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Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation

Expanded polyglutamine (polyQ) sequences cause numerous neurodegenerative diseases which are accompanied by the formation of polyQ fibrils. The unique role of glutamines in the aggregation onset is undoubtedly accepted and a lot structural data of the fibrils have been acquired, however side-chain s...

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Autores principales: Siu, Ho-Wah, Heck, Benjamin, Kovermann, Michael, Hauser, Karin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7863018/
https://www.ncbi.nlm.nih.gov/pubmed/33552461
http://dx.doi.org/10.1039/d0sc05299j
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author Siu, Ho-Wah
Heck, Benjamin
Kovermann, Michael
Hauser, Karin
author_facet Siu, Ho-Wah
Heck, Benjamin
Kovermann, Michael
Hauser, Karin
author_sort Siu, Ho-Wah
collection PubMed
description Expanded polyglutamine (polyQ) sequences cause numerous neurodegenerative diseases which are accompanied by the formation of polyQ fibrils. The unique role of glutamines in the aggregation onset is undoubtedly accepted and a lot structural data of the fibrils have been acquired, however side-chain specific structural dynamics inducing oligomerization are not well understood yet. To analyze spectroscopically the nucleation process, we designed various template-assisted glutamine-rich β-hairpin monomers mimicking the structural motif of a polyQ fibril. In a top-down strategy, we use a template which forms a well-defined stable hairpin in solution, insert polyQ-rich sequences into each strand and monitor the effects of individual glutamines by NMR, CD and IR spectroscopic approaches. The design was further advanced by alternating glutamines with other amino acids (T, W, E, K), thereby enhancing the solubility and increasing the number of cross-strand interacting glutamine side chains. Our spectroscopic studies reveal a decreasing hairpin stability with increased glutamine content and demonstrate the enormous impact of only a few glutamines – far below the disease threshold – to destabilize structure. Furthermore, we could access sub-ms conformational dynamics of monomeric polyQ-rich peptides by laser-excited temperature-jump IR spectroscopy. Both, the increased number of interacting glutamines and higher concentrations are key parameters to induce oligomerization. Concentration-dependent time-resolved IR measurements indicate an additional slower kinetic phase upon oligomer formation. The here presented peptide models enable spectroscopic molecular analyses to distinguish between monomer and oligomer dynamics in the early steps of polyQ fibril formation and in a side-chain specific manner.
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spelling pubmed-78630182021-02-05 Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation Siu, Ho-Wah Heck, Benjamin Kovermann, Michael Hauser, Karin Chem Sci Chemistry Expanded polyglutamine (polyQ) sequences cause numerous neurodegenerative diseases which are accompanied by the formation of polyQ fibrils. The unique role of glutamines in the aggregation onset is undoubtedly accepted and a lot structural data of the fibrils have been acquired, however side-chain specific structural dynamics inducing oligomerization are not well understood yet. To analyze spectroscopically the nucleation process, we designed various template-assisted glutamine-rich β-hairpin monomers mimicking the structural motif of a polyQ fibril. In a top-down strategy, we use a template which forms a well-defined stable hairpin in solution, insert polyQ-rich sequences into each strand and monitor the effects of individual glutamines by NMR, CD and IR spectroscopic approaches. The design was further advanced by alternating glutamines with other amino acids (T, W, E, K), thereby enhancing the solubility and increasing the number of cross-strand interacting glutamine side chains. Our spectroscopic studies reveal a decreasing hairpin stability with increased glutamine content and demonstrate the enormous impact of only a few glutamines – far below the disease threshold – to destabilize structure. Furthermore, we could access sub-ms conformational dynamics of monomeric polyQ-rich peptides by laser-excited temperature-jump IR spectroscopy. Both, the increased number of interacting glutamines and higher concentrations are key parameters to induce oligomerization. Concentration-dependent time-resolved IR measurements indicate an additional slower kinetic phase upon oligomer formation. The here presented peptide models enable spectroscopic molecular analyses to distinguish between monomer and oligomer dynamics in the early steps of polyQ fibril formation and in a side-chain specific manner. Royal Society of Chemistry 2020-10-28 /pmc/articles/PMC7863018/ /pubmed/33552461 http://dx.doi.org/10.1039/d0sc05299j Text en This journal is © The Royal Society of Chemistry 2021 https://creativecommons.org/licenses/by-nc/3.0/This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Siu, Ho-Wah
Heck, Benjamin
Kovermann, Michael
Hauser, Karin
Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation
title Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation
title_full Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation
title_fullStr Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation
title_full_unstemmed Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation
title_short Template-assisted design of monomeric polyQ models to unravel the unique role of glutamine side chains in disease-related aggregation
title_sort template-assisted design of monomeric polyq models to unravel the unique role of glutamine side chains in disease-related aggregation
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7863018/
https://www.ncbi.nlm.nih.gov/pubmed/33552461
http://dx.doi.org/10.1039/d0sc05299j
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