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

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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