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Affinity Purification of Influenza Virus Ribonucleoprotein Complexes from the Chromatin of Infected Cells
Published on: June 3, 2012
BAG6 inhibits influenza A virus replication by inducing viral polymerase subunit PB2 degradation and perturbing RdRp
Yong Zhou1,2,3, Tian Li1,2,3, Yunfan Zhang1,4
1National Key Laboratory of Veterinary Public Health and Safety, College of Veterinary Medicine, China Agricultural University, Beijing, China.
Abstract:
The interaction between influenza A virus (IAV) and host proteins is an important process that greatly influences viral replication and pathogenicity. PB2 protein is a subunit of viral ribonucleoprotein (vRNP) complex playing distinct roles in viral transcription and replication. BAG6 (BCL2-associated athanogene 6) as a multifunctional host protein participates in physiological and pathological processes. Here, we identify BAG6 as a new restriction factor for IAV replication through targeting PB2. For both avian and human influenza viruses, overexpression of BAG6 reduced viral protein expression and virus titers, whereas deletion of BAG6 significantly enhanced virus replication. Moreover, BAG6-knockdown mice developed more severe clinical symptoms and higher viral loads upon IAV infection. Mechanistically, BAG6 restricted IAV transcription and replication by inhibiting the activity of viral RNA-dependent RNA polymerase (RdRp). The co-immunoprecipitation assays showed BAG6 specifically interacted with the N-terminus of PB2 and competed with PB1 for RdRp complex assembly. The ubiquitination assay indicated that BAG6 promoted PB2 ubiquitination at K189 residue and targeted PB2 for K48-linked ubiquitination degradation. The antiviral effect of BAG6 necessitated its N-terminal region containing a ubiquitin-like (UBL) domain (17-92aa) and a PB2-binding domain (124-186aa), which are synergistically responsible for viral polymerase subunit PB2 degradation and perturbing RdRp complex assembly. These findings unravel a novel antiviral mechanism via the interaction of viral PB2 and host protein BAG6 during avian or human influenza virus infection and highlight a potential application of BAG6 for antiviral drug development.
Insights
Host protein BAG6 restricts influenza A virus (IAV) by targeting the viral PB2 protein. BAG6 inhibits viral replication and offers potential for new antiviral therapies.
Area of Science:
- Virology
- Molecular Biology
- Immunology
Background:
- Influenza A virus (IAV) replication and pathogenicity depend on interactions between viral and host proteins.
- The viral PB2 protein is crucial for IAV transcription and replication.
- BAG6 (BCL2-associated athanogene 6) is a multifunctional host protein involved in various cellular processes.
Purpose of the Study:
- To identify novel host factors that restrict IAV replication.
- To elucidate the mechanism by which BAG6 interacts with and inhibits IAV.
- To explore the potential of BAG6 as an antiviral target.
Main Methods:
- Overexpression and knockdown of BAG6 in cell culture and mouse models.
- Viral protein expression and virus titer measurements.
- Co-immunoprecipitation assays to study protein interactions.
- Ubiquitination assays to assess protein degradation.
- Analysis of specific BAG6 domains for antiviral activity.
Main Results:
- BAG6 acts as a restriction factor for both avian and human IAV.
- Overexpression of BAG6 reduces viral replication, while BAG6 deletion enhances it.
- BAG6 inhibits viral RNA-dependent RNA polymerase (RdRp) activity by interacting with PB2.
- BAG6 promotes PB2 ubiquitination and degradation, disrupting RdRp complex assembly.
- Specific N-terminal domains of BAG6 are essential for its antiviral function.
Conclusions:
- BAG6 restricts IAV replication by targeting the PB2 protein and inhibiting viral polymerase activity.
- The interaction between BAG6 and PB2 leads to PB2 degradation and impaired viral replication.
- BAG6 represents a novel host restriction factor against IAV infection.
- BAG6-PB2 interaction offers a potential avenue for developing new antiviral strategies against influenza.
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