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Updated: Nov 5, 2025

Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
Regulation of macrophage functions by FABP-mediated inflammatory and metabolic pathways
Rong Jin1, Jiaqing Hao2, Yanmei Yi3
1Department of Microbiology and Immunology, University of Louisville, Louisville, KY, USA; Department of Immunology, School of Basic Medical Sciences, Peking University, Beijing, China.
Abstract:
Macrophages are almost everywhere in the body, where they serve pivotal functions in maintaining tissue homeostasis, remodeling, and immunoregulation. Macrophages are traditionally thought to differentiate from bone marrow-derived hematopoietic stem cells (HSCs). Emerging studies suggest that some tissue macrophages at steady state originate from embryonic precursors in the yolk sac or fetal liver and are maintained in situ by self-renewal, but bone marrow-derived monocytes can give rise to tissue macrophages in pathogenic settings, such as inflammatory injuries and cancer. Macrophages are popularly classified as Th1 cytokine (e.g. IFNγ)-activated M1 macrophages (the classical activation) or Th2 cytokine (e.g. IL-4)-activated M2 macrophages (the alternative activation). However, given the myriad arrays of stimuli macrophages may encounter from local environment, macrophages exhibit notorious heterogeneity in their phenotypes and functions. Determining the underlying metabolic pathways engaged during macrophage activation is critical for understanding macrophage phenotypic and functional adaptivity under different disease settings. Fatty acid binding proteins (FABPs) represent a family of evolutionarily conserved proteins facilitating lipid transport, metabolism and responses inside cells. More specifically, adipose-FABP (A-FABP) and epidermal-FABP (E-FABP) are highly expressed in macrophages and play a central role in integrating metabolic and inflammatory pathways. In this review we highlight how A-FABP and E-FABP are respectively upregulated in different subsets of activated macrophages and provide a unique perspective in defining macrophage phenotypic and functional heterogeneity through FABP-regulated lipid metabolic and inflammatory pathways.
Insights
Fatty acid binding proteins (FABPs), specifically adipose-FABP (A-FABP) and epidermal-FABP (E-FABP), are key regulators of macrophage activation. Understanding FABP roles in lipid metabolism and inflammation is crucial for defining macrophage heterogeneity in disease.
Area of Science:
- Immunology
- Cell Biology
- Metabolism
Background:
- Macrophages are vital immune cells involved in tissue homeostasis and immunoregulation.
- While traditionally derived from hematopoietic stem cells, some macrophages originate from embryonic precursors and self-renew in tissues.
- Macrophage activation states (M1/M2) are simplified; environmental cues drive significant phenotypic and functional heterogeneity.
Purpose of the Study:
- To explore the role of metabolic pathways in macrophage activation and heterogeneity.
- To investigate the specific contributions of adipose-FABP (A-FABP) and epidermal-FABP (E-FABP) in macrophage function.
- To provide a FABP-centric perspective on macrophage metabolic and inflammatory pathways.
Main Methods:
- Review of existing literature on macrophage biology, metabolism, and FABP functions.
- Analysis of FABP expression patterns in different activated macrophage subsets.
- Integration of metabolic and inflammatory signaling pathways regulated by FABPs.
Main Results:
- A-FABP and E-FABP are differentially upregulated in distinct activated macrophage subsets.
- FABPs are central to integrating lipid metabolism with inflammatory responses in macrophages.
- FABP-regulated pathways contribute significantly to macrophage phenotypic and functional diversity.
Conclusions:
- FABPs are critical determinants of macrophage heterogeneity.
- Targeting FABP-mediated lipid metabolism offers a novel approach to modulating macrophage function in disease.
- FABP expression profiles can help define specific macrophage subsets and their roles.
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