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Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments

The hemostatic function of von Willebrand factor is downregulated by the metalloprotease ADAMTS13, which cleaves at a unique site normally buried in the A2 domain. Exposure of the proteolytic site is induced in the wild-type by shear stress as von Willebrand factor circulates in blood. Mutations in...

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Autores principales: Interlandi, Gianluca, Ling, Minhua, Tu, An Yue, Chung, Dominic W., Thomas, Wendy E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3479114/
https://www.ncbi.nlm.nih.gov/pubmed/23110044
http://dx.doi.org/10.1371/journal.pone.0045207
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author Interlandi, Gianluca
Ling, Minhua
Tu, An Yue
Chung, Dominic W.
Thomas, Wendy E.
author_facet Interlandi, Gianluca
Ling, Minhua
Tu, An Yue
Chung, Dominic W.
Thomas, Wendy E.
author_sort Interlandi, Gianluca
collection PubMed
description The hemostatic function of von Willebrand factor is downregulated by the metalloprotease ADAMTS13, which cleaves at a unique site normally buried in the A2 domain. Exposure of the proteolytic site is induced in the wild-type by shear stress as von Willebrand factor circulates in blood. Mutations in the A2 domain, which increase its susceptibility to cleavage, cause type 2A von Willebrand disease. In this study, molecular dynamics simulations suggest that the A2 domain unfolds under tensile force progressively through a series of steps. The simulation results also indicated that three type 2A mutations in the C-terminal half of the A2 domain, L1657I, I1628T and E1638K, destabilize the native state fold of the protein. Furthermore, all three type 2A mutations lowered in silico the tensile force necessary to undock the C-terminal helix [Image: see text]6 from the rest of the A2 domain, the first event in the unfolding pathway. The mutations F1520A, I1651A and A1661G were also predicted by simulations to destabilize the A2 domain and facilitate exposure of the cleavage site. Recombinant A2 domain proteins were expressed and cleavage assays were performed with the wild-type and single-point mutants. All three type 2A and two of the three predicted mutations exhibited increased rate of cleavage by ADAMTS13. These results confirm that destabilization of the helix [Image: see text]6 in the A2 domain facilitates exposure of the cleavage site and increases the rate of cleavage by ADAMTS13.
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spelling pubmed-34791142012-10-29 Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments Interlandi, Gianluca Ling, Minhua Tu, An Yue Chung, Dominic W. Thomas, Wendy E. PLoS One Research Article The hemostatic function of von Willebrand factor is downregulated by the metalloprotease ADAMTS13, which cleaves at a unique site normally buried in the A2 domain. Exposure of the proteolytic site is induced in the wild-type by shear stress as von Willebrand factor circulates in blood. Mutations in the A2 domain, which increase its susceptibility to cleavage, cause type 2A von Willebrand disease. In this study, molecular dynamics simulations suggest that the A2 domain unfolds under tensile force progressively through a series of steps. The simulation results also indicated that three type 2A mutations in the C-terminal half of the A2 domain, L1657I, I1628T and E1638K, destabilize the native state fold of the protein. Furthermore, all three type 2A mutations lowered in silico the tensile force necessary to undock the C-terminal helix [Image: see text]6 from the rest of the A2 domain, the first event in the unfolding pathway. The mutations F1520A, I1651A and A1661G were also predicted by simulations to destabilize the A2 domain and facilitate exposure of the cleavage site. Recombinant A2 domain proteins were expressed and cleavage assays were performed with the wild-type and single-point mutants. All three type 2A and two of the three predicted mutations exhibited increased rate of cleavage by ADAMTS13. These results confirm that destabilization of the helix [Image: see text]6 in the A2 domain facilitates exposure of the cleavage site and increases the rate of cleavage by ADAMTS13. Public Library of Science 2012-10-23 /pmc/articles/PMC3479114/ /pubmed/23110044 http://dx.doi.org/10.1371/journal.pone.0045207 Text en © 2012 Interlandi 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
Interlandi, Gianluca
Ling, Minhua
Tu, An Yue
Chung, Dominic W.
Thomas, Wendy E.
Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments
title Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments
title_full Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments
title_fullStr Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments
title_full_unstemmed Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments
title_short Structural Basis of Type 2A von Willebrand Disease Investigated by Molecular Dynamics Simulations and Experiments
title_sort structural basis of type 2a von willebrand disease investigated by molecular dynamics simulations and experiments
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3479114/
https://www.ncbi.nlm.nih.gov/pubmed/23110044
http://dx.doi.org/10.1371/journal.pone.0045207
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