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Updated: Jan 26, 2026

Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
Glia maturation factor-γ regulates murine macrophage iron metabolism and M2 polarization through mitochondrial ROS
Wulin Aerbajinai1, Manik C Ghosh2, Jie Liu3
1Molecular and Clinical Hematology Branch, National Heart, Lung, and Blood Institute.
Abstract:
In macrophages, cellular iron metabolism status is tightly integrated with macrophage phenotype and associated with mitochondrial function. However, how molecular events regulate mitochondrial activity to integrate regulation of iron metabolism and macrophage phenotype remains unclear. Here, we explored the important role of the actin-regulatory protein glia maturation factor-γ (GMFG) in the regulation of cellular iron metabolism and macrophage phenotype. We found that GMFG was downregulated in murine macrophages by exposure to iron and hydrogen peroxide. GMFG knockdown altered the expression of iron metabolism proteins and increased iron levels in murine macrophages and concomitantly promoted their polarization toward an anti-inflammatory M2 phenotype. GMFG-knockdown macrophages exhibited moderately increased levels of mitochondrial reactive oxygen species (mtROS), which were accompanied by decreased expression of some mitochondrial respiration chain components, including the iron-sulfur cluster assembly scaffold protein ISCU as well as the antioxidant enzymes SOD1 and SOD2. Importantly, treatment of GMFG-knockdown macrophages with the antioxidant N-acetylcysteine reversed the altered expression of iron metabolism proteins and significantly inhibited the enhanced gene expression of M2 macrophage markers, suggesting that mtROS is mechanistically linked to cellular iron metabolism and macrophage phenotype. Finally, GMFG interacted with the mitochondrial membrane ATPase ATAD3A, suggesting that GMFG knockdown-induced mtROS production might be attributed to alteration of mitochondrial function in macrophages. Our findings suggest that GMFG is an important regulator in cellular iron metabolism and macrophage phenotype and could be a novel therapeutic target for modulating macrophage function in immune and metabolic disorders.
Insights
Glia maturation factor-γ (GMFG) regulates cellular iron metabolism and macrophage phenotype. GMFG knockdown increases iron levels and promotes M2 macrophage polarization, linked to mitochondrial dysfunction.
Area of Science:
- Cell Biology
- Immunology
- Metabolism
Background:
- Macrophage phenotype and mitochondrial function are linked to cellular iron metabolism.
- The molecular mechanisms integrating iron metabolism, mitochondrial activity, and macrophage phenotype are not fully understood.
Purpose of the Study:
- To investigate the role of glia maturation factor-γ (GMFG) in regulating cellular iron metabolism and macrophage phenotype.
- To elucidate the molecular mechanisms by which GMFG influences macrophage function.
Main Methods:
- GMFG knockdown in murine macrophages.
- Analysis of iron metabolism proteins, cellular iron levels, and macrophage polarization markers.
- Measurement of mitochondrial reactive oxygen species (mtROS) and mitochondrial respiration components.
- Interaction studies between GMFG and mitochondrial proteins.
- Treatment with N-acetylcysteine (antioxidant).
Main Results:
- GMFG downregulation was observed in macrophages exposed to iron and hydrogen peroxide.
- GMFG knockdown led to altered iron metabolism protein expression, increased cellular iron, and M2 macrophage polarization.
- GMFG knockdown induced mtROS production, decreased mitochondrial respiration components (e.g., ISCU), and antioxidant enzymes (SOD1, SOD2).
- Antioxidant treatment reversed these effects, linking mtROS to iron metabolism and M2 polarization.
- GMFG interacts with mitochondrial ATPase ATAD3A.
Conclusions:
- GMFG is a key regulator of cellular iron metabolism and macrophage phenotype.
- GMFG knockdown-induced mitochondrial dysfunction and mtROS production are mechanistically linked to altered iron homeostasis and M2 polarization.
- GMFG represents a potential therapeutic target for modulating macrophage function in immune and metabolic disorders.
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