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Interaction of Rac1 with GTPase-activating proteins and putative effectors. A comparison with Cdc42 and RhoA
1Department of Biochemistry, University of Tennessee, Memphis, Tennessee 38163, USA.
Abstract:
The intrinsic GTPase activity of the Rho family GTP-binding protein Rac1 is drastically stimulated upon interaction with its GTPase-activating proteins (GAPs) and is significantly inhibited when coupled to certain effector targets such as the p21-activated kinases (PAKs) and IQGAPs. Here we have characterized the interaction of Rac1 with a panel of mammalian GAPs and putative effectors by measuring the kinetic and binding parameters involved and made comparisons with similar interactions for Cdc42 and RhoA. In contrast with Cdc42 (for which the GAP domain of p50RhoGAP is 50-fold more efficient than those of p190, Bcr, and 3BP-1) and with RhoA (toward which only p50RhoGAP and p190 displayed high efficiencies), the catalytic efficiencies (Kcat/Km) of the GAP domains of p50RhoGAP, p190, Bcr, and 3BP-1 on Rac1 are found to be comparable in a range between 0.9 and 2.6 min-1 microM-1. However, similar to the cases of Cdc42 and RhoA, the Km values of the GAP domains on Rac1 compare well to the binding affinity to the guanylyl imidodiphosphate-bound Rac1, which ranges from 10.5 to 40.5 microM, suggesting a rapid equilibrium reaction mechanism. The dissociation constants of the p21-binding domains of PAK1, PAK2, and the RasGAP-related domain of IQGAP1, which all cause significant reduction of the intrinsic rate of GTP hydrolysis upon binding to Rac1-GTP, are found to be 0.71, 0.26, and 2.13 microM for Rac1-GTP, compared with that determined for Cdc42-GTP at 2.9, 20.5, and 0.39 microM, respectively, under similar conditions. These results suggest that p50RhoGAP, p190, Bcr, and 3BP-1 are all capable of acting as a negative regulator for Rac1-mediated signaling, and that, although PAK1 and IQGAP1 can couple tightly with both Rac1 and Cdc42, PAK2 is likely to be a specific effector for Rac1 instead of Cdc42.
Insights
Rac1 GTPase activity is regulated by GTPase-activating proteins (GAPs) and effectors. Unlike other Rho GTPases, Rac1 interacts similarly with multiple GAPs, but PAK2 appears to be a specific effector.
Area of Science:
- Molecular Biology
- Cell Signaling
- Protein Biochemistry
Background:
- Rho family GTP-binding proteins, including Rac1, Cdc42, and RhoA, are key regulators of cellular processes.
- Their activity is modulated by GTPase-activating proteins (GAPs) and effector proteins.
- Understanding these interactions is crucial for deciphering complex cellular signaling pathways.
Purpose of the Study:
- To characterize the kinetic and binding interactions of Rac1 with various mammalian GAPs and effector proteins.
- To compare these interactions with those of Cdc42 and RhoA.
- To identify specific regulators and effectors for Rac1.
Main Methods:
- Enzyme kinetics assays to measure catalytic efficiencies (Kcat/Km) of GAPs on Rac1.
- Binding assays to determine dissociation constants (Kd) of effectors with Rac1-GTP.
- Comparative analysis of kinetic and binding parameters across Rac1, Cdc42, and RhoA.
Main Results:
- The GAP domains of p50RhoGAP, p190, Bcr, and 3BP-1 exhibit comparable catalytic efficiencies on Rac1.
- Binding affinities of these GAPs to Rac1-GTP align with a rapid equilibrium mechanism.
- PAK1 and IQGAP1 bind to both Rac1-GTP and Cdc42-GTP, while PAK2 shows a stronger preference for Rac1-GTP.
Conclusions:
- p50RhoGAP, p190, Bcr, and 3BP-1 function as general negative regulators of Rac1 signaling.
- PAK1 and IQGAP1 are likely effectors for both Rac1 and Cdc42.
- PAK2 is identified as a potentially specific effector for Rac1, distinguishing it from Cdc42.