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.

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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