Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.

Knowledge of the structural basis of protein-protein interactions (PPI) is of fundamental importance for understanding the organization and functioning of biological networks and advancing the design of therapeutics which target PPI. Allosteric modulators play an important role in regulating such in...

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Main Authors: Yosef Y Kuttner, Tal Nagar, Stanislav Engel
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-04-01
Series:PLoS Computational Biology
Online Access:http://europepmc.org/articles/PMC3617199?pdf=render
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spelling doaj-8e47b4f0e568419fb40ed9102dda6cbb2020-11-25T01:11:55ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582013-04-0194e100302810.1371/journal.pcbi.1003028Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.Yosef Y KuttnerTal NagarStanislav EngelKnowledge of the structural basis of protein-protein interactions (PPI) is of fundamental importance for understanding the organization and functioning of biological networks and advancing the design of therapeutics which target PPI. Allosteric modulators play an important role in regulating such interactions by binding at site(s) orthogonal to the complex interface and altering the protein's propensity for complex formation. In this work, we apply an approach recently developed by us for analyzing protein surfaces based on steered molecular dynamics simulation (SMD) to the study of the dynamic properties of functionally distinct conformations of a model protein, calmodulin (CaM), whose ability to interact with target proteins is regulated by the presence of the allosteric modulator Ca(2+). Calmodulin is a regulatory protein that acts as an intracellular Ca(2+) sensor to control a wide variety of cellular processes. We demonstrate that SMD analysis is capable of pinpointing CaM surfaces implicated in the recognition of both the allosteric modulator Ca(2+) and target proteins. Our analysis of changes in the dynamic properties of the CaM backbone elicited by Ca(2+) binding yielded new insights into the molecular mechanism of allosteric regulation of CaM-target interactions.http://europepmc.org/articles/PMC3617199?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Yosef Y Kuttner
Tal Nagar
Stanislav Engel
spellingShingle Yosef Y Kuttner
Tal Nagar
Stanislav Engel
Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.
PLoS Computational Biology
author_facet Yosef Y Kuttner
Tal Nagar
Stanislav Engel
author_sort Yosef Y Kuttner
title Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.
title_short Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.
title_full Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.
title_fullStr Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.
title_full_unstemmed Surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by Ca2+.
title_sort surface dynamics in allosteric regulation of protein-protein interactions: modulation of calmodulin functions by ca2+.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2013-04-01
description Knowledge of the structural basis of protein-protein interactions (PPI) is of fundamental importance for understanding the organization and functioning of biological networks and advancing the design of therapeutics which target PPI. Allosteric modulators play an important role in regulating such interactions by binding at site(s) orthogonal to the complex interface and altering the protein's propensity for complex formation. In this work, we apply an approach recently developed by us for analyzing protein surfaces based on steered molecular dynamics simulation (SMD) to the study of the dynamic properties of functionally distinct conformations of a model protein, calmodulin (CaM), whose ability to interact with target proteins is regulated by the presence of the allosteric modulator Ca(2+). Calmodulin is a regulatory protein that acts as an intracellular Ca(2+) sensor to control a wide variety of cellular processes. We demonstrate that SMD analysis is capable of pinpointing CaM surfaces implicated in the recognition of both the allosteric modulator Ca(2+) and target proteins. Our analysis of changes in the dynamic properties of the CaM backbone elicited by Ca(2+) binding yielded new insights into the molecular mechanism of allosteric regulation of CaM-target interactions.
url http://europepmc.org/articles/PMC3617199?pdf=render
work_keys_str_mv AT yosefykuttner surfacedynamicsinallostericregulationofproteinproteininteractionsmodulationofcalmodulinfunctionsbyca2
AT talnagar surfacedynamicsinallostericregulationofproteinproteininteractionsmodulationofcalmodulinfunctionsbyca2
AT stanislavengel surfacedynamicsinallostericregulationofproteinproteininteractionsmodulationofcalmodulinfunctionsbyca2
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