Azithromycin alters macrophage phenotype and pulmonary compartmentalization during lung infection with Pseudomonas
David J Feola1, Beth A Garvy, Theodore J Cory
1Department of Pharmacy Practice and Science, University of Kentucky College of Pharmacy, Lexington, KY 43536-0082, USA. djfeol2@email.uky.edu
Abstract:
Infection with mucoid strains of Pseudomonas aeruginosa in chronic inflammatory diseases of the airway is difficult to eradicate and can cause excessive inflammation. The roles of alternatively activated and regulatory subsets of macrophages in this pathophysiological process are not well characterized. We previously demonstrated that azithromycin induces an alternatively activated macrophage-like phenotype in vitro. In the present study, we tested whether azithromycin affects the macrophage activation status and migration in the lungs of P. aeruginosa-infected mice. C57BL/6 mice received daily doses of oral azithromycin and were infected intratracheally with a mucoid strain of P. aeruginosa. The properties of macrophage activation, immune cell infiltration, and markers of pulmonary inflammation in the lung interstitial and alveolar compartments were evaluated postinfection. Markers of alternative macrophage activation were induced by azithromycin treatment, including the surface expression of the mannose receptor, the upregulation of arginase 1, and a decrease in the production of proinflammatory cytokines. Additionally, azithromycin increased the number of CD11b(+) monocytes and CD4(+) T cells that infiltrated the alveolar compartment. A predominant subset of CD11b(+) cells was Gr-1 positive (Gr-1(+)), indicative of a subset of cells that has been shown to be immunoregulatory. These differences corresponded to decreases in neutrophil influx into the lung parenchyma and alteration of the characteristics of peribronchiolar inflammation without any change in the clearance of the organism. These results suggest that the immunomodulatory effects of azithromycin are associated with the induction of alternative and regulatory macrophage activation characteristics and alteration of cellular compartmentalization during infection.
Insights
Azithromycin treatment in Pseudomonas aeruginosa-infected mice modulated macrophage activation, promoting regulatory immune cells and reducing lung inflammation. This suggests azithromycin
Area of Science:
- Immunology
- Pulmonary Medicine
- Pharmacology
Background:
- Chronic airway inflammation from mucoid Pseudomonas aeruginosa is difficult to treat.
- The roles of alternatively activated and regulatory macrophages in this process are unclear.
Purpose of the Study:
- To investigate azithromycin's effects on macrophage activation and immune cell migration in the lungs during P. aeruginosa infection.
- To determine if azithromycin influences the immunopathology of chronic airway inflammation.
Main Methods:
- Mice infected with mucoid P. aeruginosa received daily oral azithromycin.
- Macrophage activation markers, immune cell infiltration (CD11b+, CD4+ T cells, neutrophils), and pulmonary inflammation were assessed.
- Analysis focused on interstitial and alveolar lung compartments.
Main Results:
- Azithromycin induced alternative macrophage activation markers (mannose receptor, arginase 1) and decreased proinflammatory cytokines.
- Treatment increased CD11b+ monocytes and CD4+ T cells in the alveoli, with a notable Gr-1+ subset indicating immunoregulatory cells.
- Neutrophil influx and peribronchiolar inflammation characteristics were reduced without affecting bacterial clearance.
Conclusions:
- Azithromycin exhibits immunomodulatory effects by inducing alternative and regulatory macrophage phenotypes.
- The drug alters immune cell distribution within the lungs during P. aeruginosa infection.
- These findings suggest a therapeutic potential for azithromycin in managing chronic airway inflammation associated with P. aeruginosa.
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