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Updated: Jul 6, 2026

Spatio-Temporal Manipulation of Small GTPase Activity at Subcellular Level and on Timescale of Seconds in Living Cells
Published on: March 9, 2012
PAK is required for the disruption of E-cadherin adhesion by the small GTPase Rac
Encarnación Lozano1, Marieke A M Frasa, Katarzyna Smolarczyk
1Molecular Medicine Section, NHLI, Faculty of Medicine, Imperial College London, London, SW7 2AZ, UK. v.braga@imperial.ac.uk
Abstract:
E-cadherin cell-cell adhesion plays a major role in the maintenance of the morphology and function of epithelial tissues. Modulation of E-cadherin function is an important process in morphogenesis and tumour de-differentiation. We have previously shown that constitutively active Rac1 induces the disassembly of E-cadherin complexes from junctions in human keratinocytes. Here, we compare this activity in three members of the Rac subfamily (Rac1, Rac3 and Rac1b) and investigate the molecular mechanisms underlying Rac1-induced destabilization of junctions. We demonstrate that Rac3 shares with Rac1 the ability to interfere with cadherin-mediated adhesion. Rac1b is an alternative splice variant of Rac1 but, surprisingly, Rac1b cannot induce junction disassembly. Thus, Rac family members differ on their potential to perturb keratinocyte cell-cell contacts. The mechanism through which Rac promotes disassembly of cadherin-dependent adhesion does not involve an increase in contractility. Instead, activation of the Rac target PAK1 is necessary for destabilization of cell-cell contacts. Inhibition of PAK1 by dominant-negative constructs or depletion of endogenous PAK1 by RNA interference efficiently blocked Rac1-induced perturbation of junctions. Interestingly, PAK1 cannot be activated by Rac1b, suggesting that this may contribute to the inability of Rac1b to disrupt cell-cell contacts in keratinocytes. As PAK1 also plays a crucial role in lamellipodia formation, our data indicate that PAK1 is at the interface between junction destabilization and increased motility during morphogenetic events.
Insights
Rac1 and Rac3 destabilize E-cadherin cell-cell adhesion in keratinocytes, while Rac1b does not. This process requires PAK1 activation, linking junction destabilization to increased cell motility.
Area of Science:
- Cell biology
- Molecular biology
- Epithelial biology
Background:
- E-cadherin mediated cell-cell adhesion is crucial for epithelial tissue integrity.
- Rac1 activation disrupts E-cadherin complexes in human keratinocytes.
- Rac subfamily members' roles in cell adhesion require further investigation.
Purpose of the Study:
- Compare the effects of Rac1, Rac3, and Rac1b on E-cadherin adhesion.
- Elucidate the molecular mechanisms of Rac1-induced junction destabilization.
- Investigate the role of PAK1 in Rac-mediated adhesion disruption.
Main Methods:
- Expression of constitutively active Rac1, Rac3, and Rac1b in human keratinocytes.
- Analysis of E-cadherin complex localization and cell-cell contacts.
- Inhibition of PAK1 using dominant-negative constructs and RNA interference.
- Assessment of PAK1 activation by different Rac isoforms.
Main Results:
- Rac1 and Rac3, but not Rac1b, disrupt E-cadherin mediated adhesion.
- Rac1-induced junction destabilization is independent of increased contractility.
- PAK1 activation is essential for Rac1-induced junction disassembly.
- Rac1b fails to activate PAK1, correlating with its inability to disrupt cell contacts.
- PAK1 links junction destabilization to increased cell motility.
Conclusions:
- Rac1 and Rac3 have distinct roles in regulating E-cadherin adhesion compared to Rac1b.
- PAK1 is a key mediator of Rac-induced cell-cell junction destabilization and cell motility.
- These findings provide insights into the molecular mechanisms governing epithelial morphogenesis and de-differentiation.
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