Fibronectin aggregates promote features of a classically and alternatively activated phenotype in macrophages

Arend H Sikkema1, Josephine M J Stoffels1, Peng Wang1

  • 1University of Groningen, University Medical Center Groningen, Department of Cell Biology, Antonius Deusinglaan 1, 9713 AV, Groningen, the Netherlands.

Abstract

Insights

Pathological fibronectin aggregates in multiple sclerosis lesions impair remyelination by altering microglia and macrophage phenotypes, promoting both pro-inflammatory and anti-inflammatory features, hindering repair.

Area of Science:

  • Neuroscience
  • Immunology
  • Cell Biology

Background:

  • Multiple Sclerosis (MS) pathogenesis involves impaired remyelination.
  • Fibronectin aggregates in MS lesions inhibit oligodendrocyte differentiation.
  • Microglia and macrophages are crucial for remyelination, shifting from pro-inflammatory to anti-inflammatory phenotypes.

Purpose of the Study:

  • Investigate the role of fibronectin aggregates in modulating microglia and macrophage behavior and phenotypes.
  • Determine how fibronectin aggregates influence the transition of immune cells during remyelination.

Main Methods:

  • Exposed rat microglia and macrophages to plasma fibronectin, fibronectin aggregates, interferon-γ (IFNγ), and interleukin-4 (IL-4).
  • Assessed cell proliferation, phagocytosis, morphology, and pro-/anti-inflammatory markers in vitro.
  • Utilized proteomic analysis to identify associated proteins.

Main Results:

  • Fibronectin aggregates induced amoeboid morphology and stimulated phagocytosis in microglia and macrophages.
  • Aggregated fibronectin, but not plasma fibronectin, promoted nitric oxide release and increased arginase-1 expression.
  • Proteomic analysis revealed fibronectin aggregates as scaffolds for proteins like Hsp70 and thrombospondin-1.

Conclusions:

  • Fibronectin aggregates induce a distinct phenotype in microglia and macrophages, exhibiting both pro-inflammatory and anti-inflammatory characteristics.
  • These aggregates may hinder remyelination in MS by maintaining a classically activated phenotype in immune cells.

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