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Updated: Jun 13, 2025

Tractable Mammalian Cell Infections with Protozoan-primed Bacteria
Published on: April 2, 2013
Iron-depleting nutritional immunity controls extracellular bacterial replication in Legionella pneumophila infections
Ascención Torres-Escobar1, Ashley Wilkins1,2, María D Juárez-Rodríguez3
1Department of Microbiology and Immunology, Louisiana State University Health Sciences Center-Shreveport, Shreveport, LA, 71130, USA.
Abstract:
The accidental human pathogen Legionella pneumophila (Lp) is the etiological agent for a severe atypical pneumonia known as Legionnaires' disease. In human infections and animal models of disease alveolar macrophages are the primary cellular niche that supports bacterial replication within a unique intracellular membrane-bound organelle. The Dot/Icm apparatus-a type IV secretion system that translocates ~300 bacterial proteins within the cytosol of the infected cell-is a central virulence factor required for intracellular growth. Mutant strains lacking functional Dot/Icm apparatus are transported to and degraded within the lysosomes of infected macrophages. The early foundational work from Dr. Horwitz's group unequivocally established that Legionella does not replicate extracellularly during infection-a phenomenon well supported by experimental evidence for four decades. Our data challenges this paradigm by demonstrating that macrophages and monocytes provide the necessary nutrients and support robust Legionella extracellular replication. We show that the previously reported lack of Lp extracellular replication is not a bacteria intrinsic feature but rather a result of robust restriction by serum-derived nutritional immunity factors. Specifically, the host iron-sequestering protein Transferrin is identified here as a critical suppressor of Lp extracellular replication in an iron-dependent manner. In iron-overload conditions or in the absence of Transferrin, Lp bypasses growth restriction by IFNγ-primed macrophages though extracellular replication. It is well established that certain risk factors associated with development of Legionnaires' disease, such as smoking, produce a chronic pulmonary environment of iron-overload. Our work indicates that iron-overload could be an important determinant of severe infection by allowing Lp to overcome nutritional immunity and replicate extracellularly, which in turn would circumvent intracellular cell intrinsic host defenses. Thus, we provide evidence for nutritional immunity as a key underappreciated host defense mechanism in Legionella pathogenesis.
Insights
Legionella pneumophila (Lp) can replicate extracellularly, challenging prior beliefs. Host nutritional immunity, specifically Transferrin, restricts this growth, but iron overload enables Lp replication, potentially worsening Legionnaires' disease.
Area of Science:
- Microbiology
- Immunology
- Pathogenesis
Background:
- Legionella pneumophila (Lp) causes Legionnaires' disease, typically replicating inside macrophages.
- The Dot/Icm secretion system is crucial for intracellular Lp growth.
- Extracellular Lp replication was previously considered non-existent.
Purpose of the Study:
- To investigate the potential for Legionella pneumophila extracellular replication.
- To identify host factors that regulate Lp replication.
- To understand the role of nutritional immunity in Legionnaires' disease pathogenesis.
Main Methods:
- Macrophage and monocyte culture models.
- Analysis of Lp replication under various host-derived factor conditions.
- Iron-overload and Transferrin-depletion experiments.
Main Results:
- Macrophages and monocytes support robust extracellular Lp replication.
- Host Transferrin, an iron-sequestering protein, restricts extracellular Lp growth.
- Iron-overload conditions or Transferrin absence permit extracellular Lp replication, even in IFNγ-primed macrophages.
Conclusions:
- Extracellular Lp replication is restricted by host nutritional immunity, not an intrinsic bacterial limitation.
- Iron availability is a critical factor influencing Lp replication strategy.
- Iron-overload in hosts may promote severe Legionnaires' disease by enabling extracellular Lp replication and evading host defenses.
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