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Published on: July 30, 2014
A switch I mutant of Cdc42 exhibits less conformational freedom
Reena Chandrashekar1, Omar Salem, Hana Krizova
1Department of Chemistry and Biochemistry, University of Arkansas, Fayetteville, Arkansas 72701, United States.
Abstract:
Cdc42 is a Ras-related small G-protein and functions as a molecular switch in signal transduction pathways linked with cell growth and differentiation. It is controlled by cycling between GTP-bound (active) and GDP-bound (inactive) forms. Nucleotide binding and hydrolysis are modulated by interactions with effectors and/or regulatory proteins. These interactions are centralized in two relatively flexible "Switch" regions as characterized by internal dynamics on multiple time scales [Loh, A. P., et al. (2001) Biochemistry 40, 4590-4600], and this flexibility may be essential for protein interactions. In the Switch I region, Thr(35) seems to be critical for function, as it is completely invariant in Ras-related proteins. To investigate the importance of conformational flexibility in Switch I of Cdc42, we mutated threonine to alanine, determined the solution structure, and characterized the backbone dynamics of the single-point mutant protein, Cdc42(T35A). Backbone dynamics data suggest that the mutation changes the time scale of the internal motions of several residues, with several resonances not being discernible in wild-type Cdc42 [Adams, P. D., and Oswald, R. E. (2007) Biomol. NMR Assignments 1, 225-227]. The mutation does not appear to affect the thermal stability of Cdc42, and chymotrypsin digestion data further suggest that changes in the conformational flexibility of Switch I slow proteolytic cleavage relative to that of the wild type. In vitro binding assays show less binding of Cdc42(T35A), relative to that of wild type, to a GTPase binding protein that inhibits GTP hydrolysis in Cdc42. These results suggest that the mutation of T(35) leads to the loss of conformational freedom in Switch I that could affect effector-regulatory protein interactions.
Insights
Mutation of Threonine 35 in Cdc42 (a small G-protein) reduced its conformational flexibility. This change impacts interactions with regulatory proteins, affecting cell signaling pathways.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Cdc42 is a Ras-related small G-protein acting as a molecular switch in cell growth and differentiation.
- Its function relies on cycling between active (GTP-bound) and inactive (GDP-bound) states.
- Interactions with regulatory proteins modulate nucleotide binding and hydrolysis, primarily in flexible "Switch" regions.
Purpose of the Study:
- To investigate the role of conformational flexibility in the Switch I region of Cdc42.
- To determine the impact of mutating a critical residue, Threonine 35 (T35), to Alanine (A) on Cdc42 structure and dynamics.
Main Methods:
- Site-directed mutagenesis to create the Cdc42(T35A) mutant.
- Solution structure determination using NMR spectroscopy.
- Backbone dynamics characterization.
- Thermal stability assays.
- Chymotrypsin digestion experiments.
- In vitro binding assays with a GTPase binding protein.
Main Results:
- The T35A mutation altered the time scale of internal motions in the Switch I region.
- Resonances in the mutant protein indicated changes in dynamics compared to wild-type Cdc42.
- Thermal stability was unaffected, but proteolytic cleavage was slower.
- Cdc42(T35A) exhibited reduced binding to a GTPase activating protein.
Conclusions:
- Mutation of T35 in Cdc42 leads to a loss of conformational freedom in the Switch I region.
- This reduced flexibility impacts interactions with effector and regulatory proteins.
- Altered protein interactions may affect Cdc42-mediated signal transduction pathways.
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