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Updated: Jun 23, 2026

In-vitro Reconstitution of Bacterial Ubiquitination and VCP/p97-mediated Elimination
Published on: January 2, 2026
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
Abstract:
Like several other intracellular pathogens, Mycobacterium marinum (Mm) escapes from phagosomes into the host cytosol where it can polymerize actin, leading to motility that promotes spread to neighboring cells. However, only approximately 25% of internalized Mm form actin tails, and the fate of the remaining bacteria has been unknown. Here we show that cytosolic access results in a new and intricate host pathogen interaction: host macrophages ubiquitinate Mm, while Mm shed their ubiquitinated cell walls. Phagosomal escape and ubiquitination of Mm occurred rapidly, prior to 3.5 hours post infection; at the same time, ubiquitinated Mm cell wall material mixed with host-derived dense membrane networks appeared in close proximity to cytosolic bacteria, suggesting cell wall shedding and association with remnants of the lysed phagosome. At 24 hours post-infection, Mm that polymerized actin were not ubiquitinated, whereas ubiquitinated Mm were found within LAMP-1-positive vacuoles resembling lysosomes. Though double membranes were observed which sequestered Mm away from the cytosol, targeting of Mm to the LAMP-1-positive vacuoles was independent of classical autophagy, as demonstrated by absence of LC3 association and by Atg5-independence of their formation. Further, ubiquitination and LAMP-1 association did not occur with mutant avirulent Mm lacking ESX-1 (type VII) secretion, which fail to escape the primary phagosome; apart from its function in phagosome escape, ESX-1 was not directly required for Mm ubiquitination in macrophages or in vitro. These data suggest that virulent Mm follow two distinct paths in the cytosol of infected host cells: bacterial ubiquitination is followed by sequestration into lysosome-like organelles via an autophagy-independent pathway, while cell wall shedding may allow escape from this fate to permit continued residence in the cytosol and formation of actin tails.
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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