Mitochondrial C5aR1 activity in macrophages controls IL-1β production underlying sterile inflammation

Nathalie Niyonzima1, Jubayer Rahman2, Natalia Kunz2

  • 1Center of Molecular Inflammation Research (CEMIR), Department of Cancer Research and Molecular Medicine, Norwegian University of Science and Technology (NTNU), Trondheim, Norway.

Science Immunology
|December 21, 2021
PubMed

Insights

Intracellular complement component 5 (C5) and its receptor C5aR1 are crucial for myeloid cell inflammatory responses. Targeting this pathway ameliorates atherosclerosis and crystal nephropathy.

Area of Science:

  • Immunology
  • Cell Biology
  • Metabolic pathways

Background:

  • Intracellular complement, the "complosome," regulates T cell responses.
  • The role of intracellular complement in myeloid immune cells remains unclear.

Purpose of the Study:

  • To investigate the function of intracellular complement in myeloid cells.
  • To determine if intracellular complement component 5 (C5) and its receptor C5aR1 are involved in sterile inflammation.

Main Methods:

  • Monocytes and macrophages were analyzed for C5 expression and C5a generation.
  • Mitochondrial function and inflammatory gene expression were assessed in response to cholesterol crystals.
  • Macrophage-specific C5ar1 knockout mice and a C5aR1 antagonist were used to study atherosclerosis and crystal nephropathy.

Main Results:

  • Macrophages constitutively express C5 and generate intracellular C5a.
  • Cholesterol crystals trigger C5aR1 signaling on mitochondria, promoting reactive oxygen species and IL-1β production.
  • Mice lacking macrophage C5ar1 showed reduced atherosclerosis and crystal nephropathy.
  • A C5aR1 antagonist normalized inflammatory markers in human atherosclerotic plaques.

Conclusions:

  • Intracellular complement C5 and C5aR1 signaling directly modulate mitochondrial function and inflammatory output in myeloid cells.
  • The intracellular "complosome" system contributes to sterile inflammation.
  • Targeting intracellular C5aR1 may offer therapeutic benefits for macrophage-dependent diseases like atherosclerosis.

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