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Signal transduction in the protozoan host Hartmannella vermiformis upon attachment to Legionella pneumophila
1Department of Microbiology and Immunology, University of Kentucky, Chandler Medical Center, Lexington 4053-0084, USA.
Abstract:
Intracellular replication of the Legionnaires' disease bacterium, Legionella pneumophila, within protozoa plays a major role in bacterial ecology and pathogenesis. Invasion of the protozoan host Hartmannella vermiformis by L. pneumophila is mediated by attachment to the Gal/GalNAc lectin receptor, which is similar to the beta(2) integrin transmembrane receptors of mammalian cells. Bacterial invasion is associated with induction of a protein tyrosine phosphatase (PTPase) activity in H. vermiformis that results in tyrosine dephosphorylation of the lectin receptor and several cytoskeletal proteins. In this report, we show that entry of L. pneumophila into H. vermiformis is not required to induce tyrosine dephosphorylation of one of the cytoskeletal proteins, paxillin. Tyrosine dephosphorylation of paxillin is mediated at the level of bacterial attachment to the lectin receptor, and is blocked by inhibiting bacterial attachment to the lectin receptor. Attachment of L. pneumophila to the lectin receptor is not mediated by the type IV pilus, which is one of the bacterial ligands involved in attachment to protozoa. Interestingly, the lectin receptor in resting H. vermiformis is associated with several phosphorylated proteins that are dissociated upon bacterial attachment and invasion. We show that the L. pneumophila-induced PTPase activity in H. vermiformis and the associated tyrosine dephosphorylation of host proteins can be mimicked by the cytoskeletal disrupting agent, cytochalasin D. Taken together, our data indicate that attachment of L. pneumophila to the lectin receptor of H. vermiformis induces a PTPase activity, tyrosine dephosphorylation of the lectin and cytoskeletal proteins, dissociation of the lectin from its associated phosphorylated proteins, and most probably disassembly of the cytoskeleton. This novel L. pneumophila-protozoa interaction may be a bacterial strategy to invade protozoa and to be trafficked into a replicative 'niche', or to block differentiation of the protozoan host into a cyst in which L. pneumophila cannot replicate.
Insights
Legionella pneumophila attachment to protozoa induces host cell tyrosine dephosphorylation, mimicking cytoskeleton disruption. This bacterial strategy likely facilitates invasion and replication within protozoan hosts.
Area of Science:
- Microbiology
- Cell Biology
- Pathogenesis
Background:
- Intracellular replication of Legionella pneumophila within protozoa is crucial for its ecology and pathogenesis.
- L. pneumophila invasion of Hartmannella vermiformis involves attachment to the Gal/GalNAc lectin receptor, analogous to mammalian beta(2) integrins.
- Bacterial invasion correlates with host protein tyrosine phosphatase (PTPase) activity, leading to dephosphorylation of the lectin receptor and cytoskeletal proteins.
Purpose of the Study:
- To investigate the role of L. pneumophila attachment versus entry in inducing tyrosine dephosphorylation of host proteins.
- To elucidate the mechanism by which L. pneumophila manipulates host cell signaling pathways during invasion.
Main Methods:
- Studied tyrosine dephosphorylation of paxillin, a cytoskeletal protein, in H. vermiformis during L. pneumophila interaction.
- Investigated the role of bacterial attachment to the lectin receptor and type IV pilus in this process.
- Utilized cytochalasin D, a cytoskeletal disruptor, to mimic L. pneumophila-induced effects.
Main Results:
- L. pneumophila entry into H. vermiformis is not required for tyrosine dephosphorylation of paxillin.
- Dephosphorylation of paxillin occurs at the bacterial attachment stage and is blocked by inhibiting attachment.
- Bacterial attachment causes dissociation of phosphorylated proteins from the lectin receptor and can be mimicked by cytochalasin D.
Conclusions:
- L. pneumophila attachment to the protozoan lectin receptor triggers PTPase activity, leading to dephosphorylation of host proteins and likely cytoskeleton disassembly.
- This interaction represents a bacterial strategy for invading protozoa, establishing a replicative niche, or preventing cyst formation.
- The findings reveal a novel mechanism of host-pathogen interaction at the protozoan level.