CD14 Counterregulates Lipopolysacharide-Induced Tumor Necrosis Factor-α Production in a Macrophage Subset

Anja Grahnert1, Ronald Weiss1, Erik Schilling1

  • 1Institute of Clinical Immunology, University of Leipzig Medical Faculty, University of Leipzig, Leipzig, Germany.

Insights

Blocking CD14 in macrophages alters lipopolysaccharide (LPS) responses. This impacts cytokine production and Toll-like receptor 4 (TLR4) signaling, revealing CD14

Area of Science:

  • Immunology
  • Cell Biology
  • Molecular Biology

Background:

  • Macrophages (MΦ) exhibit diverse inflammatory properties based on stimulation (GM-CSF vs. M-CSF).
  • CD14 and Toll-like receptor 4 (TLR4) are crucial for lipopolysaccharide (LPS)-induced signaling.
  • Differential expression of CD14 and TLR4 influences macrophage responses.

Purpose of the Study:

  • To investigate the impact of anti-CD14 antibody blockade on LPS-induced cytokine production, signal transduction, and CD14/TLR4 expression in GM-MΦ and M-MΦ.
  • To elucidate the role of CD14 in modulating LPS signaling pathways, including MyD88, TRIF, and MAPK.
  • To understand how CD14 blockade affects the balance of pro- and anti-inflammatory cytokine responses.

Main Methods:

  • Macrophage cultures (GM-MΦ and M-MΦ) were treated with LPS and anti-CD14 antibody.
  • Cytokine production (IFN-β, IL-10, TNF-α) was measured.
  • Expression levels of CD14 and TLR4 were assessed.
  • Phosphorylation states of signaling molecules in MyD88, TRIF, and MAPK pathways were analyzed.

Main Results:

  • M-MΦ expressed higher CD14/TLR4 and produced more IFN-β and IL-10, but less TNF-α, compared to GM-MΦ.
  • CD14 blockade at high LPS concentrations increased pro-inflammatory cytokines and decreased IFN-β in M-MΦ, but not GM-MΦ.
  • CD14 blockade decreased CD14 and TLR4 expression in M-MΦ, impairing TRIF signaling.
  • TNF-α synthesis was upregulated upon CD14 blockade, suggesting TRIF's role in restricting its overproduction.

Conclusions:

  • Surface CD14 plays a critical role in determining the biological response to LPS.
  • CD14 blockade influences LPS-induced signaling pathways, particularly TRIF-mediated responses.
  • The findings suggest a novel regulatory role for TRIF in limiting excessive TNF-α production during LPS stimulation.

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