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Signal transduction through the fibronectin receptor induces collagenase and stromelysin gene expression

Z Werb1, P M Tremble, O Behrendtsen

  • 1Laboratory of Radiobiology and Environmental Health, University of California, San Francisco 94143.

Insights

Ligation of the fibronectin receptor (FnR) in synovial fibroblasts triggers genes for matrix-degrading enzymes. This signaling pathway, distinct from cell shape changes, is activated by fibronectin fragments and antibodies, influencing extracellular matrix regulation.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • The fibronectin receptor (FnR), an integrin, plays a crucial role in cell adhesion and signaling.
  • Understanding how FnR ligation influences gene expression is vital for comprehending extracellular matrix remodeling.

Purpose of the Study:

  • To investigate the impact of fibronectin receptor (FnR) ligation on gene expression in rabbit synovial fibroblasts.
  • To elucidate the specific signaling pathways and ligands involved in FnR-mediated gene induction.

Main Methods:

  • Treatment of rabbit synovial fibroblasts with monoclonal antibodies against the FnR.
  • Analysis of mRNA accumulation for collagenase and stromelysin.
  • Investigation of FnR signaling using Fab fragments, cross-linking, and immobilized peptides containing the arg-gly-asp sequence.

Main Results:

  • Antibodies to FnR induced expression of collagenase and stromelysin genes, evidenced by mRNA accumulation.
  • Dexamethasone blocked this induction, while other inducers like phorbol diesters and growth factors did not affect cell shape.
  • Adhesion to immobilized fibronectin-derived peptides, but not native fibronectin, induced metalloproteinase gene expression.

Conclusions:

  • Fibronectin receptor (FnR) ligation transduces signals that alter gene expression, distinct from changes in cell shape.
  • Degradation products of fibronectin appear to be natural inductive ligands for the FnR.
  • Integrin signaling orchestrates extracellular matrix gene expression, impacting cell behavior in the extracellular environment.

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