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Hyperphosphorylation of mutant influenza virus matrix protein, M1, causes its retention in the nucleus
G Whittaker1, I Kemler, A Helenius
1Department of Cell Biology, Yale University School of Medicine, New Haven, Connecticut.
Abstract:
The matrix (M1) protein of influenza virus is a major structural component, involved in regulation of viral ribonucleoprotein transport into and out of the nucleus. Early in infection, M1 is distributed in the nucleus, whereas later, it is localized predominantly in the cytoplasm. Using immunofluorescence microscopy and the influenza virus mutant ts51, we found that at the nonpermissive temperature M1 was retained in the nucleus, even at late times after infection. In contrast, the viral nucleoprotein (NP), after a temporary retention in the nucleus, was distributed in the cytoplasm. Therefore, mutant M1 supported the release of the viral ribonucleoproteins from the nucleus, but not the formation of infectious virions. The point mutation in the ts51 M1 gene was predicted to encode an additional phosphorylation site. We observed a substantial increase in the incorporation of 32Pi into M1 at the nonpermissive temperature. The critical role of this phosphorylation site was demonstrated by using H89, a protein kinase inhibitor; it inhibited the expression of the mutant phenotype, as judged by M1 distribution in the cell. Immunofluorescence analysis of ts51-infected cells after treatment with H89 showed a wild-type phenotype. In summary, the data indicated that the ts51 M1 protein was hyperphosphorylated at the nonpermissive temperature and that this phosphorylation was responsible for its aberrant nuclear retention.
Insights
Influenza virus matrix (M1) protein
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Influenza virus matrix (M1) protein is crucial for viral structure and nucleoprotein transport.
- M1 protein localization shifts from the nucleus to the cytoplasm during infection.
- Aberrant M1 localization can disrupt viral replication.
Purpose of the Study:
- To investigate the role of M1 protein phosphorylation in its nuclear retention.
- To elucidate the mechanism behind the ts51 influenza virus mutant's phenotype.
- To identify potential therapeutic targets for influenza virus infection.
Main Methods:
- Immunofluorescence microscopy to visualize M1 protein distribution.
- Use of influenza virus mutant ts51 and protein kinase inhibitor H89.
- Radiolabeling with 32Pi to assess protein phosphorylation.
Main Results:
- Mutant ts51 M1 protein showed retention in the nucleus at nonpermissive temperatures.
- This nuclear retention occurred despite cytoplasmic localization of nucleoprotein (NP).
- ts51 M1 protein was hyperphosphorylated at nonpermissive temperatures, confirmed by increased 32Pi incorporation.
- Protein kinase inhibitor H89 reversed the mutant phenotype, restoring wild-type M1 distribution.
Conclusions:
- The ts51 M1 protein's aberrant nuclear retention is caused by hyperphosphorylation.
- This phosphorylation event is critical for M1 protein localization and viral assembly.
- Targeting M1 phosphorylation may offer a strategy to inhibit influenza virus replication.