In-cell cross-linking mass spectrometry maps protein contacts in influenza-infected human cells, revealing how the virus hijacks host membrane-trafficking factors and dismantles nuclear paraspeckles to enhance replication.
Abstract
Influenza A virus (IAV) hijacks host cellular machinery during infection but many host–virus protein interactions remain uncharacterized, particularly in their native context. Here, we applied in-cell cross-linking mass spectrometry, integrated with structural modelling and functional assays, to map protein–protein contact sites in IAV-infected human cells. This revealed previously unrecognized virus–host interactions linked to spatially organized processes. We identified host factors linked to the maturation of distinct glycoforms of the viral surface glycoprotein haemagglutinin through the membrane-bound endoplasmic reticulum–Golgi system. In the nucleus, we observed the progressive disassembly of paraspeckles (phase-separated membraneless compartments) across multiple cell lines. Mechanistically, viral nucleoprotein and non-structural protein 1 interact with host paraspeckle proteins, the viral endonuclease PA-X degrades long non-coding RNA housed within paraspeckles and viral RNA polymerase II is inhibited to drive paraspeckle disruption, which releases host factors that facilitate IAV replication. These findings uncover mechanisms by which IAV exploits and remodels host compartments during infection. In-cell cross-linking mass spectrometry maps protein contacts in influenza-infected human cells, revealing how the virus hijacks host membrane-trafficking factors and dismantles nuclear paraspeckles to enhance replication.
A virion-wide spatial and quantitative protein proximity map of herpes simplex virus 1 (HSV-1) is defined by combining cross-linking mass spectrometry with quantitative proteomics, showing how conserved organizational principles shape virus-specific virion interaction networks during herpesvirus maturation.
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