The role of conformational entropy in molecular recognition by calmodulin

NMR-measured order parameters of methyl groups can be used to quantitate the entropy of protein conformational change associated with calmodulin-peptide ligand interactions. This conformational entropy is a major contributor to the affinity of calmodulin interactions. The physical basis for high-aff...

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Veröffentlicht in:Nature chemical biology 2010-05, Vol.6 (5), p.352-358
Hauptverfasser: Wand, A Joshua, Marlow, Michael S, Dogan, Jakob, Frederick, Kendra K, Valentine, Kathleen G
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Sprache:eng
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Zusammenfassung:NMR-measured order parameters of methyl groups can be used to quantitate the entropy of protein conformational change associated with calmodulin-peptide ligand interactions. This conformational entropy is a major contributor to the affinity of calmodulin interactions. The physical basis for high-affinity interactions involving proteins is complex and potentially involves a range of energetic contributions. Among these are changes in protein conformational entropy, which cannot yet be reliably computed from molecular structures. We have recently used changes in conformational dynamics as a proxy for changes in conformational entropy of calmodulin upon association with domains from regulated proteins. The apparent change in conformational entropy was linearly related to the overall binding entropy. This view warrants a more quantitative foundation. Here we calibrate an 'entropy meter' using an experimental dynamical proxy based on NMR relaxation and show that changes in the conformational entropy of calmodulin are a significant component of the energetics of binding. Furthermore, the distribution of motion at the interface between the target domain and calmodulin is surprisingly noncomplementary. These observations promote modification of our understanding of the energetics of protein-ligand interactions.
ISSN:1552-4450
1552-4469
DOI:10.1038/nchembio.347