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Published on: October 8, 2015
Rac1 is deactivated at integrin activation sites through an IQGAP1-filamin-A-RacGAP1 pathway
Guillaume Jacquemet1, Mark R Morgan, Adam Byron
1Wellcome Trust Centre for Cell-Matrix Research, Faculty of Life Sciences, University of Manchester, Manchester M13 9PT, UK.
Abstract:
Cell migration makes a fundamental contribution to both normal physiology and disease pathogenesis. Integrin engagement with extracellular ligands spatially controls, via the cyclical activation and deactivation of the small GTPase Rac1, the dynamic membrane protrusion and cytoskeletal reorganization events that are required for directional migration. Although the pathways that control integrin-mediated Rac1 activation are reasonably well defined, the mechanisms that are responsible for switching off activity are poorly understood. Here, proteomic analysis of activated integrin-associated complexes suggests filamin-A and IQ-motif-containing GTPase-activating protein 1 (IQGAP1) as candidates that link β1 integrin to Rac1. siRNA-mediated knockdown of either filamin-A or IQGAP1 induced high, dysregulated Rac1 activity during cell spreading on fibronectin. Using immunoprecipitation and immunocytochemistry, filamin-A and IQGAP1 were shown to be part of a complex that is recruited to active β1 integrin. Mass spectrometric analysis of individual filamin-A, IQGAP1 and Rac1 pull-downs and biochemical analysis, identified RacGAP1 as a novel IQGAP1 binding partner. Further immunoprecipitation and immunocytochemistry analyses demonstrated that RacGAP1 is recruited to IQGAP1 and active β1 integrin, and that suppression of RacGAP1 expression triggered elevated Rac1 activity during spreading on fibronectin. Consistent with these findings, reduced expression of filamin-A, IQGAP1 or RacGAP1 triggered unconstrained membrane protrusion and disrupted directional cell migration on fibrillar extracellular matrices. These findings suggest a model whereby integrin engagement, followed by filamin-A, IQGAP1 and RacGAP1 recruitment, deactivates Rac1 to constrain its activity spatially and thereby coordinate directional cell migration.
Insights
Filamin-A, IQGAP1, and RacGAP1 proteins are crucial for deactivating Rac1, a small GTPase, to control cell migration. This discovery sheds light on how cell movement is spatially regulated during physiological and disease processes.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Cell migration is vital for normal physiology and disease, involving dynamic membrane protrusion and cytoskeletal reorganization.
- Integrin engagement with extracellular ligands controls cell migration via the small GTPase Rac1.
- Mechanisms for deactivating Rac1 during cell migration are poorly understood.
Purpose of the Study:
- To identify proteins involved in the deactivation of Rac1 during cell migration.
- To elucidate the molecular mechanisms underlying spatial control of Rac1 activity by integrins.
Main Methods:
- Proteomic analysis of activated integrin-associated complexes.
- siRNA-mediated knockdown of candidate proteins.
- Immunoprecipitation and immunocytochemistry.
- Mass spectrometric analysis of protein pull-downs.
- Biochemical analysis.
Main Results:
- Filamin-A and IQGAP1 were identified as linking β1 integrin to Rac1.
- Knockdown of filamin-A or IQGAP1 led to dysregulated Rac1 activity during cell spreading.
- RacGAP1 was identified as a novel IQGAP1 binding partner and recruited to active β1 integrin.
- Suppression of filamin-A, IQGAP1, or RacGAP1 disrupted directional cell migration.
Conclusions:
- Integrin engagement recruits filamin-A, IQGAP1, and RacGAP1 to deactivate Rac1.
- This deactivation spatially constrains Rac1 activity, coordinating directional cell migration.
- These findings provide a novel model for the spatial regulation of cell migration.
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