Focal adhesion disassembly is regulated by a RIAM to MEK-1 pathway

Georgina P Coló1, Pablo Hernández-Varas, John Lock

  • 1Department of Cellular and Molecular Medicine, Centro de Investigaciones Biológicas (CSIC), 28040 Madrid, Spain.

Journal of Cell Science
|September 5, 2012
PubMed

Insights

Rap1-GTP-interacting adaptor molecule (RIAM) is crucial for cell migration. Its depletion causes stable focal adhesions due to impaired disassembly, hindering invasion. MEK-Erk1/2 activation downstream of RIAM is key for this process.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Cell migration and invasion depend on dynamic focal adhesions.
  • Rap1-GTP-interacting adaptor molecule (RIAM) is an adaptor protein involved in cell adhesion and migration.
  • RIAM depletion impairs melanoma cell migration and invasion.

Purpose of the Study:

  • To investigate the role of RIAM in focal adhesion (FA) dynamics.
  • To elucidate the molecular mechanisms by which RIAM regulates FA turnover.
  • To understand RIAM's contribution to cell migration and invasion.

Main Methods:

  • RIAM depletion using knockdown techniques in melanoma and breast carcinoma cells.
  • Analysis of FA number, size, and stability using microscopy.
  • Assessment of integrin-dependent signaling pathways, including MEK-Erk1/2 and RhoA activation.
  • Investigation of paxillin phosphorylation and protein-protein interactions within FAs.

Main Results:

  • RIAM depletion led to increased, stable FAs due to defective disassembly.
  • FA disassembly impairment correlated with deficient MEK-Erk1/2 activation.
  • RIAM-promoted RhoA activation was necessary for Erk1/2 activation and FA disassembly.
  • Paxillin hyperphosphorylation was a consequence, not a cause, of FA disassembly defects.
  • RIAM knockdown weakened FA protein associations, indicating a role in complex assembly.

Conclusions:

  • Integrin-triggered, RIAM-dependent MEK activation is essential for efficient FA disassembly.
  • RIAM plays a critical role in regulating FA dynamics, impacting cell migration and invasion.
  • RhoA acts downstream of RIAM and upstream of Erk1/2 in the FA disassembly pathway.

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