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Updated: May 19, 2026

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Published on: May 19, 2016
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.
Abstract:
Cell migration and invasion require regulated turnover of integrin-dependent adhesion complexes. Rap1-GTP-interacting adaptor molecule (RIAM) is an adaptor protein that mediates talin recruitment to the cell membrane, and whose depletion leads to defective melanoma cell migration and invasion. In this study, we investigated the potential involvement of RIAM in focal adhesion (FA) dynamics. RIAM-depleted melanoma and breast carcinoma cells displayed an increased number, size and stability of FAs, which accumulated centrally at the ventral cell surface, a phenotype caused by defective FA disassembly. Impairment in FA disassembly resulting from RIAM knockdown correlated with deficient integrin-dependent mitogen-activated protein kinase kinase (MEK)-Erk1/2 activation and, importantly, overexpression of constitutively active MEK resulted in rescue of FA disassembly and recovery of cell invasion. Furthermore, RIAM-promoted Ras homologue gene family, member A (RhoA) activation following integrin engagement was needed for subsequent Erk1/2 activation. In addition, RhoA overexpression partially rescued the FA phenotype in RIAM-depleted cells, also suggesting a functional role for RhoA downstream of RIAM, but upstream of Erk1/2. RIAM knockdown also led to enhanced phosphorylation of paxillin Tyr118 and Tyr31. However, expression of phosphomimetic and nonphosphorylatable mutants at these paxillin residues indicated that paxillin hyperphosphorylation is a subsequent consequence of the blockade of FA disassembly, but does not cause the FA phenotype. RIAM depletion also weakened the association between FA proteins, suggesting that it has important adaptor roles in the correct assembly of adhesion complexes. Our data suggest that integrin-triggered, RIAM-dependent MEK activation represents a key feedback event required for efficient FA disassembly, which could help explain the role of RIAM in cell migration and invasion.
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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