Staphylococcus aureus adherence to influenza A virus-infected and control cell cultures: evidence for multiple

Insights

Influenza A virus infection enhances Staphylococcus aureus adherence to host cells, increasing pneumonia risk. This study identifies multiple bacterial surface proteins responsible for this superinfection mechanism.

Area of Science:

  • Microbiology
  • Virology
  • Immunology

Background:

  • Influenza epidemics are associated with increased Staphylococcus aureus pneumonia and mortality.
  • Influenza A virus infection is hypothesized to promote S. aureus adherence, leading to bacterial superinfection.

Purpose of the Study:

  • To investigate the adherence of various S. aureus strains to influenza A virus-infected host cells.
  • To identify bacterial surface components mediating adherence to infected and uninfected cells.

Main Methods:

  • Used 3H-labeled S. aureus strains, including mutants deficient in specific surface factors.
  • Compared adherence to Madin-Darby canine kidney (MDCK) cell monolayers, uninfected and infected with influenza A virus, via radioassay.
  • Assessed the effect of enzymatic (trypsin, protease) and heat treatments on bacterial adherence.
  • Utilized staphylococcal thermal extracts in blocking assays to identify adhesins.

Main Results:

  • Six of seven S. aureus strains showed significantly enhanced adherence to virus-infected cells compared to controls.
  • Surface hydrophobicity did not correlate with adherence.
  • Protease and trypsin treatments substantially reduced adherence, indicating proteinaceous adhesins.
  • Heat treatment suggested both thermolabile and thermostable adhesins.
  • Blocking assays with staphylococcal extracts demonstrated significant reduction in adherence to both cell types.

Conclusions:

  • Influenza A virus infection significantly enhances S. aureus adherence to host cells.
  • Multiple distinct surface proteins on S. aureus mediate binding to both uninfected and virus-infected cells.
  • Understanding these interactions is crucial for addressing secondary bacterial pneumonia during influenza epidemics.

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