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
Abstract:
Membrane-type 1 matrix metalloproteinase (MT1-MMP) has been implicated in tumor invasion and metastasis. We previously reported that extracellular matrix degradation by MT1-MMP regulates cell migration via modulating sustained integrin-mediated signals. In this study, MT1-MMP-expressing cells were plated onto fibronectin-coated plates and monitored for cell-matrix adhesion formation and fibronectin degradation. The fibronectin was degraded and removed in line with the cell migration track. The migrating cells showed a polarized morphology and were in contact with the edge of fibronectin through the leading edge, in which cell-matrix adhesions are concentrated. Expression of MT1-MMP targeted to cell-matrix adhesions by fusing with the focal adhesion targeting (FAT) domain of focal adhesion kinase (FAK) promoted the initial fibronectin lysis at the cell periphery immediately after adhesion. These results suggest that fibronectin is degraded by MT1-MMP located at cell-matrix adhesions, which are concentrated at the leading edge of the migrating cells. To inhibit MT1-MMP at cell-matrix adhesion, the dominant negative form of MT1-MMP (MT1-Pex) was targeted to the cell-matrix adhesion by fusing with the FAT domain (MT1-Pex-FAT). MT1-Pex-FAT accumulated at cell-matrix adhesions and inhibited fibronectin degradation as well as FAK phosphorylation more effectively than parental MT1-Pex. MT1-Pex-FAT was also shown to suppress the invasion of tumor cells into three-dimensional collagen gel more strongly than MT1-Pex. These results suggest that MT1-MMP-mediated extracellular matrix lysis at cell-matrix adhesions induces the establishment of cell polarity, which facilitates cell-matrix adhesion turnover and subsequent cell migration. This model highlights the role of MT1-MMP at the leading edge of migrating cells.
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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