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Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets

The deposition of dense fibril plaques represents the pathological hallmark for a multitude of human disorders, including many neurodegenerative diseases. Fibril plaques are predominately composed of amyloid fibrils, characterized by their underlying cross beta-sheet architecture. Research into the...

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Autores principales: Karunarathne, Kanchana, Bushra, Nabila, Williams, Olivia, Raza, Imad, Tirado, Laura, Fakhre, Diane, Fakhre, Fadia, Muschol, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9953743/
https://www.ncbi.nlm.nih.gov/pubmed/36830599
http://dx.doi.org/10.3390/biom13020230
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author Karunarathne, Kanchana
Bushra, Nabila
Williams, Olivia
Raza, Imad
Tirado, Laura
Fakhre, Diane
Fakhre, Fadia
Muschol, Martin
author_facet Karunarathne, Kanchana
Bushra, Nabila
Williams, Olivia
Raza, Imad
Tirado, Laura
Fakhre, Diane
Fakhre, Fadia
Muschol, Martin
author_sort Karunarathne, Kanchana
collection PubMed
description The deposition of dense fibril plaques represents the pathological hallmark for a multitude of human disorders, including many neurodegenerative diseases. Fibril plaques are predominately composed of amyloid fibrils, characterized by their underlying cross beta-sheet architecture. Research into the mechanisms of amyloid formation has mostly focused on characterizing and modeling the growth of individual fibrils and associated oligomers from their monomeric precursors. Much less is known about the mechanisms causing individual fibrils to assemble into ordered fibrillar suprastructures. Elucidating the mechanisms regulating this “secondary” self-assembly into distinct suprastructures is important for understanding how individual protein fibrils form the prominent macroscopic plaques observed in disease. Whether and how amyloid fibrils assemble into either 2D or 3D supramolecular structures also relates to ongoing efforts on using amyloid fibrils as substrates or scaffolds for self-assembling functional biomaterials. Here, we investigated the conditions under which preformed amyloid fibrils of a lysozyme assemble into larger superstructures as a function of charge screening or pH. Fibrils either assembled into three-dimensional gel clusters or two-dimensional fibril sheets. The latter displayed optical birefringence, diagnostic of amyloid plaques. We presume that pH and salt modulate fibril charge repulsion, which allows anisotropic fibril–fibril attraction to emerge and drive the transition from 3D to 2D fibril self-assembly.
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spelling pubmed-99537432023-02-25 Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets Karunarathne, Kanchana Bushra, Nabila Williams, Olivia Raza, Imad Tirado, Laura Fakhre, Diane Fakhre, Fadia Muschol, Martin Biomolecules Article The deposition of dense fibril plaques represents the pathological hallmark for a multitude of human disorders, including many neurodegenerative diseases. Fibril plaques are predominately composed of amyloid fibrils, characterized by their underlying cross beta-sheet architecture. Research into the mechanisms of amyloid formation has mostly focused on characterizing and modeling the growth of individual fibrils and associated oligomers from their monomeric precursors. Much less is known about the mechanisms causing individual fibrils to assemble into ordered fibrillar suprastructures. Elucidating the mechanisms regulating this “secondary” self-assembly into distinct suprastructures is important for understanding how individual protein fibrils form the prominent macroscopic plaques observed in disease. Whether and how amyloid fibrils assemble into either 2D or 3D supramolecular structures also relates to ongoing efforts on using amyloid fibrils as substrates or scaffolds for self-assembling functional biomaterials. Here, we investigated the conditions under which preformed amyloid fibrils of a lysozyme assemble into larger superstructures as a function of charge screening or pH. Fibrils either assembled into three-dimensional gel clusters or two-dimensional fibril sheets. The latter displayed optical birefringence, diagnostic of amyloid plaques. We presume that pH and salt modulate fibril charge repulsion, which allows anisotropic fibril–fibril attraction to emerge and drive the transition from 3D to 2D fibril self-assembly. MDPI 2023-01-24 /pmc/articles/PMC9953743/ /pubmed/36830599 http://dx.doi.org/10.3390/biom13020230 Text en © 2023 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
Karunarathne, Kanchana
Bushra, Nabila
Williams, Olivia
Raza, Imad
Tirado, Laura
Fakhre, Diane
Fakhre, Fadia
Muschol, Martin
Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets
title Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets
title_full Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets
title_fullStr Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets
title_full_unstemmed Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets
title_short Self-Assembly of Amyloid Fibrils into 3D Gel Clusters versus 2D Sheets
title_sort self-assembly of amyloid fibrils into 3d gel clusters versus 2d sheets
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9953743/
https://www.ncbi.nlm.nih.gov/pubmed/36830599
http://dx.doi.org/10.3390/biom13020230
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