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Design, assay and in silico optimization of new prototypes inhibitors of acetylcholinesterase

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Author(s):
Jonathan Resende de Almeida
Total Authors: 1
Document type: Doctoral Thesis
Press: Ribeirão Preto.
Institution: Universidade de São Paulo (USP). Faculdade de Ciências Farmacêuticas de Ribeirão Preto (PCARP/BC)
Defense date:
Examining board members:
Carlos Henrique Tomich de Paula da Silva; Antonio Caliri; Flavio da Silva Emery; Andrei Leitão; Carlos Alberto Montanari
Advisor: Carlos Henrique Tomich de Paula da Silva
Abstract

Acetylcholinesterase (AChE) is an essential enzyme that terminates cholinergic transmission by rapid hydrolysis of the neurotransmitter acetylcholine (ACh). A wide range of evidence shows that AChE inhibitors may interfere with the progression of Alzheimer\'s disease (AD). The successful development of AChE inhibitor compounds was based on the theory that the decline in cognitive and mental functions associated with AD is related to the loss of cortical cholinergic neurotransmission, thus, these compounds can be used for treating cholinergic deficiencies. A collection of organic molecules has been scanned to evaluate the ability of these molecules to inhibit the enzymatic activity of AChE in order to find lead compounds for further optimization, leading to drugs with increased efficacy and/or fewer adverse effects. The strategies applied include structure-based virtual screening and also in ligand-based virtual screening, pharmacophoric modeling, molecular docking and similarity searches (shape and electrostatic). Studies have also focused on the discovery of new classes of AChE inhibitors, having as a reference molecule the drug donepezil, which has opened a new class of AChE inhibitors with longer and more selective action with manageable side effects. 50 of the compounds screened, were selected with appropriate physical and chemical properties and ADME/Tox. In general, these compounds possess substantial interaction with the peripheral anionic site (PAS) of AChE and most of them make further interact with the catalytic site (CAS) and other key amino acid residues throughout the enzyme. Out of these 50 compounds, eight were commercially purchased and the enzyme assays have shown that these compounds exhibit a high affinity for AChE. The results show also that the compound titled ZINC30019441 exhibited the most potent inhibitory activity for AChE, with 1.8 micromolar concentration, and the rest were still located in low micromolar, 2-3 micromolar concentration. These results as well as chemical modifications herein proposed for these prototypes, indicate the development of a new and promising series of potent anticholinesterase containing drug properties, which are still suitable to act on the central nervous system and interact with the ?-amyloid peptide, for chemotherapy treatment of Alzheimer\'s disease. The immediate prospect includes the peptide anti-aggregation assays with the eight inhibitors already tested against acetylcholinesterase (AU)

FAPESP's process: 11/01328-4 - Planning, assay and in silico optimization of new prototypes inhibitors of acetylcholinesterase.
Grantee:Jonathan Resende de Almeida
Support Opportunities: Scholarships in Brazil - Doctorate