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Discovery of novel coumarin triazolyl and phenoxyphenyl triazolyl derivatives targeting amyloid beta aggregation-mediated oxidative stress and neuroinflammation for enhanced neuroprotection

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dc.contributor.author Satsawat Visansirikul
dc.contributor.author Suthira Yanaso
dc.contributor.author Yingrak Boondam
dc.contributor.author Kanjanawadee Prasittisa
dc.contributor.author Brompoj Prutthiwanasan
dc.contributor.author Sumet Chongruchiroj
dc.contributor.author Kittisak Sripha
dc.contributor.author ศาศวัต วิศาลศิริกุล
dc.contributor.author สุธีรา ญานะโส
dc.contributor.author ยิ่งรัก บุญดำ
dc.contributor.author กาญจนาวดี ประสิทธิสา
dc.contributor.author บรมพจน์ พฤฒิวนาสัณฑ์
dc.contributor.author สุเมธ จงรุจิโรจน์
dc.contributor.author กิตติศักดิ์ ศรีภา
dc.contributor.other Mahidol University. Faculty of Pharmacy en
dc.contributor.other Huachiew Chalermprakiet University. Faculty of Pharmaceutical Sciences en
dc.contributor.other Mahidol University. Faculty of Pharmacy en
dc.contributor.other Nakhon Phanom University. Faculty of Education en
dc.contributor.other Mahidol University. Faculty of Pharmacy en
dc.contributor.other Mahidol University. Faculty of Pharmacy en
dc.contributor.other Mahidol University. Faculty of Pharmacy en
dc.date.accessioned 2025-03-14T13:43:46Z
dc.date.available 2025-03-14T13:43:46Z
dc.date.issued 2024
dc.identifier.citation RSC Med. Chem. 8,15 (2024) : 2745-2765 en
dc.identifier.other DOI: https://doi.org/10.1039/D4MD00270A
dc.identifier.uri https://has.hcu.ac.th/jspui/handle/123456789/3710
dc.description สามารถเข้าถึงบทความฉบับเต็ม (Full Text) ได้ที่: https://pubs.rsc.org/en/content/articlelanding/2024/md/d4md00270a en
dc.description.abstract This study involved designing, synthesizing, and evaluating the protective potential of compounds on microglial cells (BV-2 cells) and neurons (SH-SY5Y cells) against cell death induced by Aβ1–42. It aimed to identify biologically specific activities associated with anti-Aβ aggregation and understand their role in oxidative stress initiation and modulation of proinflammatory cytokine expression. Actively designed compounds CE5, CA5, PE5, and PA5 showed protective effects on BV-2 and SH-SY5Y cells, with cell viability ranging from 60.78 ± 2.32% to 75.38 ± 2.75% for BV-2 cells and 87.21% ± 1.76% to 91.55% ± 1.78% for SH-SY5Y cells. The transformation from ester in CE5 to amide in CA5 resulted in significant antioxidant properties. Molecular docking studies revealed strong binding of CE5 to critical Aβ aggregation regions, disrupting both intra- and intermolecular formations. TEM assessment supported CE5's anti-Aβ aggregation efficacy. Structural variations in PE5 and PA5 had diverse effects on IL-1β and IL-6, suggesting further specificity studies for Alzheimer's disease. Log P values suggested potential blood–brain barrier permeation for CE5 and CA5, indicating suitability for CNS drug development. In silico ADMET and toxicological screening revealed that CE5, PA5, and PE5 have favorable safety profiles, while CA5 shows a propensity for hepatotoxicity. According to this prediction, coumarin triazolyl derivatives are likely to exhibit mutagenicity. Nevertheless, CE5 and CA5 emerge as promising lead compounds for Alzheimer's therapeutic intervention, with further insights expected from subsequent in vivo studies. en
dc.language.iso en_US en
dc.subject Coumarin triazolyl en
dc.subject คูมาริน-ไตรเอโซล en
dc.subject Neuroinflammation en
dc.subject กระบวนการอักเสบในระบบประสาท en
dc.subject Inflammation en
dc.subject การอักเสบ en
dc.subject Neuroprotection en
dc.subject อาการเส้นประสาทอักเสบ en
dc.subject Phenoxyphenyl triazolyl en
dc.title Discovery of novel coumarin triazolyl and phenoxyphenyl triazolyl derivatives targeting amyloid beta aggregation-mediated oxidative stress and neuroinflammation for enhanced neuroprotection en
dc.type Article en


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