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.

Journal of Bacteriology
|September 23, 2008
PubMed

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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