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Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases

Dynamic properties are functionally important in many proteins, including the enzyme adenylate kinase (AK), for which the open/closed transition limits the rate of catalytic turnover. Here, we compare our previously published coarse-grained (double-well Gō) simulation of mesophilic AK from E. coli (...

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Autores principales: Daily, Michael D., Phillips, George N., Cui, Qiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3136430/
https://www.ncbi.nlm.nih.gov/pubmed/21779157
http://dx.doi.org/10.1371/journal.pcbi.1002103
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author Daily, Michael D.
Phillips, George N.
Cui, Qiang
author_facet Daily, Michael D.
Phillips, George N.
Cui, Qiang
author_sort Daily, Michael D.
collection PubMed
description Dynamic properties are functionally important in many proteins, including the enzyme adenylate kinase (AK), for which the open/closed transition limits the rate of catalytic turnover. Here, we compare our previously published coarse-grained (double-well Gō) simulation of mesophilic AK from E. coli (AKmeso) to simulations of thermophilic AK from Aquifex aeolicus (AKthermo). In AKthermo, as with AKmeso, the LID domain prefers to close before the NMP domain in the presence of ligand, but LID rigid-body flexibility in the open (O) ensemble decreases significantly. Backbone foldedness in O and/or transition state (TS) ensembles increases significantly relative to AKmeso in some interdomain backbone hinges and within LID. In contact space, the TS of AKthermo has fewer contacts at the CORE-LID interface but a stronger contact network surrounding the CORE-NMP interface than the TS of AKmeso. A “heated” simulation of AKthermo at 375K slightly increases LID rigid-body flexibility in accordance with the “corresponding states” hypothesis. Furthermore, while computational mutation of 7 prolines in AKthermo to their AKmeso counterparts produces similar small perturbations, mutation of these sites, especially positions 8 and 155, to glycine is required to achieve LID rigid-body flexibility and hinge flexibilities comparable to AKmeso. Mutating the 7 sites to proline in AKmeso reduces some hinges' flexibilities, especially hinge 2, but does not reduce LID rigid-body flexibility, suggesting that these two types of motion are decoupled in AKmeso. In conclusion, our results suggest that hinge flexibility and global functional motions alike are correlated with but not exclusively determined by the hinge residues. This mutational framework can inform the rational design of functionally important flexibility and allostery in other proteins toward engineering novel biochemical pathways.
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spelling pubmed-31364302011-07-21 Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases Daily, Michael D. Phillips, George N. Cui, Qiang PLoS Comput Biol Research Article Dynamic properties are functionally important in many proteins, including the enzyme adenylate kinase (AK), for which the open/closed transition limits the rate of catalytic turnover. Here, we compare our previously published coarse-grained (double-well Gō) simulation of mesophilic AK from E. coli (AKmeso) to simulations of thermophilic AK from Aquifex aeolicus (AKthermo). In AKthermo, as with AKmeso, the LID domain prefers to close before the NMP domain in the presence of ligand, but LID rigid-body flexibility in the open (O) ensemble decreases significantly. Backbone foldedness in O and/or transition state (TS) ensembles increases significantly relative to AKmeso in some interdomain backbone hinges and within LID. In contact space, the TS of AKthermo has fewer contacts at the CORE-LID interface but a stronger contact network surrounding the CORE-NMP interface than the TS of AKmeso. A “heated” simulation of AKthermo at 375K slightly increases LID rigid-body flexibility in accordance with the “corresponding states” hypothesis. Furthermore, while computational mutation of 7 prolines in AKthermo to their AKmeso counterparts produces similar small perturbations, mutation of these sites, especially positions 8 and 155, to glycine is required to achieve LID rigid-body flexibility and hinge flexibilities comparable to AKmeso. Mutating the 7 sites to proline in AKmeso reduces some hinges' flexibilities, especially hinge 2, but does not reduce LID rigid-body flexibility, suggesting that these two types of motion are decoupled in AKmeso. In conclusion, our results suggest that hinge flexibility and global functional motions alike are correlated with but not exclusively determined by the hinge residues. This mutational framework can inform the rational design of functionally important flexibility and allostery in other proteins toward engineering novel biochemical pathways. Public Library of Science 2011-07-14 /pmc/articles/PMC3136430/ /pubmed/21779157 http://dx.doi.org/10.1371/journal.pcbi.1002103 Text en Daily et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Daily, Michael D.
Phillips, George N.
Cui, Qiang
Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases
title Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases
title_full Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases
title_fullStr Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases
title_full_unstemmed Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases
title_short Interconversion of Functional Motions between Mesophilic and Thermophilic Adenylate Kinases
title_sort interconversion of functional motions between mesophilic and thermophilic adenylate kinases
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3136430/
https://www.ncbi.nlm.nih.gov/pubmed/21779157
http://dx.doi.org/10.1371/journal.pcbi.1002103
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