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Method for the Isolation of Francisella tularensis Outer Membranes
Published on: June 29, 2010
A Francisella tularensis pathogenicity island protein essential for bacterial proliferation within the host cell
Marina Santic1, Maelle Molmeret, Jeffrey R Barker
1Department of Microbiology and Immunology, University of Louisville, College of Medicine, Louisville, KY 40202, USA.
Abstract:
Francisella tularensis is an intracellular bacterial pathogen, and is a category A bioterrorism agent. Within quiescent human macrophages, the F. tularensis pathogenicity island (FPI) is essential for bacterial growth within quiescent macrophages. The F. tularensis-containing phagosome matures to a late endosome-like stage that does not fuse to lysosomes for 1-8 h, followed by gradual bacterial escape into the macrophage cytosol. Here we show that the FPI protein IglD is essential for intracellular replication in primary human monocyte-derived macrophages (hMDMs). While the parental strain replicates robustly in pulmonary, hepatic and splenic tissues of BALB/c mice associated with severe immunopathologies, the isogenic iglD mutant is severely defective. Within hMDMs, the iglD mutant-containing phagosomes mature to either a late endosome-like phagosome, similar to the parental strain, or to a phagolysosome, similar to phagosomes harbouring the iglC mutant control. Despite heterogeneity and alterations in phagosome biogenesis, the iglD mutant bacteria escape into the cytosol faster than the parental strain within hMDMs and pulmonary cells of BALB/c mice. Co-infections of hMDMs with the wild-type strain and the iglD mutant, or super-infection of iglD mutant-infected hMDMs with the wild-type strain show that the mutant strain replicates robustly within the cytosol of hMDMs coinhabited by the wild strain. However, when the wild-type strain-infected hMDMs are super-infected by the iglD mutant, the mutant fails to replicate in the cytosol of communal macrophages. This is the first demonstration of a F. tularensis novel protein essential for proliferation in the macrophage cytosol. Our data indicate that F. tularensis transduces signals to the macrophage cytosol to remodel it into a proliferative niche, and IglD is essential for transduction of these signals.
Insights
Francisella tularensis IglD protein is crucial for bacterial growth inside human macrophages. This pathogen remodels the host cell cytosol into a niche for replication, with IglD essential for this process.
Area of Science:
- Microbiology
- Immunology
- Bacterial Pathogenesis
Background:
- Francisella tularensis is a Category A bioterrorism agent and intracellular bacterial pathogen.
- The F. tularensis pathogenicity island (FPI) is vital for intracellular growth in macrophages.
- F. tularensis resides within phagosomes that mature to a late endosome-like stage, avoiding lysosomal fusion and eventually escaping into the cytosol.
Purpose of the Study:
- To investigate the role of the FPI protein IglD in Francisella tularensis intracellular replication within human macrophages.
- To elucidate the function of IglD in bacterial survival, phagosome maturation, and cytosol escape.
Main Methods:
- Utilized isogenic iglD mutant strains of F. tularensis.
- Infection of primary human monocyte-derived macrophages (hMDMs) and BALB/c mice.
- Phagosome maturation and bacterial localization analyses (cytosol vs. phagosome).
- Co-infection and super-infection experiments in hMDMs.
Main Results:
- The iglD mutant showed severe defects in intracellular replication in hMDMs and mouse tissues.
- Phagosomes containing the iglD mutant exhibited heterogeneous maturation, including phagolysosome formation.
- The iglD mutant escaped into the cytosol faster than the wild-type strain.
- The iglD mutant replicated robustly in the cytosol when co-infecting hMDMs with the wild-type strain, but not when super-infecting wild-type infected cells.
Conclusions:
- IglD is essential for Francisella tularensis proliferation within the macrophage cytosol.
- F. tularensis signals to the host cell cytosol to create a replicative niche.
- IglD plays a critical role in transducing these signals for cytosolic niche formation and bacterial proliferation.
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