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Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding

The Sec1/munc18 protein family is essential for vesicle fusion in eukaryotic cells via binding to SNARE proteins. Protein kinase C modulates these interactions by phosphorylating munc18a thereby reducing its affinity to one of the central SNARE members, syntaxin-1a. The established hypothesis is tha...

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Autores principales: Bar-On, Dana, Nachliel, Esther, Gutman, Menachem, Ashery, Uri
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3048386/
https://www.ncbi.nlm.nih.gov/pubmed/21390273
http://dx.doi.org/10.1371/journal.pcbi.1001097
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author Bar-On, Dana
Nachliel, Esther
Gutman, Menachem
Ashery, Uri
author_facet Bar-On, Dana
Nachliel, Esther
Gutman, Menachem
Ashery, Uri
author_sort Bar-On, Dana
collection PubMed
description The Sec1/munc18 protein family is essential for vesicle fusion in eukaryotic cells via binding to SNARE proteins. Protein kinase C modulates these interactions by phosphorylating munc18a thereby reducing its affinity to one of the central SNARE members, syntaxin-1a. The established hypothesis is that the reduced affinity of the phosphorylated munc18a to syntaxin-1a is a result of local electrostatic repulsion between the two proteins, which interferes with their compatibility. The current study challenges this paradigm and offers a novel mechanistic explanation by revealing a syntaxin-non-binding conformation of munc18a that is induced by the phosphomimetic mutations. In the present study, using molecular dynamics simulations, we explored the dynamics of the wild-type munc18a versus phosphomimetic mutant munc18a. We focused on the structural changes that occur in the cavity between domains 3a and 1, which serves as the main syntaxin-binding site. The results of the simulations suggest that the free wild-type munc18a exhibits a dynamic equilibrium between several conformations differing in the size of its cavity (the main syntaxin-binding site). The flexibility of the cavity's size might facilitate the binding or unbinding of syntaxin. In silico insertion of phosphomimetic mutations into the munc18a structure induces the formation of a conformation where the syntaxin-binding area is rigid and blocked as a result of interactions between residues located on both sides of the cavity. Therefore, we suggest that the reduced affinity of the phosphomimetic mutant/phosphorylated munc18a is a result of the closed-cavity conformation, which makes syntaxin binding energetically and sterically unfavorable. The current study demonstrates the potential of phosphoryalation, an essential biological process, to serve as a driving force for dramatic conformational changes of proteins modulating their affinity to target proteins.
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spelling pubmed-30483862011-03-09 Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding Bar-On, Dana Nachliel, Esther Gutman, Menachem Ashery, Uri PLoS Comput Biol Research Article The Sec1/munc18 protein family is essential for vesicle fusion in eukaryotic cells via binding to SNARE proteins. Protein kinase C modulates these interactions by phosphorylating munc18a thereby reducing its affinity to one of the central SNARE members, syntaxin-1a. The established hypothesis is that the reduced affinity of the phosphorylated munc18a to syntaxin-1a is a result of local electrostatic repulsion between the two proteins, which interferes with their compatibility. The current study challenges this paradigm and offers a novel mechanistic explanation by revealing a syntaxin-non-binding conformation of munc18a that is induced by the phosphomimetic mutations. In the present study, using molecular dynamics simulations, we explored the dynamics of the wild-type munc18a versus phosphomimetic mutant munc18a. We focused on the structural changes that occur in the cavity between domains 3a and 1, which serves as the main syntaxin-binding site. The results of the simulations suggest that the free wild-type munc18a exhibits a dynamic equilibrium between several conformations differing in the size of its cavity (the main syntaxin-binding site). The flexibility of the cavity's size might facilitate the binding or unbinding of syntaxin. In silico insertion of phosphomimetic mutations into the munc18a structure induces the formation of a conformation where the syntaxin-binding area is rigid and blocked as a result of interactions between residues located on both sides of the cavity. Therefore, we suggest that the reduced affinity of the phosphomimetic mutant/phosphorylated munc18a is a result of the closed-cavity conformation, which makes syntaxin binding energetically and sterically unfavorable. The current study demonstrates the potential of phosphoryalation, an essential biological process, to serve as a driving force for dramatic conformational changes of proteins modulating their affinity to target proteins. Public Library of Science 2011-03-03 /pmc/articles/PMC3048386/ /pubmed/21390273 http://dx.doi.org/10.1371/journal.pcbi.1001097 Text en Bar-On 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
Bar-On, Dana
Nachliel, Esther
Gutman, Menachem
Ashery, Uri
Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding
title Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding
title_full Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding
title_fullStr Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding
title_full_unstemmed Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding
title_short Dynamic Conformational Changes in MUNC18 Prevent Syntaxin Binding
title_sort dynamic conformational changes in munc18 prevent syntaxin binding
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3048386/
https://www.ncbi.nlm.nih.gov/pubmed/21390273
http://dx.doi.org/10.1371/journal.pcbi.1001097
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