Acquisition of Hrs, an essential component of phagosomal maturation, is impaired by mycobacteria

Otilia V Vieira1, Rene E Harrison, Cameron C Scott

  • 1Cell Biology Program, Hospital for Sick Children, and Department of Biochemistry, University of Toronto, Ontario M5G 1X8, Canada.

Insights

Pathogenic mycobacteria block phagosome maturation by preventing the recruitment of Hrs, a key protein sorting molecule. This failure to recruit Hrs arrests phagosome development, aiding bacterial survival within macrophages.

Area of Science:

  • Cell Biology
  • Immunology
  • Microbiology

Background:

  • Pathogenic mycobacteria evade host defenses by disrupting phagolysosome formation within macrophages.
  • The molecular mechanisms governing normal phagosome maturation and how mycobacteria interfere with them are not fully understood.

Purpose of the Study:

  • To investigate the role of Hrs (hepatocyte growth factor-regulated tyrosine kinase substrate) in phagosome maturation.
  • To determine if mycobacteria prevent Hrs recruitment to phagosomes as a survival mechanism.

Main Methods:

  • Used small interfering RNA to deplete Hrs in macrophage cell lines.
  • Analyzed phagosome maturation markers, including lysobisphosphatidic acid acquisition and luminal acidification.
  • Assessed Hrs association with phagosomes containing inert particles or different Mycobacterium species (M. smegmatis and M. marinum).

Main Results:

  • Hrs is recruited to phagosomes via its FYVE domain interacting with phosphatidylinositol 3-phosphate.
  • Hrs depletion impairs phagosome maturation, arresting it at an early sorting endosomal stage.
  • Mycobacterial phagosomes exhibit significantly reduced Hrs recruitment compared to phagosomes with inert particles.
  • Hrs recruitment is inversely correlated with mycobacterial virulence, with less recruitment observed for virulent M. marinum.

Conclusions:

  • Hrs is essential for normal phagosome maturation.
  • Pathogenic mycobacteria likely prevent Hrs recruitment to phagosomes, contributing to their intracellular survival by arresting phagosome maturation.

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