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A Defect in Influenza A Virus Particle Assembly Specific to Primary Human Macrophages
Sukhmani Bedi1, Takeshi Noda2, Yoshihiro Kawaoka3,4
1Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor, Michigan, USA.
Abstract:
Influenza A virus (IAV) propagates efficiently in epithelial cells, its primary target in the respiratory tract. In contrast, productive infection of most IAV strains is either blocked or highly inefficient in macrophages. The exact nature of the defect in IAV replication in human macrophages remains unknown. In this study, we showed that even compared to a monocytic cell line differentiated to macrophage-like cells, primary human monocyte-derived macrophages (MDM) are inefficient in IAV production, despite comparable levels of expression of viral glycoproteins at the plasma membrane. Correlative fluorescence scanning electron microscopy revealed that formation of budding structures at the cell surface is inefficient in MDM even though clustering of a viral glycoprotein, hemagglutinin (HA), is observed, suggesting that a step in IAV particle assembly is blocked in MDM. Using an in situ proximity ligation assay, we further determined that HA associates with neuraminidase (NA) but fails to associate with another viral transmembrane protein, M2, at the MDM plasma membrane. Notably, the defects in HA-M2 association and particle assembly in MDM were reversed upon cytochalasin D treatment that inhibits actin polymerization. These results suggest that HA-M2 association on the plasma membrane is a discrete step in IAV production, which is susceptible to suppression by actin cytoskeleton in MDM. Virus release remained inefficient in MDM upon cytochalasin D treatment, suggesting the presence of an additional defect(s) in virus release in this cell type. Overall, our study revealed the presence of multiple cell-type-specific mechanisms negatively regulating IAV production at the plasma membrane in MDM.IMPORTANCE Identification of host cell determinants promoting or suppressing replication of viruses has been aided by analyses of host cells that impose inherent blocks on viral replication. In this study, we show that primary human MDM, which are not permissive to IAV replication, fail to support virus particle formation. This defect is specific to primary human macrophages, since a human monocytic cell line differentiated to macrophage-like cells supports IAV particle formation. We further identified association between two viral transmembrane proteins, HA and M2, on the cell surface as a discrete assembly step, which is defective in MDM. Defective HA-M2 association and particle budding, but not virus release, in MDM are rescued by disruption of actin cytoskeleton, revealing a previously unknown, negative role for actin, which specifically targets an early step in the multistep IAV production. Overall, our study uncovered a host-mediated restriction of association between viral transmembrane components during IAV assembly.
Insights
Influenza A virus (IAV) particle assembly is blocked in primary human macrophages (MDM) due to defective hemagglutinin (HA) and M2 protein association. Disrupting the actin cytoskeleton rescues this early assembly step, revealing a novel host restriction mechanism.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- Influenza A virus (IAV) efficiently infects respiratory epithelial cells but poorly replicates in macrophages.
- The specific molecular mechanisms causing this replication block in human macrophages remain unclear.
Purpose of the Study:
- To investigate the defects in IAV replication in primary human monocyte-derived macrophages (MDM).
- To identify host cell factors that restrict IAV production in MDM.
Main Methods:
- Comparative analysis of IAV production in MDM versus differentiated monocytic cell lines.
- Correlative fluorescence scanning electron microscopy to visualize viral glycoprotein clustering and budding.
- In situ proximity ligation assay to detect protein-protein interactions at the plasma membrane.
- Treatment with cytochalasin D to assess the role of the actin cytoskeleton.
Main Results:
- MDM showed inefficient IAV production and particle budding compared to differentiated monocytic cells, despite similar viral glycoprotein expression.
- IAV hemagglutinin (HA) failed to associate with the M2 protein at the MDM plasma membrane.
- Cytochalasin D treatment rescued HA-M2 association and particle assembly defects in MDM, but not virus release.
- These findings indicate a cell-type-specific restriction of an early IAV assembly step by the actin cytoskeleton in MDM.
Conclusions:
- Primary human MDM possess multiple mechanisms that restrict IAV production at the plasma membrane.
- The association between viral HA and M2 proteins is a critical, actin-sensitive step in IAV assembly.
- Actin cytoskeleton plays a previously unrecognized inhibitory role in IAV assembly within macrophages.
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