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Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy

Amyloid proteins that undergo self-assembly to form insoluble fibrillar aggregates have attracted much attention due to their role in biological and pathological significance in amyloidosis. This study aims to understand the amyloid aggregation dynamics of insulin (INS) in H(2)O using two-dimensiona...

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Autores principales: Chun, So Yeon, Son, Myung Kook, Park, Chae Ri, Lim, Chaiho, Kim, Hugh I., Kwak, Kyungwon, Cho, Minhaeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9020176/
https://www.ncbi.nlm.nih.gov/pubmed/35656138
http://dx.doi.org/10.1039/d1sc06047c
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author Chun, So Yeon
Son, Myung Kook
Park, Chae Ri
Lim, Chaiho
Kim, Hugh I.
Kwak, Kyungwon
Cho, Minhaeng
author_facet Chun, So Yeon
Son, Myung Kook
Park, Chae Ri
Lim, Chaiho
Kim, Hugh I.
Kwak, Kyungwon
Cho, Minhaeng
author_sort Chun, So Yeon
collection PubMed
description Amyloid proteins that undergo self-assembly to form insoluble fibrillar aggregates have attracted much attention due to their role in biological and pathological significance in amyloidosis. This study aims to understand the amyloid aggregation dynamics of insulin (INS) in H(2)O using two-dimensional infrared (2D-IR) spectroscopy. Conventional IR studies have been performed in D(2)O to avoid spectral congestion despite distinct H–D isotope effects. We observed a slowdown of the INS fibrillation process in D(2)O compared to that in H(2)O. The 2D-IR results reveal that different quaternary structures of INS at the onset of the nucleation phase caused the distinct fibrillation pathways of INS in H(2)O and D(2)O. A few different biophysical analysis, including solution-phase small-angle X-ray scattering combined with molecular dynamics simulations and other spectroscopic techniques, support our 2D-IR investigation results, providing insight into mechanistic details of distinct structural transition dynamics of INS in water. We found the delayed structural transition in D(2)O is due to the kinetic isotope effect at an early stage of fibrillation of INS in D(2)O, i.e., enhanced dimer formation of INS in D(2)O. Our 2D-IR and biophysical analysis provide insight into mechanistic details of structural transition dynamics of INS in water. This study demonstrates an innovative 2D-IR approach for studying protein dynamics in H(2)O, which will open the way for observing protein dynamics under biological conditions without IR spectroscopic interference by water vibrations.
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spelling pubmed-90201762022-06-01 Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy Chun, So Yeon Son, Myung Kook Park, Chae Ri Lim, Chaiho Kim, Hugh I. Kwak, Kyungwon Cho, Minhaeng Chem Sci Chemistry Amyloid proteins that undergo self-assembly to form insoluble fibrillar aggregates have attracted much attention due to their role in biological and pathological significance in amyloidosis. This study aims to understand the amyloid aggregation dynamics of insulin (INS) in H(2)O using two-dimensional infrared (2D-IR) spectroscopy. Conventional IR studies have been performed in D(2)O to avoid spectral congestion despite distinct H–D isotope effects. We observed a slowdown of the INS fibrillation process in D(2)O compared to that in H(2)O. The 2D-IR results reveal that different quaternary structures of INS at the onset of the nucleation phase caused the distinct fibrillation pathways of INS in H(2)O and D(2)O. A few different biophysical analysis, including solution-phase small-angle X-ray scattering combined with molecular dynamics simulations and other spectroscopic techniques, support our 2D-IR investigation results, providing insight into mechanistic details of distinct structural transition dynamics of INS in water. We found the delayed structural transition in D(2)O is due to the kinetic isotope effect at an early stage of fibrillation of INS in D(2)O, i.e., enhanced dimer formation of INS in D(2)O. Our 2D-IR and biophysical analysis provide insight into mechanistic details of structural transition dynamics of INS in water. This study demonstrates an innovative 2D-IR approach for studying protein dynamics in H(2)O, which will open the way for observing protein dynamics under biological conditions without IR spectroscopic interference by water vibrations. The Royal Society of Chemistry 2022-03-18 /pmc/articles/PMC9020176/ /pubmed/35656138 http://dx.doi.org/10.1039/d1sc06047c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Chun, So Yeon
Son, Myung Kook
Park, Chae Ri
Lim, Chaiho
Kim, Hugh I.
Kwak, Kyungwon
Cho, Minhaeng
Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy
title Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy
title_full Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy
title_fullStr Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy
title_full_unstemmed Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy
title_short Direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2D-IR spectroscopy
title_sort direct observation of protein structural transitions through entire amyloid aggregation processes in water using 2d-ir spectroscopy
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9020176/
https://www.ncbi.nlm.nih.gov/pubmed/35656138
http://dx.doi.org/10.1039/d1sc06047c
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