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Updated: May 22, 2026

Pull-down of Calmodulin-binding Proteins
Published on: January 23, 2012
Interactions of calmodulin with death-associated protein kinase peptides: experimental and modeling studies
Krzysztof Kuczera1, Petri Kursula
1Departments of Chemistry and Biochemistry, University of Kansas, Lawrence, KS, 66045, USA. kkuczera@ku.edu
Abstract:
We have studied the interactions between calmodulin (CaM) and three target peptides from the death-associated protein kinase (DAPK) protein family using both experimental and modeling methods, aimed at determining the details of the underlying biological regulation mechanisms. Experimentally, calorimetric binding free energies were determined for the complexes of CaM with peptides representing the DAPK2 wild-type and S308D mutant, as well as DAPK1. The observed affinity of CaM was very similar for all three studied peptides. The DAPK2 and DAPK1 peptides differ significantly in sequence and total charge, while the DAPK2 S308D mutant is designed to model the effects of DAPK2 Ser308 phosphorylation. The crystal structure of the CaM-DAPK2 S308D mutant peptide is also reported. The structures of CaM-DAPK peptide complexes present a mode of CaM-kinase interaction, in which bulky hydrophobic residues at positions 10 and 14 are both bound to the same hydrophobic cleft. To explain the microscopic effects underlying these interactions, we performed free energy calculations based on the approximate MM-PBSA approach. For these highly charged systems, standard MM-PBSA calculations did not yield satisfactory results. We proposed a rational modification of the approach which led to reasonable predictions of binding free energies. All three complexes are strongly stabilized by two effects: electrostatic interactions and buried surface area. The strong favorable interactions are to a large part compensated by unfavorable entropic terms, in which vibrational entropy is the largest contributor. The electrostatic component of the binding free energy followed the trend of the overall peptide charge, with strongest interactions for DAPK1 and weakest for the DAPK2 mutant. The electrostatics was dominated by interactions of the positively charged residues of the peptide with the negatively charged residues of CaM. The nonpolar binding free energy was comparable for all three peptides, the largest contribution coming from the Trp305. About two-thirds of the buried surface area corresponds to nonpolar residues, showing that hydrophobic interactions play an important role in these CaM-peptide complexes. The simulation results agree with the experimental data in predicting a small effect of the S308D mutation on CaM interactions with DAPK2, suggesting that this mutation is not a good model for the S308 phosphorylation.
Insights
Calmodulin (CaM) interactions with death-associated protein kinase (DAPK) peptides show similar binding affinity. Computational modeling revealed electrostatic and hydrophobic forces stabilize these CaM-DAPK complexes, with a modified MM-PBSA approach improving binding energy predictions.
Area of Science:
- Biochemistry and Molecular Biology
- Structural Biology
- Computational Biophysics
Background:
- Calmodulin (CaM) is a crucial calcium-binding protein that regulates numerous cellular processes by interacting with various target proteins.
- Death-associated protein kinases (DAPK) are involved in apoptosis and other cellular functions, with their regulation by CaM being of significant interest.
- Understanding the molecular basis of CaM-DAPK interactions is key to elucidating biological regulation mechanisms.
Purpose of the Study:
- To investigate the binding interactions between calmodulin (CaM) and peptides from the death-associated protein kinase (DAPK) family.
- To determine the thermodynamic and structural details of CaM-DAPK peptide complexes.
- To refine computational methods for accurately predicting binding free energies in highly charged biological systems.
Main Methods:
- Experimental determination of calorimetric binding free energies for CaM with DAPK1, DAPK2 wild-type, and DAPK2 S308D mutant peptides.
- X-ray crystallography to obtain the structure of the CaM-DAPK2 S308D mutant peptide complex.
- Free energy calculations using a modified MM-PBSA approach to analyze microscopic interaction contributions.
Main Results:
- Calmodulin exhibited similar binding affinities for all three studied DAPK peptides.
- The crystal structure revealed a binding mode where bulky hydrophobic residues occupy the same hydrophobic cleft.
- Modified MM-PBSA calculations accurately predicted binding free energies, highlighting the roles of electrostatics and buried surface area.
- Electrostatic interactions were significant, influenced by peptide charge, while hydrophobic interactions, particularly involving Trp305, also played a crucial role.
Conclusions:
- CaM-DAPK peptide interactions are stabilized by a combination of strong electrostatic and hydrophobic forces, counterbalanced by unfavorable entropic terms.
- The S308D mutation in DAPK2 showed a minimal effect on CaM binding, suggesting it may not accurately model the impact of Ser308 phosphorylation.
- The developed modified MM-PBSA approach offers a reliable method for predicting binding free energies in complex, charged protein-peptide systems.
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