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Alveolar macrophage activation in experimental legionellosis
1Medical Research Service, Veterans Affairs Medical Center, Seattle, WA 98108.
Abstract:
Legionella pneumophila is a facultative intracellular parasite of alveolar macrophages. In vitro studies have shown that lymphokine-activated mononuclear phagocytes inhibit intracellular replication of L. pneumophila. To determine if recovery from legionellosis is associated with activation of alveolar macrophages in vivo to resist L. pneumophila, we studied an animal model of Legionnaires' disease. Rats were exposed to aerosolized L. pneumophila and alveolar macrophages were harvested during the recovery phase of infection. We compared these alveolar exudate macrophages with normal resident alveolar macrophages for the capacity to support or inhibit the intracellular growth of L. pneumophila. We also measured Ia expression as a marker of immunologic activation, and studied binding of bacteria, superoxide release, and the expression of transferrin receptors as potential mechanisms of resistance to L. pneumophila. For perspective on the specificity of these responses, we also studied alveolar exudate cells elicited by inhalation of heat-killed L. pneumophila, live Listeria monocytogenes, and live Escherichia coli. We found that alveolar exudate macrophages elicited by live L. pneumophila, but not heat-killed L. pneumophila, resisted the intracellular growth of L. pneumophila. Exudate macrophages in resolving legionellosis exhibited increased Ia expression, diminished superoxide production, and downregulation of transferrin receptors. Binding of L. pneumophila to exudate macrophages was indistinguishable from that to resident macrophages in the presence of normal serum, and augmented in the presence of immune serum. Alveolar exudate macrophages elicited by E. coli also inhibited growth of L. pneumophila, and exhibited a modest increase in Ia expression without change in transferrin receptors. Exudate cells induced by L. monocytogenes exhibited up-regulation of Ia without diminution of superoxide release. Alveolar cells harvested after inhalation of heat-killed L. pneumophila did not differ from resident alveolar macrophages in the expression of surface markers. These findings suggest that alveolar macrophages are immunologically activated in vivo to serve as effector cells in resolving legionellosis, and that live bacteria are required to induce this expression of immunity. The mechanism of resistance to parasitism by L. pneumophila may entail restriction of the intracellular availability of iron, but does not involve diminished bacterial binding or an augmented respiratory burst.
Insights
Recovery from Legionnaires' disease involves activated alveolar macrophages that resist Legionella pneumophila growth. Live bacteria are essential for this immune response, potentially by limiting iron availability.
Area of Science:
- Immunology
- Microbiology
- Infectious Diseases
Background:
- Legionella pneumophila (L. pneumophila) is an intracellular parasite of macrophages.
- In vitro studies show lymphokine-activated macrophages inhibit L. pneumophila growth.
- The in vivo immune response during Legionnaires' disease is not fully understood.
Purpose of the Study:
- To investigate if alveolar macrophages are immunologically activated during recovery from legionellosis.
- To identify mechanisms of macrophage resistance to L. pneumophila in vivo.
- To determine if live bacteria are required to induce this protective immune response.
Main Methods:
- Rats were infected with aerosolized L. pneumophila.
- Alveolar macrophages were harvested during the recovery phase.
- Macrophage function was assessed by measuring L. pneumophila growth, Ia expression, superoxide release, and transferrin receptor expression.
- Control groups included macrophages elicited by heat-killed L. pneumophila, Listeria monocytogenes, and Escherichia coli.
Main Results:
- Alveolar macrophages from rats recovering from L. pneumophila infection resisted intracellular bacterial growth.
- These exudate macrophages showed increased Ia expression, decreased superoxide production, and downregulated transferrin receptors.
- Heat-killed L. pneumophila did not induce these changes.
- E. coli elicited macrophages also inhibited L. pneumophila growth, with increased Ia but unchanged transferrin receptors.
Conclusions:
- Alveolar macrophages are immunologically activated in vivo during resolution of legionellosis.
- Live L. pneumophila is required to induce this protective macrophage activation.
- Resistance mechanisms may involve restricted intracellular iron availability, not altered bacterial binding or superoxide production.