Inhibition of membrane-type 1 matrix metalloproteinase at cell-matrix adhesions

Takahisa Takino1, Hiromi Saeki, Hisashi Miyamori

  • 1Department of Molecular Virology and Oncology, Cancer Research Institute, Kanazawa University, Kanazawa, Japan. ttakino@kenroku.kanazawa-u.ac.jp

Cancer Research
|December 20, 2007
PubMed

Insights

Membrane-type 1 matrix metalloproteinase (MT1-MMP) degrades fibronectin at cell adhesions, promoting cell migration and tumor invasion. Inhibiting MT1-MMP at these sites effectively reduces cell invasion and migration.

Area of Science:

  • Cell Biology
  • Biochemistry
  • Cancer Research

Background:

  • Membrane-type 1 matrix metalloproteinase (MT1-MMP) is crucial for tumor invasion and metastasis.
  • MT1-MMP-mediated extracellular matrix degradation regulates cell migration through integrin signaling.

Purpose of the Study:

  • To investigate the role of MT1-MMP localization at cell-matrix adhesions in fibronectin degradation and cell migration.
  • To evaluate the efficacy of targeting dominant-negative MT1-MMP to cell-matrix adhesions for inhibiting tumor cell invasion.

Main Methods:

  • Cells expressing MT1-MMP were cultured on fibronectin-coated plates to observe adhesion formation and matrix degradation.
  • MT1-MMP and its dominant-negative form (MT1-Pex) were fused with the focal adhesion targeting (FAT) domain.
  • Cell invasion was assessed using a three-dimensional collagen gel model.

Main Results:

  • Fibronectin degradation occurred along the tracks of migrating cells, concentrated at the leading edge.
  • Targeting MT1-MMP to adhesions via FAT domain enhanced initial fibronectin lysis.
  • MT1-Pex-FAT fusion protein inhibited fibronectin degradation, FAK phosphorylation, and tumor cell invasion more effectively than MT1-Pex.

Conclusions:

  • MT1-MMP at cell-matrix adhesions, particularly at the leading edge, drives fibronectin degradation.
  • This degradation facilitates cell polarity, adhesion turnover, and subsequent cell migration.
  • Targeting MT1-MMP to adhesions offers a potential strategy to inhibit tumor cell invasion and metastasis.

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