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Imaging Cell Interaction in Tracheal Mucosa During Influenza Virus Infection Using Two-photon Intravital Microscopy
Published on: August 17, 2018
Influenza A virus uses intercellular connections to spread to neighboring cells
Kari L Roberts1, Balaji Manicassamy2, Robert A Lamb3
1Department of Molecular Biosciences, Northwestern University, Evanston, Illinois, USA Howard Hughes Medical Institute, Northwestern University, Evanston, Illinois, USA.
Unlabelled:
In the extracellular environment, cell-free virions seek out naive host cells over long distances and between organisms. This is the primary mechanism of spread for most viruses. Here we provide evidence for an alternative pathway previously undescribed for orthomyxoviruses, whereby the spread of influenza A virus (IAV) infectious cores to neighboring cells can occur within intercellular connections. The formation of these connections requires actin dynamics and is enhanced by viral infection. Connected cells have contiguous membranes, and the core infectious viral machinery (RNP and polymerase) was present inside the intercellular connections. A live-cell movie of green fluorescent protein (GFP)-tagged NS1 of IAV shows viral protein moving from one cell to another through an intercellular connection. The movement of tagged protein was saltatory but overall traveled only in one direction. Infectious virus cores can move from one cell to another without budding and release of cell-free virions, as evidenced by the finding that whereas a neuraminidase inhibitor alone did not inhibit the development of IAV microplaques, the presence of a neuraminidase inhibitor together with drugs inhibiting actin dynamics or the microtubule stabilizer paclitaxel (originally named taxol) precluded microplaque formation. Similar results were also observed with parainfluenza virus 5 (PIV5), a paramyxovirus, when neutralizing antibody was used to block spread by cell-free virions. Intercellular spread of infectious core particles was unaffected or enhanced in the presence of nocodazole for IAV but inhibited for PIV5. The intercellular connections have a core of filamentous actin, which hints toward transport of virus particles through the use of a myosin motor.
Importance:
Here we describe a new method by which influenza A virus (IAV) spreads from cell to cell: IAV uses intracellular connections. The formation of these connections requires actin dynamics and is enhanced by viral infection and the absence of microtubules. Connected cells appeared to have contiguous membranes, and the core infectious viral machinery (RNP and polymerase) was present inside the intercellular connections. Infectious virus cores can move from one cell to another without budding and release of cell-free virions. Similar results were also observed with parainfluenza virus 5 (PIV5).
Insights
Influenza A virus (IAV) can spread between cells through direct intercellular connections, bypassing traditional cell-free virion release. This novel pathway involves viral cores moving through actin-rich cellular bridges, offering new insights into virus transmission.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Viruses typically spread via extracellular, cell-free virions.
- Orthomyxoviruses, including Influenza A virus (IAV), are known to primarily use this extracellular route.
Purpose of the Study:
- To investigate and describe an alternative cell-to-cell spread mechanism for Influenza A virus (IAV).
- To characterize the role of intercellular connections in viral transmission.
Main Methods:
- Live-cell imaging of GFP-tagged viral proteins.
- Inhibition studies using neuraminidase inhibitors, actin dynamics inhibitors, and microtubule stabilizers (paclitaxel, nocodazole).
- Observation of viral core machinery within intercellular connections.
Main Results:
- IAV infectious cores were observed moving directly between connected cells through intercellular connections.
- Viral infection enhanced the formation of these actin-rich intercellular connections.
- Inhibition of actin dynamics or microtubules affected microplaque formation, suggesting their role in this alternative spread.
Conclusions:
- IAV utilizes a previously undescribed pathway for cell-to-cell spread via intercellular connections.
- This direct cell-to-cell spread mechanism bypasses the release of cell-free virions.
- The findings suggest a potential role for actin-myosin motor proteins in transporting viral cores within these connections.
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