proteins. We then synthesize our functional and proteomics data to propose a working model for the ubiquitin-regulated nuclear-cytoplasmic trafficking of cognate paramyxovirus M proteins that show a consistent nuclear trafficking phenotype.
Insights
Paramyxovirus M proteins require nuclear transport for budding. Monoubiquitination regulates this process, impacting viral spread and morphogenesis across several genera.
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- The paramyxovirus matrix (M) protein is crucial for viral assembly and budding.
- Nuclear import and export of M protein are linked to its function, but regulatory mechanisms remain unclear.
Purpose of the Study:
- To investigate if nuclear-cytoplasmic trafficking determinants in Nipah virus M protein are conserved in other Paramyxovirinae.
- To elucidate the role of M protein ubiquitination in its nuclear trafficking and viral replication.
Main Methods:
- Site-directed mutagenesis to create M protein mutants (NES and NLSbp-lysine).
- Quantitative 3D confocal microscopy to assess M protein localization.
- Rescue experiments with recombinant viruses (Sendai and Mumps viruses).
- Shotgun proteomics to analyze M protein interactomes.
Main Results:
- Nuclear export signals (NES) and NLSbp-lysine mutations impair nuclear export of M proteins from Nipah, Hendra, Sendai, and Mumps viruses.
- Inhibition of ubiquitination or NLSbp-lysine mutation causes nuclear and nucleolar retention.
- Mutant M proteins lead to increased cell fusogenicity and impaired viral spread and morphogenesis.
- Proteomics reveals M protein interactions with nuclear pore complex and transport machinery.
Conclusions:
- Nuclear-cytoplasmic trafficking, regulated by ubiquitination, is conserved among Paramyxovirinae M proteins.
- This trafficking is essential for proper viral morphogenesis, budding, and infection spread.
- A model for ubiquitin-regulated M protein nuclear trafficking is proposed.
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