Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics

Although CyaA has been studied for over three decades and revealed itself to be a very good prototype for developing various biotechnological applications, only a little is known about its functional dynamics and about the conformational landscape of this protein. Molecular dynamics simulations help...

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Main Author: Thérèse E Malliavin
Format: Article
Language:English
Published: MDPI AG 2017-06-01
Series:Toxins
Subjects:
Online Access:http://www.mdpi.com/2072-6651/9/7/199
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spelling doaj-1cd077354d0a4639b50f674e6ef3e1e42020-11-25T00:17:09ZengMDPI AGToxins2072-66512017-06-019719910.3390/toxins9070199toxins9070199Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional DynamicsThérèse E Malliavin0Institut Pasteur and CNRS UMR 3528, Unité de Bioinformatique Structurale, 28, rue du Dr Roux, F-75015 Paris, FranceAlthough CyaA has been studied for over three decades and revealed itself to be a very good prototype for developing various biotechnological applications, only a little is known about its functional dynamics and about the conformational landscape of this protein. Molecular dynamics simulations helped to clarify the view on these points in the following way. First, the model of interaction between AC and calmodulin (CaM) has evolved from an interaction centered on the surface between C-CaM hydrophobic patch and the α helix H of AC, to a more balanced view, in which the C-terminal tail of AC along with the C-CaM Calcium loops play an important role. This role has been confirmed by the reduction of the affinity of AC for calmodulin in the presence of R338, D360 and N347 mutations. In addition, enhanced sampling studies have permitted to propose a representation of the conformational space for the isolated AC. It remains to refine this representation using structural low resolution information measured on the inactive state of AC. Finally, due to a virtual screening study on another adenyl cyclase from Bacillus anthracis, weak inhibitors of AC have been discovered.http://www.mdpi.com/2072-6651/9/7/199Bordetella pertussisadenyl cyclasemolecular dynamics simulationenhanced samplingvirtual screeningthiophen ureoacids
collection DOAJ
language English
format Article
sources DOAJ
author Thérèse E Malliavin
spellingShingle Thérèse E Malliavin
Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics
Toxins
Bordetella pertussis
adenyl cyclase
molecular dynamics simulation
enhanced sampling
virtual screening
thiophen ureoacids
author_facet Thérèse E Malliavin
author_sort Thérèse E Malliavin
title Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics
title_short Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics
title_full Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics
title_fullStr Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics
title_full_unstemmed Molecular Modeling of the Catalytic Domain of CyaA Deepened the Knowledge of Its Functional Dynamics
title_sort molecular modeling of the catalytic domain of cyaa deepened the knowledge of its functional dynamics
publisher MDPI AG
series Toxins
issn 2072-6651
publishDate 2017-06-01
description Although CyaA has been studied for over three decades and revealed itself to be a very good prototype for developing various biotechnological applications, only a little is known about its functional dynamics and about the conformational landscape of this protein. Molecular dynamics simulations helped to clarify the view on these points in the following way. First, the model of interaction between AC and calmodulin (CaM) has evolved from an interaction centered on the surface between C-CaM hydrophobic patch and the α helix H of AC, to a more balanced view, in which the C-terminal tail of AC along with the C-CaM Calcium loops play an important role. This role has been confirmed by the reduction of the affinity of AC for calmodulin in the presence of R338, D360 and N347 mutations. In addition, enhanced sampling studies have permitted to propose a representation of the conformational space for the isolated AC. It remains to refine this representation using structural low resolution information measured on the inactive state of AC. Finally, due to a virtual screening study on another adenyl cyclase from Bacillus anthracis, weak inhibitors of AC have been discovered.
topic Bordetella pertussis
adenyl cyclase
molecular dynamics simulation
enhanced sampling
virtual screening
thiophen ureoacids
url http://www.mdpi.com/2072-6651/9/7/199
work_keys_str_mv AT thereseemalliavin molecularmodelingofthecatalyticdomainofcyaadeepenedtheknowledgeofitsfunctionaldynamics
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