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Updated: Jul 4, 2026

In Vivo Assessment of Alveolar Macrophage Efferocytosis Following Ozone Exposure
Published on: October 22, 2019
Peroxisome proliferator-activated receptor-gamma regulates the expression of alveolar macrophage macrophage
Tracey L Bonfield1, Mary Jane Thomassen, Carol F Farver
1Department of Pediatrics, Case Western Reserve University, Cleveland, OH 44109, USA. tracey.bonfield@case.edu
Abstract:
Macrophage CSF (M-CSF) regulates monocyte differentiation, activation, and foam cell formation. We have observed that it is elevated in human pulmonary alveolar proteinosis (PAP) and in the GM-CSF knockout mouse, a murine model for PAP. A potential regulator of M-CSF, peroxisome proliferator-activated receptor-gamma (PPARgamma), is severely deficient in both human PAP and the GM-CSF knockout mouse. To investigate the role of PPARgamma in alveolar macrophage homeostasis, we generated myeloid-specific PPARgamma knockout mice using the Lys-Cre method to knock out the floxed PPARgamma gene. Similar to the GM-CSF-deficient mouse, absence of alveolar macrophage PPARgamma resulted in development of lung pathology resembling PAP in 16-wk-old mice, along with excess M-CSF gene expression and secretion. In ex vivo wild-type alveolar macrophages, we observed that M-CSF itself is capable of inducing foam cell formation similar to that seen in PAP. Overexpression of PPARgamma prevented LPS-stimulated M-CSF production in RAW 264.7 cells, an effect that was abrogated by a specific PPARgamma antagonist, GW9662. Use of proteasome inhibitor, MG-132 or a PPARgamma agonist, pioglitazone, prevented LPS-mediated M-CSF induction. Using chromatin immunoprecipitation, we found that PPARgamma is capable of regulating M-CSF through transrepression of NF-kappaB binding at the promoter. Gel-shift assay experiments confirmed that pioglitazone is capable of blocking NF-kappaB binding. Taken together, these data suggest that M-CSF is an important mediator of alveolar macrophage homeostasis, and that transcriptional control of M-CSF production is regulated by NF-kappaB and PPARgamma.
Insights
Macrophage CSF (M-CSF) drives foam cell formation and lung disease. PPARgamma deficiency increases M-CSF, while PPARgamma activation suppresses it, revealing a key pathway for alveolar macrophage homeostasis.
Area of Science:
- Immunology
- Cell Biology
- Pulmonary Medicine
Background:
- Macrophage colony-stimulating factor (M-CSF) influences monocyte differentiation and foam cell formation.
- M-CSF is elevated in pulmonary alveolar proteinosis (PAP) and its mouse models.
- Peroxisome proliferator-activated receptor-gamma (PPARgamma) is deficient in PAP.
Purpose of the Study:
- To investigate the role of PPARgamma in alveolar macrophage homeostasis.
- To elucidate the regulatory mechanisms of M-CSF production in the lung.
Main Methods:
- Generated myeloid-specific PPARgamma knockout mice.
- Analyzed lung pathology and M-CSF expression in knockout and wild-type mice.
- Utilized cell culture (RAW 264.7) with pharmacological inhibitors and agonists.
- Performed chromatin immunoprecipitation and gel-shift assays.
Main Results:
- Absence of PPARgamma in alveolar macrophages led to PAP-like lung pathology and increased M-CSF.
- M-CSF induced foam cell formation in wild-type alveolar macrophages.
- PPARgamma overexpression inhibited M-CSF production; PPARgamma antagonists/agonists modulated M-CSF levels.
- PPARgamma regulates M-CSF via transrepression of NF-kappaB binding at the M-CSF promoter.
Conclusions:
- M-CSF is a critical mediator of alveolar macrophage homeostasis.
- PPARgamma and NF-kappaB are key transcriptional regulators of M-CSF production.
- Targeting the PPARgamma-NF-kappaB-M-CSF axis may offer therapeutic strategies for PAP.
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