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In vitro modeling of human alveolar macrophage smoke exposure: enhanced inflammation and impaired function
Aaron R Winkler1, Karl H Nocka, Timothy H Sulahian
1Wyeth Research, Cambridge, Massachusetts 02140, USA. ARWinkler@wyeth.com
Abstract:
Pulmonary macrophages (MØs) are essential for clearance of inhaled particles, innate immunity, and lung tissue maintenance. However, the products of activated MØs have also been implicated in inflammation and tissue destruction, including in chronic obstructive pulmonary disease (COPD). Primary human alveolar macrophages (AMs) are available in limited numbers via bronchoalveolar lavage (BAL) or sputum induction, and BAL macrophages are not commonly available to all researchers. A readily available, plentiful, but representative surrogate for AMs would advance understanding of the contribution of macrophages to lung pathophysiology. Herein the authors describe a method for the in vitro derivation of AM-like cells using primary human peripheral blood monocytes differentiated in suspension with granulocyte-macrophage colony-stimulating factor (GM-CSF). The method produces a cell population with a consistent and stable phenotype. Flow cytometry reveals that GM-CSF-derived macrophages (GM-MØs) express lineage markers, immunoglobulin gamma (Fc gamma) receptors, adhesion molecules, antigen presentation coreceptors, and scavenger receptors akin to AMs. Functionally, cigarette smoke activates extracellular signal-related kinase (ERK) and p38 mitogen-activated protein (MAP) kinase, enhances interleukin 8 (IL8) production from GM-MØs and inhibits phagocytosis, phenotypes previously described for smokers' AMs. Global transcriptional profiling revealed significant overlap in regulated genes between smokers' AMs and GM-MØs treated with cigarette smoke preparations in vitro.
Insights
Researchers developed a method to create alveolar macrophage-like cells from blood monocytes. These cells mimic key functions and responses of primary alveolar macrophages, offering a valuable tool for lung disease research.
Area of Science:
- Immunology
- Cell Biology
- Pulmonary Medicine
Background:
- Pulmonary macrophages are crucial for lung health but difficult to obtain for research.
- Activated macrophages contribute to lung inflammation and diseases like COPD.
- A reliable surrogate for alveolar macrophages is needed to study lung pathophysiology.
Purpose of the Study:
- To establish an in vitro method for deriving alveolar macrophage-like cells.
- To characterize the phenotype and function of these derived cells.
- To validate their utility as a surrogate for primary alveolar macrophages.
Main Methods:
- Differentiating primary human peripheral blood monocytes in suspension using GM-CSF.
- Analyzing cell phenotype via flow cytometry for key macrophage markers.
- Assessing functional responses to cigarette smoke, including MAPK activation and phagocytosis.
- Comparing gene expression profiles with primary smokers' alveolar macrophages.
Main Results:
- GM-CSF-derived macrophages (GM-MØs) exhibited a stable phenotype expressing AM-like markers.
- GM-MØs showed functional responses to cigarette smoke, including impaired phagocytosis and increased IL8 production.
- Transcriptional profiling revealed significant overlap with smokers' AMs upon smoke exposure.
- GM-MØs successfully mimicked key characteristics of primary alveolar macrophages.
Conclusions:
- This method provides a consistent and plentiful source of AM-like cells.
- GM-MØs serve as a valid surrogate for studying macrophage roles in lung diseases.
- This advance will facilitate research into pulmonary pathophysiology and macrophage-related disorders.
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