Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity

Encouraged by the lack of effective treatments and the dramatic growth in the global prevalence of neurodegenerative diseases along with various pharmacological properties of chalcone pharmacophores, this study focused on the development of aminochalcone-based compounds, organic molecules characteri...

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Main Author: Apiraksattayakul S.
Other Authors: Mahidol University
Format: Article
Published: 2023
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Online Access:https://repository.li.mahidol.ac.th/handle/123456789/90365
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spelling th-mahidol.903652023-10-13T01:01:08Z Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity Apiraksattayakul S. Mahidol University Chemical Engineering Encouraged by the lack of effective treatments and the dramatic growth in the global prevalence of neurodegenerative diseases along with various pharmacological properties of chalcone pharmacophores, this study focused on the development of aminochalcone-based compounds, organic molecules characterized by a chalcone backbone (consisting of two aromatic rings connected by a three-carbon α,β-unsaturated carbonyl system) with an amino group attached to one of the aromatic rings, as potential neuroprotective agents. Thus, the aminochalcone-based compounds in this study were designed by bearing a -OCH3 moiety at different positions on the ring and synthesized by the Claisen-Schmidt condensation. The compounds exhibited strong neuroprotective effects against hydrogen peroxide-induced neuronal death in the human neuroblastoma (SH-SY5Y) cell line (i.e., by improving cell survival, reducing reactive oxygen species production, maintaining mitochondrial function, and preventing cell membrane damage). The aminochalcone-based compounds showed mild toxicity toward a normal embryonic lung cell line (MRC-5) and a human neuroblastoma cell line, and were predicted to have preferable pharmacokinetic profiles with potential for oral administration. Molecular docking simulation indicated that the studied aminochalcones may act as competitive activators of the well-known protective protein, SIRT1, and provided beneficial knowledge regarding the essential key chemical moieties and interacting amino acid residues. Collectively, this work provides a series of four promising candidate agents that could be developed for neuroprotection. 2023-10-12T18:01:08Z 2023-10-12T18:01:08Z 2023-01-01 Article ACS Omega (2023) 10.1021/acsomega.3c03047 24701343 2-s2.0-85172998241 https://repository.li.mahidol.ac.th/handle/123456789/90365 SCOPUS
institution Mahidol University
building Mahidol University Library
continent Asia
country Thailand
Thailand
content_provider Mahidol University Library
collection Mahidol University Institutional Repository
topic Chemical Engineering
spellingShingle Chemical Engineering
Apiraksattayakul S.
Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity
description Encouraged by the lack of effective treatments and the dramatic growth in the global prevalence of neurodegenerative diseases along with various pharmacological properties of chalcone pharmacophores, this study focused on the development of aminochalcone-based compounds, organic molecules characterized by a chalcone backbone (consisting of two aromatic rings connected by a three-carbon α,β-unsaturated carbonyl system) with an amino group attached to one of the aromatic rings, as potential neuroprotective agents. Thus, the aminochalcone-based compounds in this study were designed by bearing a -OCH3 moiety at different positions on the ring and synthesized by the Claisen-Schmidt condensation. The compounds exhibited strong neuroprotective effects against hydrogen peroxide-induced neuronal death in the human neuroblastoma (SH-SY5Y) cell line (i.e., by improving cell survival, reducing reactive oxygen species production, maintaining mitochondrial function, and preventing cell membrane damage). The aminochalcone-based compounds showed mild toxicity toward a normal embryonic lung cell line (MRC-5) and a human neuroblastoma cell line, and were predicted to have preferable pharmacokinetic profiles with potential for oral administration. Molecular docking simulation indicated that the studied aminochalcones may act as competitive activators of the well-known protective protein, SIRT1, and provided beneficial knowledge regarding the essential key chemical moieties and interacting amino acid residues. Collectively, this work provides a series of four promising candidate agents that could be developed for neuroprotection.
author2 Mahidol University
author_facet Mahidol University
Apiraksattayakul S.
format Article
author Apiraksattayakul S.
author_sort Apiraksattayakul S.
title Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity
title_short Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity
title_full Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity
title_fullStr Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity
title_full_unstemmed Aminochalcones Attenuate Neuronal Cell Death under Oxidative Damage via Sirtuin 1 Activity
title_sort aminochalcones attenuate neuronal cell death under oxidative damage via sirtuin 1 activity
publishDate 2023
url https://repository.li.mahidol.ac.th/handle/123456789/90365
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