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Updated: Jul 21, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Oncogenic Dbl, Cdc42, and p21-activated kinase form a ternary signaling intermediate through the minimum interactive
Lei Wang1, Kejin Zhu, Yi Zheng
1Division of Experimental Hematology, Children's Hospital Research Foundation, Graduate Program of Molecular Developmental Biology, University of Cincinnati, Cincinnati, Ohio 45229, USA.
Abstract:
Activation of many Rho family GTPase pathways involves the signaling module consisting of the Dbl-like guanine nucleotide exchange factors (GEFs), the Rho GTPases, and the Rho GTPase specific effectors. The current biochemical model postulates that the GEF-stimulated GDP/GTP exchange of Rho GTPases leads to the active Rho-GTP species, and subsequently the active Rho GTPases interact with and activate the effectors. Here we report an unexpected finding that the Dbl oncoprotein, Cdc42 GTPase, and PAK1 can form a complex through their minimum functional motifs, i.e., the Dbl-homolgy (DH) and Pleckstrin-homology domains of Dbl, Cdc42, and the PBD domain of PAK1. The Dbl-Cdc42-PAK1 complex is sensitive to the nucleotide-binding state of Cdc42 since either dominant negative or constitutively active Cdc42 readily disrupts the ternary binding interaction. The complex formation depends on the interactions between the DH domain of Dbl and Cdc42 and between Cdc42 and the PBD domain of PAK1 and can be reconstituted in vitro by using the purified components. Furthermore, the Dbl-Cdc42-PAK1 ternary complex is active in generating signaling output through the activated PAK1 kinase in the complex. The GEF-Rho-effector ternary intermediate is also found in other Dbl-like GEF, Rho GTPase, and effector interactions. Finally, PAK1, through the PDB domain, is able to accelerate the GEF-induced GTP loading onto Cdc42. These results suggest that signal transduction through Cdc42 and possibly other Rho family GTPases could involve tightly coupled guanine nucleotide exchange and effector activation mechanisms and that Rho GTPase effector may have a feedback regulatory role in the Rho GTPase activation.
Insights
This study reveals that Dbl-like guanine nucleotide exchange factors (GEFs), Cdc42 GTPase, and PAK1 form a complex, suggesting a coupled mechanism for Rho GTPase signaling and effector activation.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Rho GTPase pathways are crucial for cell signaling, typically involving guanine nucleotide exchange factors (GEFs), Rho GTPases, and effectors.
- The established model suggests sequential activation: GEF activates Rho GTPase, which then activates effectors.
Purpose of the Study:
- To investigate the direct interaction between Dbl-like GEFs, Cdc42 GTPase, and the effector PAK1.
- To elucidate the structural and functional implications of a potential ternary complex.
Main Methods:
- Utilized minimum functional motifs including Dbl homology (DH) and Pleckstrin homology (PH) domains of Dbl, Cdc42, and the PBD domain of PAK1.
- Reconstituted the complex in vitro using purified components.
- Assessed complex sensitivity to Cdc42 nucleotide-binding states (dominant negative and constitutively active forms).
Main Results:
- Demonstrated the formation of a Dbl-Cdc42-PAK1 ternary complex dependent on specific domain interactions.
- Showed that complex formation is disrupted by altered Cdc42 nucleotide-binding states.
- Confirmed that the ternary complex is enzymatically active, with PAK1 kinase activated within the complex.
- Observed that PAK1 accelerates GEF-induced GTP loading onto Cdc42.
Conclusions:
- Suggests that Rho GTPase signal transduction involves tightly coupled guanine nucleotide exchange and effector activation.
- Proposes a feedback regulatory role for Rho GTPase effectors in Rho GTPase activation.
- Highlights the formation of GEF-Rho-effector ternary intermediates as a conserved mechanism.
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