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Updated: Jan 8, 2026

Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
Polarization Increases Nuclear Stiffness in Macrophages Despite Reduction in Lamin A/C Levels
Abstract:
Macrophages are innate immune cells contributing to tissue homeostasis and various pathologies. Signals from their environment can lead macrophages to adapt distinct functional phenotypes, a process called polarization. Because macrophages have been previously shown to degrade the nuclear envelope proteins lamin A/C upon pro-inflammatory polarization, and lamins are considered key determinants of nuclear deformability, which is important for cellular functions including migration through confined environments, we aimed to address the effect of pro-inflammatory stimulation on nuclear mechanics. We present the surprising finding that polarized bone marrow-derived macrophages have less deformable nuclei than unpolarized macrophages, despite their reduced lamin A/C levels. Furthermore, pro-inflammatory macrophages exhibited altered chromatin dynamics relative to unpolarized macrophages, including redistribution of trimethylated histone H3K9 (H3K9me3) from the nuclear periphery to the interior and increased chromatin compaction. Our findings suggest a model in which pro-inflammatory stimulation of macrophages induces chromatin changes that drive nuclear stiffening, and that in these cells, chromatin, rather than the nuclear lamina, is the major driver for resisting nuclear deformation. These findings may have functional relevance for the physiological function of polarized macrophages, as the mechanical properties of the nucleus can influence how these cells adapt and respond to their environments in the context of cell migration or inflammatory disease pathologies.
Insights
Pro-inflammatory stimulation stiffens macrophage nuclei, contrary to expectations. This nuclear stiffening, driven by chromatin changes rather than lamin A/C levels, impacts cell function in inflammation and migration.
Area of Science:
- Cell Biology
- Immunology
- Biophysics
Background:
- Macrophages are crucial innate immune cells involved in tissue homeostasis and disease.
- Macrophage polarization alters their function in response to environmental cues.
- Nuclear envelope proteins like lamin A/C influence nuclear mechanics and cell migration.
Purpose of the Study:
- To investigate the impact of pro-inflammatory stimulation on the nuclear mechanics of macrophages.
- To understand the role of lamin A/C and chromatin in nuclear deformability during macrophage polarization.
Main Methods:
- Bone marrow-derived macrophages were polarized using pro-inflammatory stimuli.
- Nuclear deformability was assessed using mechanical assays.
- Chromatin dynamics and histone modifications (H3K9me3) were analyzed.
Main Results:
- Polarized macrophages exhibited less deformable nuclei compared to unpolarized cells, despite reduced lamin A/C.
- Pro-inflammatory stimulation led to redistribution of H3K9me3 and increased chromatin compaction.
- Chromatin changes, not lamin A/C levels, were identified as the primary drivers of nuclear stiffening.
Conclusions:
- Pro-inflammatory polarization stiffens macrophage nuclei through chromatin alterations.
- Chromatin, rather than the nuclear lamina, is the main determinant of nuclear resistance to deformation in polarized macrophages.
- These findings have implications for understanding macrophage behavior in inflammatory diseases and cell migration.
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