Protective Effect of Glycomacropeptide on the Inflammatory Response of U937 Macrophages

Laura Elena Córdova-Dávalos1, Daniel Cervantes-García1,2, Maria Fernanda Ballona-Alba1

  • 1Laboratory of Immunology, Department of Microbiology, Center of Basic Science, Universidad Autónoma de Aguascalientes, Av. Universidad # 940, Aguascalientes 20100, Mexico.

Insights

Glycomacropeptide (GMP) reduces inflammatory markers in human macrophages. This bioactive peptide shows anti-inflammatory and antioxidative effects, independent of its sialic acid content, suggesting potential therapeutic benefits.

Area of Science:

  • Immunology
  • Nutrition Science
  • Biochemistry

Background:

  • Macrophages are key players in inflammation and oxidative stress linked to noncommunicable diseases.
  • Glycomacropeptide (GMP), a milk-derived peptide, possesses anti-inflammatory and antioxidative properties.
  • Sialic acid, abundant in GMP, is often associated with biological activity.

Purpose of the Study:

  • To investigate the immunoregulatory effects of GMP on human macrophages.
  • To determine the role of sialic acid in GMP's anti-inflammatory activity.
  • To explore the molecular mechanisms underlying GMP's bioactivity.

Main Methods:

  • Human U937 macrophages were activated and pretreated with GMP or asialo GMP.
  • Production of inflammatory mediators (nitrites, IL-1β, TNF-α) was quantified.
  • Gene expression of sialic acid-binding lectins (SIGLECs), SOCS3, and HMOX1 was analyzed.

Main Results:

  • GMP significantly reduced nitrite, IL-1β, and TNF-α production in activated macrophages.
  • Asialo GMP demonstrated similar reductions, indicating a sialic acid-independent effect.
  • GMP upregulated the gene expression of SOCS3 (anti-inflammatory) and HMOX1 (antioxidant).

Conclusions:

  • GMP exhibits significant anti-inflammatory and antioxidative activities in activated human macrophages.
  • These effects are mediated independently of sialic acid recognition by SIGLECs.
  • GMP's bioactivity may stem from its ability to modulate SOCS3 and HMOX1 expression.