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.

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.