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Unique methionine-aromatic interactions govern the calmodulin redox sensor.


ABSTRACT: Calmodulin contains multiple redox sensitive methionines whose oxidation alters the regulation of numerous targets. Molecular dynamics simulations were used to define the molecular principles that govern how calmodulin is structurally poised to detect and respond to methionine oxidation. We found that calmodulin's open and closed states were preferentially stabilized by unique, redox sensitive, methionine-aromatic interactions. Key methionine-aromatic interactions were coupled to reorientation of EF hand helices. Methionine to glutamine substitutions designed to mimic methionine oxidation strongly altered conformational transitions by modulating the strength of methionine-aromatic interactions. Together, these results suggest a broadly applicable redox sensing mechanism though which methionine oxidation by cellular oxidants alters the strength of methionine-aromatic interactions critical for functional protein dynamics.

SUBMITTER: Walgenbach DG 

PROVIDER: S-EPMC6185747 | biostudies-literature | 2018 Oct

REPOSITORIES: biostudies-literature

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Unique methionine-aromatic interactions govern the calmodulin redox sensor.

Walgenbach Daniel G DG   Gregory Andrew J AJ   Klein Jennifer C JC  

Biochemical and biophysical research communications 20180920 1


Calmodulin contains multiple redox sensitive methionines whose oxidation alters the regulation of numerous targets. Molecular dynamics simulations were used to define the molecular principles that govern how calmodulin is structurally poised to detect and respond to methionine oxidation. We found that calmodulin's open and closed states were preferentially stabilized by unique, redox sensitive, methionine-aromatic interactions. Key methionine-aromatic interactions were coupled to reorientation o  ...[more]

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