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Dynamics of the Acetylcholinesterase Tetramer

Acetylcholinesterase rapidly hydrolyzes the neurotransmitter acetylcholine in cholinergic synapses, including the neuromuscular junction. The tetramer is the most important functional form of the enzyme. Two low-resolution crystal structures have been solved. One is compact with two of its four peri...

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Autores principales: Gorfe, Alemayehu A., Chang, Chia-en A., Ivanov, Ivaylo, McCammon, J. Andrew
Formato: Texto
Lenguaje:English
Publicado: The Biophysical Society 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2212707/
https://www.ncbi.nlm.nih.gov/pubmed/17921202
http://dx.doi.org/10.1529/biophysj.107.117879
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author Gorfe, Alemayehu A.
Chang, Chia-en A.
Ivanov, Ivaylo
McCammon, J. Andrew
author_facet Gorfe, Alemayehu A.
Chang, Chia-en A.
Ivanov, Ivaylo
McCammon, J. Andrew
author_sort Gorfe, Alemayehu A.
collection PubMed
description Acetylcholinesterase rapidly hydrolyzes the neurotransmitter acetylcholine in cholinergic synapses, including the neuromuscular junction. The tetramer is the most important functional form of the enzyme. Two low-resolution crystal structures have been solved. One is compact with two of its four peripheral anionic sites (PAS) sterically blocked by complementary subunits. The other is a loose tetramer with all four subunits accessible to solvent. These structures lacked the C-terminal amphipathic t-peptide (WAT domain) that interacts with the proline-rich attachment domain (PRAD). A complete tetramer model (AChEt) was built based on the structure of the PRAD/WAT complex and the compact tetramer. Normal mode analysis suggested that AChEt could exist in several conformations with subunits fluctuating relative to one another. Here, a multiscale simulation involving all-atom molecular dynamics and Cα-based coarse-grained Brownian dynamics simulations was carried out to investigate the large-scale intersubunit dynamics in AChEt. We sampled the ns-μs timescale motions and found that the tetramer indeed constitutes a dynamic assembly of monomers. The intersubunit fluctuation is correlated with the occlusion of the PAS. Such motions of the subunits “gate” ligand-protein association. The gates are open more than 80% of the time on average, which suggests a small reduction in ligand-protein binding. Despite the limitations in the starting model and approximations inherent in coarse graining, these results are consistent with experiments which suggest that binding of a substrate to the PAS is only somewhat hindered by the association of the subunits.
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spelling pubmed-22127072008-07-23 Dynamics of the Acetylcholinesterase Tetramer Gorfe, Alemayehu A. Chang, Chia-en A. Ivanov, Ivaylo McCammon, J. Andrew Biophys J Biophysical Theory and Modeling Acetylcholinesterase rapidly hydrolyzes the neurotransmitter acetylcholine in cholinergic synapses, including the neuromuscular junction. The tetramer is the most important functional form of the enzyme. Two low-resolution crystal structures have been solved. One is compact with two of its four peripheral anionic sites (PAS) sterically blocked by complementary subunits. The other is a loose tetramer with all four subunits accessible to solvent. These structures lacked the C-terminal amphipathic t-peptide (WAT domain) that interacts with the proline-rich attachment domain (PRAD). A complete tetramer model (AChEt) was built based on the structure of the PRAD/WAT complex and the compact tetramer. Normal mode analysis suggested that AChEt could exist in several conformations with subunits fluctuating relative to one another. Here, a multiscale simulation involving all-atom molecular dynamics and Cα-based coarse-grained Brownian dynamics simulations was carried out to investigate the large-scale intersubunit dynamics in AChEt. We sampled the ns-μs timescale motions and found that the tetramer indeed constitutes a dynamic assembly of monomers. The intersubunit fluctuation is correlated with the occlusion of the PAS. Such motions of the subunits “gate” ligand-protein association. The gates are open more than 80% of the time on average, which suggests a small reduction in ligand-protein binding. Despite the limitations in the starting model and approximations inherent in coarse graining, these results are consistent with experiments which suggest that binding of a substrate to the PAS is only somewhat hindered by the association of the subunits. The Biophysical Society 2008-02-15 2007-10-05 /pmc/articles/PMC2212707/ /pubmed/17921202 http://dx.doi.org/10.1529/biophysj.107.117879 Text en Copyright © 2008, Biophysical Society This is an Open Access article distributed under the terms of the Creative Commons-Attribution Noncommercial License (http://creativecommons.org/licenses/by-nc/2.0/), which permits unrestricted noncommercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Biophysical Theory and Modeling
Gorfe, Alemayehu A.
Chang, Chia-en A.
Ivanov, Ivaylo
McCammon, J. Andrew
Dynamics of the Acetylcholinesterase Tetramer
title Dynamics of the Acetylcholinesterase Tetramer
title_full Dynamics of the Acetylcholinesterase Tetramer
title_fullStr Dynamics of the Acetylcholinesterase Tetramer
title_full_unstemmed Dynamics of the Acetylcholinesterase Tetramer
title_short Dynamics of the Acetylcholinesterase Tetramer
title_sort dynamics of the acetylcholinesterase tetramer
topic Biophysical Theory and Modeling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2212707/
https://www.ncbi.nlm.nih.gov/pubmed/17921202
http://dx.doi.org/10.1529/biophysj.107.117879
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