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Design, Synthesis and Molecular Docking Study of Novel Celecoxib Derivatives Using Bioisosteric Replacement of Sulfonamide Moiety

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dc.contributor.author Thanchanok Loog-in
dc.contributor.author Kulpornsorn Isswanich
dc.contributor.author Phuri Thanarangsarit
dc.contributor.author ธันว์ชนก ลูกอินทร
dc.contributor.author กุลพรสรณ์ อิสสวาณิชย์
dc.contributor.author ภูริต ธนะรังสฤษฏ์
dc.contributor.other Huachiew Chalermprakiet University. Faculty of Pharmaceutical Sciences. Undergraduate Student en
dc.contributor.other Huachiew Chalermprakiet University. Faculty of Pharmaceutical Sciences. Undergraduate Student en
dc.contributor.other Huachiew Chalermprakiet University. Faculty of Pharmaceutical Sciences en
dc.date.accessioned 2025-11-14T05:35:48Z
dc.date.available 2025-11-14T05:35:48Z
dc.date.issued 2021
dc.identifier.uri https://has.hcu.ac.th/jspui/handle/123456789/4832
dc.description Proceedings of the 8th National and International Conference "Research to Serve Society", 25 June 2021 at Huachiew Chalermprakiet University, Bangphli District, Samutprakarn, Thailand : 508-516. en
dc.description.abstract Celecoxib, a selective COX-2 inhibitor, is one of most commonly used nonsteroidal anti-inflammatory drug for the treatment of inflammatory symptoms. However, the presence of sulfonamide group in the structure has been suspected to cause cross-hypersensitivity with antibiotic sulfonamides. To avoid this problem, the sulfonamide moiety of celecoxib was modified using bioisosteric technique to obtain novel celecoxib derivatives. Commercially available 4,4,4-trifluoro-1-methylpheny)butane-1.3-dione was reacted with 4-hydrazinobenzonitrile HCI to obtain nitrle derivative of celecoxib (1). In addion, carboxylic acid (2) and tetrazole (3) derivatives of celecoxib were also synthesized using compound 1 as a starting material. All synthesized compounds including corresponding bioisostere groups of sulfonamide were predicted for their COX-I and COX-2 inhibitory activities by computer-based molecular docking method using AutoDock 4.2. The results showed that tetrazole derivative (3) possessed the lowest binding energy and inhibitory constant (Ki) against mCOX-2 (-9.60 kcal/mol and 91.22 nM, respectively), but lack of selectivity due to very low calculated selectivity index (SI = 0.73). Whereas hydroxymethyl derivative (7) was considered to be a selective COX-2 inhibitor (SI = 6.79). Unfortunately, all designed compounds were found to be inferior to their prototype celecoxib, which exhibited the highest potency and selectivity against mCOX-2 in this study (binding energy = = 10.4 kcal/mol, Ki = 23.91 nM, and SI = 18.14). en
dc.language.iso en_US en
dc.rights มหาวิทยาลัยหัวเฉียวเฉลิมพระเกียรติ en
dc.subject Celecoxib en
dc.subject ซีลีคอกซิบ en
dc.subject Cyclooxygenase en
dc.subject ไซโคลออกซิเจเนส en
dc.subject Bioisostrere en
dc.subject ไบโอไอโซสเตอเรส en
dc.subject Molecular docking en
dc.subject การจำลองการจับกันของโมเลกุล en
dc.subject Molecules en
dc.subject โมเลกุล en
dc.subject Sulfonamide en
dc.subject ซัลโฟนาไมต์ (ยา) en
dc.subject Anti-inflammatory agents en
dc.subject สารต้านการอักเสบ en
dc.subject Inflammation en
dc.subject การอักเสบ en
dc.title Design, Synthesis and Molecular Docking Study of Novel Celecoxib Derivatives Using Bioisosteric Replacement of Sulfonamide Moiety en
dc.type Proceeding Document en


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