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Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
Structural analysis of protein kinase A mutants with Rho-kinase inhibitor specificity
Stefan Bonn1, Saturnino Herrero, Christine B Breitenlechner
1Group of Structural Biochemistry, German Cancer Research Center, 69120 Heidelberg.
Abstract:
Controlling aberrant kinase-mediated cellular signaling is a major strategy in cancer therapy; successful protein kinase inhibitors such as Tarceva and Gleevec verify this approach. Specificity of inhibitors for the targeted kinase(s), however, is a crucial factor for therapeutic success. Based on homology modeling, we previously identified four amino acids in the active site of Rho-kinase that likely determine inhibitor specificities observed for Rho-kinase relative to protein kinase A (PKA) (in PKA numbering: T183A, L49I, V123M, and E127D), and a fifth (Q181K) that played a surprising role in PKA-PKB hybrid proteins. We have systematically mutated these residues in PKA to their counterparts in Rho-kinase, individually and in combination. Using four Rho-kinase-specific, one PKA-specific, and one pan-kinase-specific inhibitor, we measured the inhibitor-binding properties of the mutated proteins and identify the roles of individual residues as specificity determinants. Two combined mutant proteins, containing the combination of mutations T183A and L49I, closely mimic Rho-kinase. Kinetic results corroborate the hypothesis that side-chain identities form the major determinants of selectivity. An unexpected result of the analysis is the consistent contribution of the individual mutations by simple factors. Crystal structures of the surrogate kinase inhibitor complexes provide a detailed basis for an understanding of these selectivity determinant residues. The ability to obtain kinetic and structural data from these PKA mutants, combined with their Rho-kinase-like selectivity profiles, make them valuable for use as surrogate kinases for structure-based inhibitor design.
Insights
This study engineered protein kinase A (PKA) mutants to mimic Rho-kinase, identifying key amino acids that determine inhibitor specificity. These PKA mutants serve as valuable surrogates for structure-based drug design in cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Kinase inhibitors are crucial cancer therapeutics, but target specificity is paramount.
- Rho-kinase and protein kinase A (PKA) are key signaling enzymes.
- Understanding inhibitor selectivity determinants is vital for drug development.
Purpose of the Study:
- To identify and characterize amino acid residues in PKA that dictate inhibitor specificity.
- To create PKA mutants that mimic Rho-kinase's inhibitor selectivity profile.
- To validate these mutants as surrogate kinases for structure-based inhibitor design.
Main Methods:
- Homology modeling to predict specificity-determining residues.
- Systematic site-directed mutagenesis of PKA active site residues.
- Inhibitor-binding assays using Rho-kinase-specific, PKA-specific, and pan-kinase inhibitors.
- Kinetic analysis and crystal structure determination of inhibitor-mutant complexes.
Main Results:
- Mutations T183A and L49I in PKA, individually and combined, significantly altered inhibitor selectivity.
- Two combined PKA mutants (T183A/L49I) closely replicated Rho-kinase's inhibitor selectivity.
- Kinetic data confirmed that side-chain identities are major determinants of kinase inhibitor selectivity.
- Crystal structures provided atomic-level insights into residue-based selectivity.
Conclusions:
- Specific amino acid residues in the kinase active site are critical for determining inhibitor selectivity.
- Engineered PKA mutants exhibiting Rho-kinase-like selectivity are effective surrogate kinases.
- These surrogate kinases facilitate structure-based design of more specific kinase inhibitors for cancer therapy.
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