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An In vitro Model to Study Heterogeneity of Human Macrophage Differentiation and Polarization
Published on: June 12, 2013
Diesel exhaust particles induce polarization state-dependent functional and transcriptional changes in human
Timothy Smyth1,2, Ilona Jaspers1,2,3
1Curriculum in Toxicology & Environmental Medicine, The University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, United States.
Abstract:
Macrophage populations exist on a spectrum between the proinflammatory M1 and proresolution M2 states and have demonstrated the ability to reprogram between them after exposure to opposing polarization stimuli. Particulate matter (PM) has been repeatedly linked to worsening morbidity and mortality following respiratory infections and has been demonstrated to modify macrophage function and polarization. The purpose of this study was to determine whether diesel exhaust particles (DEP), a key component of airborne PM, would demonstrate polarization state-dependent effects on human monocyte-derived macrophages (hMDMs) and whether DEP would modify macrophage reprogramming. CD14+CD16- monocytes were isolated from the blood of healthy human volunteers and differentiated into macrophages with macrophage colony-stimulating factor (M-CSF). Resulting macrophages were left unpolarized or polarized into the proresolution M2 state before being exposed to DEP, M1-polarizing conditions (IFN-γ and LPS), or both and tested for phagocytic function, secretory profile, gene expression patterns, and bioenergetic properties. Contrary to previous reports, we observed a mixed M1/M2 phenotype in reprogrammed M2 cells when considering the broader range of functional readouts. In addition, we determined that DEP exposure dampens phagocytic function in all polarization states while modifying bioenergetic properties in M1 macrophages preferentially. Together, these data suggest that DEP exposure of reprogrammed M2 macrophages results in a highly inflammatory, highly energetic subpopulation of macrophages that may contribute to the poor health outcomes following PM exposure during respiratory infections.NEW & NOTEWORTHY We determined that reprogramming M2 macrophages in the presence of diesel exhaust particles (DEP) results in a highly inflammatory mixed M1/M2 phenotype. We also demonstrated that M1 macrophages are particularly vulnerable to particulate matter (PM) exposure as seen by dampened phagocytic function and modified bioenergetics. Our study suggests that PM causes reprogrammed M2 macrophages to become a highly energetic, highly secretory subpopulation of macrophages that may contribute to negative health outcomes observed in humans after PM exposure.
Insights
Diesel exhaust particles (DEP) exposure creates a mixed M1/M2 inflammatory macrophage phenotype, particularly affecting M1 macrophages. This particulate matter (PM) exposure may worsen respiratory infection outcomes.
Area of Science:
- Immunology and Respiratory Medicine
- Environmental Health Sciences
Background:
- Macrophages exist on a spectrum from pro-inflammatory (M1) to pro-resolution (M2) states and can reprogram between them.
- Particulate matter (PM), including diesel exhaust particles (DEP), is linked to adverse respiratory health outcomes and alters macrophage function.
Purpose of the Study:
- To investigate the polarization-dependent effects of DEP on human monocyte-derived macrophages (hMDMs).
- To determine if DEP exposure modifies macrophage reprogramming between M1 and M2 states.
Main Methods:
- Isolated human monocytes and differentiated them into macrophages using M-CSF.
- Polarized macrophages to M2 state or left unpolarized, then exposed to DEP, M1 stimuli (IFN-γ and LPS), or both.
- Assessed phagocytic function, secretory profile, gene expression, and bioenergetics.
Main Results:
- DEP exposure resulted in a mixed M1/M2 phenotype in reprogrammed M2 macrophages, contrary to previous reports.
- DEP exposure impaired phagocytic function across all macrophage polarization states.
- DEP preferentially altered bioenergetic properties in M1 macrophages.
Conclusions:
- DEP exposure of reprogrammed M2 macrophages yields a highly inflammatory, energetic subpopulation.
- M1 macrophages are particularly susceptible to DEP, exhibiting reduced phagocytosis and altered bioenergetics.
- These DEP-induced macrophage alterations may contribute to poor health outcomes following PM exposure during respiratory infections.
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