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Updated: Jun 11, 2025

Quantification of Monocyte Transmigration and Foam Cell Formation from Individuals with Chronic Inflammatory Conditions
Published on: October 17, 2017
Phenotypic, Metabolic, and Functional Characterization of Experimental Models of Foamy Macrophages: Toward
Amina Sarah Henni Mansour1, Mathilde Ragues1, Julien Brevier2
1CRMSB UMR5536, CNRS DR-15, INSB, 33000 Bordeaux, France.
Abstract:
Different types of macrophages (Mφ) are involved in atherogenesis, including inflammatory Mφ and foamy Mφ (FM). Our previous study demonstrated that two-photon excited fluorescence (TPEF) imaging of NADH and FAD autofluorescence (AF) could distinguish experimental models that mimic the different atherosclerotic Mφ types. The present study assessed whether optical differences correlated with phenotypic and functional differences, potentially guiding diagnostic and therapeutic strategies. Phenotypic differences were investigated using three-dimensional principal component analysis and multi-color flow cytometry. Functional analyses focused on cytokine production, metabolic profiles, and cellular oxidative stress, in LDL dose-dependent assays, to understand the origin of AF in the FAD spectrum and assess FM ability to transition toward an immunoregulatory phenotype and function. Phenotypic studies revealed that FM models generated with acetylated LDL (Mac) were closer to immunoregulatory Mφ, while those generated with oxidized LDL (Mox) more closely resembled inflammatory Mφ. The metabolic analysis confirmed that inflammatory Mφ primarily used glycolysis, while immunoregulatory Mφ mainly depended on mitochondrial respiration. FM models employed both pathways; however, FM models generated with high doses of modified LDL showed reduced mitochondrial respiration, particularly Mox FM. Thus, the high AF in the FAD spectrum in Mox was not linked to increased mitochondrial respiration, but correlated with the dose of oxidized LDL, leading to increased production of reactive oxygen species (ROS) and lysosomal ceroid accumulation. High FAD-like AF, ROS, and ceroid accumulation were reduced by incubation with α-tocopherol. The cytokine profiles supported the phenotypic analysis, indicating that Mox FM exhibited greater inflammatory activity than Mac FM, although both could be redirected toward immunoregulatory functions, albeit to different degrees. In conclusion, in the context of immunoregulatory therapies for atherosclerosis, it is crucial to consider FM, given their prevalence in plaques and our results, as potential targets, regardless of their inflammatory status, alongside non-foamy inflammatory Mφ.
Insights
Optical imaging can differentiate macrophage types in atherosclerosis. Foamy macrophages (FM) show distinct phenotypes and functions, offering potential targets for immunoregulatory therapies.
Area of Science:
- Atherosclerosis research
- Macrophage biology
- Optical imaging techniques
Background:
- Macrophages are key players in atherosclerosis, with distinct inflammatory and foamy macrophage (FM) subtypes.
- Previous work showed two-photon excited fluorescence (TPEF) imaging of NADH and FAD autofluorescence (AF) can differentiate experimental macrophage models.
- The current study investigates if these optical differences correlate with actual phenotypic and functional variations.
Purpose of the Study:
- To determine if optical differences in macrophage autofluorescence (AF) reflect phenotypic and functional states relevant to atherosclerosis.
- To explore the origin of FAD AF in foamy macrophages (FM) and their potential to adopt immunoregulatory functions.
- To guide diagnostic and therapeutic strategies for atherosclerosis by understanding macrophage heterogeneity.
Main Methods:
- Utilized three-dimensional principal component analysis and multi-color flow cytometry for phenotypic analysis.
- Conducted functional analyses including cytokine production, metabolic profiling, and oxidative stress assays.
- Employed LDL dose-dependent assays to investigate AF origins and FM functional plasticity.
Main Results:
- Foamy macrophage (FM) models generated with acetylated LDL (Mac) resembled immunoregulatory macrophages, while oxidized LDL (Mox) models mimicked inflammatory macrophages.
- Inflammatory macrophages primarily used glycolysis, immunoregulatory macrophages relied on mitochondrial respiration, and FM utilized both, with Mox FM showing reduced respiration at high LDL doses.
- High FAD-like AF in Mox FM correlated with oxidized LDL dose, increased reactive oxygen species (ROS), and ceroid accumulation, reducible by α-tocopherol.
Conclusions:
- Foamy macrophages (FM) exhibit diverse phenotypes and functions, with Mox FM being more inflammatory than Mac FM.
- Both FM subtypes can be modulated towards immunoregulatory functions, though to varying extents.
- FM are crucial targets for immunoregulatory therapies in atherosclerosis due to their prevalence and plasticity.

