Tolerance of a phage element by Streptococcus pneumoniae leads to a fitness defect during colonization

Hilary K DeBardeleben1, Elena S Lysenko1, Ankur B Dalia2

  • 1Department of Microbiology, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania, USA.

Insights

Temperate phages like Spn1 can impair Streptococcus pneumoniae colonization. Phage gene expression, not just presence, causes a significant fitness defect in the bacterial host during upper respiratory tract colonization.

Area of Science:

  • Microbiology
  • Bacteriology
  • Virology

Background:

  • * Streptococcus pneumoniae colonization initiates disease pathogenesis.
  • * Temperate phages are found in many clinical isolates, but their role in colonization is unclear.
  • * A novel prophage, Spn1, was identified in S. pneumoniae, existing in integrated and episomal forms.

Purpose of the Study:

  • * To investigate the impact of the novel prophage Spn1 on Streptococcus pneumoniae fitness during colonization.
  • * To determine if Spn1 gene expression or lytic activity confers a fitness defect.

Main Methods:

  • * Comparative colonization assays in a mouse model using Spn1-positive and Spn1-negative strains.
  • * Construction of an Spn1 mutant unable to form episomes or express phage genes.
  • * In vitro analysis of bacterial autolysis, chain length, and penicillin resistance.

Main Results:

  • * The Spn1-positive strain exhibited a >70-fold competitive disadvantage compared to the Spn1-negative strain during colonization.
  • * A mutant lacking Spn1 episomal form and gene expression competed equally with the Spn1-negative strain.
  • * Spn1 presence correlated with defective LytA-mediated autolysis, increased bacterial chain length, and penicillin resistance.

Conclusions:

  • * Expression of Spn1 phage genes or lytic activity causes a significant fitness defect in Streptococcus pneumoniae during colonization.
  • * Spn1 alters host cell wall physiology, leading to increased chain length and lysis resistance.
  • * These findings offer new insights into the complex interactions between bacteria, prophages, and host fitness.

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