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.
Abstract:
Calcineurin (CaN) is a serine/threonine phosphatase that regulates a variety of physiological and pathophysiological processes in mammalian tissue. The calcineurin (CaN) regulatory domain (RD) is responsible for regulating the enzyme's phosphatase activity, and is believed to be highly-disordered when inhibiting CaN, but undergoes a disorder-to-order transition upon diffusion-limited binding with the regulatory protein calmodulin (CaM). The prevalence of polar and charged amino acids in the regulatory domain (RD) suggests electrostatic interactions are involved in mediating calmodulin (CaM) binding, yet the lack of atomistic-resolution data for the bound complex has stymied efforts to probe how the RD sequence controls its conformational ensemble and long-range attractions contribute to target protein binding. In the present study, we investigated via computational modeling the extent to which electrostatics and structural disorder facilitate CaM/CaN association kinetics. Specifically, we examined several RD constructs that contain the CaM binding region (CAMBR) to characterize the roles of electrostatics versus conformational diversity in controlling diffusion-limited association rates, via microsecond-scale molecular dynamics (MD) and Brownian dynamic (BD) simulations. Our results indicate that the RD amino acid composition and sequence length influence both the dynamic availability of conformations amenable to CaM binding, as well as long-range electrostatic interactions to steer association. These findings provide intriguing insight into the interplay between conformational diversity and electrostatically-driven protein-protein association involving CaN, which are likely to extend to wide-ranging diffusion-limited processes regulated by intrinsically-disordered proteins.
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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