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Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization

The process of protein misfolding and self-assembly into various, polymorphic aggregates is associated with a number of important neurodegenerative diseases. Only recently, crystal structures of several short peptides have provided detailed structural insights into [Image: see text]-sheet rich aggre...

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Autores principales: Matthes, Dirk, Gapsys, Vytautas, Daebel, Venita, de Groot, Bert L.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3086902/
https://www.ncbi.nlm.nih.gov/pubmed/21559277
http://dx.doi.org/10.1371/journal.pone.0019129
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author Matthes, Dirk
Gapsys, Vytautas
Daebel, Venita
de Groot, Bert L.
author_facet Matthes, Dirk
Gapsys, Vytautas
Daebel, Venita
de Groot, Bert L.
author_sort Matthes, Dirk
collection PubMed
description The process of protein misfolding and self-assembly into various, polymorphic aggregates is associated with a number of important neurodegenerative diseases. Only recently, crystal structures of several short peptides have provided detailed structural insights into [Image: see text]-sheet rich aggregates, known as amyloid fibrils. Knowledge about early events of the formation and interconversion of small oligomeric states, an inevitable step in the cascade of peptide self-assembly, however, remains still limited. We employ molecular dynamics simulations in explicit solvent to study the spontaneous aggregation process of steric zipper peptide segments from the tau protein and insulin in atomistic detail. Starting from separated chains with random conformations, we find a rapid formation of structurally heterogeneous, [Image: see text]-sheet rich oligomers, emerging from multiple bimolecular association steps and diverse assembly pathways. Furthermore, our study provides evidence that aggregate intermediates as small as dimers can be kinetically trapped and thus affect the structural evolution of larger oligomers. Alternative aggregate structures are found for both peptide sequences in the different independent simulations, some of which feature characteristics of the known steric zipper conformation (e.g., [Image: see text]-sheet bilayers with a dry interface). The final aggregates interconvert with topologically distinct oligomeric states exclusively via internal rearrangements. The peptide oligomerization was analyzed through the perspective of a minimal oligomer, i.e., the dimer. Thereby all observed multimeric aggregates can be consistently mapped onto a space of reduced dimensionality. This novel method of conformational mapping reveals heterogeneous association and reorganization dynamics that are governed by the characteristics of peptide sequence and oligomer size.
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spelling pubmed-30869022011-05-10 Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization Matthes, Dirk Gapsys, Vytautas Daebel, Venita de Groot, Bert L. PLoS One Research Article The process of protein misfolding and self-assembly into various, polymorphic aggregates is associated with a number of important neurodegenerative diseases. Only recently, crystal structures of several short peptides have provided detailed structural insights into [Image: see text]-sheet rich aggregates, known as amyloid fibrils. Knowledge about early events of the formation and interconversion of small oligomeric states, an inevitable step in the cascade of peptide self-assembly, however, remains still limited. We employ molecular dynamics simulations in explicit solvent to study the spontaneous aggregation process of steric zipper peptide segments from the tau protein and insulin in atomistic detail. Starting from separated chains with random conformations, we find a rapid formation of structurally heterogeneous, [Image: see text]-sheet rich oligomers, emerging from multiple bimolecular association steps and diverse assembly pathways. Furthermore, our study provides evidence that aggregate intermediates as small as dimers can be kinetically trapped and thus affect the structural evolution of larger oligomers. Alternative aggregate structures are found for both peptide sequences in the different independent simulations, some of which feature characteristics of the known steric zipper conformation (e.g., [Image: see text]-sheet bilayers with a dry interface). The final aggregates interconvert with topologically distinct oligomeric states exclusively via internal rearrangements. The peptide oligomerization was analyzed through the perspective of a minimal oligomer, i.e., the dimer. Thereby all observed multimeric aggregates can be consistently mapped onto a space of reduced dimensionality. This novel method of conformational mapping reveals heterogeneous association and reorganization dynamics that are governed by the characteristics of peptide sequence and oligomer size. Public Library of Science 2011-05-03 /pmc/articles/PMC3086902/ /pubmed/21559277 http://dx.doi.org/10.1371/journal.pone.0019129 Text en Matthes 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
Matthes, Dirk
Gapsys, Vytautas
Daebel, Venita
de Groot, Bert L.
Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization
title Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization
title_full Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization
title_fullStr Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization
title_full_unstemmed Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization
title_short Mapping the Conformational Dynamics and Pathways of Spontaneous Steric Zipper Peptide Oligomerization
title_sort mapping the conformational dynamics and pathways of spontaneous steric zipper peptide oligomerization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3086902/
https://www.ncbi.nlm.nih.gov/pubmed/21559277
http://dx.doi.org/10.1371/journal.pone.0019129
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