Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study
Triazole-based thiosemicarbazone derivatives (6a–u) were synthesized then characterized by spectroscopic techniques, such as 1HNMR and 13CNMR and HRMS (ESI). Newly synthesized derivatives were screened in vitro for inhibitory activity against acetylcholinesterase (AChE) and butyrylcholinesterase (Bu...
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2023
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2-s2.0-85145734882 Rahim F.; Ullah H.; Taha M.; Hussain R.; Sarfraz M.; Iqbal R.; Iqbal N.; Khan S.; Ali Shah S.A.; Albalawi M.A.; Abdelaziz M.A.; Alatawi F.S.; Alasmari A.; Sakran M.I.; Zidan N.; Jafri I.; Khan K.M. Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study 2023 Molecules 28 1 10.3390/molecules28010021 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85145734882&doi=10.3390%2fmolecules28010021&partnerID=40&md5=4b873fd689098bf0a7d7cc390025af4e Triazole-based thiosemicarbazone derivatives (6a–u) were synthesized then characterized by spectroscopic techniques, such as 1HNMR and 13CNMR and HRMS (ESI). Newly synthesized derivatives were screened in vitro for inhibitory activity against acetylcholinesterase (AChE) and butyrylcholinesterase (BuChE) enzymes. All derivatives (except 6c and 6d, which were found to be completely inactive) demonstrated moderate to good inhibitory effects ranging from 0.10 ± 0.050 to 12.20 ± 0.30 µM (for AChE) and 0.20 ± 0.10 to 14.10 ± 0.40 µM (for BuChE). The analogue 6i (IC50 = 0.10 ± 0.050 for AChE and IC50 = 0.20 ± 0.050 µM for BuChE), which had di-substitutions (2-nitro, 3-hydroxy groups) at ring B and tri-substitutions (2-nitro, 4,5-dichloro groups) at ring C, and analogue 6b (IC50 = 0.20 ± 0.10 µM for AChE and IC50 = 0.30 ± 0.10 µM for BuChE), which had di-Cl at 4,5, -NO2 groups at 2-position of phenyl ring B and hydroxy group at ortho-position of phenyl ring C, emerged as the most potent inhibitors of both targeted enzymes (AChE and BuChE) among the current series. A structure-activity relationship (SAR) was developed based on nature, position, number, electron donating/withdrawing effects of substitution/s on phenyl rings. Molecular docking studies were used to describe binding interactions of the most active inhibitors with active sites of AChE and BuChE. © 2022 by the authors. MDPI 14203049 English Article All Open Access; Gold Open Access |
author |
Rahim F.; Ullah H.; Taha M.; Hussain R.; Sarfraz M.; Iqbal R.; Iqbal N.; Khan S.; Ali Shah S.A.; Albalawi M.A.; Abdelaziz M.A.; Alatawi F.S.; Alasmari A.; Sakran M.I.; Zidan N.; Jafri I.; Khan K.M. |
spellingShingle |
Rahim F.; Ullah H.; Taha M.; Hussain R.; Sarfraz M.; Iqbal R.; Iqbal N.; Khan S.; Ali Shah S.A.; Albalawi M.A.; Abdelaziz M.A.; Alatawi F.S.; Alasmari A.; Sakran M.I.; Zidan N.; Jafri I.; Khan K.M. Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
author_facet |
Rahim F.; Ullah H.; Taha M.; Hussain R.; Sarfraz M.; Iqbal R.; Iqbal N.; Khan S.; Ali Shah S.A.; Albalawi M.A.; Abdelaziz M.A.; Alatawi F.S.; Alasmari A.; Sakran M.I.; Zidan N.; Jafri I.; Khan K.M. |
author_sort |
Rahim F.; Ullah H.; Taha M.; Hussain R.; Sarfraz M.; Iqbal R.; Iqbal N.; Khan S.; Ali Shah S.A.; Albalawi M.A.; Abdelaziz M.A.; Alatawi F.S.; Alasmari A.; Sakran M.I.; Zidan N.; Jafri I.; Khan K.M. |
title |
Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
title_short |
Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
title_full |
Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
title_fullStr |
Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
title_full_unstemmed |
Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
title_sort |
Synthesis of New Triazole-Based Thiosemicarbazone Derivatives as Anti-Alzheimer’s Disease Candidates: Evidence-Based In Vitro Study |
publishDate |
2023 |
container_title |
Molecules |
container_volume |
28 |
container_issue |
1 |
doi_str_mv |
10.3390/molecules28010021 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85145734882&doi=10.3390%2fmolecules28010021&partnerID=40&md5=4b873fd689098bf0a7d7cc390025af4e |
description |
Triazole-based thiosemicarbazone derivatives (6a–u) were synthesized then characterized by spectroscopic techniques, such as 1HNMR and 13CNMR and HRMS (ESI). Newly synthesized derivatives were screened in vitro for inhibitory activity against acetylcholinesterase (AChE) and butyrylcholinesterase (BuChE) enzymes. All derivatives (except 6c and 6d, which were found to be completely inactive) demonstrated moderate to good inhibitory effects ranging from 0.10 ± 0.050 to 12.20 ± 0.30 µM (for AChE) and 0.20 ± 0.10 to 14.10 ± 0.40 µM (for BuChE). The analogue 6i (IC50 = 0.10 ± 0.050 for AChE and IC50 = 0.20 ± 0.050 µM for BuChE), which had di-substitutions (2-nitro, 3-hydroxy groups) at ring B and tri-substitutions (2-nitro, 4,5-dichloro groups) at ring C, and analogue 6b (IC50 = 0.20 ± 0.10 µM for AChE and IC50 = 0.30 ± 0.10 µM for BuChE), which had di-Cl at 4,5, -NO2 groups at 2-position of phenyl ring B and hydroxy group at ortho-position of phenyl ring C, emerged as the most potent inhibitors of both targeted enzymes (AChE and BuChE) among the current series. A structure-activity relationship (SAR) was developed based on nature, position, number, electron donating/withdrawing effects of substitution/s on phenyl rings. Molecular docking studies were used to describe binding interactions of the most active inhibitors with active sites of AChE and BuChE. © 2022 by the authors. |
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MDPI |
issn |
14203049 |
language |
English |
format |
Article |
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All Open Access; Gold Open Access |
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scopus |
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Scopus |
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1809678479299444736 |