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Tractable Mammalian Cell Infections with Protozoan-primed Bacteria
Published on: April 2, 2013
Passage through Tetrahymena tropicalis triggers a rapid morphological differentiation in Legionella pneumophila
Gary Faulkner1, Sharon G Berk, Elizabeth Garduño
1Department of Microbiology & Immunology, Dalhousie University, Sir Charles Tupper Building, 7th floor, 5850 College Street, Halifax, Nova Scotia, Canada B3H-1X5.
Abstract:
The intracellular bacterial pathogen Legionella pneumophila follows a developmental cycle in which replicative forms (RFs) differentiate into infectious stationary-phase forms (SPFs) in vitro and in vivo into highly infectious mature intracellular forms (MIFs). The potential relationships between SPFs and MIFs remain uncharacterized. Previously we determined that L. pneumophila survives, but does not replicate, while it transiently resides (for 1 to 2 h) in food vacuoles of the freshwater ciliate Tetrahymena tropicalis before being expelled as legionellae-laden pellets. We report here that SPFs have the ability to rapidly (<1 h) and directly (in the absence of bacterial replication) differentiate into MIFs while in transit through T. tropicalis, indicating that SPFs and MIFs constitute a differentiation continuum. Mutant RFs lacking the sigma factor gene rpoS, or the response regulator gene letA, were unable to produce normal SPFs in vitro and did not fully differentiate into MIFs in vivo, further supporting the existence of a common mechanism of differentiation shared by SPFs and MIFs. Mutants with a defective Dot/Icm system morphologically differentiated into MIFs while in transit through T. tropicalis. Therefore, T. tropicalis has allowed us to unequivocally conclude that SPFs can directly differentiate into MIFs and that the Dot/Icm system is not required for differentiation, two events that could not be experimentally addressed before. The Tetrahymena model can now be exploited to study the signals that trigger MIF development in vivo and is the only replication-independent model reported to date that allows the differentiation of Dot/Icm mutants into MIFs.
Insights
Legionella pneumophila stationary-phase forms (SPFs) directly differentiate into mature intracellular forms (MIFs) within the ciliate Tetrahymena tropicalis. This differentiation occurs rapidly and independently of bacterial replication or the Dot/Icm system.
Area of Science:
- Microbiology
- Cell Biology
- Bacterial Pathogenesis
Background:
- Legionella pneumophila undergoes a developmental cycle involving differentiation from replicative forms (RFs) to stationary-phase forms (SPFs) and mature intracellular forms (MIFs).
- The relationship between SPFs and MIFs has been unclear.
- Previous work showed L. pneumophila survives transiently in Tetrahymena tropicalis food vacuoles without replication.
Purpose of the Study:
- To investigate the differentiation potential of SPFs into MIFs.
- To characterize the role of bacterial replication and the Dot/Icm system in this differentiation process.
- To validate Tetrahymena tropicalis as a model for studying L. pneumophila differentiation.
Main Methods:
- Utilizing Tetrahymena tropicalis as a host model to observe L. pneumophila differentiation in vivo.
- Analyzing differentiation of wild-type and mutant L. pneumophila strains (rpoS, letA, Dot/Icm mutants).
- Morphological assessment of bacterial forms within the host.
Main Results:
- SPFs directly differentiate into MIFs within T. tropicalis in under 1 hour, independent of replication.
- Mutations in rpoS or letA impaired SPF to MIF differentiation.
- L. pneumophila with a defective Dot/Icm system still differentiated into MIFs in T. tropicalis.
Conclusions:
- SPFs and MIFs represent a differentiation continuum.
- Tetrahymena tropicalis facilitates rapid, replication-independent differentiation of L. pneumophila into MIFs.
- The Dot/Icm system is not required for this differentiation, and the Tetrahymena model is valuable for studying differentiation triggers.
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