Atg5-independent sequestration of ubiquitinated mycobacteria

Cathleen A Collins1, Ann De Mazière, Suzanne van Dijk

  • 1Department of Microbial Pathogenesis, Genentech Inc, South San Francisco, CA, USA. cathleen.collins@ucsf.edu

Plos Pathogens
|May 14, 2009
PubMed

Insights

Mycobacterium marinum (Mm) in host cytosol is ubiquitinated and sequestered into lysosomes via an autophagy-independent pathway. Some Mm shed cell walls, allowing continued cytosolic residence and actin-based motility.

Area of Science:

  • Microbiology
  • Cell Biology
  • Immunology

Background:

  • Mycobacterium marinum (Mm) is an intracellular pathogen that escapes phagosomes into the host cytosol.
  • Cytosolic Mm polymerizes actin for motility and cell-to-cell spread.
  • The fate of cytosolic Mm not forming actin tails was previously unknown.

Purpose of the Study:

  • To investigate the host-pathogen interactions of Mycobacterium marinum within the host cell cytosol.
  • To elucidate the mechanisms governing the fate of cytosolic Mm.
  • To understand the role of ubiquitination and host cell pathways in Mm containment.

Main Methods:

  • Macrophage infection models with Mycobacterium marinum.
  • Immunofluorescence microscopy to detect ubiquitination, LAMP-1, and LC3.
  • Analysis of wild-type and mutant Mm strains (e.g., ESX-1 deficient).
  • Assessment of autophagy markers (LC3, Atg5).

Main Results:

  • Host macrophages ubiquitinate cytosolic Mm rapidly after phagosomal escape.
  • Ubiquitinated Mm are sequestered into LAMP-1-positive vacuoles, independent of classical autophagy.
  • A subset of Mm shed ubiquitinated cell walls, potentially escaping sequestration.
  • Actin tail formation is associated with non-ubiquitinated cytosolic Mm.

Conclusions:

  • Mycobacterium marinum follows distinct intracellular pathways after phagosomal escape.
  • Ubiquitination targets Mm for autophagy-independent lysosomal sequestration.
  • Cell wall shedding allows some Mm to evade sequestration and continue cytosolic replication and motility.
  • The ESX-1 secretion system is crucial for phagosomal escape but not directly for subsequent ubiquitination.

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