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Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts

Alpha-synucleinopathies are featured by fibrillar inclusions in brain cells. Although α-synuclein fibrils display structural diversity, the origin of this diversity is not fully understood. We used molecular dynamics simulations to design synthetic peptides, based on the NAC 71-82 amino acid fragmen...

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Autores principales: Näsström, Thomas, Dahlberg, Tobias, Malyshev, Dmitry, Ådén, Jörgen, Andersson, Per Ola, Andersson, Magnus, Karlsson, Björn C. G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8431055/
https://www.ncbi.nlm.nih.gov/pubmed/34502242
http://dx.doi.org/10.3390/ijms22179334
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author Näsström, Thomas
Dahlberg, Tobias
Malyshev, Dmitry
Ådén, Jörgen
Andersson, Per Ola
Andersson, Magnus
Karlsson, Björn C. G.
author_facet Näsström, Thomas
Dahlberg, Tobias
Malyshev, Dmitry
Ådén, Jörgen
Andersson, Per Ola
Andersson, Magnus
Karlsson, Björn C. G.
author_sort Näsström, Thomas
collection PubMed
description Alpha-synucleinopathies are featured by fibrillar inclusions in brain cells. Although α-synuclein fibrils display structural diversity, the origin of this diversity is not fully understood. We used molecular dynamics simulations to design synthetic peptides, based on the NAC 71-82 amino acid fragment of α-synuclein, that govern protofilament contacts and generation of twisted fibrillar polymorphs. Four peptides with structures based on either single or double fragments and capped or non-capped ends were selected for further analysis. We determined the fibrillar yield and the structures from these peptides found in the solution after fibrillisation using protein concentration determination assay and circular dichroism spectroscopy. In addition, we characterised secondary structures formed by individual fibrillar complexes using laser-tweezers Raman spectroscopy. Results suggest less mature fibrils, based on the lower relative β-sheet content for double- than single-fragment peptide fibrils. We confirmed this structural difference by TEM analysis which revealed, in addition to short protofibrils, more elongated, twisted and rod-like fibril structures in non-capped and capped double-fragment peptide systems, respectively. Finally, time-correlated single-photon counting demonstrated a difference in the Thioflavin T fluorescence lifetime profiles upon fibril binding. It could be proposed that this difference originated from morphological differences in the fibril samples. Altogether, these results highlight the potential of using peptide models for the generation of fibrils that share morphological features relevant for disease, e.g., twisted and rod-like polymorphs.
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spelling pubmed-84310552021-09-11 Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts Näsström, Thomas Dahlberg, Tobias Malyshev, Dmitry Ådén, Jörgen Andersson, Per Ola Andersson, Magnus Karlsson, Björn C. G. Int J Mol Sci Article Alpha-synucleinopathies are featured by fibrillar inclusions in brain cells. Although α-synuclein fibrils display structural diversity, the origin of this diversity is not fully understood. We used molecular dynamics simulations to design synthetic peptides, based on the NAC 71-82 amino acid fragment of α-synuclein, that govern protofilament contacts and generation of twisted fibrillar polymorphs. Four peptides with structures based on either single or double fragments and capped or non-capped ends were selected for further analysis. We determined the fibrillar yield and the structures from these peptides found in the solution after fibrillisation using protein concentration determination assay and circular dichroism spectroscopy. In addition, we characterised secondary structures formed by individual fibrillar complexes using laser-tweezers Raman spectroscopy. Results suggest less mature fibrils, based on the lower relative β-sheet content for double- than single-fragment peptide fibrils. We confirmed this structural difference by TEM analysis which revealed, in addition to short protofibrils, more elongated, twisted and rod-like fibril structures in non-capped and capped double-fragment peptide systems, respectively. Finally, time-correlated single-photon counting demonstrated a difference in the Thioflavin T fluorescence lifetime profiles upon fibril binding. It could be proposed that this difference originated from morphological differences in the fibril samples. Altogether, these results highlight the potential of using peptide models for the generation of fibrils that share morphological features relevant for disease, e.g., twisted and rod-like polymorphs. MDPI 2021-08-28 /pmc/articles/PMC8431055/ /pubmed/34502242 http://dx.doi.org/10.3390/ijms22179334 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Näsström, Thomas
Dahlberg, Tobias
Malyshev, Dmitry
Ådén, Jörgen
Andersson, Per Ola
Andersson, Magnus
Karlsson, Björn C. G.
Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts
title Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts
title_full Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts
title_fullStr Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts
title_full_unstemmed Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts
title_short Synthetic NAC 71-82 Peptides Designed to Produce Fibrils with Different Protofilament Interface Contacts
title_sort synthetic nac 71-82 peptides designed to produce fibrils with different protofilament interface contacts
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8431055/
https://www.ncbi.nlm.nih.gov/pubmed/34502242
http://dx.doi.org/10.3390/ijms22179334
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