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Increased neutrophil motility by beta-glucan in the absence of chemoattractant

M B Harler1, J Reichner

  • 1Department of Surgery, Brown University and Rhode Island Hospital, Providence 02903, USA.

Shock (Augusta, Ga.)
|January 5, 2002
PubMed

Insights

Beta-glucan significantly enhances polymorphonuclear leukocyte (PMN) migration independently of common signaling pathways. This fungal component alters host defense mechanisms by boosting PMN motility through specific integrins and intracellular signaling.

Area of Science:

  • Immunology
  • Mycology
  • Cellular Biology

Background:

  • Systemic candidiasis is a severe complication of medical treatments, impacting host defenses via poorly understood mechanisms.
  • Fungal beta-glucans are known to influence immune cell behavior, including polymorphonuclear leukocyte (PMN) chemotaxis.

Purpose of the Study:

  • To investigate if beta-glucan recognition alone can alter PMN motility without other chemotactic signals.
  • To elucidate the specific molecular pathways and integrins involved in beta-glucan-mediated PMN migration.

Main Methods:

  • Underagarose migration assay to assess PMN motility on fibronectin substratum supplemented with beta-glucan.
  • Utilized specific inhibitors targeting signaling molecules (pp60 src, ras, p38-MAPK) and activators (PKC, cAMP).
  • Investigated the role of beta2 integrin (CR3) and beta1 integrin (VLA-3) in mediating migration.

Main Results:

  • Beta-glucan significantly increased PMN migration distance (3-fold) and recruitment (5-fold) compared to fibronectin alone.
  • Beta-glucan-induced motility was mediated by CR3 (beta2 integrin), distinct from VLA-3 (beta1 integrin) used in fMLP-stimulated migration.
  • Specific signaling pathways (pp60 src, ras, p38-MAPK, PKC, cAMP) differentially regulated beta-glucan-mediated PMN migration.

Conclusions:

  • Beta-glucan is sufficient to enhance PMN migratory capacity independently of G-protein coupled receptor agonists.
  • The enhanced migration involves distinct integrin (CR3) and intracellular signaling pathways compared to standard chemotaxis.
  • Findings reveal novel mechanisms by which fungi can modulate innate immune cell function.

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