Electrostatic control of calcineurin's intrinsically-disordered regulatory domain binding to calmodulin

Bin Sun1, Erik C Cook2, Trevor P Creamer2

  • 1Department of Chemistry, University of Kentucky, 505 Rose St., Chemistry-Physics Building, Lexington, KY, USA 40506.

Insights

Calcineurin

Area of Science:

  • Biochemistry and Molecular Biology
  • Structural Biology
  • Computational Biology

Background:

  • Calcineurin (CaN) is a key phosphatase regulating cellular processes.
  • Its regulatory domain (RD) is intrinsically disordered and becomes ordered upon calmodulin (CaM) binding.
  • Understanding CaM/CaN interaction is crucial for CaN function.

Purpose of the Study:

  • To investigate the roles of electrostatics and conformational disorder in CaM/CaN association kinetics.
  • To characterize how RD sequence influences binding dynamics and rates.
  • To explore the interplay between disorder, electrostatics, and protein association.

Main Methods:

  • Computational modeling, including microsecond-scale molecular dynamics (MD) and Brownian dynamics (BD) simulations.
  • Analysis of various RD constructs containing the CaM binding region (CAMBR).
  • Investigating electrostatic interactions and conformational diversity.

Main Results:

  • RD amino acid composition and sequence length significantly impact CaM binding.
  • Both dynamic conformational availability and long-range electrostatics steer CaM/CaN association.
  • Structural disorder and electrostatics are critical for CaM/CaN binding kinetics.

Conclusions:

  • CaN RD's conformational ensemble and electrostatic properties are finely tuned for CaM binding.
  • These findings offer insights into intrinsically disordered protein interactions.
  • The study highlights the importance of electrostatics and disorder in diffusion-limited protein association.

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