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Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action

Both amyloid-β (Aβ) and insulin are amyloidogenic peptides, and they play a critical role in Alzheimer’s disease (AD) and type-2 diabetes (T2D). Misfolded or aggregated Aβ and glycated insulin are commonly found in AD and T2D patients, respectively, and exhibit neurotoxicity and oxidative stress. Th...

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Autores principales: Seong, Su Hui, Paudel, Pradeep, Jung, Hyun Ah, Choi, Jae Sue
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6891666/
https://www.ncbi.nlm.nih.gov/pubmed/31652867
http://dx.doi.org/10.3390/md17110600
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author Seong, Su Hui
Paudel, Pradeep
Jung, Hyun Ah
Choi, Jae Sue
author_facet Seong, Su Hui
Paudel, Pradeep
Jung, Hyun Ah
Choi, Jae Sue
author_sort Seong, Su Hui
collection PubMed
description Both amyloid-β (Aβ) and insulin are amyloidogenic peptides, and they play a critical role in Alzheimer’s disease (AD) and type-2 diabetes (T2D). Misfolded or aggregated Aβ and glycated insulin are commonly found in AD and T2D patients, respectively, and exhibit neurotoxicity and oxidative stress. The present study examined the anti-Aβ(25-35) aggregation and anti-insulin glycation activities of five phlorotannins isolated from Ecklonia stolonifera. Thioflavin-T assay results suggest that eckol, dioxinodehydroeckol, dieckol, and phlorofucofuroeckol-A (PFFA) significantly inhibit Aβ(25-35) self-assembly. Molecular docking and dynamic simulation analyses confirmed that these phlorotannins have a strong potential to interact with Aβ(25-35) peptides and interrupt their self-assembly and conformational transformation, thereby inhibiting Aβ(25-35) aggregation. In addition, PFFA dose-dependently inhibited d-ribose and d-glucose induced non-enzymatic insulin glycation. To understand the molecular mechanism for insulin glycation and its inhibition, we predicted the binding site of PFFA in insulin via computational analysis. Interestingly, PFFA strongly interacted with the Phe1 in insulin chain-B, and this interaction could block d-glucose access to the glycation site of insulin. Taken together, our novel findings suggest that phlorofucofuroeckol-A could be a new scaffold for AD treatment by inhibiting the formation of β-sheet rich structures in Aβ(25-35) and advanced glycation end-products (AGEs) in insulin.
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spelling pubmed-68916662019-12-12 Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action Seong, Su Hui Paudel, Pradeep Jung, Hyun Ah Choi, Jae Sue Mar Drugs Article Both amyloid-β (Aβ) and insulin are amyloidogenic peptides, and they play a critical role in Alzheimer’s disease (AD) and type-2 diabetes (T2D). Misfolded or aggregated Aβ and glycated insulin are commonly found in AD and T2D patients, respectively, and exhibit neurotoxicity and oxidative stress. The present study examined the anti-Aβ(25-35) aggregation and anti-insulin glycation activities of five phlorotannins isolated from Ecklonia stolonifera. Thioflavin-T assay results suggest that eckol, dioxinodehydroeckol, dieckol, and phlorofucofuroeckol-A (PFFA) significantly inhibit Aβ(25-35) self-assembly. Molecular docking and dynamic simulation analyses confirmed that these phlorotannins have a strong potential to interact with Aβ(25-35) peptides and interrupt their self-assembly and conformational transformation, thereby inhibiting Aβ(25-35) aggregation. In addition, PFFA dose-dependently inhibited d-ribose and d-glucose induced non-enzymatic insulin glycation. To understand the molecular mechanism for insulin glycation and its inhibition, we predicted the binding site of PFFA in insulin via computational analysis. Interestingly, PFFA strongly interacted with the Phe1 in insulin chain-B, and this interaction could block d-glucose access to the glycation site of insulin. Taken together, our novel findings suggest that phlorofucofuroeckol-A could be a new scaffold for AD treatment by inhibiting the formation of β-sheet rich structures in Aβ(25-35) and advanced glycation end-products (AGEs) in insulin. MDPI 2019-10-23 /pmc/articles/PMC6891666/ /pubmed/31652867 http://dx.doi.org/10.3390/md17110600 Text en © 2019 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Seong, Su Hui
Paudel, Pradeep
Jung, Hyun Ah
Choi, Jae Sue
Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action
title Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action
title_full Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action
title_fullStr Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action
title_full_unstemmed Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action
title_short Identifying Phlorofucofuroeckol-A as a Dual Inhibitor of Amyloid-β(25-35) Self-Aggregation and Insulin Glycation: Elucidation of the Molecular Mechanism of Action
title_sort identifying phlorofucofuroeckol-a as a dual inhibitor of amyloid-β(25-35) self-aggregation and insulin glycation: elucidation of the molecular mechanism of action
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6891666/
https://www.ncbi.nlm.nih.gov/pubmed/31652867
http://dx.doi.org/10.3390/md17110600
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