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.

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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