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Investigation of Macrophage Polarization Using Bone Marrow Derived Macrophages
Published on: June 23, 2013
Macrophage programming is regulated by a cooperative interaction between fatty acid binding protein 5 and peroxisome
Manale El Kharbili1, Katja Aviszus1, Sarah K Sasse2
1Department of Immunology and Genomic Medicine, National Jewish Health, Denver, Colorado, USA.
Abstract:
Resolution of inflammation is an active process that is tightly regulated to achieve repair and tissue homeostasis. In the absence of resolution, persistent inflammation underlies the pathogenesis of chronic lung disease such as chronic obstructive pulmonary disease (COPD) with recurrent exacerbations. Over the course of inflammation, macrophage programming transitions from pro-inflammatory to pro-resolving, which is in part regulated by the nuclear receptor Peroxisome Proliferator-Activated Receptor γ (PPARγ). Our previous work demonstrated an association between Fatty Acid Binding Protein 5 (FABP5) expression and PPARγ activity in peripheral blood mononuclear cells of healthy and COPD patients. However, a role for FABP5 in macrophage programming has not been examined. Here, using a combination of in vitro and in vivo approaches, we demonstrate that FABP5 is necessary for PPARγ activation. In turn, PPARγ acts directly to increase FABP5 expression in primary human alveolar macrophages. We further illustrate that lack of FABP5 expression promotes a pro-inflammatory macrophage programming with increased secretion of pro-inflammatory cytokines and increased chromatin accessibility for pro-inflammatory transcription factors (e.g., NF-κB and MAPK). And finally, real-time cell metabolic analysis using the Seahorse technology shows an inhibition of oxidative phosphorylation in FABP5-deficient macrophages. Taken together, our data indicate that FABP5 and PPARγ reciprocally regulate each other's expression and function, consistent with a novel positive feedback loop between the two factors that mediates macrophage pro-resolving programming. Our studies highlight the importance of defining targets and regulatory mechanisms that control the resolution of inflammation and may serve to inform novel interventional strategies directed towards COPD.
Insights
Fatty Acid Binding Protein 5 (FABP5) is crucial for resolving inflammation by activating Peroxisome Proliferator-Activated Receptor γ (PPARγ). This discovery reveals a positive feedback loop essential for macrophage pro-resolving programming and may inform new COPD treatments.
Area of Science:
- Immunology
- Molecular Biology
- Cell Biology
Background:
- Resolution of inflammation is vital for tissue repair; its absence contributes to chronic lung diseases like COPD.
- Macrophage reprogramming from pro-inflammatory to pro-resolving states is key, partly regulated by the nuclear receptor PPARγ.
- Previous studies linked Fatty Acid Binding Protein 5 (FABP5) to PPARγ activity, but its role in macrophage programming was unknown.
Purpose of the Study:
- To investigate the role of FABP5 in macrophage programming and its relationship with PPARγ.
- To elucidate the regulatory mechanisms controlling inflammation resolution in macrophages.
Main Methods:
- In vitro and in vivo experiments using primary human alveolar macrophages.
- Analysis of gene expression, protein activity, and chromatin accessibility.
- Real-time cell metabolic analysis using Seahorse technology.
Main Results:
- FABP5 is essential for PPARγ activation, and PPARγ directly upregulates FABP5 expression in macrophages.
- FABP5 deficiency leads to pro-inflammatory macrophage programming, increased cytokine secretion, and enhanced chromatin accessibility for pro-inflammatory factors.
- FABP5-deficient macrophages exhibit impaired oxidative phosphorylation.
Conclusions:
- FABP5 and PPARγ engage in a reciprocal regulatory loop, promoting macrophage pro-resolving programming.
- This FABP5-PPARγ feedback mechanism is critical for resolving inflammation.
- Understanding this pathway offers potential therapeutic targets for COPD and other inflammatory diseases.
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