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Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels

INTRODUCTION: Alzheimer's disease (AD) is a progressive neurodegeneration characterized by extensive protein aggregation and deposition in the brain, associated with defective proteasomal and autophagic‐lysosomal proteolytic pathways. Since current drugs can only reduce specific symptoms, the i...

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Autores principales: Cecarini, Valentina, Cuccioloni, Massimiliano, Zheng, Yadong, Bonfili, Laura, Gong, Chunmei, Angeletti, Mauro, Mena, Pedro, Del Rio, Daniele, Eleuteri, Anna Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9285603/
https://www.ncbi.nlm.nih.gov/pubmed/34318994
http://dx.doi.org/10.1002/mnfr.202100380
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author Cecarini, Valentina
Cuccioloni, Massimiliano
Zheng, Yadong
Bonfili, Laura
Gong, Chunmei
Angeletti, Mauro
Mena, Pedro
Del Rio, Daniele
Eleuteri, Anna Maria
author_facet Cecarini, Valentina
Cuccioloni, Massimiliano
Zheng, Yadong
Bonfili, Laura
Gong, Chunmei
Angeletti, Mauro
Mena, Pedro
Del Rio, Daniele
Eleuteri, Anna Maria
author_sort Cecarini, Valentina
collection PubMed
description INTRODUCTION: Alzheimer's disease (AD) is a progressive neurodegeneration characterized by extensive protein aggregation and deposition in the brain, associated with defective proteasomal and autophagic‐lysosomal proteolytic pathways. Since current drugs can only reduce specific symptoms, the identification of novel treatments is a major concern in AD research. Among natural compounds, (poly)phenols and their derivatives/metabolites are emerging as candidates in AD prevention due to their multiple beneficial effects. This study aims to investigate the ability of a selection of phenyl‐γ‐valerolactones, gut microbiota‐derived metabolites of flavan‐3‐ols, to modulate the functionality of cellular proteolytic pathways. METHODS AND RESULTS: Neuronal SH‐SY5Y cells transfected with either the wild‐type or the 717 valine‐to‐glycine amyloid precursor protein mutated gene are used as an AD model and treated with 5‐(4ʹ‐hydroxyphenyl)‐γ‐valerolactone, 5‐(3ʹ,4ʹ‐dihydroxyphenyl)‐γ‐valerolactone and 5‐(3ʹ‐hydroxyphenyl)‐γ‐valerolactone‐4ʹ‐sulfate. Combining in vitro and in silico studies, it is observed that the phenyl‐γ‐valerolactones of interest modulated cellular proteolysis via proteasome inhibition and consequent autophagy upregulation and inhibited cathepsin B activity, eventually reducing the amount of intra‐ and extracellular amyloid‐beta (1‐42) peptides. CONCLUSION: The findings of this study establish, for the first time, that these metabolites exert a neuroprotective activity by regulating intracellular proteolysis and confirm the role of autophagy and cathepsin B as possible targets of AD preventive/therapeutic strategies.
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spelling pubmed-92856032022-07-18 Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels Cecarini, Valentina Cuccioloni, Massimiliano Zheng, Yadong Bonfili, Laura Gong, Chunmei Angeletti, Mauro Mena, Pedro Del Rio, Daniele Eleuteri, Anna Maria Mol Nutr Food Res Research Articles INTRODUCTION: Alzheimer's disease (AD) is a progressive neurodegeneration characterized by extensive protein aggregation and deposition in the brain, associated with defective proteasomal and autophagic‐lysosomal proteolytic pathways. Since current drugs can only reduce specific symptoms, the identification of novel treatments is a major concern in AD research. Among natural compounds, (poly)phenols and their derivatives/metabolites are emerging as candidates in AD prevention due to their multiple beneficial effects. This study aims to investigate the ability of a selection of phenyl‐γ‐valerolactones, gut microbiota‐derived metabolites of flavan‐3‐ols, to modulate the functionality of cellular proteolytic pathways. METHODS AND RESULTS: Neuronal SH‐SY5Y cells transfected with either the wild‐type or the 717 valine‐to‐glycine amyloid precursor protein mutated gene are used as an AD model and treated with 5‐(4ʹ‐hydroxyphenyl)‐γ‐valerolactone, 5‐(3ʹ,4ʹ‐dihydroxyphenyl)‐γ‐valerolactone and 5‐(3ʹ‐hydroxyphenyl)‐γ‐valerolactone‐4ʹ‐sulfate. Combining in vitro and in silico studies, it is observed that the phenyl‐γ‐valerolactones of interest modulated cellular proteolysis via proteasome inhibition and consequent autophagy upregulation and inhibited cathepsin B activity, eventually reducing the amount of intra‐ and extracellular amyloid‐beta (1‐42) peptides. CONCLUSION: The findings of this study establish, for the first time, that these metabolites exert a neuroprotective activity by regulating intracellular proteolysis and confirm the role of autophagy and cathepsin B as possible targets of AD preventive/therapeutic strategies. John Wiley and Sons Inc. 2021-08-07 2021-09 /pmc/articles/PMC9285603/ /pubmed/34318994 http://dx.doi.org/10.1002/mnfr.202100380 Text en © 2021 The Authors. Molecular Nutrition & Food Research published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Cecarini, Valentina
Cuccioloni, Massimiliano
Zheng, Yadong
Bonfili, Laura
Gong, Chunmei
Angeletti, Mauro
Mena, Pedro
Del Rio, Daniele
Eleuteri, Anna Maria
Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels
title Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels
title_full Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels
title_fullStr Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels
title_full_unstemmed Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels
title_short Flavan‐3‐ol Microbial Metabolites Modulate Proteolysis in Neuronal Cells Reducing Amyloid‐beta (1‐42) Levels
title_sort flavan‐3‐ol microbial metabolites modulate proteolysis in neuronal cells reducing amyloid‐beta (1‐42) levels
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9285603/
https://www.ncbi.nlm.nih.gov/pubmed/34318994
http://dx.doi.org/10.1002/mnfr.202100380
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