Diverse patterns of cyclooxygenase-independent metalloproteinase gene regulation in human monocytes

Buket Reel1, Graciela B Sala-Newby, Wei-Chun Huang

  • 1Bristol Heart Institute, University of Bristol, Bristol, UK.

Insights

Monocyte activation regulates matrix metalloproteinases (MMPs) and tissue inhibitors (TIMPs) independently of cyclooxygenase (COX). Signaling kinase inhibitors offer potential for selective MMP and TIMP gene regulation.

Area of Science:

  • Immunology
  • Molecular Biology
  • Biochemistry

Background:

  • Monocyte/macrophage production of matrix metalloproteinases (MMPs) influences inflammation and matrix remodeling.
  • Mechanisms regulating MMPs and their inhibitors (TIMPs) are not fully understood.
  • Cyclooxygenase (COX) and prostaglandin (PG) receptor inhibition may target MMPs, but COX-independent pathways require clarification.

Purpose of the Study:

  • Investigate MMP and TIMP gene regulation in human monocytes.
  • Elucidate COX-dependent and independent mechanisms of MMP up-regulation.
  • Explore the role of monocyte differentiation and stimulation in MMP/TIMP expression.

Main Methods:

  • Studied MMP mRNA and protein levels in human peripheral blood monocytes.
  • Monocytes were analyzed after adhesion, LPS, PGE(2), or forskolin stimulation.
  • Cells were cultured with monocyte colony-stimulating factor on plastic or fibronectin for up to 7 days.

Main Results:

  • Monocyte adherence upregulated various MMP mRNAs, with some persisting.
  • LPS, PGE(2), and forskolin selectively increased specific MMP mRNAs.
  • LPS induced MMPs independently of COX, involving p42/44, p38 MAPK, JNK, and IKK2 pathways.
  • Monocyte differentiation increased MMP and TIMP mRNAs, with fibronectin accelerating MMP upregulation.

Conclusions:

  • Monocyte adhesion, LPS stimulation, and maturation drive selective MMP and TIMP gene regulation.
  • This regulation is largely COX-independent.
  • Signaling kinase inhibitors represent a potential therapeutic strategy for selective MMP and TIMP modulation.