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Updated: Aug 15, 2025

Affinity Purification of Influenza Virus Ribonucleoprotein Complexes from the Chromatin of Infected Cells
Published on: June 3, 2012
Phosphorylation of Influenza A Virus Matrix Protein 1 at Threonine 108 Controls Its Multimerization State and
Lu Liu1,2, Axel Weber3, Uwe Linne4
1Institute of Biochemistry, Justus-Liebig-University, Giessen, Germany.
Abstract:
The influenza A virus (IAV)-encoded matrix protein 1 (M1) acts as a master regulator of virus replication and fulfills multiple structural and regulatory functions in different cell compartments. Therefore, the spatiotemporal regulation of M1 is achieved by different mechanisms, including its structural and pH-dependent flexibility, differential association with cellular factors, and posttranslational modifications. Here, we investigated the function of M1 phosphorylation at the evolutionarily conserved threonine 108 (T108) and found that its mutation to a nonphosphorylatable alanine prohibited virus replication. Absent T108, phosphorylation led to strongly increased self-association of M1 at the cell membrane and consequently prohibited its ability to enter the nucleus and to contribute to viral ribonucleoprotein nuclear export. M1 T108 phosphorylation also controls the binding affinity to the cellular STRIPAK (striatin-interacting phosphatases and kinases) complex, which contains different kinases and the phosphatase PP2A to shape phosphorylation-dependent signaling networks. IAV infection led to the redistribution of the STRIPAK scaffolding subunits STRN and STRN3 from the cell membrane to cytosolic and perinuclear clusters, where it colocalized with M1. Inactivation of the STRIPAK complex resulted in compromised M1 polymerization and IAV replication. IMPORTANCE Influenza viruses pose a major threat to human health and cause annual epidemics and occasional pandemics. Many virus-encoded proteins exert various functions in different subcellular compartments, as exemplified by the M1 protein, but the molecular mechanisms endowing the multiplicity of functions remain incompletely understood. Here, we report that phosphorylation of M1 at T108 is essential for virus replication and controls its propensity for self-association and nuclear localization. This phosphorylation also controls binding affinity of the M1 protein to the STRIPAK complex, which contributes to M1 polymerization and virus replication.
Insights
Influenza A virus M1 protein phosphorylation at T108 is crucial for replication. This modification regulates M1 self-association, nuclear entry, and interaction with the STRIPAK complex, impacting virus assembly.
Area of Science:
- Virology
- Molecular Biology
- Cellular Biology
Background:
- Influenza A virus (IAV) matrix protein 1 (M1) is vital for virus replication, exhibiting diverse functions across cellular compartments.
- M1's spatiotemporal regulation involves structural flexibility, cellular factor interactions, and post-translational modifications, but mechanisms remain unclear.
Purpose of the Study:
- To investigate the role of M1 phosphorylation at threonine 108 (T108) in IAV replication.
- To elucidate how T108 phosphorylation influences M1's self-association, subcellular localization, and interaction with cellular complexes.
Main Methods:
- Site-directed mutagenesis to create nonphosphorylatable M1 (T108A) mutants.
- Analysis of M1 self-association, nuclear import/export, and interaction with the STRIPAK complex.
- Investigation of STRIPAK complex function in M1 polymerization and IAV replication.
Main Results:
- Mutation of T108 to alanine abolished IAV replication.
- T108 phosphorylation is essential for regulating M1 self-association at the cell membrane, nuclear entry, and viral ribonucleoprotein nuclear export.
- M1 T108 phosphorylation controls binding to the STRIPAK complex, which is necessary for M1 polymerization and IAV replication.
Conclusions:
- Phosphorylation of IAV M1 protein at T108 is a critical regulatory event for virus replication.
- T108 phosphorylation governs M1's self-association, nuclear trafficking, and interaction with the STRIPAK complex, highlighting a novel regulatory pathway.
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