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Published on: October 20, 2020
Phosphoproteomics to Characterize Host Response During Influenza A Virus Infection of Human Macrophages
Sandra Söderholm1, Denis E Kainov2, Tiina Öhman3
1From the ‡Institute of Biotechnology, FI-00014 University of Helsinki, Helsinki, Finland; §Unit of Systems Toxicology, Finnish Institute of Occupational Health, FI-00250 Helsinki, Finland.
Abstract:
Influenza A viruses cause infections in the human respiratory tract and give rise to annual seasonal outbreaks, as well as more rarely dreaded pandemics. Influenza A viruses become quickly resistant to the virus-directed antiviral treatments, which are the current main treatment options. A promising alternative approach is to target host cell factors that are exploited by influenza viruses. To this end, we characterized the phosphoproteome of influenza A virus infected primary human macrophages to elucidate the intracellular signaling pathways and critical host factors activated upon influenza infection. We identified 1675 phosphoproteins, 4004 phosphopeptides and 4146 nonredundant phosphosites. The phosphorylation of 1113 proteins (66%) was regulated upon infection, highlighting the importance of such global phosphoproteomic profiling in primary cells. Notably, 285 of the identified phosphorylation sites have not been previously described in publicly available phosphorylation databases, despite many published large-scale phosphoproteome studies using human and mouse cell lines. Systematic bioinformatics analysis of the phosphoproteome data indicated that the phosphorylation of proteins involved in the ubiquitin/proteasome pathway (such as TRIM22 and TRIM25) and antiviral responses (such as MAVS) changed in infected macrophages. Proteins known to play roles in small GTPase-, mitogen-activated protein kinase-, and cyclin-dependent kinase- signaling were also regulated by phosphorylation upon infection. In particular, the influenza infection had a major influence on the phosphorylation profiles of a large number of cyclin-dependent kinase substrates. Functional studies using cyclin-dependent kinase inhibitors showed that the cyclin-dependent kinase activity is required for efficient viral replication and for activation of the host antiviral responses. In addition, we show that cyclin-dependent kinase inhibitors protect IAV-infected mice from death. In conclusion, we provide the first comprehensive phosphoproteome characterization of influenza A virus infection in primary human macrophages, and provide evidence that cyclin-dependent kinases represent potential therapeutic targets for more effective treatment of influenza infections.
Insights
This study reveals how influenza A virus alters protein phosphorylation in human macrophages, identifying cyclin-dependent kinases as key targets. Inhibiting these kinases combats viral replication and protects against lethal influenza infections.
Area of Science:
- Virology
- Immunology
- Proteomics
Background:
- Influenza A virus causes seasonal outbreaks and pandemics, with rapid development of antiviral resistance.
- Targeting host cell factors is a promising alternative to direct antiviral treatments.
- Understanding host cell signaling during infection is crucial for developing new therapies.
Purpose of the Study:
- To characterize the phosphoproteome of influenza A virus-infected primary human macrophages.
- To identify intracellular signaling pathways and host factors activated during infection.
- To explore cyclin-dependent kinases as potential therapeutic targets.
Main Methods:
- Performed comprehensive phosphoproteomic analysis on infected primary human macrophages.
- Utilized systematic bioinformatics to analyze phosphorylation changes.
- Conducted functional studies using cyclin-dependent kinase inhibitors in vitro and in vivo.
Main Results:
- Identified 1675 phosphoproteins and 4146 unique phosphosites, with 66% regulated upon infection.
- Discovered 285 novel phosphorylation sites not previously in public databases.
- Found altered phosphorylation in ubiquitin/proteasome and antiviral response pathways, notably affecting cyclin-dependent kinase substrates.
- Demonstrated that cyclin-dependent kinase activity is essential for viral replication and antiviral responses.
- Showed cyclin-dependent kinase inhibitors protect mice from lethal influenza A virus infection.
Conclusions:
- Provides the first comprehensive phosphoproteome of influenza A virus infection in primary human macrophages.
- Highlights the critical role of cyclin-dependent kinases in viral replication and host defense.
- Establishes cyclin-dependent kinases as potential therapeutic targets for influenza treatment.

