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Updated: Jul 4, 2025

Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
Sulforaphane impedes mitochondrial reprogramming and histone acetylation in polarizing M1 (LPS) macrophages
Sheyda Bahiraii1, Martin Brenner2, Wolfram Weckwerth3
1Department of Pharmaceutical Sciences, University of Vienna, Vienna, Austria; ViennaDoctoral School of Pharmaceutical, Nutritional and Sport Sciences (VDS PhaNuSpo), University of Vienna, Vienna, Austria.
Abstract:
M1 (LPS) macrophages are characterized by a high expression of pro-inflammatory mediators, and distinct metabolic features that comprise increased glycolysis, a broken TCA cycle, or impaired OXPHOS with augmented mitochondrial ROS production. This study investigated whether the phytochemical sulforaphane (Sfn) influences mitochondrial reprogramming during M1 polarization, as well as to what extent this can contribute to Sfn-mediated inhibition of M1 marker expression in murine macrophages. The use of extracellular flux-, metabolite-, and immunoblot analyses as well as fluorescent dyes indicative for mitochondrial morphology, membrane potential or superoxide production, demonstrated that M1 (LPS/Sfn) macrophages maintain an unbroken TCA cycle, higher OXPHOS rate, boosted fusion dynamics, lower membrane potential, and less superoxide production in their mitochondria when compared to control M1 (LPS) cells. Sustained OXPHOS and TCA activity but not the concomitantly observed high dependency on fatty acids as fuel appeared necessary for M1 (LPS/Sfn) macrophages to reduce expression of nos2, il1β, il6 and tnfα. M1 (LPS/Sfn) macrophages also displayed lower nucleo/cytosolic acetyl-CoA levels in association with lower global and site-specific histone acetylation at selected pro-inflammatory gene promoters than M1 (LPS), evident in colorimetric coupled enzyme assays, immunoblot and ChIP-qPCR analyses, respectively. Supplementation with acetate or citrate was able to rescue both histone acetylation and mRNA expression of the investigated M1 marker genes in Sfn-treated cells. Overall, Sfn preserves mitochondrial functionality and restricts indispensable nuclear acetyl-CoA for histone acetylation and M1 marker expression in LPS-stimulated macrophages.
Insights
Sulforaphane (Sfn) preserves mitochondrial function in M1 macrophages by maintaining the TCA cycle and OXPHOS. This metabolic reprogramming restricts acetyl-CoA, reducing pro-inflammatory gene expression.
Area of Science:
- Immunology
- Cell Biology
- Metabolism
Background:
- M1 macrophages exhibit pro-inflammatory characteristics and altered metabolism, including increased glycolysis and impaired oxidative phosphorylation (OXPHOS).
- Mitochondrial dysfunction and reactive oxygen species (ROS) are hallmarks of M1 polarization.
Purpose of the Study:
- To investigate the effect of sulforaphane (Sfn) on mitochondrial reprogramming during M1 macrophage polarization.
- To determine how Sfn-mediated mitochondrial changes contribute to the inhibition of M1 marker expression.
Main Methods:
- Extracellular flux analysis, metabolite assays, immunoblotting, and fluorescent dye staining.
- Analysis of mitochondrial morphology, membrane potential, and superoxide production.
- Colorimetric assays, immunoblotting, and ChIP-qPCR for histone acetylation and gene expression.
Main Results:
- Sfn-treated M1 macrophages maintained an intact TCA cycle, higher OXPHOS, and reduced mitochondrial ROS compared to control M1 cells.
- Sustained OXPHOS and TCA activity were crucial for reducing M1 marker genes (nos2, il1β, il6, tnfα).
- Sfn treatment lowered nuclear acetyl-CoA levels, leading to reduced histone acetylation at pro-inflammatory gene promoters.
Conclusions:
- Sulforaphane preserves mitochondrial functionality in LPS-stimulated macrophages.
- Sfn restricts nuclear acetyl-CoA availability, thereby inhibiting histone acetylation and M1 marker gene expression.
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