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"Triazole-linked thiazolidinedione-Benzothiazole hybrids: Design and biological evaluation as AChE inhibitors"

Almatary, Aya M., Al-Sanea, Mohammad M., Nasr, Eman E., Haikal, Abdullah, Thompson, Gary S., Abood, Amira, Ibrahim, Mahmoud A. A., Elgazar, Abdullah A., Hamdi, Abdelrahman (2025) "Triazole-linked thiazolidinedione-Benzothiazole hybrids: Design and biological evaluation as AChE inhibitors". Bioorganic chemistry, 157 . Article Number 108295. ISSN 0045-2068. E-ISSN 1090-2120. (doi:10.1016/j.bioorg.2025.108295) (The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided) (KAR id:109133)

The full text of this publication is not currently available from this repository. You may be able to access a copy if URLs are provided. (Contact us about this Publication)
Official URL:
https://doi.org/10.1016/j.bioorg.2025.108295

Abstract

Novel 2,4-thiazolidinedione-benzothiazole-triazole hybrids (7a-7l) were designed and synthesized as therapeutic agents with pleotropic activity for Alzheimer's disease (AD). These compounds were evaluated for their acetylcholinesterase (AChE) and butyrylcholinesterase (BuChE) inhibitory activities. Compound 7k, exhibited exceptional AChE inhibition (IC₅₀ = 0.083 μM), while compound 7d, showed potent activity (IC₅₀ = 0.119 μM). Kinetic studies revealed that 7k was able to exert its action through mixed types of inhibition. Also, the anti-inflammatory potential of these lead compounds was assessed in LPS-stimulated RAW 264.7 macrophages. Both compounds demonstrated significant dose-dependent inhibition of key inflammatory mediators, including NO, TNF-α, IL-6, and IL-1β at non-cytotoxic concentrations (≤10 μM). Notably, compound 7k exhibited superior anti-inflammatory activity, achieving 92 % NO inhibition, 65 % TNF-α reduction, and 61.1 % IL-1β suppression at 10 μM. Moreover, compound 7k exerted neuroprotective activity against H O induced neurotoxicity in SH-Sy5y cell line leading to reduction in LDH, ROS levels and improving cell survival. Finally, compound 7k was able to prevent Aβ aggregation at IC  = 5 μM. Molecular docking studies provided structural insights into the possible binding interactions of compounds 7d and 7k within the AChE active site. The stability and binding energies of compounds 7d and 7k complexed with AChE were assessed over 100 ns molecular dynamics simulations and compared with Donepezil. The MM/GBSA binding energy calculations indicated that compound 7k exhibited a higher affinity for AChE in comparison with compound 7d and Donepezil, with ΔG values of -46.1, -42.6, and - 24.0 kcal/mol, respectively. These findings suggest that these novel hybrid molecules represent promising multi-target therapeutic candidates for AD treatment, effectively addressing both cholinergic dysfunction and neuroinflammation.

Item Type: Article
DOI/Identification number: 10.1016/j.bioorg.2025.108295
Uncontrolled keywords: multi-target therapeutic strategy; alzheimer's disease; thiazolidinedione-benzothiazole hybrids; acetylcholinesterase inhibition; anti-inflammatory agents; Molecular docking
Subjects: Q Science
Q Science > QH Natural history
Divisions: Divisions > Division of Natural Sciences > Biosciences
Funders: University of Kent (https://ror.org/00xkeyj56)
SWORD Depositor: JISC Publications Router
Depositing User: JISC Publications Router
Date Deposited: 20 Mar 2025 10:01 UTC
Last Modified: 21 Mar 2025 10:39 UTC
Resource URI: https://kar.kent.ac.uk/id/eprint/109133 (The current URI for this page, for reference purposes)

University of Kent Author Information

Thompson, Gary S..

Creator's ORCID: https://orcid.org/0000-0001-9399-7636
CReDIT Contributor Roles: Data curation, Writing - review and editing, Investigation

Abood, Amira.

Creator's ORCID: https://orcid.org/0000-0003-0712-9889
CReDIT Contributor Roles:
  • Depositors only (login required):

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