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GM-CSF and the impaired pulmonary innate immune response following hyperoxic stress
Carlos E O Baleeiro1, Paul J Christensen, Susan B Morris
1Division of Pulmonary and Critical Care Medicine, Department of Internal Medicine, University of Michigan, USA.
Abstract:
We have previously demonstrated that mice exposed to sublethal hyperoxia (an atmosphere of >95% oxygen for 4 days, followed by return to room air) have significantly impaired pulmonary innate immune response. Alveolar macrophages (AM) from hyperoxia-exposed mice exhibit significantly diminished antimicrobial activity and markedly reduced production of inflammatory cytokines in response to stimulation with LPS compared with AM from control mice in normoxia. As a consequence of these defects, mice exposed to sublethal hyperoxia are more susceptible to lethal pneumonia with Klebsiella pneumoniae than control mice. Granulocyte/macrophage colony-stimulating factor (GM-CSF) is a growth factor produced by normal pulmonary alveolar epithelial cells that is critically involved in maintenance of normal AM function. We now report that sublethal hyperoxia in vivo leads to greatly reduced alveolar epithelial cell GM-CSF expression. Systemic treatment of mice with recombinant murine GM-CSF during hyperoxia exposure preserved AM function, as indicated by cell surface Toll-like receptor 4 expression and by inflammatory cytokine secretion following stimulation with LPS ex vivo. Treatment of hyperoxic mice with GM-CSF significantly reduced lung bacterial burden following intratracheal inoculation with K. pneumoniae, returning lung bacterial colony-forming units to the level of normoxic controls. These data point to a critical role for continuous GM-CSF activity in the lung in maintenance of normal AM function and demonstrate that lung injury due to hyperoxic stress results in significant impairment in pulmonary innate immunity through suppression of alveolar epithelial cell GM-CSF expression.
Insights
Sublethal hyperoxia impairs lung immunity by reducing alveolar epithelial cell granulocyte/macrophage colony-stimulating factor (GM-CSF). GM-CSF treatment restored macrophage function and reduced bacterial pneumonia susceptibility in mice.
Area of Science:
- Pulmonary immunology
- Innate immunity
- Microbiology
Background:
- Sublethal hyperoxia (>95% oxygen) impairs pulmonary innate immune response in mice.
- Alveolar macrophages (AM) from hyperoxia-exposed mice show reduced antimicrobial activity and inflammatory cytokine production.
- Hyperoxia-induced immune defects increase susceptibility to bacterial pneumonia (Klebsiella pneumoniae).
Purpose of the Study:
- To investigate the role of granulocyte/macrophage colony-stimulating factor (GM-CSF) in hyperoxia-induced pulmonary immune dysfunction.
- To determine if GM-CSF administration can restore AM function and reduce susceptibility to pneumonia after hyperoxia.
Main Methods:
- Mice were exposed to sublethal hyperoxia or normoxia.
- GM-CSF expression in alveolar epithelial cells was assessed.
- AM function (Toll-like receptor 4 expression, cytokine secretion) was evaluated ex vivo after LPS stimulation.
- Mice were inoculated intratracheally with K. pneumoniae, and lung bacterial burden was quantified.
Main Results:
- Sublethal hyperoxia significantly reduced alveolar epithelial cell GM-CSF expression in vivo.
- Systemic GM-CSF treatment preserved AM function (TLR4 expression, cytokine secretion) in hyperoxic mice.
- GM-CSF treatment significantly reduced lung bacterial burden in K. pneumoniae-infected hyperoxic mice.
Conclusions:
- Continuous GM-CSF activity is critical for maintaining normal AM function in the lung.
- Hyperoxic lung injury impairs pulmonary innate immunity by suppressing alveolar epithelial cell GM-CSF expression.
- GM-CSF is a potential therapeutic target to restore lung immunity after hyperoxic stress.
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